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Special article: vascular ageing
Vascular smooth muscle cell aging: Insights from Hutchinson-Gilford progeria syndrome
Envejecimiento de las células del músculo liso vascular: conclusiones derivadas del síndrome de progeria de Hutchinson-Gilford
Magda R. Hamczyka,b,
Corresponding author
hamczykmagda@uniovi.es

Corresponding author.
, Rosa M. Nevadob,c
a Departamento de Bioquímica y Biología Molecular, Instituto Universitario de Oncología (IUOPA), Universidad de Oviedo, 33006 Oviedo, Spain
b Centro de Investigación Biomédica en Red de Enfermedades Cardiovasculares (CIBERCV), 28029 Madrid, Spain
c Centro Nacional de Investigaciones Cardiovasculares Carlos III (CNIC), 28029 Madrid, Spain
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          "en" => "<p id="spar0020" class="elsevierStyleSimplePara elsevierViewall">Comparison of atherogenesis in Hutchinson-Gilford progeria syndrome &#40;HGPS&#41; and non-HGPS mouse models&#46; In non-HGPS animals &#40;<span class="elsevierStyleItalic">Apoe<span class="elsevierStyleSup">&#8722;&#47;&#8722;</span></span> and <span class="elsevierStyleItalic">Ldlr</span><span class="elsevierStyleSup">&#8722;&#47;&#8722;</span>&#41;&#44; atherosclerosis typically begins with endothelial dysfunction&#44; often associated with hemodynamic stress&#46; Activated endothelial cells &#40;ECs&#41; recruit immune cells to the artery wall&#44; leading to atheroma lesion growth&#46; Vascular smooth muscle cells &#40;VSMCs&#41; start to migrate from the media toward the intima&#44; where they proliferate and synthesize extracellular matrix to form a fibrous cap preventing plaque disruption&#46; In HGPS animals &#40;<span class="elsevierStyleItalic">Apoe<span class="elsevierStyleSup">&#8722;&#47;&#8722;</span>Lmna<span class="elsevierStyleSup">G609G&#47;G609G</span></span> and <span class="elsevierStyleItalic">Ldlr</span><span class="elsevierStyleSup">&#8722;&#47;&#8722;</span><span class="elsevierStyleItalic">Lmna<span class="elsevierStyleSup">G609G&#47;G609G</span></span>&#41;&#44; atherogenesis is triggered by alterations in VSMCs and their death in the medial layer&#46; The consequent VSMC depletion in the fibrous cap leads to highly unstable atheroma lesions that can easily break&#44; resulting in life-threatening thrombus formation&#46;</p>"
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    "textoCompleto" => "<span class="elsevierStyleSections"><span id="sec0005" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="sect0030">Introduction</span><p id="par0005" class="elsevierStylePara elsevierViewall">Cardiovascular disease &#40;CVD&#41; is a major contributor to mortality worldwide and its incidence and prevalence correlate with increasing age&#46;<a class="elsevierStyleCrossRefs" href="#bib0265"><span class="elsevierStyleSup">1&#44;2</span></a> Pathological changes in the arteries typically precede clinical manifestations of CVD&#44; and thus have been extensively studied to improve prevention and treatment of CVD&#46; In particular&#44; vascular smooth muscle cells &#40;VSMCs&#41;&#44; which are the main cellular component of the artery wall&#44; have received much attention because of their key role in maintaining biomechanical properties of blood vessels&#46; Alterations in VSMCs&#44; due to aging or in response to an injury&#44; promote vascular stiffening&#44; calcification and atherosclerosis&#44; which may lead to myocardial infarction or stroke&#46;<a class="elsevierStyleCrossRef" href="#bib0275"><span class="elsevierStyleSup">3</span></a></p><p id="par0010" class="elsevierStylePara elsevierViewall">Vascular disease onset&#44; progression and manifestation vary among individuals&#46;<a class="elsevierStyleCrossRef" href="#bib0280"><span class="elsevierStyleSup">4</span></a> Both genetic and environmental factors can modulate this process&#46; One of the most striking examples of accelerated vascular aging is Hutchinson-Gilford progeria syndrome &#40;HGPS&#41;&#46;<a class="elsevierStyleCrossRef" href="#bib0285"><span class="elsevierStyleSup">5</span></a> HGPS patients develop vascular calcification&#44; stiffening and atherosclerosis during childhood and typically die from its complications before reaching adulthood&#46; Human and mouse model data indicate that most vascular pathologies in progeria stem from VSMC defects&#44; suggesting that HGPS is a valuable model to study VSMC aging&#46;<a class="elsevierStyleCrossRef" href="#bib0290"><span class="elsevierStyleSup">6</span></a> In this review&#44; we will focus on the role of VSMCs in vascular disease associated with HGPS&#46; We will summarize the main findings in humans and mouse models&#44; outline molecular and cellular mechanisms underlying VSMC alterations and discuss treatment strategies to delay premature vascular aging in progeria&#46;</p></span><span id="sec0010" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="sect0035">Molecular mechanism underlying HGPS</span><p id="par0015" class="elsevierStylePara elsevierViewall">HGPS is an extremely rare disease caused by mutations in the <span class="elsevierStyleItalic">LMNA</span> gene&#46;<a class="elsevierStyleCrossRefs" href="#bib0295"><span class="elsevierStyleSup">7&#44;8</span></a> In healthy differentiated cells&#44; the <span class="elsevierStyleItalic">LMNA</span> gene gives rise to two major isoforms&#44; lamin A and lamin C&#44; <span class="elsevierStyleItalic">via</span> alternative splicing&#46; Lamin C is encoded by exons 1-10 of <span class="elsevierStyleItalic">LMNA</span> gene and does not undergo post-translational modifications&#46; Lamin A is encoded by all 12 exons of <span class="elsevierStyleItalic">LMNA</span> and is produced as a precursor protein&#44; called prelamin A&#46; To reach its mature form&#44; the C-terminus of prelamin A is farnesylated by farnesyl transferase&#44; then its last three amino acids are cleaved off&#46; Next&#44; the newly exposed cysteine residue is carboxymethylated by isoprenyl carboxyl methyltransferase &#40;ICMT&#41;&#46; The final step in lamin A maturation is the cleavage of 15 residues containing farnesyl and carboxymethyl modifications by ZMPSTE24 metalloprotease&#46; Lamin A is then incorporated in the nuclear lamina&#44; where it is crucial for maintaining proper structure and function of the nucleus&#46;</p><p id="par0020" class="elsevierStylePara elsevierViewall">Most HGPS cases are caused by a <span class="elsevierStyleItalic">de novo</span> point mutation &#40;c&#46;1824C&#62;T&#59; p&#46;G608G&#41; in exon 11 of <span class="elsevierStyleItalic">LMNA</span> that only affects the lamin A isoform&#46;<a class="elsevierStyleCrossRefs" href="#bib0295"><span class="elsevierStyleSup">7&#44;8</span></a> Although this single nucleotide substitution does not change the encoded amino acid&#44; it activates a cryptic splice site leading to production of a shorter mRNA&#46; The resulting lack of 150 nucleotides in the <span class="elsevierStyleItalic">LMNA</span> mRNA removes a 50-amino-acid region in the prelamin A protein&#44; including the cleavage site for ZMPSTE24&#46; Hence&#44; the mutant protein&#44; called progerin&#44; cannot undergo complete post-translational processing&#46; Unlike lamin A&#44; progerin remains permanently farnesylated and carboxymethylated and stays anchored to the inner nuclear membrane&#44; causing nuclear defects&#46; Abnormal nuclear structure and function lead to cellular and tissue malfunction that ultimately manifests as organismal aging&#46;</p></span><span id="sec0015" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="sect0040">Vascular disease in HGPS patients</span><p id="par0025" class="elsevierStylePara elsevierViewall">HGPS patients present many signs that resemble physiological aging&#44; including baldness&#44; loss of subcutaneous fat&#44; scleroderma&#44; joint rigidity and osteolysis&#46;<a class="elsevierStyleCrossRef" href="#bib0305"><span class="elsevierStyleSup">9</span></a> However&#44; the most relevant symptoms of the disease are linked to the cardiovascular system&#44; as they provoke death at 14&#46;6 years of age on average&#46;<a class="elsevierStyleCrossRefs" href="#bib0285"><span class="elsevierStyleSup">5&#44;10</span></a> Children with HGPS showed an increase in both carotid-femoral pulse wave velocity and arterial wall ecodensity&#44; indicating vascular stiffening&#46;<a class="elsevierStyleCrossRef" href="#bib0315"><span class="elsevierStyleSup">11</span></a> In some patients&#44; elevated blood pressure was observed&#46;<a class="elsevierStyleCrossRefs" href="#bib0315"><span class="elsevierStyleSup">11&#44;12</span></a> Postmortem examination of HGPS arteries revealed a series of alterations&#44; such as VSMC depletion in the media&#44; increased extracellular matrix &#40;ECM&#41; deposition&#44; elastin fragmentation and adventitial thickening&#46;<a class="elsevierStyleCrossRefs" href="#bib0285"><span class="elsevierStyleSup">5&#44;13&#44;14</span></a> Moreover&#44; calcification was found in the arterial media&#44; plaques and valves of HGPS subjects&#46;<a class="elsevierStyleCrossRefs" href="#bib0285"><span class="elsevierStyleSup">5&#44;13</span></a> Importantly&#44; autopsies of affected individuals revealed advanced&#44; often acellular and fibrotic&#44; atherosclerotic lesions with signs of disruption&#46;<a class="elsevierStyleCrossRefs" href="#bib0285"><span class="elsevierStyleSup">5&#44;13</span></a> Accordingly&#44; death in about 90&#37; of HGPS cases occurred from atherosclerosis complications&#44; mainly ischemic heart disease&#46;<a class="elsevierStyleCrossRef" href="#bib0305"><span class="elsevierStyleSup">9</span></a> Even though cerebrovascular accidents account for only 10&#37; of HGPS-related deaths&#44;<a class="elsevierStyleCrossRef" href="#bib0335"><span class="elsevierStyleSup">15</span></a> 60&#37; of patients showed evidence of strokes&#44; out of which half were clinically silent&#46;<a class="elsevierStyleCrossRef" href="#bib0340"><span class="elsevierStyleSup">16</span></a> Remarkably&#44; most HGPS individuals did not show classical CVD risk factors&#44; such as increased levels of low-density lipoprotein &#40;LDL&#41; or C-reactive protein&#46;<a class="elsevierStyleCrossRef" href="#bib0345"><span class="elsevierStyleSup">17</span></a> In summary&#44; HGPS features CVD similar to that observed during normal aging and might constitute a valuable model to study mechanisms of premature vascular decline&#46;</p></span><span id="sec0020" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="sect0045">Mouse models to study VSMC aging in progeria</span><p id="par0030" class="elsevierStylePara elsevierViewall">Given the low number of patients living with progeria worldwide and limited availability of postmortem tissue samples&#44; several animal models of HGPS have been generated to study disease mechanisms and search for a treatment&#46; The first HGPS animal model was created by introducing a bacterial artificial chromosome &#40;BAC&#41; containing the human <span class="elsevierStyleItalic">LMNA</span> gene carrying the G608G mutation into a wild-type mouse with two normal <span class="elsevierStyleItalic">Lmna</span> alleles&#46;<a class="elsevierStyleCrossRef" href="#bib0350"><span class="elsevierStyleSup">18</span></a> Although hemizygote BAC-G608G mice did not show overall aging phenotype&#44; they presented vascular abnormalities starting at 5 months of age that included VSMC loss&#44; elastic fiber breakage&#44; proteoglycan accumulation&#44; collagen deposition and adventitial thickening&#46; At 16 months of age&#44; BAC-G608G mice also showed medial calcification&#46; When bred to homozygosity&#44; BAC-G608G mice presented reduced lifespan and a more severe phenotype that also included symptoms outside the cardiovascular system&#46;<a class="elsevierStyleCrossRef" href="#bib0355"><span class="elsevierStyleSup">19</span></a></p><p id="par0035" class="elsevierStylePara elsevierViewall">Subsequent models were generated by introducing an HGPS-equivalent mutation in the mouse <span class="elsevierStyleItalic">Lmna</span> gene &#40;c&#46;1827C&#62;T&#59; p&#46;G609G&#41; in order to produce progerin <span class="elsevierStyleItalic">via</span> aberrant splicing&#46; These models&#44; all referred to as <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G</span></span>&#44; displayed general aging features&#44; such as lipodystrophy&#44; reduced bone density&#44; failure to thrive and shortened survival&#46;<a class="elsevierStyleCrossRefs" href="#bib0360"><span class="elsevierStyleSup">20&#8211;22</span></a> Both <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;&#43;</span></span> and <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice showed similar symptoms&#44; but disease onset was earlier and progression faster in homozygotes&#46;<a class="elsevierStyleCrossRefs" href="#bib0360"><span class="elsevierStyleSup">20&#44;22&#44;23</span></a> Aorta of the <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice showed a mild reduction in VSMC content&#44; increased collagen deposition&#44; altered elastin waving&#44; moderate adventitial thickening and arterial stiffening&#46;<a class="elsevierStyleCrossRefs" href="#bib0360"><span class="elsevierStyleSup">20&#44;23&#8211;25</span></a> Although incipient medial calcification was observed in <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice&#44; it fully manifested in the heterozygous mice probably due to their longer survival&#46;<a class="elsevierStyleCrossRefs" href="#bib0390"><span class="elsevierStyleSup">26&#44;27</span></a></p><p id="par0040" class="elsevierStylePara elsevierViewall">However&#44; none of the abovementioned models presented atherosclerotic disease&#44; the death-causing progeria symptom&#46; This observation is in agreement with the fact that mice&#44; unlike humans&#44; are resistant to atherogenesis because of their atheroprotective lipid profile&#46;<a class="elsevierStyleCrossRef" href="#bib0400"><span class="elsevierStyleSup">28</span></a> To enable atherogenesis&#44; <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice were crossed with <span class="elsevierStyleItalic">Apoe</span>- or <span class="elsevierStyleItalic">Ldlr</span>-deficient mice&#44; two widely-used models to study atherosclerosis&#46; Both <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> and <span class="elsevierStyleItalic">Ldlr</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice presented accelerated atherosclerotic disease along with severe VSMC loss and collagen deposition in the media&#44; and excessive adventitial thickening&#46;<a class="elsevierStyleCrossRefs" href="#bib0290"><span class="elsevierStyleSup">6&#44;29</span></a> Furthermore&#44; aortas of <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice showed lipid accumulation in the medial layer that was&#44; at least partially&#44; attributed to increased LDL retention&#46;<a class="elsevierStyleCrossRef" href="#bib0290"><span class="elsevierStyleSup">6</span></a> Importantly&#44; atheroma plaques of <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> and <span class="elsevierStyleItalic">Ldlr</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice showed signs of vulnerability&#44; including reduced VSMC content in the plaque and in the fibrous cap and presence of erythrocytes and iron deposits&#46;<a class="elsevierStyleCrossRefs" href="#bib0290"><span class="elsevierStyleSup">6&#44;29</span></a> Likewise&#44; evidence of myocardial infarction was found in a few <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice close to their maximum survival&#46;<a class="elsevierStyleCrossRef" href="#bib0290"><span class="elsevierStyleSup">6</span></a> In summary&#44; both atheroprone ubiquitous HGPS models aged prematurely and closely recapitulated the cardiovascular phenotype found in human patients&#46;</p><p id="par0045" class="elsevierStylePara elsevierViewall">To further disentangle the role of VSMCs in progerin-induced vascular aging&#44; tissue-specific models of HGPS were generated both with and without atherogenic background&#46; Namely&#44; <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">LCS&#47;LCS</span></span><span class="elsevierStyleItalic">SM22&#945;Cre</span> mice expressing progerin predominantly in VSMCs exhibited alterations in the aortic media&#44; including VSMC loss&#44; collagen accumulation and straightened elastin layers&#46;<a class="elsevierStyleCrossRefs" href="#bib0290"><span class="elsevierStyleSup">6&#44;24</span></a> Likewise&#44; these mice showed reduced vessel contractility and increased vascular stiffening&#46;<a class="elsevierStyleCrossRefs" href="#bib0380"><span class="elsevierStyleSup">24&#44;30</span></a> However&#44; this model did not show atherosclerosis nor shortened lifespan&#46;<a class="elsevierStyleCrossRef" href="#bib0290"><span class="elsevierStyleSup">6</span></a> When <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">LCS&#47;LCS</span></span><span class="elsevierStyleItalic">SM22&#945;Cre</span> mice were crossed to <span class="elsevierStyleItalic">Apoe</span>-deficient background&#44; they manifested the complete vascular phenotype with premature atherosclerotic disease&#44; similar to that observed in <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice&#46;<a class="elsevierStyleCrossRefs" href="#bib0290"><span class="elsevierStyleSup">6&#44;31</span></a> At advanced stages of the disease&#44; <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">LCS&#47;LCS</span></span><span class="elsevierStyleItalic">SM22&#945;Cre</span> mice also showed excessive plaque calcification&#44; a feature not found in other HGPS mouse models&#46; Notably&#44; <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">LCS&#47;LCS</span></span><span class="elsevierStyleItalic">SM22&#945;Cre</span> mice&#44; despite not showing general premature aging features&#44; had a reduced survival&#46; Given the evidence of myocardial infarction found in these mice close to their maximum survival&#44; this early mortality was probably due to atherosclerosis complications&#46; These findings demonstrated that VSMC alterations underlie the accelerated vascular aging in HGPS&#46;</p></span><span id="sec0025" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="sect0050">Cellular and molecular mechanisms of progerin-induced VSMC aging</span><p id="par0050" class="elsevierStylePara elsevierViewall">Progerin induces multiple cellular and molecular defects in VSMCs that with time translate into vascular pathologies&#44; including stiffness&#44; calcification and atherosclerosis &#40;<a class="elsevierStyleCrossRef" href="#fig0005">Fig&#46; 1</a>&#41;&#46; VSMCs are among the cell types that are most severely affected by progerin expression&#46; This sensitivity could be partially explained by the fact that lamin A &#40;and thus progerin&#41; levels are greatly increased in stiff tissues&#44; such as aorta&#46;<a class="elsevierStyleCrossRefs" href="#bib0375"><span class="elsevierStyleSup">23&#44;32</span></a></p><elsevierMultimedia ident="fig0005"></elsevierMultimedia><p id="par0055" class="elsevierStylePara elsevierViewall">VSMCs are subjected to repetitive biomechanical stress related to blood flow&#46; In mouse models of progeria&#44; aortic zones with disturbed blood flow and dynamic changes in shear stress typically suffer more pronounced vascular disease&#46; For instance&#44; the inner curvature of <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> and <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;&#43;</span></span> mouse aortas showed more severe VSMC depletion than the outer curvature despite expressing similar levels of progerin&#46;<a class="elsevierStyleCrossRef" href="#bib0375"><span class="elsevierStyleSup">23</span></a><span class="elsevierStyleItalic">In vitro</span> studies showed that progerin-expressing VSMCs were more susceptible to cell death when subjected to repetitive biaxial stretch&#46; Recently&#44; it was reported that vulnerability to biomechanical forces of VSMCs derived from HGPS induced pluripotent stem cells &#40;iPSCs&#41; is mediated by an upregulation of matrix metalloprotease-13&#46;<a class="elsevierStyleCrossRef" href="#bib0425"><span class="elsevierStyleSup">33</span></a></p><p id="par0060" class="elsevierStylePara elsevierViewall">VSMCs regulate vascular tone by contracting and relaxing in response to blood flow&#46; <span class="elsevierStyleItalic">Ex vivo</span> analysis of <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> and <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">LCS&#47;LCS</span></span><span class="elsevierStyleItalic">SM22&#945;Cre</span> aortas by wire myography showed increased stiffening and reduced contractility&#46;<a class="elsevierStyleCrossRefs" href="#bib0380"><span class="elsevierStyleSup">24&#44;30</span></a> Transcriptomic analysis of descending aortas of young <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice revealed changes in several pathways associated with contractility&#46;<a class="elsevierStyleCrossRef" href="#bib0430"><span class="elsevierStyleSup">34</span></a> Furthermore&#44; <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> aortas showed reduced mRNA levels of <span class="elsevierStyleItalic">Myh11</span>&#44; the gene encoding smooth muscle-specific myosin heavy chain &#40;SM-MHC&#41;&#44; one of the main proteins responsible for the contractile properties of VSMCs&#46; Immunofluorescence analysis of carotid arteries from <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice confirmed lower levels of SM-MHC in the medial layer&#46;</p><p id="par0065" class="elsevierStylePara elsevierViewall">VSMCs also play a vital role in maintaining and remodeling the ECM of blood vessels&#46; Medial aortas of progeroid mice at advanced disease stages showed quantitative and qualitative changes in ECM composition&#44; including increased collagen deposition&#44; altered elastin layers and proteoglycan accumulation&#46;<a class="elsevierStyleCrossRefs" href="#bib0350"><span class="elsevierStyleSup">18&#44;23&#44;24&#44;29</span></a> Transcriptomic analysis of medial aortas from <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> and <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">LCS&#47;LCS</span></span><span class="elsevierStyleItalic">SM22&#945;Cre</span> mice before the onset of the disease revealed profound alterations in the expression of genes related to fibrosis&#46;<a class="elsevierStyleCrossRef" href="#bib0435"><span class="elsevierStyleSup">35</span></a> Similarly&#44; upregulation of collagen III and lysyl oxidase&#44; a collagen crosslinking enzyme&#44; was found in the medial layer of aorta and carotid arteries of young <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice&#44; coinciding with vascular stiffening&#46;<a class="elsevierStyleCrossRef" href="#bib0385"><span class="elsevierStyleSup">25</span></a></p><p id="par0070" class="elsevierStylePara elsevierViewall">VSMCs modulate vascular calcification by secreting either inhibitors of calcium-phosphate crystal deposition in normal conditions or pro-osteo&#47;chondrogenic molecules upon pathological phenotypic switching&#46; Some progeria models presented medial or intimal calcification&#44; possibly attributable to both VSMC loss &#40;and hence loss of calcification inhibitors&#41; and phenotypic changes in this cell type&#46;<a class="elsevierStyleCrossRefs" href="#bib0290"><span class="elsevierStyleSup">6&#44;26&#44;27</span></a> Calcified aortas from <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;&#43;</span></span> mice were found to present augmented mRNA expression of osteogenic markers <span class="elsevierStyleItalic">Bmp2</span> and <span class="elsevierStyleItalic">Runx2&#46;</span><a class="elsevierStyleCrossRef" href="#bib0390"><span class="elsevierStyleSup">26</span></a> Moreover&#44; VSMCs derived from <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;&#43;</span></span> mice showed reduced capacity to inhibit calcification <span class="elsevierStyleItalic">in vitro</span> due to reduced levels of extracellular pyrophosphate resulting from both its augmented degradation and diminished production&#46; Increased degradation of pyrophosphate was associated with upregulation of tissue-nonspecific alkaline phosphatase &#40;TNAP&#41;&#44; an enzyme hydrolyzing pyrophosphate&#46; Decreased pyrophosphate production was linked to impaired production of ATP&#44; which is the main substrate for pyrophosphate synthesis&#44; and increased activity of ectonucleoside triphosphate diphosphohydrolase-1 &#40;eNTPD1&#41;&#44; an enzyme degrading ATP to phosphate&#46; Studies with cultured VSMCs from <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;&#43;</span></span> mice revealed that reduced ATP production resulted from increased reactive oxygen species &#40;ROS&#41; production and mitochondrial dysfunction&#46;<a class="elsevierStyleCrossRef" href="#bib0440"><span class="elsevierStyleSup">36</span></a></p><p id="par0075" class="elsevierStylePara elsevierViewall">VSMCs&#44; together with endothelial cells and macrophages&#44; are key players in atherogenesis&#46; VSMCs typically migrate toward the growing neointima&#44; then proliferate and synthetize ECM to form a fibrous cap that protects plaques from rupture&#46; In atheroprone models of progeria&#44; VSMC loss in the media correlated with reduced VSMC content in the plaque and in the fibrous cap and with plaque disruption&#46;<a class="elsevierStyleCrossRefs" href="#bib0290"><span class="elsevierStyleSup">6&#44;29</span></a> RNA sequencing of medial aortas from <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> and <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">LCS&#47;LCS</span></span><span class="elsevierStyleItalic">SM22&#945;Cre</span> mice prior to vascular disease manifestation revealed changes in pathways related to NRF2-mediated oxidative stress&#44; endoplasmic reticulum &#40;ER&#41; stress and the unfolded protein response&#46;<a class="elsevierStyleCrossRef" href="#bib0435"><span class="elsevierStyleSup">35</span></a> Immunofluorescence analyses of the medial layer of both aforementioned models confirmed augmented expression of ER stress markers&#44; such as calreticulin&#44; protein disulfide isomerase and binding-immunoglobulin protein&#46; Further experiments suggested that unresolved ER stress and the associated unfolded protein response are likely to trigger VSMC death in the arteries&#44; accelerating atherosclerosis in HGPS&#46;</p><p id="par0080" class="elsevierStylePara elsevierViewall">Finally&#44; VSMC senescence and death might carry serious consequences for blood vessel structure and function&#46; Almost all progeria models showed progressive loss of VSMCs in the arteries&#46; Consistent with this&#44; p16&#44; a senescence marker&#44; could already be detected in the arterial media of young <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice&#46;<a class="elsevierStyleCrossRef" href="#bib0385"><span class="elsevierStyleSup">25</span></a><span class="elsevierStyleItalic">In vitro</span> studies with VSMCs concluded that progerin causes lower proliferation and replication rates&#44; and triggers senescence due to impaired DNA repair&#46;<a class="elsevierStyleCrossRefs" href="#bib0440"><span class="elsevierStyleSup">36&#8211;38</span></a> Moreover&#44; HGPS-iPSC VSMCs in culture showed prolonged mitosis and died by mitotic catastrophe&#46;<a class="elsevierStyleCrossRef" href="#bib0450"><span class="elsevierStyleSup">38</span></a> Taken together&#44; these experiments suggest that progerin expression in VSMCs induces a series of interconnected defects leading to phenotype switching and death&#44; which prompt premature vascular aging&#46;</p></span><span id="sec0030" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="sect0055">Therapeutic strategies to delay vascular aging in mouse models of HGPS</span><p id="par0085" class="elsevierStylePara elsevierViewall">Numerous basic research studies have proposed possible therapeutic approaches to treat progeria&#44; ranging from gene editing strategies to modulators of downstream effects of progerin&#46; However&#44; only a fraction of these studies explored the impact of these treatments on vascular aging <span class="elsevierStyleItalic">in vivo</span> &#40;<a class="elsevierStyleCrossRef" href="#tbl0005">Table 1</a>&#41;&#46;</p><elsevierMultimedia ident="tbl0005"></elsevierMultimedia><p id="par0090" class="elsevierStylePara elsevierViewall">Since progerin elicits its toxic effects in a dominant-negative manner&#44; several preclinical therapeutic strategies aimed at reducing progerin expression&#46; The most upstream approach for treating progeria is correction of the HGPS-causing mutation using an adenine base editor &#40;ABE&#41; that converts the aberrant A&#8226;T base pair to a G&#8226;C base pair&#44; as in the wild-type <span class="elsevierStyleItalic">LMNA</span> allele&#46; ABE treatment in BAC-G608G homozygous mice at P14 completely abolished medial VSMC depletion and adventitial fibrosis&#44; and extended lifespan 2&#46;4 times compared to saline-treated controls&#44; representing the most efficient treatment described to date&#46;<a class="elsevierStyleCrossRef" href="#bib0455"><span class="elsevierStyleSup">39</span></a> Another gene-based therapy involved <span class="elsevierStyleItalic">Lmna</span> gene disruption using CRISPR-Cas9 technology to specifically prevent expression of lamin A and progerin&#44; without altering lamin C production&#46; Intravenous administration of guide RNAs to <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span>-Cas9 neonates alleviated VSMC loss and increased survival by 25&#37;&#46;<a class="elsevierStyleCrossRef" href="#bib0460"><span class="elsevierStyleSup">40</span></a> RNA splicing is another therapeutic target for reducing progerin expression&#46; Thus&#44; administration of antisense peptide-conjugated phosphorodiamidate morpholino oligomers&#44; which blocked the <span class="elsevierStyleItalic">LMNA</span> exon 11&#8211;12 aberrant splicing&#44; ameliorated the aortic phenotype of BAC-G608G homozygous mice&#44; and extended their lifespan by 61&#46;6&#37;&#46;<a class="elsevierStyleCrossRef" href="#bib0465"><span class="elsevierStyleSup">41</span></a> Likewise&#44; an antisense oligonucleotide therapy shifting <span class="elsevierStyleItalic">Lmna</span> splicing toward lamin C &#40;at the expense of lamin A and hence progerin&#41; was able to partially prevent VSMC loss and adventitial thickening in <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice&#46;<a class="elsevierStyleCrossRef" href="#bib0365"><span class="elsevierStyleSup">21</span></a></p><p id="par0095" class="elsevierStylePara elsevierViewall">Given that the retention of post-translational modifications is partially responsible for progerin detrimental properties&#44; several studies explored the possibility of inhibiting farnesylation and carboxymethylation&#46; Administration of tipifarnib&#44; a farnesyl transferase inhibitor&#44; to BAC-G608G hemizygous mice delayed VSMC loss and proteoglycan deposition in the aorta&#46;<a class="elsevierStyleCrossRef" href="#bib0470"><span class="elsevierStyleSup">42</span></a> Similarly&#44; reducing ICMT activity by introducing a hypomorphic <span class="elsevierStyleItalic">Icmt</span> allele into <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice recovered the number of VSMCs in their aorta&#44; and increased their body weight and survival&#46;<a class="elsevierStyleCrossRef" href="#bib0475"><span class="elsevierStyleSup">43</span></a></p><p id="par0100" class="elsevierStylePara elsevierViewall">Since lamin A is involved in regulating numerous cellular processes&#44; progerin affects a wide range of biological pathways&#46; Hence&#44; other therapeutic strategies are focused on targeting either systemic or cell&#47;tissue-specific effects of progerin expression&#46; For example&#44; progerin triggers inflammation that manifests as increased interleukin-6 concentrations in serum&#46;<a class="elsevierStyleCrossRef" href="#bib0480"><span class="elsevierStyleSup">44</span></a> Consistently&#44; administration of interleukin-6-neutralizing antibodies to <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice protected from medial VSMC loss and provided a modest lifespan extension&#46;<a class="elsevierStyleCrossRef" href="#bib0485"><span class="elsevierStyleSup">45</span></a> Moreover&#44; partial cellular reprogramming by expression of Yamanaka factors in <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice alleviated VSMC depletion in the aorta and extended survival&#46;<a class="elsevierStyleCrossRef" href="#bib0490"><span class="elsevierStyleSup">46</span></a> Likewise&#44; inhibition of N-acetyltransferase 10 &#40;NAT10&#41; by remodelin prolonged lifespan&#44; normalized aortic VSMC content and diminished adventitial thickening of <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice&#46;<a class="elsevierStyleCrossRef" href="#bib0495"><span class="elsevierStyleSup">47</span></a> However&#44; the exact link between progerin and NAT10 has not been established yet&#46;</p><p id="par0105" class="elsevierStylePara elsevierViewall">Other treatments for HGPS aimed at restoring pyrophosphate homeostasis&#46; Namely&#44; systemic injection of exogenous pyrophosphate reduced vascular calcification without affecting body weight or survival of <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice&#46;<a class="elsevierStyleCrossRef" href="#bib0390"><span class="elsevierStyleSup">26</span></a> To increase the levels of pyrophosphate in serum&#44; this therapeutic approach was further improved by combining ATP with levamisole and ARL67156&#44; TNAP and eNTPD inhibitors&#44; respectively&#46;<a class="elsevierStyleCrossRef" href="#bib0395"><span class="elsevierStyleSup">27</span></a> This combined treatment blocked vascular calcification and provided modest benefits in terms of weight and survival in <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;&#43;</span></span> mice&#46;</p><p id="par0110" class="elsevierStylePara elsevierViewall">Some compounds used in preclinical studies targeted the negative effects of cellular stress responses triggered by progerin&#46; In this regard&#44; supplementing drinking water with magnesium prevented vascular calcification and improved body weight and survival in <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;&#43;</span></span> mice by enhancing antioxidant activity and reducing mitochondrial ROS production&#46;<a class="elsevierStyleCrossRef" href="#bib0440"><span class="elsevierStyleSup">36</span></a> Furthermore&#44; intraperitoneal administration of tauroursodeoxycholic acid &#40;TUDCA&#41;&#44; a bile acid that alleviates ER stress&#44; was able to delay VSMC loss and adventitial thickening in the aorta of <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> and <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">LCS&#47;LCS</span></span><span class="elsevierStyleItalic">SM22&#945;Cre</span> mice&#46;<a class="elsevierStyleCrossRef" href="#bib0435"><span class="elsevierStyleSup">35</span></a> Remarkably&#44; TUDCA was the only compound shown to inhibit atherosclerosis in progeroid mice&#46;</p><p id="par0115" class="elsevierStylePara elsevierViewall">Other strategies specifically focused on ECM&#44; contraction and&#47;or mechanosensing in progerin-expressing VSMCs&#46; Disruption of the linker of nucleoskeleton and cytoskeleton complex by VSMC-specific KASH2 overexpression in <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice partially rescued VSMCs in the media and reduced adventitial thickening&#46;<a class="elsevierStyleCrossRef" href="#bib0375"><span class="elsevierStyleSup">23</span></a> Similarly&#44; <span class="elsevierStyleItalic">in vivo</span> inhibition of matrix metalloprotease-13 by batimastat increased VSMC counts in <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> medial aortas&#46;<a class="elsevierStyleCrossRef" href="#bib0425"><span class="elsevierStyleSup">33</span></a> Furthermore&#44; administration of &#946;-aminopropionitrile to block lysyl oxidase protected <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice from vascular stiffening&#46;<a class="elsevierStyleCrossRef" href="#bib0385"><span class="elsevierStyleSup">25</span></a> Finally&#44; sodium nitrate in drinking water was able to reduce vascular stiffening in <span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> mice probably due to increased nitric oxide bioavailability&#46;<a class="elsevierStyleCrossRef" href="#bib0380"><span class="elsevierStyleSup">24</span></a></p><p id="par0120" class="elsevierStylePara elsevierViewall">Although multiple potential treatments for HGPS have been proposed by basic research laboratories&#44; only one&#44; lonafarnib &#40;an inhibitor of farnesyl transferase&#41;&#44; was approved by the Food and Drug Administration&#46; Given that lonafarnib provides only modest therapeutic benefits&#44;<a class="elsevierStyleCrossRefs" href="#bib0310"><span class="elsevierStyleSup">10&#44;48&#44;49</span></a> more research is required to reach more effective treatments for HGPS&#46; Until strategies aimed at reducing progerin expression become safe in humans&#44; the most plausible approach to treat HGPS would require a combination of several treatments targeting different downstream effects of progerin&#46;</p></span><span id="sec0035" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="sect0060">Are studies on HGPS relevant for physiological vascular aging&#63;</span><p id="par0125" class="elsevierStylePara elsevierViewall">HGPS shares many pathological traits with physiological aging&#44; especially those related to the cardiovascular system&#44; such as vascular stiffening&#44; calcification and atherosclerosis&#46;<a class="elsevierStyleCrossRefs" href="#bib0285"><span class="elsevierStyleSup">5&#44;11</span></a> Like in the general population&#44; the leading cause of death in HGPS patients is myocardial infarction or stroke&#46; Postmortem examination of blood vessels revealed that HGPS atheroma plaques frequently exhibit calcification and signs of plaque rupture or erosion&#44; similarly to lesions in normally aged individuals&#46;<a class="elsevierStyleCrossRef" href="#bib0285"><span class="elsevierStyleSup">5</span></a> Even though severe depletion of VSMCs in the media and excessive adventitial thickening are hallmarks of HGPS&#44;<a class="elsevierStyleCrossRefs" href="#bib0285"><span class="elsevierStyleSup">5&#44;13&#44;14</span></a> slightly reduced medial VSMC content and adventitial thickening near atheroma plaques have been reported during normal aging&#46;<a class="elsevierStyleCrossRefs" href="#bib0510"><span class="elsevierStyleSup">50&#44;51</span></a> Interestingly&#44; low levels of progerin were detected in cells and tissues&#44; including arteries&#44; from old non-HGPS individuals&#44; suggesting that progerin might play a role during normal aging&#46;<a class="elsevierStyleCrossRef" href="#bib0285"><span class="elsevierStyleSup">5</span></a></p><p id="par0130" class="elsevierStylePara elsevierViewall">On the contrary&#44; HGPS patients do not suffer several characteristics of aging&#44; such as enhanced cancer susceptibility or dementia&#46;<a class="elsevierStyleCrossRef" href="#bib0335"><span class="elsevierStyleSup">15</span></a> In terms of vascular disease&#44; HGPS seems to differ from physiological aging by the principal stimulus that triggers atherogenesis&#46; Namely&#44; mouse model data indicate that in HGPS animals atherosclerosis originates from VSMC alterations and death whereas in non-HGPS subjects it is typically initiated by endothelial dysfunction &#40;<a class="elsevierStyleCrossRef" href="#fig0010">Fig&#46; 2</a>&#41;&#46;<a class="elsevierStyleCrossRefs" href="#bib0290"><span class="elsevierStyleSup">6&#44;29</span></a> As a consequence&#44; atheroma lesions in progeria mice form throughout the entire arterial surface while in non-HGPS animals plaques are usually found at specific locations&#44; such as branching sites&#44; predisposed to atherogenesis by disturbed blood flow&#46; Furthermore&#44; HGPS patients and progerin-expressing mice do not show elevated LDL levels in blood&#44; a key CVD risk factor in the general population&#46;<a class="elsevierStyleCrossRefs" href="#bib0290"><span class="elsevierStyleSup">6&#44;17&#44;29</span></a> Yet&#44; increased retention of LDL in the aortic wall has been found in <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">G609G&#47;G609G</span></span> and <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span><span class="elsevierStyleItalic">Lmna</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">LCS&#47;LCS</span></span><span class="elsevierStyleItalic">SM22&#945;Cre</span> mice&#44; suggesting that despite normal systemic levels of LDL&#44; their local concentration in the artery wall is increased and contributes to early atherosclerosis&#46;<a class="elsevierStyleCrossRef" href="#bib0290"><span class="elsevierStyleSup">6</span></a> In summary&#44; progerin-driven vascular disease shares many features with age-related arteriosclerosis&#59; however&#44; extrapolation of some results might be limited by the existence of progeria-specific mechanisms&#46;</p><elsevierMultimedia ident="fig0010"></elsevierMultimedia></span><span id="sec0040" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="sect0065">Conclusions and closing remarks</span><p id="par0135" class="elsevierStylePara elsevierViewall">Due to a remarkable extension of the average life expectancy&#44; the number of aged individuals is rapidly growing worldwide&#44;<a class="elsevierStyleCrossRef" href="#bib0520"><span class="elsevierStyleSup">52</span></a> which in turn prompts a variety of socio-economic and healthcare challenges&#46; These problems predominantly originate from the increased incidence and prevalence of age-associated diseases&#44; such as cancer and CVD&#46; Despite the progress in prevention and treatment&#44; CVD continues to be the principal cause of death in most countries&#44; indicating that our understanding of the mechanisms governing cardiovascular aging is insufficient&#46;<a class="elsevierStyleCrossRefs" href="#bib0265"><span class="elsevierStyleSup">1&#44;2</span></a></p><p id="par0140" class="elsevierStylePara elsevierViewall">Rare genetic diseases featuring premature CVD&#44; especially those that manifest during childhood&#44; offer a unique opportunity to study mechanisms of accelerated vascular aging isolated from lifestyle factors&#46; In HGPS&#44; one of the most severe premature aging syndromes&#44; atherosclerotic complications represent the main cause of early mortality&#46;<a class="elsevierStyleCrossRef" href="#bib0285"><span class="elsevierStyleSup">5</span></a> Premature vascular decline in HGPS is mainly attributed to VSMC alterations&#44; as VSMC-specific expression of progerin in <span class="elsevierStyleItalic">Apoe</span><span class="elsevierStyleSup"><span class="elsevierStyleItalic">&#8722;&#47;&#8722;</span></span> mice is sufficient to trigger the complete manifestation of progeria-associated vascular phenotype&#46;<a class="elsevierStyleCrossRefs" href="#bib0290"><span class="elsevierStyleSup">6&#44;31</span></a> VSMC aging induced by progerin involves decreased contractility&#44; altered ECM production&#44; impaired mechanosensing&#44; pro-calcifying phenotype and activation of several cellular stress responses&#44; which in turn lead to cell senescence and death&#46; Altered phenotypes of VSMCs and their loss in arteries result in vascular stiffening&#44; calcification and atherosclerosis&#44; which ultimately contribute to mortality&#46; Similar alterations at the cellular and tissue levels have been described during normal aging&#44;<a class="elsevierStyleCrossRef" href="#bib0275"><span class="elsevierStyleSup">3</span></a> suggesting that HGPS can serve as a model of accelerated VSMC aging and aid in further advances in treating CVD&#46;</p></span><span id="sec0045" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="sect0070">Conflict of interests</span><p id="par0145" class="elsevierStylePara elsevierViewall">No conflicts of interest&#46;</p></span></span>"
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          "titulo" => "Introduction"
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        6 => array:2 [
          "identificador" => "sec0010"
          "titulo" => "Molecular mechanism underlying HGPS"
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        7 => array:2 [
          "identificador" => "sec0015"
          "titulo" => "Vascular disease in HGPS patients"
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        8 => array:2 [
          "identificador" => "sec0020"
          "titulo" => "Mouse models to study VSMC aging in progeria"
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          "titulo" => "Cellular and molecular mechanisms of progerin-induced VSMC aging"
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        10 => array:2 [
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          "titulo" => "Therapeutic strategies to delay vascular aging in mouse models of HGPS"
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          "titulo" => "Are studies on HGPS relevant for physiological vascular aging&#63;"
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          "titulo" => "Conclusions and closing remarks"
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          "titulo" => "Conflict of interests"
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          "titulo" => "Acknowledgements"
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    "fechaRecibido" => "2021-07-21"
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            0 => "Aging"
            1 => "Atherosclerosis"
            2 => "Cardiovascular disease"
            3 => "Vascular smooth muscle cells"
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        1 => array:4 [
          "clase" => "abr"
          "titulo" => "Abbreviations"
          "identificador" => "xpalclavsec1605430"
          "palabras" => array:16 [
            0 => "ABE"
            1 => "BAC"
            2 => "CVD"
            3 => "ECM"
            4 => "eNTPD1"
            5 => "ER"
            6 => "HGPS"
            7 => "ICMT"
            8 => "iPSCs"
            9 => "LDL"
            10 => "NAT10"
            11 => "ROS"
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            0 => "Envejecimiento"
            1 => "Aterosclerosis"
            2 => "Enfermedades cardiovasculares"
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    "resumen" => array:2 [
      "en" => array:2 [
        "titulo" => "Abstract"
        "resumen" => "<span id="abst0005" class="elsevierStyleSection elsevierViewall"><p id="spar0005" class="elsevierStyleSimplePara elsevierViewall">Vascular smooth muscle cells &#40;VSMCs&#41; constitute the principal cellular component of the medial layer of arteries and are responsible for vessel contraction and relaxation in response to blood flow&#46; Alterations in VSMCs can hinder vascular system function&#44; leading to vascular stiffness&#44; calcification and atherosclerosis&#44; which in turn may result in life-threatening complications&#46; Pathological changes in VSMCs typically correlate with chronological age&#59; however&#44; there are certain conditions and diseases&#44; such as Hutchinson-Gilford progeria syndrome &#40;HGPS&#41;&#44; that can accelerate this process&#44; resulting in premature vascular aging&#46; HGPS is a rare genetic disorder characterized by severe VSMC loss&#44; accelerated atherosclerosis and death from myocardial infarction or stroke during the adolescence&#46; Because experiments with mouse models have demonstrated that alterations in VSMCs are responsible for early atherosclerosis in HGPS&#44; studies on this disease can provide insights into the mechanisms of vascular aging and assess the relative contribution of VSMCs to this process&#46;</p></span>"
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        "resumen" => "<span id="abst0010" class="elsevierStyleSection elsevierViewall"><p id="spar0010" class="elsevierStyleSimplePara elsevierViewall">Las c&#233;lulas del m&#250;sculo liso vascular &#40;CMLV&#41; constituyen el principal componente celular de la capa medial arterial&#44; siendo responsables de la contracci&#243;n y relajaci&#243;n de los vasos en respuesta al flujo sangu&#237;neo&#46; Las alteraciones en CMLV dificultan la funci&#243;n vascular&#44; generan rigidez vascular&#44; calcificaci&#243;n y aterosclerosis&#44; pudiendo resultar en complicaciones mortales&#46; Cambios patol&#243;gicos en CMLV suelen correlacionarse con la edad cronol&#243;gica&#59; sin embargo&#44; existen afecciones y enfermedades&#44; como el s&#237;ndrome de progeria de Hutchinson-Gilford &#40;HGPS&#41;&#44; que pueden acelerar este proceso&#44; provocando envejecimiento vascular prematuro&#46; El HGPS es un trastorno gen&#233;tico raro caracterizado por una p&#233;rdida grave de CMLV&#44; aterosclerosis acelerada y muerte por infarto de miocardio o ictus durante la adolescencia&#46; Experimentos con modelos de rat&#243;n demostraron que las alteraciones en CMLV son responsables de la aterosclerosis temprana en HGPS&#46; Por tanto&#44; estudios sobre esta enfermedad pueden proporcionar informaci&#243;n sobre los mecanismos del envejecimiento vascular y caracterizar la contribuci&#243;n de las CMLV&#46;</p></span>"
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          "en" => "<p id="spar0015" class="elsevierStyleSimplePara elsevierViewall">Vascular smooth muscle cell &#40;VSMC&#41; defects underlie premature vascular disease in Hutchinson-Gilford progeria syndrome&#46; Progerin expression in VSMCs triggers a series of molecular and cellular defects &#40;impaired contraction&#44; altered extracellular matrix production&#47;remodeling&#44; vulnerability to biomechanical forces&#44; osteo&#47;chondrogenic phenotype&#44; defective DNA repair&#44; oxidative stress&#44; mitochondrial dysfunction&#44; endoplasmic reticulum stress and the unfolded protein response&#41; that lead to VSMC senescence and death&#46; Changes in VSMC function and their loss in the arteries result in vascular stiffness&#44; calcification&#44; adventitial thickening&#44; atherosclerosis and its life-threatening complications&#44; such as thrombosis&#46; ECM&#44; extracellular matrix&#59; ER&#44; endoplasmic reticulum&#46;</p>"
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          "en" => "<p id="spar0020" class="elsevierStyleSimplePara elsevierViewall">Comparison of atherogenesis in Hutchinson-Gilford progeria syndrome &#40;HGPS&#41; and non-HGPS mouse models&#46; In non-HGPS animals &#40;<span class="elsevierStyleItalic">Apoe<span class="elsevierStyleSup">&#8722;&#47;&#8722;</span></span> and <span class="elsevierStyleItalic">Ldlr</span><span class="elsevierStyleSup">&#8722;&#47;&#8722;</span>&#41;&#44; atherosclerosis typically begins with endothelial dysfunction&#44; often associated with hemodynamic stress&#46; Activated endothelial cells &#40;ECs&#41; recruit immune cells to the artery wall&#44; leading to atheroma lesion growth&#46; Vascular smooth muscle cells &#40;VSMCs&#41; start to migrate from the media toward the intima&#44; where they proliferate and synthesize extracellular matrix to form a fibrous cap preventing plaque disruption&#46; In HGPS animals &#40;<span class="elsevierStyleItalic">Apoe<span class="elsevierStyleSup">&#8722;&#47;&#8722;</span>Lmna<span class="elsevierStyleSup">G609G&#47;G609G</span></span> and <span class="elsevierStyleItalic">Ldlr</span><span class="elsevierStyleSup">&#8722;&#47;&#8722;</span><span class="elsevierStyleItalic">Lmna<span class="elsevierStyleSup">G609G&#47;G609G</span></span>&#41;&#44; atherogenesis is triggered by alterations in VSMCs and their death in the medial layer&#46; The consequent VSMC depletion in the fibrous cap leads to highly unstable atheroma lesions that can easily break&#44; resulting in life-threatening thrombus formation&#46;</p>"
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          "leyenda" => "<p id="spar0030" class="elsevierStyleSimplePara elsevierViewall">qo&#44; qualitative observation&#59; LINC&#44; linker of nucleoskeleton and cytoskeleton&#59; VSMC&#44; vascular smooth muscle cell&#46;</p>"
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                  \t\t\t\t" scope="col" style="border-bottom: 2px solid black">Aim&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t" scope="col" style="border-bottom: 2px solid black"><span class="elsevierStyleItalic">In vivo</span> therapeutic effects&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t" scope="col" style="border-bottom: 2px solid black">Reference&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t">Adenine base editor&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">Correcting the HGPS-causing mutation&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t">&#8595; VSMC loss&#8595; Adventitia thickening&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0455"><span class="elsevierStyleSup">39</span></a>&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t">CRISPR &#8211; Cas9&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t">Targeting <span class="elsevierStyleItalic">Lmna</span> gene to abolish lamin A&#47;progerin&#44; but not lamin C&#44; expression&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t">&#8595; VSMC loss&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0460"><span class="elsevierStyleSup">40</span></a>&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t">Antisense peptide-conjugated phosphorodiamidate morpholino oligomers&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t">Blocking aberrant splicing of <span class="elsevierStyleItalic">LMNA</span> mRNA&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t">&#8595; VSMC loss&#8595; Adventitia thickening&#8595; Proteoglycan deposition<span class="elsevierStyleSup">qo</span>&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0465"><span class="elsevierStyleSup">41</span></a>&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t">Antisense oligonucleotides&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">Shifting <span class="elsevierStyleItalic">Lmna</span> mRNA splicing toward lamin C isoform&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t">&#8595; VSMC loss<span class="elsevierStyleSup">qo</span>&#8595; Adventitia thickening<span class="elsevierStyleSup">qo</span>&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0365"><span class="elsevierStyleSup">21</span></a>&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td></tr><tr title="table-row"><td class="td-with-role" title="\n
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                  \t\t\t\t ; entry_with_role_rowhead " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t">Tipifarnib&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t">Farnesyl transferase inhibition&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t">&#8595; VSMC loss&#8595; Proteoglycan deposition&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0470"><span class="elsevierStyleSup">42</span></a>&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td></tr><tr title="table-row"><td class="td-with-role" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t ; entry_with_role_rowhead " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t"><span class="elsevierStyleItalic">Icmt</span> hypomorphic allele&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">Isoprenyl carboxyl methyltransferase activity reduction&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t">&#8595; VSMC loss&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0475"><span class="elsevierStyleSup">43</span></a>&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t ; entry_with_role_rowhead " align="left" valign="\n
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                  \t\t\t\t">Yamanaka factors expression&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">Cellular reprogramming&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">&#8595; VSMC loss&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0490"><span class="elsevierStyleSup">46</span></a>&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t ; entry_with_role_rowhead " align="left" valign="\n
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                  \t\t\t\t">Tocilizumab&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t\ttable-entry\n
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                  \t\t\t\t">Interleukin-6 neutralization&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">&#8595; VSMC loss&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0485"><span class="elsevierStyleSup">45</span></a>&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t ; entry_with_role_rowhead " align="left" valign="\n
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                  \t\t\t\t">Remodelin&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">N-acetyltransferase 10 inhibition&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t">&#8595; VSMC loss&#8595; Adventitia thickening&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0495"><span class="elsevierStyleSup">47</span></a>&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t ; entry_with_role_rowhead " align="left" valign="\n
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                  \t\t\t\t">Pyrophosphate&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">Restoring pyrophosphate homeostasis&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">&#8595; Vascular calcification&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0390"><span class="elsevierStyleSup">26</span></a>&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td></tr><tr title="table-row"><td class="td-with-role" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t ; entry_with_role_rowhead " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t">Levamisole<span class="elsevierStyleHsp" style=""></span>&#43;<span class="elsevierStyleHsp" style=""></span>ARL67156<span class="elsevierStyleHsp" style=""></span>&#43;<span class="elsevierStyleHsp" style=""></span>ATP&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t">Restoring pyrophosphate homeostasis&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">&#8595; Vascular calcification&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t</td></tr><tr title="table-row"><td class="td-with-role" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t ; entry_with_role_rowhead " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t">Magnesium&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">Stimulating antioxidant capacity&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">&#8595; Vascular calcification&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0440"><span class="elsevierStyleSup">36</span></a>&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td></tr><tr title="table-row"><td class="td-with-role" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t ; entry_with_role_rowhead " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t">Tauroursodeoxycholic acid&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t">Alleviating endoplasmic reticulum stress&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t">&#8595; Atherosclerosis&#8595; VSMC loss&#8595; Adventitia thickening&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0435"><span class="elsevierStyleSup">35</span></a>&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td></tr><tr title="table-row"><td class="td-with-role" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t ; entry_with_role_rowhead " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t">KASH2 overexpression&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t">LINC complex disruption&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t">&#8595; VSMC loss&#8595; Adventitia thickening&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0375"><span class="elsevierStyleSup">23</span></a>&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t ; entry_with_role_rowhead " align="left" valign="\n
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                  \t\t\t\t">Batimastat&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">Metalloprotease-13 inhibition&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">&#8595; VSMC loss&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
                  \t\t\t\t\ttop\n
                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0425"><span class="elsevierStyleSup">33</span></a>&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t ; entry_with_role_rowhead " align="left" valign="\n
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                  \t\t\t\t">&#946;-Aminopropionitrile&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">Lysyl oxidase inhibition&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">&#8595; Vascular stiffening&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0385"><span class="elsevierStyleSup">25</span></a>&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t">Sodium nitrite&nbsp;\t\t\t\t\t\t\n
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                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">Increasing nitric oxide bioavailability&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t">&#8595; Vascular stiffening&nbsp;\t\t\t\t\t\t\n
                  \t\t\t\t</td><td class="td" title="\n
                  \t\t\t\t\ttable-entry\n
                  \t\t\t\t  " align="left" valign="\n
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                  \t\t\t\t"><a class="elsevierStyleCrossRef" href="#bib0380"><span class="elsevierStyleSup">24</span></a>&nbsp;\t\t\t\t\t\t\n
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          "en" => "<p id="spar0025" class="elsevierStyleSimplePara elsevierViewall"><span class="elsevierStyleItalic">In vivo</span> therapeutic strategies to counteract vascular disease in mouse models of Hutchinson-Gilford progeria syndrome &#40;HGPS&#41;&#46;</p>"
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                      "titulo" => "Global burden of cardiovascular diseases and risk factors&#44; 1990&#8211;2019"
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                        0 => array:2 [
                          "etal" => true
                          "autores" => array:6 [
                            0 => "G&#46;A&#46; Roth"
                            1 => "G&#46;A&#46; Mensah"
                            2 => "C&#46;O&#46; Johnson"
                            3 => "G&#46; Addolorato"
                            4 => "E&#46; Ammirati"
                            5 => "L&#46;M&#46; Baddour"
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                      "doi" => "10.1016/j.jacc.2020.11.010"
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                        "fecha" => "2020"
                        "volumen" => "76"
                        "paginaInicial" => "2982"
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                        "link" => array:1 [
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                    0 => array:2 [
                      "titulo" => "Trend analysis of cardiovascular disease mortality&#44; incidence&#44; and mortality-to-incidence ratio&#58; results from global burden of disease study 2017"
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                        0 => array:2 [
                          "etal" => false
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        "texto" => "<p id="par0150" class="elsevierStylePara elsevierViewall">We acknowledge V&#237;ctor Quesada for helpful comments&#46; RMN is supported by the <span class="elsevierStyleGrantSponsor" id="gs1">Ministerio de Educaci&#243;n&#44; Cultura y Deporte</span> &#40;pre-doctoral contract FPU16&#47;05027&#41;&#46; MRH is supported by the <span class="elsevierStyleGrantSponsor" id="gs2">Ministerio de Ciencia e Innovaci&#243;n</span> &#40;Juan de la Cierva-Incorporaci&#243;n post-doctoral contract IJC2019-040798-I&#41;&#46;</p>"
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