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array:24 [ "pii" => "S1807593222020579" "issn" => "18075932" "doi" => "10.6061/clinics/2013(11)11" "estado" => "S300" "fechaPublicacion" => "2013-01-01" "aid" => "2057" "copyright" => "CLINICS" "copyrightAnyo" => "2013" "documento" => "article" "crossmark" => 0 "licencia" => "https://creativecommons.org/licenses/by-nc/3.0/" "subdocumento" => "fla" "cita" => "Clinics. 2013;68:1446-54" "abierto" => array:3 [ "ES" => true "ES2" => true "LATM" => true ] "gratuito" => true "lecturas" => array:1 [ "total" => 0 ] "itemSiguiente" => array:19 [ "pii" => "S1807593222020580" "issn" => "18075932" "doi" => "10.6061/clinics/2013(11)12" "estado" => "S300" "fechaPublicacion" => "2013-01-01" "aid" => "2058" "copyright" => "CLINICS" "documento" => "article" "crossmark" => 0 "licencia" => "https://creativecommons.org/licenses/by-nc/3.0/" "subdocumento" => "fla" "cita" => "Clinics. 2013;68:1455-61" "abierto" => array:3 [ "ES" => true "ES2" => true "LATM" => true ] "gratuito" => true "lecturas" => array:1 [ "total" => 0 ] "en" => array:12 [ "idiomaDefecto" => true "cabecera" => "<span class="elsevierStyleTextfn">REVIEW</span>" "titulo" => "Fractures of the cervical spine" "tienePdf" => "en" "tieneTextoCompleto" => "en" "tieneResumen" => "en" "paginas" => array:1 [ 0 => array:2 [ "paginaInicial" => "1455" "paginaFinal" => "1461" ] ] "contieneResumen" => array:1 [ "en" => true ] "contieneTextoCompleto" => array:1 [ "en" => true ] "contienePdf" => array:1 [ "en" => true ] "resumenGrafico" => array:2 [ "original" => 0 "multimedia" => array:7 [ "identificador" => "fig1" "etiqueta" => "Figure 1" "tipo" => "MULTIMEDIAFIGURA" "mostrarFloat" => true "mostrarDisplay" => false "figura" => array:1 [ 0 => array:4 [ "imagen" => "gr1.jpeg" "Alto" => 288 "Ancho" => 800 "Tamanyo" => 30764 ] ] "descripcion" => array:1 [ "en" => "<p id="spara10" class="elsevierStyleSimplePara elsevierViewall">AO classification. A compression: A.1  =  impaction; A.2  =  split; A.3  =  burst.</p>" ] ] ] "autores" => array:1 [ 0 => array:2 [ "autoresLista" => "Raphael Martus Marcon, Alexandre Fogaça Cristante, William Jacobsen Teixeira, Douglas Kenji Narasaki, Reginaldo Perilo Oliveira, Tarcísio Eloy Pessoa de Barros Filho" "autores" => array:6 [ 0 => array:2 [ "nombre" => "Raphael Martus" "apellidos" => "Marcon" ] 1 => array:2 [ "nombre" => "Alexandre Fogaça" "apellidos" => "Cristante" ] 2 => array:2 [ "nombre" => "William Jacobsen" "apellidos" => "Teixeira" ] 3 => array:2 [ "nombre" => "Douglas Kenji" "apellidos" => "Narasaki" ] 4 => array:2 [ "nombre" => "Reginaldo Perilo" "apellidos" => "Oliveira" ] 5 => array:2 [ "nombre" => "Tarcísio Eloy Pessoa" "apellidos" => "de Barros Filho" ] ] ] ] ] "idiomaDefecto" => "en" "EPUB" => "https://multimedia.elsevier.es/PublicationsMultimediaV1/item/epub/S1807593222020580?idApp=UINPBA00004N" "url" => "/18075932/0000006800000011/v1_202212011425/S1807593222020580/v1_202212011425/en/main.assets" ] "itemAnterior" => array:19 [ "pii" => "S1807593222020567" "issn" => "18075932" "doi" => "10.6061/clinics/2013(11)10" "estado" => "S300" "fechaPublicacion" => "2013-01-01" "aid" => "2056" "copyright" => "CLINICS" "documento" => "article" "crossmark" => 0 "licencia" => "https://creativecommons.org/licenses/by-nc/3.0/" "subdocumento" => "fla" "cita" => "Clinics. 2013;68:1440-5" "abierto" => array:3 [ "ES" => true "ES2" => true "LATM" => true ] "gratuito" => true "lecturas" => array:1 [ "total" => 0 ] "en" => array:12 [ "idiomaDefecto" => true "cabecera" => "<span class="elsevierStyleTextfn">BASIC RESEARCH</span>" "titulo" => "Is combined therapy more effective than growth hormone or hyperbaric oxygen alone in the healing of left ischemic and non-ischemic colonic anastomoses?" "tienePdf" => "en" "tieneTextoCompleto" => "en" "tieneResumen" => "en" "paginas" => array:1 [ 0 => array:2 [ "paginaInicial" => "1440" "paginaFinal" => "1445" ] ] "contieneResumen" => array:1 [ "en" => true ] "contieneTextoCompleto" => array:1 [ "en" => true ] "contienePdf" => array:1 [ "en" => true ] "resumenGrafico" => array:2 [ "original" => 0 "multimedia" => array:7 [ "identificador" => "fig2" "etiqueta" => "Figure 2" "tipo" => "MULTIMEDIAFIGURA" "mostrarFloat" => true "mostrarDisplay" => false "figura" => array:1 [ 0 => array:4 [ "imagen" => "gr2.jpeg" "Alto" => 516 "Ancho" => 689 "Tamanyo" => 74852 ] ] "descripcion" => array:1 [ "en" => "<p id="spara20" class="elsevierStyleSimplePara elsevierViewall">Dense and bunch collagen in group 8.</p>" ] ] ] "autores" => array:1 [ 0 => array:2 [ "autoresLista" => "Mine Adas, Ozgur Kemik, Gokhan Adas, Soykan Arikan, Leyla Kuntsal, Yersu Kapran, Akin Savas Toklu" "autores" => array:7 [ 0 => array:2 [ "nombre" => "Mine" "apellidos" => "Adas" ] 1 => array:2 [ "nombre" => "Ozgur" "apellidos" => "Kemik" ] 2 => array:2 [ "nombre" => "Gokhan" "apellidos" => "Adas" ] 3 => array:2 [ "nombre" => "Soykan" "apellidos" => "Arikan" ] 4 => array:2 [ "nombre" => "Leyla" "apellidos" => "Kuntsal" ] 5 => array:2 [ "nombre" => "Yersu" "apellidos" => "Kapran" ] 6 => array:2 [ "nombre" => "Akin Savas" "apellidos" => "Toklu" ] ] ] ] ] "idiomaDefecto" => "en" "EPUB" => "https://multimedia.elsevier.es/PublicationsMultimediaV1/item/epub/S1807593222020567?idApp=UINPBA00004N" "url" => "/18075932/0000006800000011/v1_202212011425/S1807593222020567/v1_202212011425/en/main.assets" ] "en" => array:19 [ "idiomaDefecto" => true "cabecera" => "<span class="elsevierStyleTextfn">BASIC RESEARCH</span>" "titulo" => "Manuka honey protects middle-aged rats from oxidative damage" "tieneTextoCompleto" => true "paginas" => array:1 [ 0 => array:2 [ "paginaInicial" => "1446" "paginaFinal" => "1454" ] ] "autores" => array:1 [ 0 => array:4 [ "autoresLista" => "Zakiah Jubri, Noor Baitee Abdul Rahim, Goon Jo Aan" "autores" => array:3 [ 0 => array:4 [ "nombre" => "Zakiah" "apellidos" => "Jubri" "email" => array:1 [ 0 => "zakiah@medic.ukm.my" ] "referencia" => array:1 [ 0 => array:2 [ "etiqueta" => "*" "identificador" => "cor1" ] ] ] 1 => array:2 [ "nombre" => "Noor Baitee Abdul" "apellidos" => "Rahim" ] 2 => array:2 [ "nombre" => "Goon Jo" "apellidos" => "Aan" ] ] "afiliaciones" => array:1 [ 0 => array:2 [ "entidad" => "Universiti Kebangsaan Malaysia, Faculty of Medicine, Department of Biochemistry, Kuala Lumpur, Wilayah Persekutuan/Malaysia." "identificador" => "aff1" ] ] "correspondencia" => array:1 [ 0 => array:3 [ "identificador" => "cor1" "etiqueta" => "*" "correspondencia" => "Tel.: 603-9289 7291" ] ] ] ] "resumenGrafico" => array:2 [ "original" => 0 "multimedia" => array:7 [ "identificador" => "fig4" "etiqueta" => "Figure 4" "tipo" => "MULTIMEDIAFIGURA" "mostrarFloat" => true "mostrarDisplay" => false "figura" => array:1 [ 0 => array:4 [ "imagen" => "gr4.jpeg" "Alto" => 1129 "Ancho" => 759 "Tamanyo" => 67573 ] ] "descripcion" => array:1 [ "en" => "<p id="spara40" class="elsevierStyleSimplePara elsevierViewall">A) Liver SOD activity, B) GPx activity and C) CAT activity of the young (2 months) and middle-aged (9 months) rats with manuka honey supplementation. The data are expressed as the means ± SD for 6 animals. * indicates a significant difference compared with the control group (<span class="elsevierStyleItalic">p</span><0.05).</p>" ] ] ] "textoCompleto" => "<span class="elsevierStyleSections"><span id="cesec10" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle60">INTRODUCTION</span><p id="para10" class="elsevierStylePara elsevierViewall">The oxidative damage of DNA (<a class="elsevierStyleCrossRef" href="#bib1">1</a>), proteins and lipid in cells and organs is caused by free radicals that are continuously produced in the body during aerobic respiration (<a class="elsevierStyleCrossRef" href="#bib2">2</a>). Our body defense system is equipped with antioxidants to scavenge free radicals that provide protection from oxidative damage. However, a reduction in the body's antioxidant defense together with increased free radical production with age results in oxidative stress, which has been reported to cause aging (<a class="elsevierStyleCrossRef" href="#bib1">1</a>,<a class="elsevierStyleCrossRef" href="#bib3">3</a>) and degenerative diseases (<a class="elsevierStyleCrossRef" href="#bib4">4</a>) such as cancer, heart disease and diabetes (<a class="elsevierStyleCrossRef" href="#bib5">5</a>). Oxidative damage to macromolecules causes cells to undergo apoptosis or transform into cancer cells (<a class="elsevierStyleCrossRef" href="#bib6">6</a>).</p><p id="para20" class="elsevierStylePara elsevierViewall">Although the aging process is under genetic control, it is also affected by environmental and lifestyle determinants such as diet in which this process was found to be capable of manipulating the rate of free radical production (<a class="elsevierStyleCrossRef" href="#bib2">2</a>). Many studies found that dietary supplements prevent oxidative damage via aging despite the differences in the ages of the populations studied (<a class="elsevierStyleCrossRef" href="#bib1">1</a>,<a class="elsevierStyleCrossRef" href="#bib7">7</a>). Antioxidant supplementation from a young age has been suggested to confer better protection against potential oxidative damage later in life (<a class="elsevierStyleCrossRef" href="#bib7">7</a>). This protective effect is a likely result as age-related changes begin in early adulthood and most organs start to deteriorate at the age of 30 (<a class="elsevierStyleCrossRef" href="#bib8">8</a>).</p><p id="para30" class="elsevierStylePara elsevierViewall">Compared with other antioxidant supplements composed primarily of vitamins and minerals, honey is rich in both enzymatic and non-enzymatic antioxidants, including glucose oxidase, catalase, ascorbic acid, flavonoids, phenolic acids, carotenoid derivatives, organic acids, Maillard reaction products, amino acids and proteins (<a class="elsevierStyleCrossRef" href="#bib9">9</a>). The antioxidative properties in honey have been proven to be effective in aiding the healing process of wounds and burns, diabetic ulcers, cancer, cardiovascular disease and neural diseases (<a class="elsevierStyleCrossRef" href="#bib10">10</a>).</p><p id="para40" class="elsevierStylePara elsevierViewall">In this study, manuka honey from the New Zealand manuka tree (Leptospermum scoparium) is used as an intervention to reduce the oxidative stress in middle-aged rats. Manuka honey has been widely researched regarding its antibacterial activity and has been recommended for wound treatment (<a class="elsevierStyleCrossRef" href="#bib11">11</a>). Previous studies reported that manuka honey consisted of a high amount of phenolic compounds such as flavonoids, methyl syringate and a methoxylated benzoic acid, a structural isomer of syringic acid (<a class="elsevierStyleCrossRef" href="#bib12">12</a>). The phenolic compounds are more potent antioxidants than the non-phenolic antioxidants in honey (<a class="elsevierStyleCrossRef" href="#bib13">13</a>). Manuka honey also contains a bioactive fraction called methylglyoxal that exhibits non-peroxide antibacterial activity (<a class="elsevierStyleCrossRef" href="#bib14">14</a>). Methyl syringate in manuka honey has been identified as a potent superoxide scavenger that could be expected to reduce free radical activity (<a class="elsevierStyleCrossRef" href="#bib15">15</a>).</p></span><span id="cesec20" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle70">MATERIALS AND METHODS</span><span id="cesec30" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle80">Honey</span><p id="para50" class="elsevierStylePara elsevierViewall">Raw unblended manuka honey, a product of Papakura (Graham Cammell Ltd, Clevedon, Papakura, New Zealand) was purchased locally from Guardian Pharmacy, Malaysia.</p></span><span id="cesec40" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle90">Total phenolic content</span><p id="para60" class="elsevierStylePara elsevierViewall">The Folin-Ciocalteu method as modified by Beretta et al. (<a class="elsevierStyleCrossRef" href="#bib16">16</a>) was used to determine the total phenolic content in the honey. Manuka honey (1 g) was diluted to 10 ml with distilled water, and 100 μl of this solution (corresponding to 10 mg of fresh manuka honey) was added to 1 ml of 10% Folin-Ciocalteu reagent. The mixture was vortexed for 2 min. After incubation for 20 min at 25°C, the absorbance was determined at 750 nm using a UV 160A spectrophotometer (Shimadzu, Japan). Gallic acid (0–200 mg/ml) was used as a standard to derive the calibration curve. The total phenolic content was expressed as mg of gallic acid per kg of manuka honey.</p></span><span id="cesec50" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle100">Determination of free radical scavenging activity</span><p id="para70" class="elsevierStylePara elsevierViewall">The free radical scavenging activity of the honey was estimated using the 1,1-diphenyl-2-picrylhydrazyl (DPPH) method of Brand-Williams et al. (<a class="elsevierStyleCrossRef" href="#bib17">17</a>) with a slight modification by Aljadi and Kamaruddin (<a class="elsevierStyleCrossRef" href="#bib18">18</a>). Briefly, a honey sample was dissolved in water at a concentration from 0 to 100 mg/ml, and 0.75 ml of each solution was mixed with 1.5 ml of 0.09 mg/ml DPPH reagent dissolved in absolute methanol. The mixtures were shaken vigorously and incubated for 10 min at room temperature in the dark, after which the absorbance of the remaining DPPH was measured at 517 nm against a blank to eliminate the influence of the color of the honey. The antioxidant activity was expressed as the percentage inhibition of the DPPH radical and was determined using the following equation (5):</p><p id="para80" class="elsevierStylePara elsevierViewall"><elsevierMultimedia ident="formula10"></elsevierMultimedia></p></span><span id="cesec60" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle110">Determination of the total antioxidant power</span><p id="para90" class="elsevierStylePara elsevierViewall">The ferric reducing/antioxidant power (FRAP) assay developed by Benzie and Strain (<a class="elsevierStyleCrossRef" href="#bib19">19</a>) was used with some modifications by Mohamed et al. (<a class="elsevierStyleCrossRef" href="#bib20">20</a>). This method is based on the reduction of a ferric 2,4,6-tripyridyl-s-triazine complex (Fe<span class="elsevierStyleSup">3+</span>-TPTZ) to its ferrous, colored form (Fe<span class="elsevierStyleSup">2+</span>-TPTZ) in the presence of antioxidants. The FRAP reagent contains 2.5 ml of a 10 mM TPTZ solution in 40 mM HCl, 2.5 ml of 20 mM FeCl<span class="elsevierStyleInf">3</span> and 25 ml of 0.3 M acetate buffer, pH 3.6. Sample aliquots of 40 μl were mixed with 1.2 ml of the FRAP reagent and incubated at 37°C for 4 min before the absorbance of the reaction mixture was measured spectrophotometrically at 593 nm against the sugar analog. Aqueous standard solutions of FeSO<span class="elsevierStyleInf">4</span> 6H<span class="elsevierStyleInf">2</span>O (100–2,500 μM) were used for the calibration curve, and the results were expressed as the FRAP value (μM Fe [II]) of the 10% honey solution.</p></span><span id="cesec70" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle120">Animals</span><p id="para100" class="elsevierStylePara elsevierViewall">A total of 24 male Sprague-Dawley rats were obtained from the Animal Resources Unit, Medical Faculty, The National University of Malaysia (UKM). The rats were divided into two groups; young (2 months, weighing from 200 to 250 g) and middle-aged (9 months, weighing from 350 to 450 g). The rats were housed in a well-ventilated controlled room on a 12 h light/12 h dark schedule at room temperature. The rats were kept in the room at least 1 week prior to the treatment and were fed with standard commercial rat pellets; drinking water was made available ad libitum. The experimental protocol was approved by The National University of Malaysia Animal Ethics Committee (UKMAEC; PP/BIOK/2010/ZAKIAH/20-JANUARY/288-MARCH-2010-APRIL-2010). Each group (young, n = 12 and middle-aged, n = 12) was further divided into 2 groups consisting of 6 rats each; group 1 was fed with plain water (2.5 ml/kg body weight) and group 2 was fed with manuka honey (2.5 g/kg body weight). Both the honey and plain water were given orally using oral gavage, and the duration of the supplementation was 30 days. The 2.5 g/kg body weight of manuka honey used was equivalent to 1 teaspoon of honey, as recommended.</p></span><span id="cesec80" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle130">Sample preparation</span><p id="para110" class="elsevierStylePara elsevierViewall">Following 30 days of supplementation, the rats were anaesthetized with ether and approximately 6 ml of blood was collected via the orbital sinus route. A small amount of fresh whole blood was used for the comet assay, and the remainder was centrifuged at 3,000 rpm at 4°C for 10 min. The obtained plasma was divided into aliquots and stored at −80°C for malondialdehyde (MDA) determination. Erythrocytes were washed 3 times with physiological saline (0.9% NaCl), separated into aliquots and stored at −80°C for the enzyme assay. After the rats were euthanized, the livers were removed, rinsed in ice cold 1.15% NaCl, pH 7.2 (Sigma, St. Louis, USA), washed to remove any residual blood and weighed. The liver was cut into small pieces, and homogenates were prepared in 1.15% NaCl at 3 ml/g (w/v) using an Ultra Turrax T25 Homogenizer (IKA Labortechnik, Germany). The homogenates were centrifuged at 9,000 x g for 20 min at 4°C using a Sorvall RC-5B. The supernatant was placed into the centrifuge tube and centrifuged at 105,000 x g for 1 h using a Beckman L-60 ultracentrifuge (Beckman Coulter, USA). The cytosolic supernatant was frozen at −80°C for the antioxidant enzyme assays.</p></span><span id="cesec90" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle140">Detection of DNA damage via the Comet Assay</span><p id="para120" class="elsevierStylePara elsevierViewall">The comet assay was performed as described by Singh et al. (<a class="elsevierStyleCrossRef" href="#bib21">21</a>) with slight modifications from Chin et al. (<a class="elsevierStyleCrossRef" href="#bib1">1</a>). Briefly, 5 μL of whole blood was suspended in 0.6% low melting point agarose in phosphate-buffered saline, pH 7.4, in a microcentrifuge tube at 37°C, rapidly pipetted onto the first agarose layer and covered using a coverslip. The low melting point agarose was then allowed to solidify on an ice-cold flat tray. After removal of the coverslips, the slides were immersed into ice-cold lysing solution (2.5 M NaCl, 100 mM ethylene-diaminetetra-acetic acid, 10 mM Tris [pH 10], 1% Triton X-100, 1% sodium N-lauroyl sarcosinate and 10% dimethylsulfoxide) at 4°C for 1 h to lyse the cells and remove cellular protein. The slides were then removed from the lysing solution and placed side-by-side in a horizontal electrophoresis chamber filled with freshly prepared cooled alkaline electrophoresis buffer (1–10°C) to a depth of approximately 0.25 cm above the agarose layer for approximately 20 min to allow for the unwinding of the DNA. The electrophoresis was conducted for 20 min at 25 V with the current adjusted to 300 mA via a change of buffer volume. Following electrophoresis, the slides were rinsed 3 times with neutralization buffer and allowed to dry. Each slide was then stained with 30 μl of ethidium bromide and covered with a new coverslip. All slides were examined immediately at 200x magnification using a fluorescent microscope (Olympus Corp., Shibuya-Ku, Tokyo, Japan). Five hundred randomly selected non-overlapping cells on each slide were counted, and grades were assigned on an arbitrary scale of 0 to 4 based on the perceived comet tail length migration and relative proportion of DNA in the comet tail (cells without a tail and no damage, 0; cells with a tiny tail, 1; cells with a dim tail, 2; cells with a clear tail, 3; and only a tail, 4. For the final analysis, a total damage score of each slide was calculated using the following formula:</p><p id="para130" class="elsevierStylePara elsevierViewall"><elsevierMultimedia ident="formula20"></elsevierMultimedia></p><p id="para140" class="elsevierStylePara elsevierViewall">where N =  the number of cells assigned to each damage grade.</p><p id="para150" class="elsevierStylePara elsevierViewall">The sum of all the grades provided a minimum possible score of 0, which corresponds to 500 cells at grade 0, and a maximum possible score of 2,000, which corresponds to 500 cells at grade 4.</p></span><span id="cesec100" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle150">Malondialdehyde level</span><p id="para160" class="elsevierStylePara elsevierViewall">The plasma MDA was determined using high performance liquid chromatography (HPLC) based on the derivatization of MDA with 2,4-dinitrophenylhydrazine (DNPH) (Sigma, St. Louis, USA) using a photo diode array detector (Shimadzu Corporation, Kyoto, Japan) as described by Pilz et al. (<a class="elsevierStyleCrossRef" href="#bib22">22</a>) with some modifications. Briefly, samples (50 μl) were mixed with 200 μl of 1.3 M NaOH (Merck, Germany) and incubated at 60°C for 30 min in a water bath. After cooling the mixture to room temperature, 100 μl of 35% (v/v) HCIO<span class="elsevierStyleInf">4</span> was added to precipitate the proteins, and the mixture was centrifuged at 10,000 x g for 10 min. The supernatant of the samples (300 μl) was transferred to a 1.5-ml HPLC tube, and 5 mM DNPH solution (50 μl) was added to the mixture and incubated for 30 min at room temperature. The derivatized samples (40 μl) were then injected into the HPLC.</p><p id="para170" class="elsevierStylePara elsevierViewall">Analytical HPLC separation was performed using a Shimadzu Chromatographic System version 6.1 LC (Shimadzu Corporation, Kyoto, Japan) equipped with an auto injector and operated at 310 nm on a 150 mm × 3.9 mm, 5-μm alphaBond C18 column (Alltech Associated, Inc., IL, USA). The samples and standards were eluted with the mobile phase consisting of 380 ml of acetonitrile and 620 ml of distilled water, acidified with 0.2% (v/v) acetic acid and degassed at a flow rate of 0.6 ml/min. The plasma MDA level was calculated from a calibration curve prepared via acidic hydrolysis of 1,1,3,3-tetraethoxypropane (TEP) (Sigma, St. Louis, USA). The amount of MDA was expressed as the nmol of MDA per ml of plasma.</p></span><span id="cesec110" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle160">Determination of superoxide dismutase (SOD) activity</span><p id="para180" class="elsevierStylePara elsevierViewall">SOD was assayed using the method developed by Beyer and Fridovich (<a class="elsevierStyleCrossRef" href="#bib23">23</a>). Briefly, 1.0-ml aliquots of a mixture containing 0.1 mM phosphate buffer pH 7.8, 57 μM nitro blue tetrazolium (Sigma, St. Louis, USA), 9.9 mM L-methionine (Sigma, St. Louis, USA) and 0.025% Triton-X (Sigma, St. Louis, USA) were added to the test tubes, followed by the addition of 20 μl of lysate or liver cytosol and 10 μl of a solution containing 4.4 mg/100 ml riboflavin (Sigma, St. Louis, USA). The tubes were illuminated for 7 min in an aluminum foil-lined box containing two 20-W Sylvania GroLux fluorescent lamps. The absorbance was then measured at a wavelength of 560 nm. A stock hemolysate was prepared by adding an equal volume of distilled water. One unit of SOD was defined as the amount of enzymes required to inhibit nitro blue tetrazolium reduction by 50% per min per ml of lysate or cytosol. The enzyme activity was expressed as the units per mg of Hb or protein (U/mg Hb or mg protein).</p></span><span id="cesec120" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle170">Determination of glutathione peroxidase (GPx) activity</span><p id="para190" class="elsevierStylePara elsevierViewall">GPx was determined using the method developed by Paglia and Valentine (<a class="elsevierStyleCrossRef" href="#bib24">24</a>). The reaction mixture contained 0.05 M phosphate buffer pH 7.0, 8.4 mM NADPH (Sigma, St. Louis, USA), 1.125 M sodium azide (Hopkin & William, England), 5 mM reduced glutathione (GSH) (NADPH; Sigma, St. Louis, USA) and 3 U/ml glutathione reductase (Sigma, St. Louis, USA). The hemolysate was prepared by adding an equal volume of distilled water to the RBC pellet and allowing it stand for 1 h at 4°C. Four parts by volume of distilled water was then added. Finally, double strength Drabkin's reagent (Eagle Diagnostics, Japan) was added to yield the final hemolysate. The reaction was initiated by adding 0.1 ml of 2.2 mM H<span class="elsevierStyleInf">2</span>O<span class="elsevierStyleInf">2</span> (Merck, Darmstadt, Germany). The conversion of NADPH to NADP<span class="elsevierStyleSup">+</span> was followed by measuring the change in Abs/min at 340 nm, and 1 unit of GPx was defined as the amount of enzyme required to oxidize 1 μmol of NADPH/min per ml of lysate or liver cytosol. The enzyme activity was expressed as milliunits per mg of Hb or protein (mU/mg Hb or mg protein).</p></span><span id="cesec130" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle180">Determination of catalase (CAT) activity</span><p id="para200" class="elsevierStylePara elsevierViewall">CAT was assayed using the method of Aebi (<a class="elsevierStyleCrossRef" href="#bib25">25</a>). The reaction mixture consisted of 50 mM phosphate buffer pH 7.0 and 30 mM hydrogen peroxide. A stock hemolysate containing 5 g Hb/100 ml was prepared by adding four parts by volume of distilled water to the sample. A 1:500 dilution of this concentrated hemolysate was prepared by adding 50 mM phosphate buffer pH 7.0 immediately before running the enzyme assay. For liver tissue preparation, 1% (v/v) triton X-100 in the phosphate buffer was used in the preparation of the stock homogenate. For each gram of organ weight, 9 ml of 1% triton X-100 was added, and this stock homogenate was further diluted in phosphate buffer, pH 7.0 (v: v; 1:100). The reaction was then initiated by adding 1 ml of 30 mM H<span class="elsevierStyleInf">2</span>O<span class="elsevierStyleInf">2</span>. The absorbance was measured at a wavelength of 240 nm, and one unit of catalase enzyme was defined as the amount of enzyme that liberates half the peroxide oxygen from the H<span class="elsevierStyleInf">2</span>O<span class="elsevierStyleInf">2</span> solution during 30 s at room temperature. The enzyme activity was expressed as units per mg of Hb or protein (U/mg Hb or mg protein). Hemoglobin in the hemolysate was measured using the Eagle diagnostic kit (Japan). Protein in the liver cytosol was determined using the Bradford method (<a class="elsevierStyleCrossRef" href="#bib26">26</a>).</p></span><span id="cesec140" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle190">Statistical analyses</span><p id="para210" class="elsevierStylePara elsevierViewall">All data are expressed as the means ± S.D. (n = 6) because the data were normal, and differences between groups were statistically analyzed via one-way ANOVA. Correlations were obtained via Pearson's correlation coefficient (r) in bivariate linear correlations. Differences were considered to be statistically significant if <span class="elsevierStyleItalic">p</span><0.05. All statistical analyses were performed using SPSS for Windows, version 17.0.</p></span></span><span id="cesec150" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle200">RESULTS</span><span id="cesec160" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle210">Total phenolic content and antioxidative activity of manuka honey</span><p id="para220" class="elsevierStylePara elsevierViewall">Manuka honey was found to have a high total phenolic content (mg<span class="elsevierStyleInf">gallic acid</span>/kg of honey). The antioxidant activities of manuka honey (determined via the DPPH and FRAP assays [<a class="elsevierStyleCrossRef" href="#t1-cln_68p1446">Table 1</a>]) were found to correlate significantly with the total phenolic content (<a class="elsevierStyleCrossRef" href="#fig1">Figure 1</a>).</p><elsevierMultimedia ident="t1-cln_68p1446"></elsevierMultimedia><elsevierMultimedia ident="fig1"></elsevierMultimedia></span><span id="cesec170" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle220">Analysis of the baseline value of oxidative damage and its changes with honey supplementation</span><p id="para230" class="elsevierStylePara elsevierViewall">The baseline value showed that there were no differences in the level of DNA damage and MDA between the young and middle-aged groups (<a class="elsevierStyleCrossRef" href="#t2-cln_68p1446">Table 2</a>). Supplementation with manuka honey reduced the level of DNA damage and MDA in both groups (<a class="elsevierStyleCrossRef" href="#fig2">Figure 2</a>).</p><elsevierMultimedia ident="t2-cln_68p1446"></elsevierMultimedia><elsevierMultimedia ident="fig2"></elsevierMultimedia></span><span id="cesec180" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle230">Analysis of the baseline value of antioxidant enzyme activities and its changes with honey supplementation</span><p id="para240" class="elsevierStylePara elsevierViewall">The baseline values for the antioxidant enzymes activities also did not show any significant differences between the two age groups (<a class="elsevierStyleCrossRef" href="#t2-cln_68p1446">Table 2</a>). Supplementation with manuka honey significantly increased the GPx activity and reduced the CAT activity in the erythrocytes of the young and middle-aged groups (<a class="elsevierStyleCrossRef" href="#fig3">Figure 3</a>). The changes in the GPx and CAT activities were more noticeable in the young group than in the middle-aged group. Manuka honey supplementation significantly reduced the GPx and CAT activities (<a class="elsevierStyleCrossRef" href="#fig4">Figure 4</a>) in the livers of both the young and middle-aged groups but increased the SOD activity only in the middle-aged group.</p><elsevierMultimedia ident="fig3"></elsevierMultimedia><elsevierMultimedia ident="fig4"></elsevierMultimedia></span></span><span id="cesec190" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle240">DISCUSSION</span><p id="para250" class="elsevierStylePara elsevierViewall">The accumulation of DNA damage and increased lipid peroxidation leads to aging and age-related diseases. Supplementation beginning at young and middle ages may provide protection against the further accumulation of oxidative damage later in life. Similar to our findings, honey supplementation has also been shown to reduce oxidative stress in the liver tissues (<a class="elsevierStyleCrossRef" href="#bib27">27</a>) and kidneys of stress-induced rats (<a class="elsevierStyleCrossRef" href="#bib10">10</a>).</p><p id="para260" class="elsevierStylePara elsevierViewall">Honey has been suggested to protect against lipid peroxidation by reducing the production of lipid hydroperoxides (<a class="elsevierStyleCrossRef" href="#bib28">28</a>). The antioxidant property of honey may be due to its phenolic or non-phenolic antioxidant contents, such as vitamin C, vitamin E and β-carotene. Similar to previous studies, the manuka honey used in this study was found to contain a high total phenolic content and high antioxidant activity (<a class="elsevierStyleCrossRef" href="#bib12">12</a>), which can scavenge anion superoxide radicals. In addition, the phenolic content of manuka was found to correlate significantly with the values of FRAP and DPPH, which are major components responsible for the antioxidant activity of this honey. This result is in line with a previous study by Hussein et al. (<a class="elsevierStyleCrossRef" href="#bib29">29</a>), who found similar correlations between phenolic contents and FRAP as well as DPPH values in irradiated honeys. In addition to phenolics, manuka honey contains high amounts of quercetin, luteolin, quercetin 3-methyl ether, luteolin, chrysin, gallic acid and abscisic acid (<a class="elsevierStyleCrossRef" href="#bib12">12</a>). Phenolic acids such as gallic acid and non-phenolic acids such as vitamin E have free radical scavenging activities that can prevent oxidative damage (<a class="elsevierStyleCrossRef" href="#bib30">30</a>). Gallic acid is one of the strongest free radical scavengers reported in manuka honey (<a class="elsevierStyleCrossRef" href="#bib12">12</a>). Phenolic acid and flavonoids in honey have been shown to protect endothelial cell lines against oxidative damage by peroxyl radicals and hydrogen peroxide activity (<a class="elsevierStyleCrossRef" href="#bib31">31</a>).</p><p id="para270" class="elsevierStylePara elsevierViewall">In this study, honey supplementation increased GPx activity and reduced CAT activity in the erythrocytes of both young and middle-aged rats, similar to the observations of Lee et al. (<a class="elsevierStyleCrossRef" href="#bib7">7</a>). A previous study on Portuguese unifloral honeys suggested that the selenium content of manuka honey is influenced by the botanical source of the honey (<a class="elsevierStyleCrossRef" href="#bib32">32</a>). Because selenium functions as a cofactor for GPx, the supplementation with honey that contains selenium may explain the increased GPx activity observed in this study. As shown in this study, the increased GPx activity subsequently caused reduced CAT activity in erythrocytes because GPx acts on similar substrates such as hydrogen peroxide and organic peroxide (<a class="elsevierStyleCrossRef" href="#bib33">33</a>). GPx hydrolyzes hydrogen peroxide to form water and oxidized glutathione (GSSH), whereas CAT reduces hydrogen peroxide to water and oxygen. A previous study reported that GPx is more active than CAT as a defense enzyme; thus, the low amount of CAT observed in this study was likely related to its peroxidatic activity (<a class="elsevierStyleCrossRef" href="#bib33">33</a>).</p><p id="para280" class="elsevierStylePara elsevierViewall">The marked increase in erythrocyte GPx activity after manuka honey supplementation reflected the presence of a higher level of hydrogen peroxide. According to a previous study, honey with a high peroxide level has higher glucose oxidase and lower catalase activity (<a class="elsevierStyleCrossRef" href="#bib34">34</a>). Generally, the predominant role of hydrogen peroxide in honey is as an antimicrobial agent; however, studies have reported that manuka honey exhibited non-peroxide antibacterial activity (<a class="elsevierStyleCrossRef" href="#bib14">14</a>). Methylglyoxal in manuka honey was identified to be responsible for its non-peroxide antibacterial activity, and researchers have identified this as its unique activity (<a class="elsevierStyleCrossRef" href="#bib14">14</a>). A previous study by Adams et al. (<a class="elsevierStyleCrossRef" href="#bib35">35</a>) reported that methylglyoxal formation is a non-enzymatic conversion of dihydroxyacetone and is accelerated by protein. Therefore, further studies should be performed to determine whether the supplementation of manuka honey increases both selenium and hydrogen peroxide levels in the blood, leading to the modulation of GPx activity.</p><p id="para290" class="elsevierStylePara elsevierViewall">Manuka honey supplementation reduced the DNA damage and MDA levels in young and middle-aged rats. The honey conferred better protection against DNA damage in the young group than in the middle-aged group. Analyses of both the free radical scavenging activity (DPPH) and total antioxidant activity (FRAP) were found to have strong correlations with the total phenolic content. These analyses showed that the phenolic content in manuka honey may be responsible for protecting these cells from oxidative damage.</p></span><span id="cesec200" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle250">ACKNOWLEDGMENTS</span><p id="para300" class="elsevierStylePara elsevierViewall">This research was supported by grants from the Medical Research and Industry Secretariat, UKM Medical Centre (UKMMC), UKM (FF-087-2010). The authors would like to thank all lecturers and staff of the Department of Biochemistry, Faculty of Medicine, UKMMC UKM, who contributed to this study.</p></span></span>" "textoCompletoSecciones" => array:1 [ "secciones" => array:7 [ 0 => array:2 [ "identificador" => "xpalclavsec1582365" "titulo" => "KEYWORDS" ] 1 => array:2 [ "identificador" => "cesec10" "titulo" => "INTRODUCTION" ] 2 => array:3 [ "identificador" => "cesec20" "titulo" => "MATERIALS AND METHODS" "secciones" => array:12 [ 0 => array:2 [ "identificador" => "cesec30" "titulo" => "Honey" ] 1 => array:2 [ "identificador" => "cesec40" "titulo" => "Total phenolic content" ] 2 => array:2 [ "identificador" => "cesec50" "titulo" => "Determination of free radical scavenging activity" ] 3 => array:2 [ "identificador" => "cesec60" "titulo" => "Determination of the total antioxidant power" ] 4 => array:2 [ "identificador" => "cesec70" "titulo" => "Animals" ] 5 => array:2 [ "identificador" => "cesec80" "titulo" => "Sample preparation" ] 6 => array:2 [ "identificador" => "cesec90" "titulo" => "Detection of DNA damage via the Comet Assay" ] 7 => array:2 [ "identificador" => "cesec100" "titulo" => "Malondialdehyde level" ] 8 => array:2 [ "identificador" => "cesec110" "titulo" => "Determination of superoxide dismutase (SOD) activity" ] 9 => array:2 [ "identificador" => "cesec120" "titulo" => "Determination of glutathione peroxidase (GPx) activity" ] 10 => array:2 [ "identificador" => "cesec130" "titulo" => "Determination of catalase (CAT) activity" ] 11 => array:2 [ "identificador" => "cesec140" "titulo" => "Statistical analyses" ] ] ] 3 => array:3 [ "identificador" => "cesec150" "titulo" => "RESULTS" "secciones" => array:3 [ 0 => array:2 [ "identificador" => "cesec160" "titulo" => "Total phenolic content and antioxidative activity of manuka honey" ] 1 => array:2 [ "identificador" => "cesec170" "titulo" => "Analysis of the baseline value of oxidative damage and its changes with honey supplementation" ] 2 => array:2 [ "identificador" => "cesec180" "titulo" => "Analysis of the baseline value of antioxidant enzyme activities and its changes with honey supplementation" ] ] ] 4 => array:2 [ "identificador" => "cesec190" "titulo" => "DISCUSSION" ] 5 => array:2 [ "identificador" => "cesec200" "titulo" => "ACKNOWLEDGMENTS" ] 6 => array:1 [ "titulo" => "REFERENCES" ] ] ] "pdfFichero" => "main.pdf" "tienePdf" => true "fechaRecibido" => "2013-05-13" "fechaAceptado" => "2013-05-31" "PalabrasClave" => array:1 [ "en" => array:1 [ 0 => array:4 [ "clase" => "keyword" "titulo" => "KEYWORDS" "identificador" => "xpalclavsec1582365" "palabras" => array:5 [ 0 => "Manuka Honey" 1 => "Antioxidant Enzymes" 2 => "DNA Damage" 3 => "Malondialdehyde" 4 => "Aging" ] ] ] ] "tieneResumen" => true "resumen" => array:1 [ "en" => array:2 [ "resumen" => "<span id="ceabs10" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle10">OBJECTIVE:</span><p id="spara80" class="elsevierStyleSimplePara elsevierViewall">This study aimed to determine the effect of manuka honey on the oxidative status of middle-aged rats.</p></span> <span id="ceabs20" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle20">METHOD:</span><p id="spara90" class="elsevierStyleSimplePara elsevierViewall">Twenty-four male Sprague-Dawley rats were divided into young (2 months) and middle-aged (9 months) groups. They were further divided into two groups each, which were either fed with plain water (control) or supplemented with 2.5 g/kg body weight of manuka honey for 30 days. The DNA damage level was determined via the comet assay, the plasma malondialdehyde level was determined using high performance liquid chromatography, and the antioxidant enzyme activities (superoxide dismutase, glutathione peroxidase, glutathione peroxidase and catalase) were determined spectrophotometrically in the erythrocytes and liver. The antioxidant activities were measured using 1,1-diphenyl-2-picrylhydrazyl and ferric reducing/antioxidant power assays, and the total phenolic content of the manuka was analyzed using UV spectrophotometry and the Folin-Ciocalteu method, respectively.</p></span> <span id="ceabs30" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle30">RESULTS:</span><p id="spara100" class="elsevierStyleSimplePara elsevierViewall">Supplementation with manuka honey reduced the level of DNA damage, the malondialdehyde level and the glutathione peroxidase activity in the liver of both the young and middle-aged groups. However, the glutathione peroxidase activity was increased in the erythrocytes of middle-aged rats given manuka honey supplementation. The catalase activity was reduced in the liver and erythrocytes of both young and middle-aged rats given supplementation. Manuka honey was found to have antioxidant activity and to have a high total phenolic content. These findings showed a strong correlation between the total phenolic content and antioxidant activity.</p></span> <span id="ceabs40" class="elsevierStyleSection elsevierViewall"><span class="elsevierStyleSectionTitle" id="cestitle40">CONCLUSIONS:</span><p id="spara110" class="elsevierStyleSimplePara elsevierViewall">Manuka honey reduces oxidative damage in young and middle-aged rats; this effect could be mediated through the modulation of its antioxidant enzyme activities and its high total phenolic content. Manuka honey can be used as an alternative supplement at an early age to improve the oxidative status.</p></span>" "secciones" => array:4 [ 0 => array:2 [ "identificador" => "ceabs10" "titulo" => "OBJECTIVE:" ] 1 => array:2 [ "identificador" => "ceabs20" "titulo" => "METHOD:" ] 2 => array:2 [ "identificador" => "ceabs30" "titulo" => "RESULTS:" ] 3 => array:2 [ "identificador" => "ceabs40" "titulo" => "CONCLUSIONS:" ] ] ] ] "NotaPie" => array:1 [ 0 => array:1 [ "nota" => "<p class="elsevierStyleNotepara" id="cenpara10">Rahim NBA undertook the management of the study and performed most of the laboratory and statistical analyses. Jubri Z participated in the design and coordination of the study as well as in the drafting and finalizing of the manuscript. Goon JA critically revised the manuscript. All authors read and approved the final manuscript.</p> <p class="elsevierStyleNotepara" id="cenpara20">No potential conflict of interest was reported.</p>" ] ] "multimedia" => array:8 [ 0 => array:7 [ "identificador" => "fig1" "etiqueta" => "Figure 1" "tipo" => "MULTIMEDIAFIGURA" "mostrarFloat" => true "mostrarDisplay" => false "figura" => array:1 [ 0 => array:4 [ "imagen" => "gr1.jpeg" "Alto" => 998 "Ancho" => 759 "Tamanyo" => 38313 ] ] "descripcion" => array:1 [ "en" => "<p id="spara10" class="elsevierStyleSimplePara elsevierViewall">A) Correlation between the total phenolic content (TPC) and ferric reducing/antioxidant power (FRAP value) of manuka honey. B) Correlation between the total phenolic content and radical scavenging activity (% inhibition) using the DPPH of manuka honey.</p>" ] ] 1 => array:7 [ "identificador" => "fig2" "etiqueta" => "Figure 2" "tipo" => "MULTIMEDIAFIGURA" "mostrarFloat" => true "mostrarDisplay" => false "figura" => array:1 [ 0 => array:4 [ "imagen" => "gr2.jpeg" "Alto" => 968 "Ancho" => 759 "Tamanyo" => 50298 ] ] "descripcion" => array:1 [ "en" => "<p id="spara20" class="elsevierStyleSimplePara elsevierViewall">Effect of manuka honey supplementation on the A) DNA damage and B) MDA levels of the young (2 months) and middle-aged (9 months) groups. The data are expressed as the means ± SD for 6 animals. * indicates a significant difference compared with the control group (<span class="elsevierStyleItalic">p</span><0.05).</p>" ] ] 2 => array:7 [ "identificador" => "fig3" "etiqueta" => "Figure 3" "tipo" => "MULTIMEDIAFIGURA" "mostrarFloat" => true "mostrarDisplay" => false "figura" => array:1 [ 0 => array:4 [ "imagen" => "gr3.jpeg" "Alto" => 1135 "Ancho" => 759 "Tamanyo" => 65345 ] ] "descripcion" => array:1 [ "en" => "<p id="spara30" class="elsevierStyleSimplePara elsevierViewall">A) SOD activity, B) GPx activity and C) CAT activity in the erythrocytes of young (2 months) and middle-aged (9 months) rats with honey supplementation. The data are expressed as the means ± SD for 6 animals. * indicates a significant difference compared with the control group (<span class="elsevierStyleItalic">p</span><0.05).</p>" ] ] 3 => array:7 [ "identificador" => "fig4" "etiqueta" => "Figure 4" "tipo" => "MULTIMEDIAFIGURA" "mostrarFloat" => true "mostrarDisplay" => false "figura" => array:1 [ 0 => array:4 [ "imagen" => "gr4.jpeg" "Alto" => 1129 "Ancho" => 759 "Tamanyo" => 67573 ] ] "descripcion" => array:1 [ "en" => "<p id="spara40" class="elsevierStyleSimplePara elsevierViewall">A) Liver SOD activity, B) GPx activity and C) CAT activity of the young (2 months) and middle-aged (9 months) rats with manuka honey supplementation. The data are expressed as the means ± SD for 6 animals. * indicates a significant difference compared with the control group (<span class="elsevierStyleItalic">p</span><0.05).</p>" ] ] 4 => array:7 [ "identificador" => "t1-cln_68p1446" "etiqueta" => "Table 1" "tipo" => "MULTIMEDIATABLA" "mostrarFloat" => true "mostrarDisplay" => false "tabla" => array:1 [ "tablatextoimagen" => array:1 [ 0 => array:1 [ "tabla" => array:1 [ 0 => """ <table border="0" frame="\n \t\t\t\t\tvoid\n \t\t\t\t" class=""><thead title="thead"><tr title="table-row"><th class="td" title="\n \t\t\t\t\ttable-head\n \t\t\t\t " align="left" valign="\n \t\t\t\t\ttop\n \t\t\t\t" scope="col">Parameter \t\t\t\t\t\t\n \t\t\t\t\t\t</th><th class="td" title="\n \t\t\t\t\ttable-head\n \t\t\t\t " align="center" valign="\n \t\t\t\t\ttop\n \t\t\t\t" scope="col">Manuka \t\t\t\t\t\t\n \t\t\t\t\t\t</th></tr></thead><tbody title="tbody"><tr title="table-row"><td class="td" title="\n \t\t\t\t\ttable-entry\n \t\t\t\t " align="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">Total phenolic content (mg<span class="elsevierStyleInf">gallic acid</span>/kg honey) \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="char" valign="\n \t\t\t\t\ttop\n \t\t\t\t">201.00±35.92 \t\t\t\t\t\t\n \t\t\t\t</td></tr><tr title="table-row"><td class="td" title="\n \t\t\t\t\ttable-entry\n \t\t\t\t " align="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">FRAP value (μM Fe[II]) \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="char" valign="\n \t\t\t\t\ttop\n \t\t\t\t">215.71±50.00 \t\t\t\t\t\t\n \t\t\t\t</td></tr><tr title="table-row"><td class="td" title="\n \t\t\t\t\ttable-entry\n \t\t\t\t " align="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">DPPH (%) \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="char" valign="\n \t\t\t\t\ttop\n \t\t\t\t">46.64±5.95 \t\t\t\t\t\t\n \t\t\t\t</td></tr></tbody></table> """ ] ] ] ] "descripcion" => array:1 [ "en" => "<p id="spara50" class="elsevierStyleSimplePara elsevierViewall">Total phenolic content, FRAP value and antiradical power (1,1-diphenyl-2-picrylhydrazyl) of manuka honey.</p>" ] ] 5 => array:7 [ "identificador" => "t2-cln_68p1446" "etiqueta" => "Table 2" "tipo" => "MULTIMEDIATABLA" "mostrarFloat" => true "mostrarDisplay" => false "tabla" => array:2 [ "leyenda" => "<p id="spara70" class="elsevierStyleSimplePara elsevierViewall">Data are expressed as the means ± SD for 6 animals.</p>" "tablatextoimagen" => array:1 [ 0 => array:1 [ "tabla" => array:1 [ 0 => """ <table border="0" frame="\n \t\t\t\t\tvoid\n \t\t\t\t" class=""><thead title="thead"><tr title="table-row"><th class="td" title="\n \t\t\t\t\ttable-head\n \t\t\t\t " align="" valign="\n \t\t\t\t\ttop\n \t\t\t\t" scope="col"> \t\t\t\t\t\t\n \t\t\t\t\t\t</th><th class="td" title="\n \t\t\t\t\ttable-head\n \t\t\t\t " align="" valign="\n \t\t\t\t\ttop\n \t\t\t\t" scope="col"> \t\t\t\t\t\t\n \t\t\t\t\t\t</th><th class="td" title="\n \t\t\t\t\ttable-head\n \t\t\t\t " align="center" valign="\n \t\t\t\t\ttop\n \t\t\t\t" scope="col">Young (2 months) \t\t\t\t\t\t\n \t\t\t\t\t\t</th><th class="td" title="\n \t\t\t\t\ttable-head\n \t\t\t\t " align="center" valign="\n \t\t\t\t\ttop\n \t\t\t\t" scope="col">Middle-aged (9 months) \t\t\t\t\t\t\n \t\t\t\t\t\t</th></tr></thead><tbody title="tbody"><tr title="table-row"><td class="td" title="\n \t\t\t\t\ttable-entry\n \t\t\t\t " align="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">DNA damage \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="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">Arbitrary unit \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="center" valign="\n \t\t\t\t\ttop\n \t\t\t\t">159±61.1 \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="center" valign="\n \t\t\t\t\ttop\n \t\t\t\t">171.9±72.1 \t\t\t\t\t\t\n \t\t\t\t</td></tr><tr title="table-row"><td class="td" title="\n \t\t\t\t\ttable-entry\n \t\t\t\t " align="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">MDA level \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="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">nmol/ml plasma \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="char" valign="\n \t\t\t\t\ttop\n \t\t\t\t">7.58±0.45 \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="center" valign="\n \t\t\t\t\ttop\n \t\t\t\t">8.29±0.59 \t\t\t\t\t\t\n \t\t\t\t</td></tr><tr title="table-row"><td class="td" title="\n \t\t\t\t\ttable-entry\n \t\t\t\t " align="" valign="\n \t\t\t\t\ttop\n \t\t\t\t"> \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 " colspan="3" align="center" valign="\n \t\t\t\t\ttop\n \t\t\t\t">Erythrocytes</td></tr><tr title="table-row"><td class="td" title="\n \t\t\t\t\ttable-entry\n \t\t\t\t " align="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">SOD \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="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">U/mg Hb \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="char" valign="\n \t\t\t\t\ttop\n \t\t\t\t">3.96±2.16 \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="char" valign="\n \t\t\t\t\ttop\n \t\t\t\t">2.77±1.68 \t\t\t\t\t\t\n \t\t\t\t</td></tr><tr title="table-row"><td class="td" title="\n \t\t\t\t\ttable-entry\n \t\t\t\t " align="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">GPx \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="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">mU/mg Hb \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="char" valign="\n \t\t\t\t\ttop\n \t\t\t\t">0.22±0.01 \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="char" valign="\n \t\t\t\t\ttop\n \t\t\t\t">0.41±0.15 \t\t\t\t\t\t\n \t\t\t\t</td></tr><tr title="table-row"><td class="td" title="\n \t\t\t\t\ttable-entry\n \t\t\t\t " align="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">CAT \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="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">U/mg Hb \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="char" valign="\n \t\t\t\t\ttop\n \t\t\t\t">2.77±0.75 \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="char" valign="\n \t\t\t\t\ttop\n \t\t\t\t">1.87±0.46 \t\t\t\t\t\t\n \t\t\t\t</td></tr><tr title="table-row"><td class="td" title="\n \t\t\t\t\ttable-entry\n \t\t\t\t " align="" valign="\n \t\t\t\t\ttop\n \t\t\t\t"> \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 " colspan="3" align="center" valign="\n \t\t\t\t\ttop\n \t\t\t\t">Liver</td></tr><tr title="table-row"><td class="td" title="\n \t\t\t\t\ttable-entry\n \t\t\t\t " align="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">SOD \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="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">U/mg protein \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="char" valign="\n \t\t\t\t\ttop\n \t\t\t\t">1.59±0.45 \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="char" valign="\n \t\t\t\t\ttop\n \t\t\t\t">1.86±0.24 \t\t\t\t\t\t\n \t\t\t\t</td></tr><tr title="table-row"><td class="td" title="\n \t\t\t\t\ttable-entry\n \t\t\t\t " align="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">GPx \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="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">mU/mg protein \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="char" valign="\n \t\t\t\t\ttop\n \t\t\t\t">70.73±27.26 \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="center" valign="\n \t\t\t\t\ttop\n \t\t\t\t">78.0±17.27 \t\t\t\t\t\t\n \t\t\t\t</td></tr><tr title="table-row"><td class="td" title="\n \t\t\t\t\ttable-entry\n \t\t\t\t " align="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">CAT \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="justify" valign="\n \t\t\t\t\ttop\n \t\t\t\t">U/mg protein \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="char" valign="\n \t\t\t\t\ttop\n \t\t\t\t">2.76±0.46 \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="char" valign="\n \t\t\t\t\ttop\n \t\t\t\t">3.25±0.55 \t\t\t\t\t\t\n \t\t\t\t</td></tr></tbody></table> """ ] ] ] ] "descripcion" => array:1 [ "en" => "<p id="spara60" class="elsevierStyleSimplePara elsevierViewall">Baseline values of DNA damage and antioxidant enzyme activities of the young (2 months) and middle-aged (9 months) groups.</p>" ] ] 6 => array:5 [ "identificador" => "formula10" "tipo" => "MULTIMEDIAFORMULA" "mostrarFloat" => false "mostrarDisplay" => true "Formula" => array:5 [ "Matematica" => "Antioxidantactivity(%)=[(Abscontrol-Abssample)/Abscontrol]×100" "Fichero" => "STRIPIN_si1.jpeg" "Tamanyo" => 4414 "Alto" => 19 "Ancho" => 463 ] ] 7 => array:5 [ "identificador" => "formula20" "tipo" => "MULTIMEDIAFORMULA" "mostrarFloat" => false "mostrarDisplay" => true "Formula" => array:5 [ "Matematica" => "Arbitraryunits=score0x(N)+score1(N)+score2(N)++score3(N)+score4(N)" "Fichero" => "STRIPIN_si2.jpeg" "Tamanyo" => 5231 "Alto" => 16 "Ancho" => 555 ] ] ] "bibliografia" => array:2 [ "titulo" => 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Year/Month | Html | Total | |
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