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1.
低温和氧化应激产生活酵母细胞衍生物的研究   总被引:2,自引:0,他引:2  
对低温和H2O2应激条件下产生活性酵母细胞衍生物(Live Yeast Cell Derivative,简称LYCD)进行了研究。结果表明:低温预处理能够增加细胞内谷胱甘肽(GSH)含量,提高超氧化物歧化酶(SOD)、过氧化氢酶(CAT)活性,降低MDA含量。低温预处理可以诱导对致死浓度H2O2的抗性。通过0—15℃低温和0.2mmol/L H2O2处理酵母细胞后,提取LYCD并添加到酵母细胞培养液中,发现细胞在致死浓度H2O2作用下的存活率明显提高,说明0—15℃低温和H2O2刺激酵母细胞形成的LYCD对细胞具有抗氧化作用。  相似文献   

2.
高温和H2O2诱导酵母细胞产生活性衍生物的研究   总被引:5,自引:0,他引:5       下载免费PDF全文
对高温和H2O2应激条件下产生活性酵母细胞衍生物(Live Yeast Cell Derivative,简称LYCD)进行了研究。结果表明:低剂量的预处理(37℃和0.2mmol/LH2O2)能够增加细胞内谷胱甘肽(GSH)含量,提高超氧化物歧化酶(SOD)、过氧化氢酶(CAT)活性。两种预处理均可以诱导对致死浓度H2O2的抗性。通过37℃和0.2mmol/LH2O2处理酵母细胞后,提取LYCD并添加到酵母细胞培养液中,发现细胞在致死浓度H2O2作用下的存活率明显提高,说明温度和H2O2刺激酵母细胞形成的LYCD对细胞氧化具有抵抗作用。  相似文献   

3.
活性酵母细胞衍生物的初步研究*   总被引:4,自引:0,他引:4  
活性酵母细胞衍生物(Live Yeast Cell Derivative,简称LYCD)是酵母细胞在人为控制的伤害条件下产生的具有促进细胞呼吸和修复作用的保护性物质。研究结果表明:LYCD对细胞具有明显的促呼吸作用;在过氧化氢的作用下,应激反应发生15min时,所制备的LYCD具有最强的促呼吸作用;发生30min时,LYCD中还原型谷胱甘肽(GSM)的含量最高。对比实验还表明:在不同的应激条件下所制备的LYCD,具有相似的生物活性。  相似文献   

4.
目的:研究黄芪苷Ⅳ(AST)是否通过细胞外信号调节激酶1/2(ERK1/2)通路发挥对H2O2诱导的H9c2细胞氧化损伤的保护作用。方法:用200μmoL/L的H2O2处理细胞6h,采用MTT法检测细胞存活率,建立H2O2诱导的H9c2细胞氧化损伤模型;比色法测定细胞培养液中乳酸脱氢酶(LDH)活性、总超氧化物歧化酶(T—SOD)和锰超氧化物歧化酶(Mn—SOD)活力以及丙二醛(MDA)含量;Western blot检测H9c2细胞ERK1/2蛋白的磷酸化水平。结果:在H2O2浓度为200μmol/L作用6h条件下,细胞存活率降低程度适中,实验结果重复性好,确定后续实验采用200μmol/L H2O2作用6h建立模型。与H2O2组比较,10mg/L及20mg/L AST均显著提高细胞存活率(P〈0.01),使细胞培养液中LDH活性显著降低(P〈0.01),T—SOD及Mn—SOD活力显著提高(P〈0.01),MDA含量显著降低(P〈0.01)。10mg/L及20mg/L AST均显著增加H2O2损伤的H9c2细胞p—ERK1/2蛋白的表达(P〈0.01),当用PD98059(ERK1/2的抑制剂)预处理后,AST的作用则被取消。结论:黄芪苷Ⅳ可以通过ERK1/2通路发挥对H2O2诱导的H9c2细胞氧化损伤的保护作用。  相似文献   

5.
离体蒜苔构成一个完整的细胞内含物再分配系统。25℃条件下,于黑暗中贮存时,苔茎基部细胞内含物转移到顶端珠蒜中,最后苔茎下部枯萎,顶端形成鲜嫩多汁的珠蒜。适当浓度GA3处理苔茎基部可以有效抑制上0述细胞内含物再分配过程。已有研究表明,H2O2由超氧化物歧化酶(SOD)催化产生,被过氧化物酶(POD)和过氧化氢酶(CAT)催化降解;H2O2对生物个体发育具有重要调节作用。本文主要测定GA3对离体蒜苔H2O2代谢的影响,为进一步探讨H2O2在细胞内含物再分配中的作用提供参考。取珠蒜未明显膨大的离体蒜苔为供试材料,采用50μg/mLGA3溶液处理蒜苔基部,用比色法和氧电极法测定珠蒜和苔茎下部H2O2水平和SOD、POD、CAT活性。结果表明:(1)在处理后48h内,珠蒜和苔茎下部H2O2代谢即产生明显差异(Fig.1-4);(2)贮存20d后对照珠蒜明显膨大,而GA3不蒜无显著变化(Table1);(3)GA3处理显著提高了珠蒜H2O2水平和SOD、POD、CAT活性,相反苔茎下部H2O2水平和POD、CAT活性受到显著抑制,而SOD活性提高(Fig.5-8)。GA3处理对珠蒜和苔茎下部H2O2代谢的相反作用可能是其调节细胞内含物再分配的作用机制。  相似文献   

6.
外源谷胱甘肽(GSH)对水鳖Zn2+毒害的缓解作用   总被引:2,自引:0,他引:2  
研究在10 mg L-1 Zn2 毒害下外施10-50 mg L-1梯度浓度的还原型谷胱甘肽(GSH)对水鳖(Hydrocharis dubia)的保护酶(SOD、CAT、POD)活性、GSH、可溶性蛋白质、叶绿素、H2O2含量以及O2.-产生速率的影响。结果表明,相对单一的Zn2 毒害,施用外源GSH可明显减轻毒害症状,植物体内GSH含量增加了10.71%-35.71%,O2.-的产生速率最低降至78.2%,H2O2含量最低降至62.7%。植物体内可溶性蛋白含量和CAT、SOD、POD的活性最大分别增加了74.2%、108.2%、61.4%、19.5%。随GSH浓度增大,缓解能力下降,在培养液中最佳缓解浓度为20-40 mg L-1。  相似文献   

7.
用CO2激光对小麦种子分别辐照0、1、3、5min,待其生长至12d时,用10%(W/V)PEG6000胁迫其幼苗,研究激光预处理对PEG6000水分胁迫下小麦幼苗根部脂质过氧化伤害的防护作用。结果表明,CO2激光预处理3min可使水分胁迫的小麦幼苗根部MDA、H2O2含量和O2.-产生速率显著降低(P〈0.05),可显著提高(P〈0.05)小麦幼苗根部SOD、POD、CAT、APX活性和根长、根干重。激光预处理3min可抑制由水分胁迫引起的小麦幼苗根部脂质过氧化作用。  相似文献   

8.
赵慧慧  王道艳  王春波 《生物磁学》2014,(23):4434-4439
目的:氧化应激在肝脏疾病中扮演着重要的角色。胶原蛋白肽是天然的抗氧化剂,其在动物实验中已经被证实有抑制氧化应激的作用。最新研究证实胶原蛋白肽将有可能被应用在肝脏疾病的预防中,但是很少有研究报道其分子作用机制。因此本研究在胶原蛋白肽是对H2O2诱导的正常人的肝细胞系HL7702氧化损伤有保护作用的基础上,并探索其分子作用机制。方法:实验设空白对照组,H2O2模型组,胶原蛋白肽低、中、高剂量组(10,100,200μg/ml)。胶原蛋白肽各组加入相应浓度的药物预处理12 h后,与模型组一起加入300μM H2O2的H2O2共同培养12 h,空白对照组正常培养。细胞毒性是由CCK8和乳酸脱氢酶(LDH)的释放检测。抗氧化试剂盒检测细胞内活性氧的水平,超氧化物歧化酶(SOD)、过氧化氢酶(CAT)活性和丙二醛(MDA)含量的变化。Western blot检测细胞内Nrf2蛋白的表达水平。结果:胶原蛋白肽对H2O2诱导的正常人的肝细胞系HL7702氧化损伤有保护作用。胶原蛋白肽能够及时清除细胞内的活性氧,增加Nrf2的蛋白表达水平,提高超氧化物歧化酶(SOD)、过氧化氢酶(CAT)的活性,减轻脂质过氧化反应,从而保护正常人的肝细胞系HL7702。结论:总之,胶原蛋白肽通过增加Nrf2的蛋白表达水平,提高抗氧化活性,对H2O2诱导损伤的肝细胞发挥保护作用。本研究为胶原蛋白肽的分子作用机制提供了新的证据,将有助于预防氧化应激所致的肝损伤。  相似文献   

9.
本文以番茄为材料,研究H2O2和MAPK在BR诱导的抗氧化防护系统中的作用。结果表明,外源BR提高抗氧化防护酶SOD和CAT活性;而这种诱导机制被H2O2产生抑制剂二苯基碘(DPI)和MEK1/2专一抑制剂PD98059阻断。进一步研究发现:BR能够诱导细胞质外体H2O2的产生,这种诱导被PD98059抑制;BR能够活化一种49kDaMAPK,这种活化被DPI抑制。本研究结果证实细胞质外体H2O2和MAPK候选激酶(49kDaMAPK)信号参与BR诱导的抗氧化防酶途径,且两者之间存在交互作用。  相似文献   

10.
外源H2O2对盐胁迫下小麦幼苗生理指标的影响   总被引:2,自引:0,他引:2  
以‘郑麦-004’小麦幼苗为供试材料,采用Hoagland营养液培养方法,通过添加H2O2的清除剂过氧化氢酶(CAT)和抗坏血酸(ASA),研究0.05μmol/L外源H2O2处理对150mmol/L NaCl胁迫下小麦幼苗生长和抗氧化系统活性的影响,探讨低浓度外源H2O2对盐胁迫下小麦幼苗伤害的防护作用及其生理机制。结果显示:外源H2O2能缓解盐胁迫对小麦幼苗生长的抑制效应,降低丙二醛(MDA)含量和超氧自由基(O2.-)的产生速率,使小麦幼苗的株高、根长和干重均显著增加,并能提高超氧化物歧化酶(SOD)、过氧化物酶(POD)、CAT、抗坏血酸氧化酶(APX)等保护酶活性和抗氧化物质谷胱甘肽(GSH)的含量;而H2O2清除剂(CAT和AsA)能够逆转外源H2O2对盐胁迫下小麦幼苗生长的促进作用。研究表明,低浓度外源H2O2处理能促进小麦幼苗中的酶类和非酶类抗氧化剂的产生,减少脂质过氧化物的含量,提高小麦幼苗的耐盐性。  相似文献   

11.
Previously, we have demonstrated that leptin increases blood pressure (BP) in the rats through two oxidative stress-dependent mechanisms: stimulation of extracellular signal-regulated kinases (ERK) by H(2)O(2) and scavenging of nitric oxide (NO) by superoxide (O(2-.)). Herein, we examined if renal glutathione system and antioxidant enzymes determine the mechanism of prohypertensive effect of leptin. Leptin administered at 0.5 mg/kg/day for 4 or 8 days increased BP and renal Na(+),K(+)-ATPase activity and reduced fractional sodium excretion; these effects were prevented by NADPH oxidase inhibitor, apocynin. Superoxide scavenger, tempol, abolished the effect of leptin on BP and renal Na(+) pump in rats receiving leptin for 8 days, whereas ERK inhibitor, PD98059, was effective in animals treated with leptin for 4 days. Leptin administered for 4 days decreased glutathione (GSH) and increased glutathione disulfide (GSSG) in the kidney. In animals receiving leptin for 8 days GSH returned to normal level, which was accompanied by up-regulation of gamma-glutamylcysteine synthetase (gamma-GCS), a rate-limiting enzyme of the GSH biosynthetic pathway. In addition, superoxide dismutase (SOD) activity was decreased, whereas glutathione peroxidase (GPx) was increased in rats receiving leptin for 8 days. Cotreatment with gamma-GCS inhibitor, buthionine sulfoximine (BSO), accelerated, whereas GSH precursor, N-acetylcysteine (NAC), attenuated leptin-induced changes in gamma-GCS, SOD, and GPx. In addition, coadministration of BSO changed the mechanism of BP elevation from H(2)O(2)-ERK to (O(2-.))-NO dependent in animals receiving leptin for 4 days, whereas NAC had the opposite effect in rats treated with leptin for 8 days. These results suggest that initial change in GSH redox status induces decrease in SOD/GPx ratio, which results in greater amount of (O)2-.)) versus H(2)O(2) in later phase of leptin treatment, thus shifting the mechanism of BP elevation from H(2)O(2)-ERK to (O(2-.))-NO dependent.  相似文献   

12.
Park WH  Han YW  Kim SH  Kim SZ 《Mutation research》2007,619(1-2):81-92
We investigated the involvement of ROS such as H2O2 and O2*-, and GSH in As4.1 cell death induced by pyrogallol. The intracellular H2O2 levels were decreased or increased depending on the concentration and incubation time of pyrogallol. The levels of O2*- were significantly increased. Pyrogallol reduced the intracellular GSH content. And ROS scavengers, Tempol, Tiron, Trimetazidine and NAC could not significantly down-regulate the production of H2O2 and O2*-. However, these ROS scavengers slightly inhibited apoptosis. Interestingly, Tempol showing the recovery of GSH depletion induced by pyrogallol significantly decreased apoptosis without the significant reduction of intracellular O2*- levels. SOD and catalase did not change the level of H2O2 but decreased the level of O2*-. The inhibition of GSH depletion by these was accompanied with the decrease of apoptosis, as evidenced by sub-G1 DNA content, annexin V staining, mitochondria membrane potential (DeltaPsi(m)) and Western data. In addition, ROS scavengers and SOD did not alter a G2 phase accumulation of the cell cycle induced by pyrogallol. However, catalase changed the cell cycle distributions of pyrogallol-treated cells to those of pyrogallol-untreated cells. In summary, we have demonstrated that pyrogallol potently generates ROS, especially O2*-, in As4.1 JG cells, and Tempol, SOD and catalase could rescue to a lesser or greater extent cells from pyrogallol-induced apoptosis through the up-regulation of intracellular GSH content.  相似文献   

13.
一氧化氮供体对过氧化氢引起的心肌细胞损伤的保护作用   总被引:7,自引:0,他引:7  
Zhang F  Zhang T  Zhu XX  Liu LN  Li C  Mei QB 《生理学报》2004,56(4):481-486
关于一氧化氮(NO)对心肌细胞是否具有保护作用目前尚存在争议,为探讨NO对过氧化氢(H2O2)引起的心肌细胞损伤是否具有保护作用及其可能的机制,实验将体外培养的新生大鼠心肌细胞分为3组(1)阴性对照组(Normal组);(2)H2O2组H2O2(0.1mmol/L)与心肌细胞共育4h;(3)S-亚硝基-N-乙酰青霉胺(SNAP)+H2O2组NO供体SNAP(0.5mmol/L)处理心肌细胞10min后,加入H2O2与心肌细胞共育4 h.用流式细胞术检测心肌细胞凋亡率,心肌细胞损伤程度以心肌细胞存活率和乳酸脱氢酶(lactate dehydrogenase,LDH)活性来表示,同时检测心肌细胞超氧化物歧化酶(superoxide dismutase,SOD)活性和丙二醛(MDA)含量.通过激光共聚焦显微术检测在不同处理条件下心肌细胞胞内钙的变化.结果表明,正常心肌细胞LDH活性和细胞存活率分别为631.4±75.6 U/L和93.1±6.2%,细胞凋亡率为0;H2O2处理细胞后可使细胞LDH活性显著增高(1580.5±186.7 U/L,P<0.01),细胞存活率明显下降(58.3±7.6%,P<0.01),流式细胞仪检测到大量心肌细胞凋亡,凋亡率为26.4±5.7%;SOD活性较正常细胞19.67±0.85 NU/ml显著下降,为14.73±1.68 NU/m(P<0.01),MDA含量较正常细胞6.95±0.83μmol/L显著增高,为15.35±3.49μmol/L(P<0.01).SNAP预处理细胞可显著提高心肌细胞存活率(79.7±9.3%,P<0.01),降低LDH活性和细胞凋亡率(分别为957.8±110.9 U/L和9.1±3.3%,P<0.01);并提高细胞抗氧化能力,表现为较H2O2处理组的SOD活性增高(21.36±3.11 NU/ml,P<0.01),MDA含量下降(9.12±1.47 μmol/L,P<0.01).激光共聚焦显微镜检测结果表明,H2O2可升高细胞内钙,而SNAP则可降低细胞内钙,SNAP预处理细胞后可取消H2O2升高细胞内钙的作用.上述结果提示,NO供体SNAP可对抗H2O2对心肌细胞的损伤,其机制与提高心肌细胞抗氧化损伤能力和对抗H2O2引起的细胞内钙超载有关.  相似文献   

14.
Arsenic trioxide has been known to regulate many biological functions such as cell proliferation, apoptosis, differentiation, and angiogenesis in various cell lines. We investigated the involvement of GSH and ROS such as H(2)O(2) and O(2)(*-) in the death of As4.1 cells by arsenic trioxide. The intracellular ROS levels were changed depending on the concentration and length of incubation with arsenic trioxide. The intracellular O(2)(*-) level was significantly increased at all the concentrations tested. Arsenic trioxide reduced the intracellular GSH content. Treatment of Tiron, ROS scavenger decreased the levels of ROS in 10 microM arsenic trioxide-treated cells. Another ROS scavenger, Tempol did not decrease ROS levels in arsenic trioxide-treated cells, but slightly recovered the depleted GSH content and reduced the level of apoptosis in these cells. Exogenous SOD and catalase did not reduce the level of ROS, but did decrease the level of O(2)(*-). Both of them inhibited GSH depletion and apoptosis in arsenic trioxide-treated cells. In addition, ROS scavengers, SOD and catalase did not alter the accumulation of cells in the S phase induced by arsenic trioxide. Furthermore, JNK inhibitor rescued some cells from arsenic trioxide-induced apoptosis, and this inhibitor decreased the levels of O(2)(*-) and reduced the GSH depletion in these cells. In summary, we have demonstrated that arsenic trioxide potently generates ROS, especially O(2)(*-), in As4.1 juxtaglomerular cells, and Tempol, SOD, catalase, and JNK inhibitor partially rescued cells from arsenic trioxide-induced apoptosis through the up-regulation of intracellular GSH levels.  相似文献   

15.
The kinetic effects of hydrogen peroxide (H2O2) on cultured endothelial cells isolated from bovine carotid artery were studied. The cytoprotective effects of glutathione (GSH) on H2O2-induced cell injury were also investigated. H2O2-induced a dose- and time-dependent cell injury in cultured endothelial cells. H2O2-induced cell injury was blocked by simultaneous treatment by catalase, but not by superoxide dismutase. H2O2 also induced endogenous PGI2 biosynthesis, and the maximum PGI2 production was reached after 1 h treatment. Stimulation of PGI2 production was parallel with arachidonate release from H2O2-treated cells. However the prostaglandin biosynthesis enzyme activity in cells was inhibited by H2O2 treatment. When the cells were treated with GSH, the intracellular GSH reached a plateau after 3 h treatment. Both H2O2-induced cell injury and PGI2 production were significantly inhibited by the 3 h pretreatment with GSH. The cytoprotective effect of GSH was completely inhibited by buthionine sulfoximine which is a specific inhibitor of gamma-glutamylcysteine synthetase. The results indicate that the cytoprotective effect of GSH on H2O2-induced cell injury in cultured bovine carotid artery endothelial cells depends on the increase in intracellular GSH content.  相似文献   

16.
The characteristics of mutagenesis by glyoxal in Salmonella tester strains TA100 and TA104, and particularly a possible role of active oxygen species, were investigated. Glyoxal was converted into a non-mutagenic chemical with glutathione (GSH) by glyoxalase I, and the mutagenic activity was enhanced by the depletion of intracellular GSH. Glyoxal caused the reduction of nitro blue tetrazolium, which was suppressed by the addition of 2,5-diphenylfuran, superoxide dismutase (SOD) and catalase (CAT), scavengers of singlet oxygen (1O2), superoxide radical (O2-) and hydrogen peroxide (H2O2), respectively. However, only the 1O2 scavenger almost completely suppressed the mutagenic activity of glyoxal. Mutagenicity assays using strains pretreated with N,N-diethyldithiocarbamate of a SOD inhibitor and strains with low levels of SOD and CAT indicated that the mutagenesis by glyoxal was independent of intracellular levels of SOD and CAT, though glyoxal itself repressed them. Therefore, all the results suggest that 1O2 formed from glyoxal is related to its mutagenesis, but that neither O2- nor H2O2 is intracellularly predominantly related to it. The action of glyoxal against SOD and CAT, and the formation of glyoxal adducts with amino acids as their components are also discussed.  相似文献   

17.
A decline in reduced glutathione (GSH) levels is associated with aging and many age-related diseases. The objective of this study was to determine whether other antioxidants can compensate for GSH depletion in protection against oxidative insults. Rabbit lens epithelial cells were depleted of > 75% of intracellular GSH by 25-200 microM buthionine sulfoximine (BSO). Depletion of GSH by BSO alone had little direct effect on cell viability, but resulted in an approximately 30-fold increase in susceptibility to H(2)O(2)-induced cell death. Experimentally enhanced levels of nonprotein sulfhydryls other than GSH (i.e., N-acetylcysteine) did not protect GSH-depleted cells from H(2)O(2)-induced cell death. In contrast, pretreatment of cells with vitamin C (25-50 microM) or vitamin E (5-40 microM), restored the resistance of GSH-depleted cells to H(2)O(2). However, concentrations of vitamin C > 400 microM and vitamin E > 80 microM enhanced the toxic effect of H(2)O(2). Although levels of GSH actually decreased by 10-20% in cells supplemented with vitamin C or vitamin E, the protective effects of vitamin C and vitamin E on BSO-treated cells were associated with significant ( approximately 70%) decreases in oxidized glutathione (GSSG) and concomitant restoration of the cellular redox status (as indicated by GSH:GSSG ratio) to levels detected in cells not treated with BSO. These results demonstrate a role for vitamin C and vitamin E in maintaining glutathione in its reduced form. The ability of vitamin C and vitamin E in compensations for GSH depletion to protect against H(2)O(2)-induced cell death suggests that GSH, vitamin C, and vitamin E have common targets in their actions against oxidative damage, and supports the preventive or therapeutic use of vitamin C and E to combat age- and pathology-associated declines in GSH. Moreover, levels of these nutrients must be optimized to achieve the maximal benefit.  相似文献   

18.
夜间低温胁迫对番茄叶片活性氧代谢及AsA-GSH循环的影响   总被引:3,自引:0,他引:3  
以番茄品种‘辽园多丽’为试材,利用人工气候室模拟设施生产中的夜间低温胁迫环境,研究9℃和6℃夜低温对番茄叶片活性氧代谢和AsA-GSH循环的影响。结果显示:9℃和6℃夜间低温胁迫3~9d可诱导番茄叶片中超氧阴离子(O2.-)产生速率、过氧化氢(H2O2)和丙二醛(MDA)含量上升;抑制过氧化物酶(POD)、过氧化氢酶(CAT)的活性,增加超氧化物歧化酶(SOD)和AsA-GSH循环中抗坏血酸过氧化物酶(APX)、脱氢抗坏血酸还原酶(DHAR)、谷胱甘肽还原酶(GR)的活性,并提高还原型抗坏血酸(AsA)、还原型谷胱甘肽(GSH)、氧化型谷胱甘肽(GSSG)的含量。研究表明,在夜间低温胁迫过程中,增加的番茄叶片中SOD活性和AsA-GSH循环清除活性氧的能力并未与氧还原的速率一致,从而导致番茄叶片中活性氧的累积,使细胞膜系统受到一定破坏,在6℃处理的植物中尤为明显。  相似文献   

19.
Under conditions where apoptosis is prevented, peroxides disrupt the endothelial monolayer by inducing cytoskeletal rearrangements, cell retraction and formation of arrays of membrane blebs. In human umbilical vein endothelial cells (HUVEC), the H(2)O(2)-induced membrane blebbing was found to be a transient process executed by two parallel signaling mechanisms: (i) mobilization of cytosolic [Ca(2+)](i) through a pathway requiring oxidation of reduced glutathione (GSH), and (ii) activation of p38 mitogen-activated protein kinases (MAPK) independently of GSH oxidation and Ca(2+) mobilization. In the HUVEC, membrane blebbing was thus blocked by inhibition of GSH oxidation, Ca(2+) mobilization or p38 MAPK activation. Stimulation of GSH peroxidation with ebselen potentiated the H(2)O(2)-induced oscillating Ca(2+) response and the bleb formation, but not p38 phosphorylation. Chelation of [Ca(2+)](i) abolished the blebbing process but not p38 activation. In addition, in the GSH peroxidase-resistant cell line ECV304, H(2)O(2) was unable to promote membrane blebbing or significant Ca(2+) release, while p38 became phosphorylated. However, [Ca(2+)](i) was increased and blebs were formed, when the ECV304 were treated with ebselen before H(2)O(2). Together, this leads to a model where oxidative stress, through both Ca(2+)-dependent and p38 kinase-mediated phosphorylation events, causes reassembly of the actin cytoskeleton and subsequent appearance of membrane blebs at the plasma membrane.  相似文献   

20.
During the phagocytic respiratory burst, oxygen is converted to potent cytotoxic oxidants. Monocytes and macrophages are potentially long-lived, and we have hypothesized that protective mechanisms against oxidant stress are varied and fully expressed in these cells. We report here that the respiratory burst in monocytes is accompanied by an increase in the uptake of [35S]glutathione ([35S]GSH) after 20-30 min to levels up to 10-fold greater than those at baseline. By 30 min, 49% of the cell-associated radioactivity was in the cytosol, 41% was in membrane, and 10% was associated with the nuclear fraction. GSH uptake was inhibited by catalase, which removes hydrogen peroxide (H2O2), and micromolar H2O2 stimulated GSH uptake effectively in monocytes and also lymphocytes. Oxidation of GSH to glutathione disulfide with H2O2 and glutathione peroxidase prevented uptake. Acivicin, which inhibits GSH breakdown by gamma-glutamyl transpeptidase (GGT), had no effect on the enhanced uptake seen during the respiratory burst. Uptake of cysteine or cystine, possible products of GGT activity, stayed the same or decreased during the respiratory burst. These results suggest that a GGT-independent mechanism is responsible for the enhanced GSH uptake seen during the respiratory burst. We describe here a sodium-independent, methionine-inhibitable transport system with a Km (8.5 microM) for GSH approximating the plasma GSH concentration. These results suggest that monocytes have a specific GSH transporter that is triggered by the release of H2O2 during the respiratory burst and that induces the uptake of GSH into the cell. Such a mechanism has the potential to protect the phagocyte against oxidant damage.  相似文献   

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