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MKP-1在血管紧张素Ⅱ导致心肌肥大反应中的调控作用 总被引:1,自引:0,他引:1
本研究主要从丝裂原活化蛋白激酶磷酸酶 1(MKP 1)角度 ,研究丝裂原活化蛋白激酶 (MAPK)信号途径在血管紧张素Ⅱ介导的新生大鼠心肌细胞肥大反应中的作用及调控机制。实验以心肌细胞蛋白合成速率、蛋白含量及细胞表面积作为心肌肥大反应的指标 ,以凝胶内MBP原位磷酸化测定MAPK活性 ,以免疫印迹法 (Westernboltting)分别测定MKP 1及磷酸化p44MAPK、p42MAPK蛋白表达。结果发现 :(1)AngⅡ (10 -7mol/L)处理 48h ,心肌细胞 3H 亮氨酸掺入率、蛋白含量及细胞表面积明显增加 ,AngⅡ增加 3H 亮氨酸掺入的作用可被血管紧张素Ⅱ 1型受体 (AT1受体 )拮抗剂CV11974(10 -6mol/L)明显抑制 (抑制 85 % ) ,被MAPK激酶 (MEK)特异性抑制剂PD0 980 5 9(5× 10 -5mol/L)部分抑制 (抑制 32 5 % ) ;(2 )CV11974或PD0 980 5 9可明显抑制AngⅡ介导的磷酸化MAPK蛋白表达及MAPK酶活性 (以γ 32 P ATP掺入表示 ) ;(3)以磷酸化MAPK蛋白表达反映MAPK活性 ,可见AngⅡ处理心肌细胞5min ,MAPK活性即开始增加 ,30min左右达到高峰 ,2h后基本恢复正常 ;而MKP 1蛋白表达 30min即见增加 ,持续 2h以上 ;(4 )用放线菌素D (actinomycinD)处理心肌细胞 30min可明显抑制MKP 1的表达 ,同时使AngⅡ致磷酸化MAPK蛋白表达时间延长至 2h以上。以上结果 相似文献
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MAPK信号途径在一氧化氮抑制大鼠心肌肥大中的作用 总被引:31,自引:0,他引:31
实验观察了一氧化氮(NO)前体L-精氨酸对肾性高血压大鼠心肌组织eNOS蛋白表达及亚硝酸盐/硝酸盐含量、MKP-1蛋白表达及MAPK活性的影响,以及与心肌肥厚的关系,采用两肾一夹Goldblatt肾性高血压模型,随机分为5组:L-精氨酸高、中、低剂量组,分别于术后第5周给予L-精氨酸50、150及450mg/kg;L-NAME组,腹腔注射L-NAME 10mg/kg,同时给予L-精氨酸150mg/kg;高血压对照组,正常饮水,以及另设的一假手术对照组。用药8周后,用插管法测量大鼠动脉血压、左心室重与体重比值,用胶内原位磷酸化法测MFAPK活性、免疫印迹法检测心肌组织eNOS及MKP-1蛋白表达、酶还原法测定心肌组织亚硝酸盐/硝酸盐-硝酸盐含量。结果表明:(1)L-精氨酸可明显抑制肾动脉狭窄术后的血压升高、左心室重与体重比增加,增加心肌组织eNOS、MKP-1蛋白表达及亚硝酸盐-硝酸盐含量,降低心肌组织MAPK活性,其中以150mg/kg组作用最为明显;(2)NOS抑制剂L-NAME可明显抑制-精氨酸的以上作用,肾性高血压大鼠心肌组织eNOS蛋白表达下降。NO生成减少及MKP-1蛋白表达下降以及MAPK活性增强可能与高血压及心肌厚形成有关,L-精氨酸通过促进心肌组织eNOS蛋白表达、增加NO产生和MKP-1表达、减弱MAPK活性而发挥抗高血压及心肌肥厚的作用。 相似文献
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MKP—1在血管紧张素Ⅱ导致心肌肥大反应中的调控作用 总被引:2,自引:0,他引:2
本研究主要从丝裂原活化蛋白激酶磷酸酶-1(MKP-1)角度,研究丝裂原活化蛋白激酶(MAPK)信号途径在血管紧张素Ⅱ介导的新生大鼠心肌细胞肥大反应中的作用及调控机制。实验以心肌细胞蛋白合成速率、蛋白含量及细胞表面积作为心肌肥大反应的指标,以凝胶内MBP原位磷酸化测定MAPK活性,以免疫印迹法(Western boltting)分别测定MKP-1及磷酸化p44MAPK、p42MAPK蛋白表达。结果发 相似文献
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一氧化氮抑制血管紧张素Ⅱ和内皮素—1诱导的心肌细胞原癌基因c—fo … 总被引:3,自引:0,他引:3
在原代培养的新生大鼠心肌细胞上,探讨一氧化氮(NO)对血管紧张素Ⅱ(AⅡ)和内皮素-1(ET-1)诱导的心肌细胞肥大和原癌基因c-fos表达的影响。用Bradford法测定心肌细胞总蛋白含量(作为心肌细胞肥大的指标);用基因特异性引物和SuperScript一步法进行逆转录聚合酶链式反应(RT-PCR),检测大鼠心肌细胞原癌基因c-fos的表达(以GAPDH为内标)。结果显示,AⅡ和ET-1分别作 相似文献
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AngⅡ和PKC对心肌细胞AngⅡ 1型受体的转录调节 总被引:3,自引:0,他引:3
利用体外培养的心肌细胞,观察血管紧张素Ⅱ(AngⅡ)和蛋白激酶C(PKC)在诱导AngⅡ1型受体(AT1)基因表达及蛋白质代谢中的作用.研究结果表明:AngⅡ可诱导AT1mRNA水平一过性下调,呈时间及剂量依赖性,10nmol/LAngⅡ刺激细胞6h,引起AT1mRNA水平降低幅度最大,降至对照的51.6%±9.5%,然后逐渐回升,24h恢复至对照水平.30μmol/LH-7(PKC抑制剂)能阻断AngⅡ诱导的AT1mRNA水平的下调.0.3μmol/L的PMA(PKC激活剂)单独应用可诱导AT1mRNA水平下调达对照的43%±8%,加入AT1拮抗剂DMP811及Dup753均可阻断AngⅡ诱导的AT1mRNA水平的下调.10nmol/L的AngⅡ刺激心肌细胞96h可使蛋白含量降低至对照的73.4%±5.6%,而加药持续刺激144h可使蛋白含量较对照增加33.8%±6.3%,H-7不能阻断AngⅡ诱导的蛋白含量降低,但可有效地抑制蛋白含量的增加.以上结果提示:AngⅡ对心肌细胞AT1基因的转录和细胞的蛋白代谢有调节作用,而PKC则参与了AngⅡ的这种调节作用 相似文献
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一氧化氮在血管紧张素Ⅱ激活蛋白激酶C中的作用 总被引:7,自引:0,他引:7
实验在培养新生大鼠心肌细胞中检测NO前体L-精氨酸(L-Arg)和NO供体硝普钠(SNP)对血管紧张素Ⅱ(AngⅡ)激活蛋白激酶C(PKC)的作用,以探讨心肌细胞PKC水平的信号转导途径,实验结果如下:(1)无血清DMEM培养心肌细胞24h后加入AngⅡ,PKC活性呈剂量依赖性增高;(2)培养基中加入L-Arg,PKC活性呈剂量依赖性降低;(3)用L-Arg100μmol/L进行预处理,30min后分别加入AngⅡ0.1μmol/L或PMA10μmol/L,PKC活性均明显降低,与单纯AngⅡ组和单纯PMA组相比均有显著性差异;用NOS抑制剂L-NAME预处理后,再加入L-Arg,可明显阻断L-Arg对上述两个效应的影响;(4)培养液中加入NO供体SNP,PKC活性呈剂量依赖性地降低;(5)用SNP10μmol/L预处理心肌细胞,5min后分别加入AngⅡ或PMA,PKC活性分别与单纯AngⅡ和单纯PMA组相比均明显降低。以上结果表明,AngⅡ能剂量依赖性激活PKC,而NO可剂量依赖性抑制PKC活性;NOS参与L-Arg抑制AngⅡ或PMA激活PKC的作用。这些观察提示,NO抑制AngⅡ对心肌细胞的作用可能是通过抑制PKC活性实现的,PKC可能是NO和AngⅡ在心肌细胞内信号转导的交汇点(cross talk)。 相似文献
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蛋白激酶C在血管紧张素Ⅱ抑制心肌细胞一氧化氮合成中的作用 总被引:1,自引:0,他引:1
实验用硝酸还原酶法测定培养新生大鼠心肌细胞亚硝酸盐 (NO 2 )和硝酸盐 (NO 3)总量 (NO 2 /NO 3) ,反映心肌细胞一氧化氮 (NO)生成情况 ,观察血管紧张素Ⅱ (AngⅡ )对心肌细胞NO生成的影响及其蛋白激酶C (PKC)在该效应中的作用。结果显示 :AngⅡ可减少心肌细胞NO的含量 ,并具有明显的剂量 效应关系 ;AngⅡ受体拮抗剂saralasin可明显抑制AngⅡ对NO生成的影响 ;L 精氨酸 (L Arg)明显增加心肌细胞NO的浓度 ,此效应可被一氧化氮合酶 (NOS)抑制剂L NAME所抑制 ,L Arg未能消除AngⅡ抑制NO的作用 ;用佛波酯 (PMA)处理心肌细胞 ,其NO的生成明显减少 ,L NAME可加强此抑制效应 ;PKC抑制剂staurosporine (Stau)可明显削弱AngⅡ抑制心肌细胞NO生成的效应。结果提示 :AngⅡ具有抑制心肌细胞NO生成的作用 ,此作用可能是通过抑制心肌细胞NOS的活性而实现的 ;AngⅡ受体介导AngⅡ抑制心肌细胞NO生成的作用 ;激活PKC可使新生大鼠心肌细胞NO生成减少 ,NOS参与此抑制效应 ,新生大鼠心肌细胞NO生成过程的信号转导通路可能与PKC有关 ;PKC参与AngⅡ抑制心肌细胞NO的生成。 相似文献
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蛋白激酶C在血管紧张素Ⅱ抑制心肌细胞——氧化氮合成中的作用 总被引:3,自引:0,他引:3
实验用硝酸还原酶法测定培养新生大鼠内肌细胞亚硝酸盐(NO2)和硝酸盐(NO3)总量(NO2/NO3),反映心肌细胞一氧化氮(NO)生成情况,观察血管紧张素Ⅱ(AngⅡ)对凡肌细胞NO生成的及其蛋白激酶C(PKC)在该效应中的作用。结果显示:AngⅡ可减少心肌细胞NO的含量,并具有明显的剂量-效应关系;AngⅡ受体拮抗剂saralasin可明显抵制AngⅡ对NO生成的影响;L-精氨酸(L-Arg)明 相似文献
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钙调神经磷酸酶依赖的信号通路参与血管紧张素Ⅱ刺激的心肌细胞肥大 总被引:22,自引:1,他引:22
本研究观察了钙调神经磷酸酶依赖的信号通路在血管紧张素Ⅱ诱导的大鼠心肌细胞肥大中的作用。在AngⅡ刺激的大鼠心肌细胞肥大模型上,应用环孢素A(CsA)阻断CaN通路,观察心肌细胞^3H-亮氨酸掺入,CaN,MAPK及PKC活性的变化。结果表明,AngⅡ(10^-7mol/L)刺激大鼠心肌细胞^3H-亮氨酸掺入较对照组增高46%(P〈0.01),CsA(0.5-5μg/ml)可以浓度依赖性方式抑制An 相似文献
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Just A Olson AJ Whitten CL Arendshorst WJ 《American journal of physiology. Heart and circulatory physiology》2007,292(1):H83-H92
NAD(P)H oxidases (NOX) and reactive oxygen species (ROS) are involved in vasoconstriction and vascular remodeling during hypertension produced by chronic angiotensin II (ANG II) infusion. These effects are thought to be mediated largely through superoxide anion (O(2)(-)) scavenging of nitric oxide (NO). Little is known about the role of ROS in acute vasoconstrictor responses to agonists. We investigated renal blood flow (RBF) reactivity to ANG II (4 ng), norepinephrine (NE, 20 ng), and alpha(1)-adrenergic agonist phenylephrine (PE, 200 ng) injected into the renal artery (ira) of anesthetized Sprague-Dawley rats. The NOX inhibitor apocynin (1-4 mg.kg(-1).min(-1) ira, 2 min) or the superoxide dismutase mimetic Tempol (1.5-5 mg.kg(-1).min(-1) ira, 2 min) rapidly increased resting RBF by 8 +/- 1% (P < 0.001) or 3 +/- 1% (P < 0.05), respectively. During NO synthase (NOS) inhibition (N(omega)-nitro-l-arginine methyl ester, 25 mg/kg iv), the vasodilation tended to increase (apocynin 13 +/- 4%, Tempol 10 +/- 1%). During control conditions, both ANG II and NE reduced RBF by 24 +/- 4%. Apocynin dose dependently reduced the constriction by up to 44% (P < 0.05). Similarly, Tempol blocked the acute actions of ANG II and NE by up to 48-49% (P < 0.05). In other animals, apocynin (4 mg.kg(-1).min(-1) ira) attenuated vasoconstriction to ANG II, NE, and PE by 46-62% (P < 0.01). During NOS inhibition, apocynin reduced the reactivity to ANG II and NE by 60-72% (P < 0.01), and Tempol reduced it by 58-66% (P < 0.001). We conclude that NOX-derived ROS substantially contribute to basal RBF as well as to signaling of acute renal vasoconstrictor responses to ANG II, NE, and PE in normal rats. These effects are due to O(2)(-) rather than H(2)O(2), occur rapidly, and are independent of scavenging of NO. 相似文献
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Exogenous nitric oxide triggers classic ischemic preconditioning by preventing intracellular Ca2+ overload in cardiomyocytes 总被引:1,自引:0,他引:1
The involvement of nitric oxide (NO) in the late phase of ischemic preconditioning is well established. However, the role of NO as a trigger or mediator of "classic preconditioning" remains to be determined. The present study was designed to investigate the effects of NO on calcium homeostasis in cultured newborn rat cardiomyocytes in normoxia and hypoxia. We found that treatment with the NO donor, sodium nitroprusside (SNP) induced a sustained elevation of intracellular calcium level ([Ca(2+)](i)) followed by a decrease to control levels. Elevation of extracellular calcium, which generally occurs during ischemia, caused an immediate increase in [Ca(2+)](i) and arrhythmia in cultures of newborn cardiomyocytes. Treatment with SNP decreased [Ca(2+)](i) to control levels and re-established synchronized beating of cardiomyocytes. A decrease in extracellular [Na(+)], which inhibits the Na(+)/Ca(2+) exchanger, did not prevent [Ca(2+)](i) reduction by SNP. In contrast, application of thapsigargin, an inhibitor of sarcoplasmic reticulum Ca(2+)-ATPase (SERCA2a), increased [Ca(2+)](i), and in its presence, SNP did not reduce [Ca(2+)](i), indicating that Ca(2+) reduction is achieved via activation of SERCA2a. The results obtained suggest that activation of SERCA2a by SNP increases Ca(2+) uptake into the sarcoplasmic reticulum (SR) and prevents cytosolic Ca(2+) overload, which might explain the protective effect of SNP from hypoxic damage. 相似文献
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The present study investigated the role of nitric oxide (NO) on atrial natriuretic peptide (ANP) release stimulated by angiotensin II (Ang II) (10(-7) M) in superfused sliced rat atrial tissue. The use of N(G)-nitro-L-arginine methyl ester (L-NAME) at 10(-4) M, an inhibitor of nitric oxide synthase did not modify basal ANP release. In presence of Ang II (10(-7) M), we observed that L-NAME enhanced ANP secretion induced by Ang II. Furthermore, cGMP levels increased significantly in the presence of Ang II and was attenuated by L-NAME. On the other hand, the perfusion of 8 bromo-cGMP (10(-5) M) with Ang II reduced the effect of this octapeptide on ANP secretion. Secondly, we evaluated the effect of authentic NO on ANP release and observed that perfusion of NO reduced significantly the effect of Ang II on ANP release. We propose that the effect of Ang II on ANP secretion was modulated by NO likely via cGMP pathway. 相似文献
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尾加压素对新生大鼠心肌细胞一氧化氮合成的影响 总被引:6,自引:0,他引:6
应用半定量逆转录-多聚酶链反应法,观察尾加压素(urotensin Ⅱ,UⅡ)对培养的新生SD大鼠心肌细胞内皮型一氧化氮合酶(endothelial nitric oxide synthase,eNOS)mRNA表达的影响,并测定UⅡ对心肌细胞内一氧化氮合酶(nitric oxide synthase,NOS)活性和一氧化氮(nitric oxide,NO)释放的影响。结果显示:UⅡ抑制培养的新生大鼠心肌细胞eNOS mRNA表达、抑制NOS的活性及NO释放;0.1μmol/L浓度的UⅡ呈时间依赖性抑制心肌细胞NOS的活性及NO生成。上述实验结果提示UⅡ的心血管作用可能与NO合成系统有关。 相似文献
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NAD(P)H oxidase-derived hydrogen peroxide mediates endothelial nitric oxide production in response to angiotensin II 总被引:4,自引:0,他引:4
Cai H Li Z Dikalov S Holland SM Hwang J Jo H Dudley SC Harrison DG 《The Journal of biological chemistry》2002,277(50):48311-48317
Recently, it has been shown that the exogenous addition of hydrogen peroxide (H(2)O(2)) increases endothelial nitric oxide (NO(.)) production. The current study is designed to determine whether endogenous levels of H(2)O(2) are ever sufficient to stimulate NO(.) production in intact endothelial cells. NO(.) production was detected by a NO(.)-specific microelectrode or by an electron spin resonance spectroscopy using Fe(2+)-(DETC)(2) as a NO(.)-specific spin trap. The addition of H(2)O(2) to bovine aortic endothelial cells caused a potent and dose-dependent increase in NO(.) release. Incubation with angiotensin II (10(-7) mol) elevated intracellular H(2)O(2) levels, which were attenuated with PEG-catalase. Angiotensin II increased NO(.) production by 2-fold, and this was prevented by Losartan and by PEG-catalase, suggesting a critical role of AT1 receptor and H(2)O(2) in this response(.) In contrast, NO(.) production evoked by either bradykinin or calcium ionophore was unaffected by PEG-catalase. As in bovine aortic endothelial cells, angiotensin II doubled NO(.) production in aortic endothelial cells from C57BL/6 mice but had no effect on NO(.) production in endothelial cells from p47(phox-/-) mice. In contrast, stimulated NO(.) production to a similar extent in endothelial cells from wild-type and p47(phox-/-) mice. In summary, the present study provides direct evidence that endogenous H(2)O(2), derived from the NAD(P)H oxidase, mediates endothelial NO(.) production in response to angiotensin II. Under disease conditions associated with elevated levels of angiotensin II, this response may represent a compensatory mechanism. Because angiotensin II also stimulates O(2)() production from the NAD(P)H oxidase, the H(2)O(2) stimulation of NO(.) may facilitate peroxynitrite formation in response to this octapeptide. 相似文献