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小鼠肾乳头中的渗透保护蛋白质组调整

Osmoprotective proteome adjustments in mouse kidney papilla.

作者信息

Gabert B J, Kültz D

机构信息

Department of Animal Science, University of Califonia, Davis, CA, USA.

出版信息

Biochim Biophys Acta. 2011 Mar;1814(3):435-48. doi: 10.1016/j.bbapap.2011.01.003. Epub 2011 Jan 12.

Abstract

The papilla of the mammalian kidney must tolerate greatly varying degrees of hyperosmotic stress during urine concentration and depending on whole organism hydration state. To identify proteome adaptations supporting cell function and survival in such a harsh environment we compared the proteome of a) the hyperosmotic renal papilla with that of adjacent iso-osmotic cortex tissue and b) the renal papilla of diuretic versus that of anti-diuretic mice. Though functionally distinct the papilla is in close physical proximity to the renal cortex, an iso-osmotic region. Proteomic differences between the papilla and cortex of C57BL6 mice were identified using two-dimensional gel electrophoresis and MALDI-TOF/TOF mass spectrometry. We found 37 different proteins characteristic of the cortex and 16 proteins over-represented in the papilla. Regional specificity was confirmed by Western blot and further substantiated by immunohistochemistry for selected proteins. Proteins that are characteristic of the renal papilla include αB crystallin, Hsp beta-1, Hsp90, 14-3-3 protein, glutathione S-transferase, aldose reductase, actin and tropomyosin. Gene ontology analysis confirmed a significant increase in molecular functions associated with protein chaperoning and cell stabilization. Proteins over-represented in the cortex were largely related to routine metabolism. During antidiuresis 15 different proteins changed significantly while 18 different proteins changed significantly during diuresis relative to normally hydrated controls. Changes were confirmed by Western blot for selected proteins. Proteins that are significantly altered by diuretic state are associated with cell structure (actin, tubulin), signaling (Rho GDP dissociation inhibitor, abhydrolase domain-containing protein 14B), chaperone functioning (Hsp beta-1, αB crystallin, T complex protein-1) and anti-oxidant functions (α-enolase, GAPDH and LDH). Taken together our study reveals that specific proteins involved in protein folding, cytoskeletal stabilization, antioxidant responses, and stress signaling contribute greatly to the unique hyperosmotic stress resistant phenotype of the kidney papilla.

摘要

在尿液浓缩过程中,哺乳动物肾乳头必须耐受因机体整体水合状态不同而产生的极大程度的高渗应激。为了确定在如此恶劣环境下支持细胞功能和存活的蛋白质组适应性变化,我们比较了以下几种情况的蛋白质组:a)高渗性肾乳头与相邻等渗皮质组织的蛋白质组;b)利尿小鼠与抗利尿小鼠的肾乳头蛋白质组。尽管肾乳头在功能上与肾皮质不同,但在物理位置上与肾皮质这个等渗区域紧密相邻。使用二维凝胶电泳和基质辅助激光解吸电离飞行时间串联质谱(MALDI-TOF/TOF)鉴定了C57BL6小鼠肾乳头和皮质之间的蛋白质组差异。我们发现了37种皮质特有的不同蛋白质,以及16种在肾乳头中过度表达的蛋白质。通过蛋白质免疫印迹法证实了区域特异性,并通过对选定蛋白质的免疫组织化学进一步证实。肾乳头特有的蛋白质包括αB晶状体蛋白、热休克蛋白β-1、热休克蛋白90、14-3-3蛋白、谷胱甘肽S-转移酶、醛糖还原酶、肌动蛋白和原肌球蛋白。基因本体分析证实,与蛋白质伴侣功能和细胞稳定相关的分子功能显著增加。皮质中过度表达的蛋白质主要与常规代谢有关。与正常水合对照组相比,在抗利尿期间有15种不同蛋白质发生显著变化,而在利尿期间有18种不同蛋白质发生显著变化。通过蛋白质免疫印迹法对选定蛋白质证实了这些变化。因利尿状态而显著改变的蛋白质与细胞结构(肌动蛋白、微管蛋白)、信号传导(Rho GDP解离抑制剂、含水解酶结构域蛋白14B)、伴侣功能(热休克蛋白β-1、αB晶状体蛋白、T复合物蛋白-1)和抗氧化功能(α-烯醇化酶、甘油醛-3-磷酸脱氢酶和乳酸脱氢酶)有关。综上所述,我们的研究表明,参与蛋白质折叠、细胞骨架稳定、抗氧化反应和应激信号传导的特定蛋白质对肾乳头独特的抗高渗应激表型有很大贡献。

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