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内在无序蛋白作为分子屏障。

Intrinsically disordered proteins as molecular shields.

作者信息

Chakrabortee Sohini, Tripathi Rashmi, Watson Matthew, Schierle Gabriele S Kaminski, Kurniawan Davy P, Kaminski Clemens F, Wise Michael J, Tunnacliffe Alan

机构信息

Department of Chemical Engineering and Biotechnology, University of Cambridge, Cambridge, UK.

出版信息

Mol Biosyst. 2012 Jan;8(1):210-9. doi: 10.1039/c1mb05263b. Epub 2011 Sep 9.

Abstract

The broad family of LEA proteins are intrinsically disordered proteins (IDPs) with several potential roles in desiccation tolerance, or anhydrobiosis, one of which is to limit desiccation-induced aggregation of cellular proteins. We show here that this activity, termed molecular shield function, is distinct from that of a classical molecular chaperone, such as HSP70 - while HSP70 reduces aggregation of citrate synthase (CS) on heating, two LEA proteins, a nematode group 3 protein, AavLEA1, and a plant group 1 protein, Em, do not; conversely, the LEA proteins reduce CS aggregation on desiccation, while HSP70 lacks this ability. There are also differences in interaction with client proteins - HSP70 can be co-immunoprecipitated with a polyglutamine-containing client, consistent with tight complex formation, whereas the LEA proteins can not, although a loose interaction is observed by Förster resonance energy transfer. In a further exploration of molecular shield function, we demonstrate that synthetic polysaccharides, like LEA proteins, are able to reduce desiccation-induced aggregation of a water-soluble proteome, consistent with a steric interference model of anti-aggregation activity. If molecular shields operate by reducing intermolecular cohesion rates, they should not protect against intramolecular protein damage. This was tested using the monomeric red fluorescent protein, mCherry, which does not undergo aggregation on drying, but the absorbance and emission spectra of its intrinsic fluorophore are dramatically reduced, indicative of intramolecular conformational changes. As expected, these changes are not prevented by AavLEA1, except for a slight protection at high molar ratios, and an AavLEA1-mCherry fusion protein is damaged to the same extent as mCherry alone. A recent hypothesis proposed that proteomes from desiccation-tolerant species contain a higher degree of disorder than intolerant examples, and that this might provide greater intrinsic stability, but a bioinformatics survey does not support this, since there are no significant differences in the degree of disorder between desiccation tolerant and intolerant species. It seems clear therefore that molecular shield function is largely an intermolecular activity implemented by specialist IDPs, distinct from molecular chaperones, but with a role in proteostasis.

摘要

LEA蛋白大家族是内在无序蛋白(IDP),在耐干燥性或脱水生活中具有多种潜在作用,其中之一是限制干燥诱导的细胞蛋白聚集。我们在此表明,这种被称为分子屏蔽功能的活性不同于经典分子伴侣,如HSP70——虽然HSP70在加热时可减少柠檬酸合酶(CS)的聚集,但两种LEA蛋白,一种线虫第3组蛋白AavLEA1和一种植物第1组蛋白Em则不能;相反,LEA蛋白在干燥时可减少CS聚集,而HSP70缺乏这种能力。与客户蛋白的相互作用也存在差异——HSP70可与含多聚谷氨酰胺的客户蛋白进行共免疫沉淀,这与紧密复合物的形成一致,而LEA蛋白则不能,尽管通过Förster共振能量转移观察到存在松散相互作用。在对分子屏蔽功能的进一步探索中,我们证明合成多糖与LEA蛋白一样,能够减少干燥诱导的水溶性蛋白质组聚集,这与抗聚集活性的空间干扰模型一致。如果分子屏蔽通过降低分子间内聚速率起作用,那么它们不应防止分子内蛋白质损伤。我们使用单体红色荧光蛋白mCherry对此进行了测试,mCherry在干燥时不会发生聚集,但其内在荧光团的吸收光谱和发射光谱显著降低,这表明发生了分子内构象变化。正如预期的那样,AavLEA1不能防止这些变化,除了在高摩尔比时有轻微保护作用,并且AavLEA1 - mCherry融合蛋白与单独的mCherry受到相同程度的损伤。最近有一个假设提出,耐干燥物种的蛋白质组比不耐干燥的物种含有更高程度的无序性,这可能提供更大的内在稳定性,但一项生物信息学调查并不支持这一点,因为耐干燥和不耐干燥物种之间的无序程度没有显著差异。因此,很明显分子屏蔽功能在很大程度上是一种由专门的IDP实现的分子间活性,不同于分子伴侣,但在蛋白质稳态中发挥作用。

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Intrinsically disordered proteins as molecular shields.内在无序蛋白作为分子屏障。
Mol Biosyst. 2012 Jan;8(1):210-9. doi: 10.1039/c1mb05263b. Epub 2011 Sep 9.

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