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Mallostery—ligand-dependent protein misfolding enables physiological regulation by ERAD

机译:变态反应-配体依赖性蛋白质错折叠使得能够通过ERAD进行生理调节

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摘要

HMG-CoA reductase (HMGR) undergoes regulated degradation as part of feedback control of the sterol pathway. In yeast, the stability of the HMGR isozyme Hmg2 is controlled by the 20-carbon isoprenoid geranylgeranyl pyrophosphate (GGPP). Increasing GGPP levels cause more efficient degradation by the HMG-CoA reductase degradation (HRD) pathway, allowing for feedback regulation of HMGR. The HRD pathway is critical for the endoplasmic reticulum (ER)-associated degradation (ERAD) of misfolded ER proteins. Here, we have explored GGPP's role in HRD-dependent Hmg2 degradation. We found that GGPP potently regulates Hmg2 levels in vivo and causes reversible Hmg2 misfolding at nanomolar concentrations in vitro. These GGPP-mediated effects were absent in several stabilized or nonregulated Hmg2 mutants. Consistent with its high potency, GGPP's effects were highly specific such that other structurally related molecules were ineffective in altering Hmg2 structure. For instance, two closely related GGPP analogues, 2F-GGPP and GGSPP, were completely inactive at all concentrations tested. Furthermore, GGSPP antagonized GGPP's effects in vivo and in vitro. Chemical chaperones reversed GGPP's effects on Hmg2 structure and degradation, suggesting that GGPP causes selective Hmg2 misfolding. These results indicate that GGPP functions in a manner similar to an allosteric ligand, causing Hmg2 misfolding through interaction with a reversible, specific binding site. Consistent with this, the Hmg2 protein formed multimers, typical of allosteric proteins. We propose that this “allosteric misfolding,” or mallostery, observed here for Hmg2 may be a widely used tactic of biological regulation with potential for development of therapeutic small molecules that induce selective misfolding.
机译:HMG-CoA还原酶(HMGR)受到调节的降解,作为固醇途径反馈控制的一部分。在酵母中,HMGR同工酶Hmg2的稳定性受20碳异戊二烯类香叶基香叶基焦磷酸焦磷酸酯(GGPP)的控制。 GGPP水平的提高会通过HMG-CoA还原酶降解(HRD)途径导致更有效的降解,从而实现HMGR的反馈调节。 HRD通路对于错误折叠的ER蛋白的内质网(ER)相关降解(ERAD)至关重要。在这里,我们探讨了GGPP在依赖HRD的Hmg2降解中的作用。我们发现,GGPP在体内有效调节Hmg2的水平,并在体外以纳摩尔浓度引起可逆的Hmg2错误折叠。这些GGPP介导的作用在几个稳定的或不受调控的Hmg2突变体中是不存在的。与其高效力一致,GGPP的作用具有高度特异性,因此其他与结构相关的分子在改变Hmg2结构方面无效。例如,两个紧密相关的GGPP类似物2F-GGPP和GGSPP在所有测试浓度下都完全失活。此外,GGSPP在体内和体外拮抗GGPP的作用。化学分子伴侣逆转了GGPP对Hmg2结构和降解的影响,表明GGPP导致选择性Hmg2错误折叠。这些结果表明,GGPP以类似于变构配体的方式起作用,通过与可逆的特异性结合位点相互作用而引起Hmg2错折叠。与此相一致,Hmg2蛋白形成了多聚体,这是变构蛋白的典型特征。我们建议,此处针对Hmg2观察到的这种“变构错折叠”或槌状构图可能是生物调节的一种广泛使用的策略,具有开发诱导选择性错折叠的治疗性小分子的潜力。

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