LiWang Andy, Orban John
Department of Chemistry and Biochemistry, University of California, Merced, CA 95343.
Center for Cellular and Biomolecular Machines, University of California, Merced, CA 95343.
Proc Natl Acad Sci U S A. 2025 Mar 25;122(12):e2422725122. doi: 10.1073/pnas.2422725122. Epub 2025 Mar 13.
Metamorphic proteins switch reversibly between two differently folded states under a variety of environmental conditions. Their identification and prediction are gaining attention, but the fundamental physicochemical basis for fold switching remains poorly understood. In this Perspective article, we address this problem by surveying the landscape of well-characterized metamorphic proteins and noting that a significant fraction of them display temperature sensitivity. We then make the case that the dependence on temperature, in particular cold-denaturation effects, is likely to be an underlying property of many metamorphic proteins regardless of their ultimate triggering mechanisms, especially those with a single domain. The argument is supported by rigorous analysis of hydrophobic effects in each well-characterized metamorphic protein pair and a description of how these parameters relate to temperature. The conclusion discusses the relevance of these insights to a better understanding of prediction, evolution, and de novo design strategies for metamorphic proteins.
变构蛋白在多种环境条件下可在两种不同折叠状态之间可逆切换。它们的识别和预测正受到关注,但折叠转换的基本物理化学基础仍知之甚少。在这篇观点文章中,我们通过审视已充分表征的变构蛋白领域并注意到其中很大一部分表现出温度敏感性来解决这个问题。然后我们提出,对温度的依赖性,特别是冷变性效应,很可能是许多变构蛋白的一个潜在特性,无论其最终触发机制如何,尤其是那些单结构域的变构蛋白。这一论点得到了对每个充分表征的变构蛋白对中疏水效应的严格分析以及对这些参数与温度如何相关的描述的支持。结论部分讨论了这些见解对于更好地理解变构蛋白的预测、进化和从头设计策略的相关性。