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Site-specific ubiquitination affects protein energetics and proteasomal degradation

机译:特异性泛素化会影响蛋白质能量和蛋白酶体降解

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摘要

Changes in the cellular environment modulate protein energy landscapes to drive important biology, with consequences for signaling, allostery and other vital processes. The effects of ubiquitination are particularly important because of their potential influence on degradation by the 26S proteasome. Moreover, proteasomal engagement requires unstructured initiation regions that many known proteasome substrates lack. To assess the energetic effects of ubiquitination and how these manifest at the proteasome, we developed a generalizable strategy to produce isopeptide-linked ubiquitin within structured regions of a protein. The effects on the energy landscape vary from negligible to dramatic, depending on the protein and site of ubiquitination. Ubiquitination at sensitive sites destabilizes the native structure and increases the rate of proteasomal degradation. In well-folded proteins, ubiquitination can even induce the requisite unstructured regions needed for proteasomal engagement. Our results indicate a biophysical role of site-specific ubiquitination as a potential regulatory mechanism for energy-dependent substrate degradation.
机译:细胞环境的变化调节蛋白质能量景观,推动重要生物学,其后果对信号传导,仿生和其他重要过程。由于其对26s蛋白酶体的降解潜在的影响,泛素化的影响尤为重要。此外,蛋白酶啮合需要非结构化的引发区,即许多已知的蛋白酶体衬底缺乏。为了评估泛素化的能量效果以及如何在蛋白酶体中表现出来,我们开发了一种可推广的策略,以在蛋白质的结构化区域内产生异肽连接的泛素。对能量景观的影响因缺乏不计而不计,这取决于蛋白质和泛素化的蛋白质。敏感部位的泛素稳定地使天然结构稳定并提高蛋白酶体降解的速率。在折叠良好的蛋白质中,普遍术甚至可以诱导蛋白酶体接合所需的必要的非结构化区域。我们的结果表明,特异性泛素化作为能量依赖性基质降解的潜在调节机制的生物物理作用。

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