Department of Chemistry and Molecular Biology, University of Gothenburg, Box 462, SE-405 30 Göteborg, Sweden.
Institute of Biomedicine - Department of Microbiology and Immunology, Sahlgrenska Academy, University of Gothenburg, SE-405 30, Göteborg, Sweden.
J Cell Sci. 2021 Jun 1;134(11). doi: 10.1242/jcs.258338. Epub 2021 Jun 4.
The toxic metalloid arsenic causes widespread misfolding and aggregation of cellular proteins. How these protein aggregates are formed in vivo, the mechanisms by which they affect cells and how cells prevent their accumulation is not fully understood. To find components involved in these processes, we performed a genome-wide imaging screen and identified Saccharomyces cerevisiae deletion mutants with either enhanced or reduced protein aggregation levels during arsenite exposure. We show that many of the identified factors are crucial to safeguard protein homeostasis (proteostasis) and to protect cells against arsenite toxicity. The hits were enriched for various functions including protein biosynthesis and transcription, and dedicated follow-up experiments highlight the importance of accurate transcriptional and translational control for mitigating protein aggregation and toxicity during arsenite stress. Some of the hits are associated with pathological conditions, suggesting that arsenite-induced protein aggregation may affect disease processes. The broad network of cellular systems that impinge on proteostasis during arsenic stress identified in this current study provides a valuable resource and a framework for further elucidation of the mechanistic details of metalloid toxicity and pathogenesis. This article has an associated First Person interview with the first authors of the paper.
有毒类金属砷会导致细胞蛋白质广泛错误折叠和聚集。这些蛋白质聚集体是如何在体内形成的,它们影响细胞的机制以及细胞如何防止其积累,这些都还不完全清楚。为了找到参与这些过程的成分,我们进行了全基因组成像筛选,并鉴定出在亚砷酸盐暴露期间蛋白质聚集水平增强或降低的酿酒酵母缺失突变体。我们表明,许多已鉴定的因素对于保护蛋白质的动态平衡(蛋白质稳态)和保护细胞免受亚砷酸盐毒性至关重要。这些命中结果富集了各种功能,包括蛋白质生物合成和转录,专门的后续实验强调了准确的转录和翻译控制对于减轻亚砷酸盐胁迫下蛋白质聚集和毒性的重要性。一些命中结果与病理状况有关,这表明亚砷酸盐诱导的蛋白质聚集可能会影响疾病过程。本研究中确定的在砷胁迫下影响蛋白质稳态的广泛细胞系统网络为进一步阐明类金属毒性和发病机制的机制细节提供了有价值的资源和框架。本文有该论文第一作者的相关第一人称采访。