Oxidation of two cysteines within yeast Hsp70 impairs proteostasis while directly triggering an Hsf1-dependent
Alec Santiago1, Kevin A Morano2
1Department of Microbiology and Molecular Genetics, McGovern Medical School at UTHealth Houston, Houston, Texas, USA; MD Anderson UTHealth Graduate School of Biomedical Sciences at UTHealth Houston, Houston, Texas, USA.
Abstract:
Neurodegenerative diseases such as Alzheimer's, Parkinson's, and Huntington's diseases affect millions of Americans every year. One factor linked to the formation of aggregates associated with these diseases is damage sustained to proteins by oxidative stress. Management of protein misfolding by the ubiquitous Hsp70 chaperone family can be modulated by modification of two key cysteines in the ATPase domain by oxidizing or thiol-modifying compounds. To investigate the biological consequences of cysteine modification on the Hsp70 Ssa1 in budding yeast, we generated cysteine null (cysteine to serine) and oxidomimetic (cysteine to aspartic acid) mutant variants of both C264 and C303 and demonstrate reduced ATP binding, hydrolysis, and protein folding properties in both the oxidomimetic and hydrogen peroxide-treated Ssa1. In contrast, cysteine nullification rendered Ssa1 insensitive to oxidative inhibition. Additionally, we determined the oxidomimetic ssa1-2CD (C264D, C303D) allele was unable to function as the sole Ssa1 isoform in yeast cells and also exhibited dominant negative effects on cell growth and viability. Ssa1 binds to and represses Hsf1, the major transcription factor controlling the heat shock response, and we found the oxidomimetic Ssa1 failed to stably interact with Hsf1, resulting in constitutive activation of the heat shock response. Consistent with our in vitro findings, ssa1-2CD cells were compromised for de novo folding, post-stress protein refolding, and in regulated degradation of a model terminally misfolded protein. Together, these findings pinpoint Hsp70 as a key link between oxidative stress and proteostasis, information critical to understanding cytoprotective systems that prevent and manage cellular insults underlying complex disease states.
Insights
Oxidative stress damages proteins, contributing to neurodegenerative diseases. Modifying key cysteines in Hsp70 chaperones impairs protein folding and cellular proteostasis, highlighting Hsp70
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Neurodegenerative diseases like Alzheimer's and Parkinson's are linked to protein aggregate formation.
- Oxidative stress can damage proteins, leading to misfolding and aggregation.
- The Hsp70 chaperone family plays a crucial role in managing protein misfolding.
Purpose of the Study:
- To investigate the impact of oxidative stress-induced cysteine modification on the Hsp70 Ssa1 chaperone in yeast.
- To understand how these modifications affect Ssa1's function in protein folding and cellular proteostasis.
Main Methods:
- Generated cysteine null (Cys-to-Ser) and oxidomimetic (Cys-to-Asp) mutants of Ssa1 at C264 and C303.
- Assessed ATP binding, hydrolysis, and protein folding activities of Ssa1 variants.
- Evaluated the effect of mutations on Ssa1's interaction with Hsf1 and the heat shock response.
- Assessed cellular proteostasis by examining de novo folding, refolding, and protein degradation.
Main Results:
- Oxidomimetic Ssa1 and hydrogen peroxide-treated Ssa1 showed reduced ATP binding, hydrolysis, and protein folding.
- Cysteine nullification of Ssa1 conferred resistance to oxidative inhibition.
- The oxidomimetic ssa1-2CD mutant exhibited dominant negative effects on cell growth and viability.
- Oxidomimetic Ssa1 failed to interact with Hsf1, leading to constitutive heat shock response activation.
- ssa1-2CD cells displayed defects in protein folding and degradation.
Conclusions:
- Hsp70 Ssa1 function is sensitive to oxidative modification of specific cysteines.
- Oxidative stress-induced Hsp70 dysfunction impairs cellular proteostasis.
- Hsp70 acts as a critical link between oxidative stress and proteostasis, relevant to neurodegenerative disease pathogenesis.
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