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Breaking the Bonds of Aging: The Underappreciated Roles of Aberrant Cysteine Crosslinks and Protective Thiol
Sheila N Duong1, Kristopher M Barnes2, James H Frederich1
1Laboratories of Molecular Recognition, Department of Chemistry and Biochemistry, Florida State University, Tallahassee, Florida, USA.
Abstract:
Aging is a complex process characterized by the accumulation of molecular damage that leads to cellular dysfunction and tissue deterioration. Among the various types of contributing molecular damage, aberrant protein crosslinks are recognized as a key contributor to age-related pathologies. Crosslinks occurring at lysine and arginine residues, such as advanced glycation end-products (AGEs) and carbamylation, have attracted considerable attention of the aging research community. In contrast, the roles of cysteine-derived crosslinks in aging pathobiology remain underappreciated. While native disulfide formation is essential for protein structure and function, the same redox features that make cysteine indispensable to protein biochemistry also render it particularly susceptible to nonspecific disulfide crosslinking. The body exploits specialized protective thiols such as glutathione to maintain redox homeostasis and counteract the deleterious effects of aberrant disulfide formation. However, these endogenous protective measures decline with aging, resulting in the accumulation of oxidative cysteine modifications. In this review, we highlight the emergent roles of cysteine-related molecular damage in age-related disease. Drawing inspiration from endogenous protective thiols, we survey progress in the development of small-molecule therapeutic thiols that show promise in mitigating damage caused by the accumulation of cysteine-derived crosslinks. Understanding the relationship between these aberrant crosslinks and protective thiol interventions in aging diseases, as well as how therapeutic thiols can be improved, is critical for the development of comprehensive treatments.
Insights
Aberrant protein crosslinks, particularly those involving cysteine, contribute to aging. Therapeutic thiols show promise in mitigating this damage and treating age-related diseases.
Area of Science:
- Biochemistry
- Gerontology
- Molecular Biology
Background:
- Aging involves accumulating molecular damage, leading to cellular dysfunction.
- Aberrant protein crosslinks, especially at lysine and arginine, are key to age-related diseases.
- Cysteine-derived crosslinks are underappreciated contributors to aging pathobiology.
Purpose of the Study:
- To highlight the roles of cysteine-related molecular damage in age-related diseases.
- To review therapeutic thiol interventions for mitigating cysteine-derived crosslinks.
- To understand the relationship between aberrant crosslinks, protective thiols, and aging.
Main Methods:
- Literature review focusing on cysteine crosslinks and aging.
- Survey of small-molecule therapeutic thiols.
- Analysis of endogenous thiol protective mechanisms.
Main Results:
- Cysteine's redox properties lead to nonspecific disulfide crosslinking.
- Aging reduces endogenous thiol protection, increasing oxidative cysteine modifications.
- Therapeutic thiols show potential in counteracting cysteine-derived damage.
Conclusions:
- Cysteine-derived crosslinks are significant contributors to aging pathology.
- Therapeutic thiols offer a promising strategy for treating aging diseases.
- Further development of therapeutic thiols is crucial for comprehensive aging interventions.
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