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Human Ex vivo Wound Model and Whole-Mount Staining Approach to Accurately Evaluate Skin Repair
Published on: February 17, 2021
Beyond the genome: protecting the proteome may be the key to preventing skin aging
Brigitte Dréno1, Isabelle Benoit2, Eric Perrier2
1INSERM, CNRS, Immunology and New Concepts in ImmunoTherapy, INCIT, UMR 1302/EMR6001, Nantes Université, Nantes, France.
Abstract:
Skin aging is associated with a progressive decline in physiological functions, skin cancers and, ultimately, death. It may be categorized as intrinsic or extrinsic, whereby intrinsic aging is attributed to chronological and genetic factors. At the molecular level, skin aging involves changes in protein conformation and function. The skin proteome changes constantly, mainly through carbonylation; an irreversible phenomenon leading to protein accumulation as toxic aggregates that impair cellular physiology and accelerate skin aging. This review details the central role of proteostasis during skin aging and why proteome protection may be a promising approach in mitigating skin aging. A comprehensive literature review of 87 articles focusing on the proteome, proteostasis, proteotoxicity, protein carbonylation, and the impact of the damaged proteome on aging, and in particular skin aging, was conducted. Skin aging is associated with deficiencies in the repair mechanisms of DNA, transcriptional control, mitochondrial function, cell cycle control, apoptosis, cellular metabolism, changes in hormonal levels secondary to toxicity of damaged proteins, and cell-to-cell communication for tissue homeostasis, which are largely controlled by proteins. In this context, a damaged proteome that leads to the loss of proteostasis may be considered as the first step in tissue aging. There is growing evidence that a healthy proteome plays a central role in skin and in maintaining healthy tissues, thus slowing down the process of skin aging. Hence, protecting the proteome against oxidative or other damage may be an appropriate strategy to prevent and delay skin aging.
Insights
Protecting the skin proteome from damage, like carbonylation, is key to slowing aging. Maintaining proteostasis (protein balance) can prevent toxic protein buildup and promote healthier skin.
Area of Science:
- Molecular Biology
- Dermatology
- Gerontology
Background:
- Skin aging involves intrinsic (genetic) and extrinsic (environmental) factors.
- Molecular changes, particularly protein carbonylation, lead to toxic aggregate accumulation, impairing skin cell function.
- Loss of proteostasis, or protein balance, is a significant contributor to skin aging.
Purpose of the Study:
- To review the role of proteostasis in skin aging.
- To explore proteome protection as a strategy to mitigate skin aging.
- To highlight the impact of protein damage on skin health.
Main Methods:
- Comprehensive literature review of 87 articles.
- Focus on proteome, proteostasis, proteotoxicity, and protein carbonylation.
- Analysis of the damaged proteome's impact on skin aging.
Main Results:
- Skin aging is linked to impaired DNA repair, mitochondrial function, and cellular communication, all protein-dependent.
- A damaged proteome and subsequent loss of proteostasis are early steps in tissue aging.
- Evidence suggests a healthy proteome is central to skin health and slowing aging.
Conclusions:
- Proteome damage and loss of proteostasis are critical drivers of skin aging.
- Proteome protection strategies may effectively prevent and delay skin aging.
- Maintaining protein health is essential for youthful skin and overall tissue homeostasis.
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