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Updated: Feb 22, 2026

Quantifying Tissue-Specific Proteostatic Decline in Caenorhabditis elegans
Published on: September 7, 2021
Proteome Stability as a Key Factor of Genome Integrity
Sentiljana Gumeni1, Zoi Evangelakou2, Vassilis G Gorgoulis3
1Department of Cell Biology and Biophysics, Faculty of Biology, National & Kapodistrian University of Athens, Panepistimiopolis, 15784 Athens, Greece. sentiljana.gumeni@gmail.com.
Abstract:
DNA damage is constantly produced by both endogenous and exogenous factors; DNA lesions then trigger the so-called DNA damaged response (DDR). This is a highly synchronized pathway that involves recognition, signaling and repair of the damage. Failure to eliminate DNA lesions is associated with genome instability, a driving force in tumorigenesis. Proteins carry out the vast majority of cellular functions and thus proteome quality control (PQC) is critical for the maintenance of cellular functionality. PQC is assured by the proteostasis network (PN), which under conditions of proteome instability address the triage decision of protein fold, hold, or degrade. Key components of the PN are the protein synthesis modules, the molecular chaperones and the two main degradation machineries, namely the autophagy-lysosome and the ubiquitin-proteasome pathways; also, part of the PN are a number of stress-responsive cellular sensors including (among others) heat shock factor 1 (Hsf1) and the nuclear factor erythroid 2-related factor 2 (Nrf2). Nevertheless, the lifestyle- and/or ageing-associated gradual accumulation of stressors results in increasingly damaged and unstable proteome due to accumulation of misfolded proteins and/or protein aggregates. This outcome may then increase genomic instability due to reduced fidelity in processes like DNA replication or repair leading to various age-related diseases including cancer. Herein, we review the role of proteostatic machineries in nuclear genome integrity and stability, as well as on DDR responses.
Insights
Proteome quality control maintains genome stability by managing DNA damage responses. The proteostasis network ensures protein health, preventing instability that can lead to cancer and age-related diseases.
Area of Science:
- Cellular Biology
- Molecular Biology
- Genetics
Background:
- DNA damage from internal and external sources triggers the DNA damage response (DDR).
- Proteome quality control (PQC) via the proteostasis network (PN) is vital for cellular function and stability.
- Accumulated protein damage and aggregates, especially with aging, can compromise genome integrity.
Purpose of the Study:
- To review the critical role of proteostatic machineries in maintaining nuclear genome integrity.
- To explore the involvement of the proteostasis network in DNA damage response pathways.
- To connect proteome instability to genomic instability and age-related diseases.
Main Methods:
- Literature review of proteostasis network components and their functions.
- Analysis of the interplay between protein quality control and DNA repair mechanisms.
- Examination of cellular sensors like Hsf1 and Nrf2 in maintaining genome stability.
Main Results:
- The proteostasis network, encompassing protein synthesis, chaperones, and degradation pathways, is essential for managing DNA lesions.
- Failure in proteostasis leads to misfolded proteins and aggregates, increasing genomic instability.
- Dysfunctional proteostasis is linked to reduced fidelity in DNA replication and repair, contributing to tumorigenesis.
Conclusions:
- Proteostatic machineries are indispensable for nuclear genome integrity and stability.
- The proteostasis network actively participates in and influences DNA damage response pathways.
- Maintaining proteome stability is crucial for preventing age-related diseases and cancer.
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