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Updated: Jul 29, 2025

Quantifying Tissue-Specific Proteostatic Decline in Caenorhabditis elegans
Published on: September 7, 2021
RNA binding proteins in senescence: A potential common linker for age-related diseases?
Angelica Varesi1, Lucrezia Irene Maria Campagnoli2, Annalisa Barbieri2
1Department of Biology and Biotechnology, University of Pavia, Pavia, Italy.
Abstract:
Aging represents the major risk factor for the onset and/or progression of various disorders including neurodegenerative diseases, metabolic disorders, and bone-related defects. As the average age of the population is predicted to exponentially increase in the coming years, understanding the molecular mechanisms underlying the development of aging-related diseases and the discovery of new therapeutic approaches remain pivotal. Well-reported hallmarks of aging are cellular senescence, genome instability, autophagy impairment, mitochondria dysfunction, dysbiosis, telomere attrition, metabolic dysregulation, epigenetic alterations, low-grade chronic inflammation, stem cell exhaustion, altered cell-to-cell communication and impaired proteostasis. With few exceptions, however, many of the molecular players implicated within these processes as well as their role in disease development remain largely unknown. RNA binding proteins (RBPs) are known to regulate gene expression by dictating at post-transcriptional level the fate of nascent transcripts. Their activity ranges from directing primary mRNA maturation and trafficking to modulation of transcript stability and/or translation. Accumulating evidence has shown that RBPs are emerging as key regulators of aging and aging-related diseases, with the potential to become new diagnostic and therapeutic tools to prevent or delay aging processes. In this review, we summarize the role of RBPs in promoting cellular senescence and we highlight their dysregulation in the pathogenesis and progression of the main aging-related diseases, with the aim of encouraging further investigations that will help to better disclose this novel and captivating molecular scenario.
Insights
RNA binding proteins (RBPs) are crucial regulators of aging and related diseases. Understanding their role in cellular senescence and disease progression offers new therapeutic potential for age-related conditions.
Area of Science:
- Molecular Biology
- Aging Research
- Genetics
Background:
- Aging is a primary risk factor for numerous diseases, including neurodegenerative and metabolic disorders.
- Key hallmarks of aging include cellular senescence, genome instability, and impaired proteostasis.
- The molecular mechanisms and players in aging-related diseases are not fully understood.
Purpose of the Study:
- To review the role of RNA binding proteins (RBPs) in cellular senescence.
- To highlight RBP dysregulation in aging-related disease pathogenesis.
- To identify RBPs as potential diagnostic and therapeutic targets for aging.
Main Methods:
- Literature review of RNA binding proteins (RBPs) and aging.
- Analysis of RBP involvement in cellular senescence.
- Examination of RBP dysregulation in aging-related diseases.
Main Results:
- RNA binding proteins (RBPs) regulate gene expression post-transcriptionally.
- RBPs are implicated in key aging hallmarks like cellular senescence.
- Dysregulated RBPs contribute to the progression of major aging-related diseases.
Conclusions:
- RNA binding proteins (RBPs) are critical regulators of aging.
- RBPs represent promising targets for novel diagnostics and therapeutics to combat aging.
- Further research into RBPs is essential for understanding and treating age-related diseases.
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