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Cycloheximide Chase Analysis of Protein Degradation in Saccharomyces cerevisiae
Published on: April 18, 2016
Selective protein degradation through chaperone‑mediated autophagy: Implications for cellular homeostasis and disease
1Collaborative Innovation Center for Chinese Medicine and Respiratory Diseases Co‑Constructed by Henan Province and Education Ministry of People's Republic of China, Henan University of Chinese Medicine, Zhengzhou, Henan 450046, P.R. China.
Abstract:
Cells rely on autophagy for the degradation and recycling of damaged proteins and organelles. Chaperone-mediated autophagy (CMA) is a selective process targeting proteins for degradation through the coordinated function of molecular chaperones and the lysosome‑associated membrane protein‑2A receptor (LAMP2A), pivotal in various cellular processes from signal transduction to the modulation of cellular responses under stress. In the present review, the intricate regulatory mechanisms of CMA were elucidated through multiple signaling pathways such as retinoic acid receptor (RAR)α, AMP‑activated protein kinase (AMPK), p38‑TEEB‑NLRP3, calcium signaling‑NFAT and PI3K/AKT, thereby expanding the current understanding of CMA regulation. A comprehensive exploration of CMA's versatile roles in cellular physiology were further provided, including its involvement in maintaining protein homeostasis, regulating ferroptosis, modulating metabolic diversity and influencing cell cycle and proliferation. Additionally, the impact of CMA on disease progression and therapeutic outcomes were highlighted, encompassing neurodegenerative disorders, cancer and various organ‑specific diseases. Therapeutic strategies targeting CMA, such as drug development and gene therapy were also proposed, providing valuable directions for future clinical research. By integrating recent research findings, the present review aimed to enhance the current understanding of cellular homeostasis processes and emphasize the potential of targeting CMA in therapeutic strategies for diseases marked by CMA dysfunction.
Insights
Chaperone-mediated autophagy (CMA) regulates cellular processes and protein degradation. This review details CMA
Area of Science:
- Cellular Biology
- Molecular Mechanisms
- Autophagy Research
Background:
- Autophagy is crucial for cellular waste removal and homeostasis.
- Chaperone-mediated autophagy (CMA) selectively degrades proteins via LAMP2A and chaperones.
- CMA impacts diverse cellular functions, including stress response and signal transduction.
Purpose of the Study:
- To elucidate the regulatory mechanisms of CMA.
- To explore the diverse physiological roles of CMA.
- To highlight CMA's role in disease and therapeutic potential.
Main Methods:
- Review of signaling pathways regulating CMA (RARα, AMPK, p38-TEEB-NLRP3, Ca2+-NFAT, PI3K/AKT).
- Analysis of CMA's involvement in protein homeostasis, ferroptosis, metabolism, and cell cycle.
- Examination of CMA's impact on neurodegenerative diseases, cancer, and organ-specific pathologies.
Main Results:
- Detailed elucidation of CMA regulation by multiple signaling pathways.
- Comprehensive overview of CMA's roles in cellular physiology and homeostasis.
- Identification of CMA's involvement in various disease states and its therapeutic implications.
Conclusions:
- CMA is a highly regulated process with broad physiological significance.
- Dysfunctional CMA is implicated in numerous diseases, presenting therapeutic targets.
- Targeting CMA offers promising strategies for treating CMA-related disorders.
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