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Chaperone-mediated autophagy prevents cellular transformation by regulating MYC proteasomal degradation
Luciana R Gomes1,2, Carlos F M Menck2, Ana Maria Cuervo1
1a Department of Developmental and Molecular Biology and Institute for Aging Studies , Albert Einstein College of Medicine , Bronx , NY , USA.
Abstract:
Chaperone-mediated autophagy (CMA), a selective form of protein lysosomal degradation, is maximally activated in stress situations to ensure maintenance of cellular homeostasis. CMA activity decreases with age and in several human chronic disorders, but in contrast, in most cancer cells, CMA is upregulated and required for tumor growth. However, the role of CMA in malignant transformation remains unknown. In this study, we demonstrate that CMA inhibition in fibroblasts augments the efficiency of MYC/c-Myc-driven cellular transformation. CMA blockage contributes to the increase of total and nuclear MYC, leading to enhancement of cell proliferation and colony formation. Impaired CMA functionality accentuates tumorigenesis-related metabolic changes observed upon MYC-transformation. Although not a direct CMA substrate, we have found that CMA regulates cellular MYC levels by controlling its proteasomal degradation. CMA promotes MYC ubiquitination and degradation by regulating the degradation of C330027C09Rik/KIAA1524/CIP2A (referred to hereafter as CIP2A), responsible for MYC stabilization. Ubiquitination and proteasomal degradation of MYC requires dephosphorylation at Ser62, and CIP2A inhibits the phosphatase responsible for this dephosphorylation. Failure to degrade CIP2A upon CMA blockage leads to increased levels of phosphorylated MYC (Ser62) and to stabilization of this oncogene. We demonstrate that this phosphorylation is essential for the CMA-mediated effect, since specific mutation of this site (Ser62 to Ala62) is enough to normalize MYC levels in CMA-incompetent cells. Altogether these data demonstrate that CMA mitigates MYC oncogenic activity by promoting its proteasomal degradation and reveal a novel tumor suppressive role for CMA in nontumorigenic cells.
Insights
Chaperone-mediated autophagy (CMA) normally suppresses cancer by degrading the MYC oncogene. Inhibiting CMA boosts MYC, promoting cell proliferation and transformation, revealing CMA's tumor-suppressive role in non-cancerous cells.
Area of Science:
- Cellular Biology
- Molecular Oncology
- Autophagy Research
Background:
- Chaperone-mediated autophagy (CMA) is crucial for cellular homeostasis, degrading proteins via lysosomes.
- While CMA declines with age and disease, it's often upregulated in cancers.
- The specific role of CMA in malignant transformation is not well understood.
Purpose of the Study:
- To investigate the role of CMA in MYC/c-Myc-driven cellular transformation.
- To elucidate the mechanisms by which CMA influences MYC stability and oncogenic activity.
Main Methods:
- Fibroblast transformation assays with CMA inhibition.
- Analysis of MYC protein levels, phosphorylation, and ubiquitination.
- Investigation of the role of CIP2A in the CMA-MYC regulatory axis.
- Site-directed mutagenesis of MYC phosphorylation sites.
Main Results:
- CMA inhibition enhanced MYC-driven fibroblast transformation, increasing proliferation and colony formation.
- CMA regulates MYC stability by controlling the proteasomal degradation of CIP2A, a MYC stabilizer.
- CMA blockage led to increased phosphorylated MYC (Ser62) due to impaired CIP2A degradation.
- Mutating MYC Ser62 to Ala62 normalized MYC levels in CMA-incompetent cells.
Conclusions:
- CMA mitigates MYC oncogenic activity by promoting its proteasomal degradation.
- CMA acts as a tumor suppressor in non-tumorigenic cells by limiting MYC's oncogenic potential.
- This study reveals a novel mechanism linking CMA, MYC regulation, and tumor suppression.