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ATG5 cancer mutations and alternative mRNA splicing reveal a conjugation switch that regulates ATG12-ATG5-ATG16L1
Daric J Wible1, Hsueh-Ping Chao1, Dean G Tang2,3
11Department of Epigenetics and Molecular Carcinogenesis, The University of Texas MD Anderson Cancer Center, Smithville, TX 78957 USA.
Abstract:
Autophagy is critical for maintaining cellular homeostasis during times of stress, and is thought to play important roles in both tumorigenesis and tumor cell survival. Formation of autophagosomes, which mediate delivery of cytoplasmic cargo to lysosomes, requires multiple autophagy-related (ATG) protein complexes, including the ATG12-ATG5-ATG16L1 complex. Herein, we report that a molecular ATG5 "conjugation switch", comprised of competing ATG12 and ubiquitin conjugation reactions, integrates ATG12-ATG5-ATG16L1 complex assembly with protein quality control of its otherwise highly unstable subunits. This conjugation switch is tightly regulated by ATG16L1, which binds to free ATG5 and mutually protects both proteins from ubiquitin conjugation and proteasomal degradation, thereby instead promoting the irreversible conjugation of ATG12 to ATG5. The resulting ATG12-ATG5 conjugate, in turn, displays enhanced affinity for ATG16L1 and thus fully stabilizes the ATG12-ATG5-ATG16L1 complex. Most importantly, we find in multiple tumor types that ATG5 somatic mutations and alternative mRNA splicing specifically disrupt the ATG16L1-binding pocket in ATG5 and impair the essential ATG5-ATG16L1 interactions that are initially required for ATG12-ATG5 conjugation. Finally, we provide evidence that ATG16L2, which is overexpressed in several cancers relative to ATG16L1, hijacks the conjugation switch by competing with ATG16L1 for binding to ATG5. While ATG16L2 stabilizes ATG5 and enables ATG12-ATG5 conjugation, this endogenous dominant-negative inhibitor simultaneously displaces ATG16L1, resulting in its proteasomal degradation and a block in autophagy. Thus, collectively, our findings provide novel insights into ATG12-ATG5-ATG16L1 complex assembly and reveal multiple mechanisms wherein dysregulation of the ATG5 conjugation switch inhibits autophagy.
Insights
Autophagy regulation involves an ATG5 conjugation switch. This switch controls the ATG12-ATG5-ATG16L1 complex assembly and is disrupted in cancer, inhibiting autophagy.
Area of Science:
- Cellular biology
- Molecular mechanisms of autophagy
- Cancer research
Background:
- Autophagy is crucial for cellular homeostasis and implicated in cancer.
- Autophagosome formation requires autophagy-related (ATG) protein complexes, notably ATG12-ATG5-ATG16L1.
- The stability and assembly of this complex are critical for autophagic function.
Purpose of the Study:
- To elucidate the regulatory mechanisms of the ATG12-ATG5-ATG16L1 complex assembly.
- To investigate the role of the ATG5 conjugation switch in protein quality control.
- To explore how disruptions in this switch contribute to cancer and autophagy inhibition.
Main Methods:
- Investigated the "conjugation switch" involving ATG12 and ubiquitin conjugation to ATG5.
- Analyzed the regulatory role of ATG16L1 in stabilizing ATG5 and promoting ATG12-ATG5 conjugation.
- Examined ATG5 somatic mutations and alternative mRNA splicing in tumor types.
- Studied the competitive binding of ATG16L2 with ATG16L1 to ATG5.
Main Results:
- A molecular ATG5 conjugation switch integrates complex assembly with protein quality control.
- ATG16L1 stabilizes ATG5 and promotes ATG12-ATG5 conjugation, stabilizing the ATG12-ATG5-ATG16L1 complex.
- Cancer-associated ATG5 mutations/splicing disrupt ATG16L1 binding, impairing conjugation.
- Overexpressed ATG16L2 competes with ATG16L1, leading to ATG16L1 degradation and blocked autophagy.
Conclusions:
- The ATG5 conjugation switch is a critical regulator of ATG12-ATG5-ATG16L1 complex assembly and autophagy.
- Dysregulation of this switch, through mutations, splicing, or ATG16L2 overexpression, inhibits autophagy.
- These findings offer novel insights into autophagy regulation and its link to cancer progression.
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