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Automated Imaging and Analysis for the Quantification of Fluorescently Labeled Macropinosomes
Published on: August 24, 2021
Oncogenic RAS induces a distinctive form of non-canonical autophagy mediated by the P38-ULK1-PI4KB axis
Xiaojuan Wang1,2,3,4,5, Shulin Li1,2,3,4, Shiyin Lin6
1State Key Laboratory of Membrane Biology, Beijing, China.
Abstract:
Cancer cells with RAS mutations exhibit enhanced autophagy, essential for their proliferation and survival, making it a potential target for therapeutic intervention. However, the regulatory differences between RAS-induced autophagy and physiological autophagy remain poorly understood, complicating the development of cancer-specific anti-autophagy treatments. In this study, we identified a form of non-canonical autophagy induced by oncogenic KRAS expression, termed RAS-induced non-canonical autophagy via ATG8ylation (RINCAA). RINCAA involves distinct autophagic factors compared to those in starvation-induced autophagy and incorporates non-autophagic components, resulting in the formation of non-canonical autophagosomes with multivesicular/multilaminar structures labeled by ATG8 family proteins (e.g., LC3 and GABARAP). We have designated these structures as RAS-induced multivesicular/multilaminar bodies of ATG8ylation (RIMMBA). A notable feature of RINCAA is the substitution of the class III PI3K in canonical autophagy with PI4KB in RINCAA. We identified a regulatory P38-ULK1-PI4KB-WIPI2 signaling cascade governing this process, where ULK1 triggers PI4KB phosphorylation at S256 and T263, initiating PI4P production, ATG8ylation, and non-canonical autophagy. Importantly, elevated PI4KB phosphorylation at S256 and T263 was observed in RAS-mutated cancer cells and colorectal cancer specimens. Inhibition of PI4KB S256 and T263 phosphorylation led to a reduction in RINCAA activity and tumor growth in both xenograft and KPC models of pancreatic cancer, suggesting that targeting ULK1-mediated PI4KB phosphorylation could represent a promising therapeutic strategy for RAS-mutated cancers.
Insights
Researchers discovered a new form of autophagy, RAS-induced non-canonical autophagy via ATG8ylation (RINCAA), crucial for cancer cell survival. Targeting ULK1-mediated PI4KB phosphorylation offers a potential therapeutic strategy for RAS-mutated cancers.
Area of Science:
- Cellular Biology
- Cancer Research
- Molecular Oncology
Background:
- RAS mutations drive cancer proliferation through enhanced autophagy.
- Understanding RAS-induced autophagy is critical for developing targeted cancer therapies.
- Differences between canonical and RAS-induced autophagy remain unclear.
Purpose of the Study:
- To identify and characterize a novel form of non-canonical autophagy induced by oncogenic KRAS.
- To elucidate the regulatory mechanisms and molecular players involved in RAS-induced autophagy.
- To evaluate the therapeutic potential of targeting this pathway in RAS-mutated cancers.
Main Methods:
- Identification of RAS-induced non-canonical autophagy via ATG8ylation (RINCAA) and its associated structures (RIMMBA).
- Analysis of distinct autophagic factors and signaling cascades, including the P38-ULK1-PI4KB-WIPI2 pathway.
- Investigation of PI4KB phosphorylation at S256 and T263 as a key regulatory event.
- Inhibition of PI4KB phosphorylation in xenograft and KPC models of pancreatic cancer.
Main Results:
- RINCAA utilizes distinct autophagic factors and forms non-canonical autophagosomes (RIMMBA) with unique structures.
- The P38-ULK1-PI4KB-WIPI2 cascade governs RINCAA, with ULK1 phosphorylating PI4KB.
- Elevated PI4KB phosphorylation at S256/T263 is observed in RAS-mutated cancers.
- Inhibition of PI4KB phosphorylation reduced RINCAA activity and tumor growth in preclinical models.
Conclusions:
- RINCAA is a distinct autophagic process regulated by ULK1-mediated PI4KB phosphorylation.
- Targeting ULK1-mediated PI4KB phosphorylation presents a promising therapeutic strategy for RAS-mutated cancers.
- Further research into RINCAA and RIMMBA could uncover new avenues for cancer treatment.
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