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Targeting the molecular chaperone CCT2 inhibits GBM progression by influencing KRAS stability
Feihu Zhao1, Zhong Yao2, Yaquan Li1
1Department of Neurosurgery, Qilu Hospital, Cheeloo College of Medicine and Institute of Brain and Brain-Inspired Science, Shandong University, Jinan, 250012, PR China; Jinan Microecological Biomedicine Shandong Laboratory and Shandong Key Laboratory of Brain Function Remodeling, Jinan, 250017, PR China.
Abstract:
Proper protein folding relies on the assistance of molecular chaperones post-translation. Dysfunctions in chaperones can cause diseases associated with protein misfolding, including cancer. While previous studies have identified CCT2 as a chaperone subunit and an autophagy receptor, its specific involvement in glioblastoma remains unknown. Here, we identified CCT2 promote glioblastoma progression. Using approaches of coimmunoprecipitation, mass spectrometry and surface plasmon resonance, we found CCT2 directly bound to KRAS leading to increased stability and upregulated downstream signaling of KRAS. Interestingly, we found that dihydroartemisinin, a derivative of artemisinin, exhibited therapeutic effects in a glioblastoma animal model. We further demonstrated direct binding between dihydroartemisinin and CCT2. Treatment with dihydroartemisinin resulted in decreased KRAS expression and downstream signaling. Highlighting the significance of CCT2, CCT2 overexpression rescued the inhibitory effect of dihydroartemisinin on glioblastoma. In conclusion, the study demonstrates that CCT2 promotes glioblastoma progression by directly binding to and enhancing the stability of the KRAS protein. Additionally, dihydroartemisinin inhibits glioblastoma by targeting the CCT2 and the following KRAS signaling. Our findings overcome the challenge posed by the undruggable nature of KRAS and offer potential therapeutic strategies for glioblastoma treatment.
Insights
This study reveals that CCT2 protein promotes glioblastoma by stabilizing KRAS. Dihydroartemisinin effectively treats glioblastoma by targeting CCT2 and KRAS signaling pathways.
Area of Science:
- Molecular biology
- Oncology
- Neuroscience
Background:
- Protein misfolding and chaperone dysfunction are linked to diseases like cancer.
- CCT2 is a known chaperone subunit and autophagy receptor, but its role in glioblastoma is unclear.
Purpose of the Study:
- To investigate the role of CCT2 in glioblastoma progression.
- To identify therapeutic strategies targeting CCT2 and KRAS signaling in glioblastoma.
Main Methods:
- Coimmunoprecipitation, mass spectrometry, and surface plasmon resonance were used to analyze CCT2-KRAS interactions.
- Glioblastoma animal models were employed to assess therapeutic effects of dihydroartemisinin.
- CCT2 overexpression was used to validate its role in drug resistance.
Main Results:
- CCT2 directly binds to KRAS, enhancing its stability and downstream signaling, thereby promoting glioblastoma.
- Dihydroartemisinin directly binds to CCT2 and inhibits glioblastoma progression by reducing KRAS signaling.
- CCT2 overexpression counteracted the inhibitory effects of dihydroartemisinin, confirming CCT2's critical role.
Conclusions:
- CCT2 promotes glioblastoma by stabilizing KRAS, presenting a therapeutic target.
- Dihydroartemisinin offers a potential treatment for glioblastoma by targeting the CCT2-KRAS axis, overcoming KRAS 'undruggability'.
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