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Endosome-microautophagy targeting chimera (eMIATAC) for targeted proteins degradation and enhance CAR-T cell
Kunjian Lei1,2,3, Jingying Li4, Zewei Tu1,2,3,5
1Department of Neurosurgery, The Second Affiliated Hospital, Jiangxi Medical College, Nanchang University, Nanchang, Jiangxi 330006, P. R. China.
Abstract:
Rationale: Since oncogene expression products often exhibit upregulation or abnormally activated activity, developing a technique to regulate abnormal protein levels represent a viable approach for treating tumors and protein abnormality-related diseases. Methods: We first screened out eMIATAC components with high targeted degradation efficiency and explored the mechanism by which eMIATAC induced target protein degradation, and verified the degradation efficiency of the target protein by protein imprinting and flow cytometry. Next, we recombined eMIATAC with some controllable elements to verify the regulatable degradation performance of the target protein. Subsequently, we constructed eMIATAC that can express targeted degradation of AKT1 and verified its effect on GBM cell development in vitro and in vivo. Finally, we concatenated eMIATAC with CAR sequences to construct CAR-T cells with low BATF protein levels and verified the changes in their anti-tumor efficacy. Results: we developed a system based on the endosome-microautophagy-lysosome pathway for degrading endogenous proteins: endosome-MicroAutophagy TArgeting Chimera (eMIATAC), dependent on Vps4A instead of lysosomal-associated membrane protein 2A (LAMP2A) to bind to the chaperone Hsc70 and the protein of interest (POI). The complex was then transported to the lysosome by late endosomes, where degradation occurred similarly to microautophagy. The eMIATACs demonstrated accuracy, efficiency, reversibility, and controllability in degrading the target protein EGFP. Moreover, eMIATAC exhibited excellent performance in knocking down POI when targeting endogenous proteins in vivo and in vitro. Conclusions: The eMIATACs could not only directly knock down abnormal proteins for glioma treatment but also enhance the therapeutic effect of CAR-T cell therapy for tumors by knocking down T cell exhaustion-related proteins. The newly developed eMIATAC system holds promise as a novel tool for protein knockdown strategies. By enabling direct control over endogenous protein levels, eMIATAC has the potential to revolutionize treatment for cancer and genetic diseases.
Insights
We developed endosome-MicroAutophagy TArgeting Chimera (eMIATAC) for targeted protein degradation. This novel system effectively reduces abnormal proteins in cancer and enhances CAR-T cell therapy, offering a new strategy for disease treatment.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Biology
Background:
- Abnormal protein levels are implicated in various diseases, including cancer.
- Targeted protein degradation presents a promising therapeutic strategy.
- Existing methods for protein regulation require enhancement for efficiency and control.
Purpose of the Study:
- To develop a novel system for targeted degradation of endogenous proteins.
- To investigate the mechanism and efficiency of the developed system.
- To evaluate the therapeutic potential of the system in cancer treatment and CAR-T cell therapy.
Main Methods:
- Development of endosome-MicroAutophagy TArgeting Chimera (eMIATAC) utilizing the endosome-microautophagy-lysosome pathway.
- Screening of eMIATAC components for high degradation efficiency.
- Verification of target protein degradation using protein imprinting and flow cytometry.
- Recombination of eMIATAC with controllable elements for tunable degradation.
- Construction of eMIATAC for AKT1 degradation in glioblastoma models.
- Integration of eMIATAC with CAR sequences for enhanced CAR-T cell therapy.
Main Results:
- The eMIATAC system effectively degrades target proteins via Vps4A-dependent transport to lysosomes.
- eMIATAC demonstrated accuracy, efficiency, reversibility, and controllability in degrading EGFP and endogenous proteins.
- Targeted degradation of AKT1 by eMIATAC impacted glioblastoma cell development in vitro and in vivo.
- CAR-T cells engineered with eMIATAC showed reduced BATF levels and improved anti-tumor efficacy.
Conclusions:
- eMIATAC provides a novel and effective platform for endogenous protein knockdown.
- The system can be directly applied to treat gliomas by degrading abnormal proteins.
- eMIATAC enhances CAR-T cell therapy by reducing T cell exhaustion markers.
- This technology holds significant potential for treating various diseases, including cancer and genetic disorders.
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