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Published on: September 6, 2024
Design of negative-regulating proteins of Rheb/mTORC1 with much-reduced sizes of the tuberous sclerosis protein
1State Key Laboratory of Microbial Metabolism, School of Life Sciences & Biotechnology, the Joint International Research Laboratory of Metabolic & Developmental Sciences MOE, Shanghai Jiao Tong University, Shanghai, China.
Abstract:
The mTORC1 signaling pathway regulates cell growth and metabolism in a variety of organisms from yeast to human, and inhibition of the mTORC1 pathway has the prospect to treat cancer or achieve longevity. The tuberous sclerosis protein complex (TSCC) is a master negative regulator of the mTORC1 signaling pathway through hydrolyzing the GTP loaded on the small GTPase Rheb, which is a key activator of mTOR. However, the large size (~700 kDa) and complex structural organization of TSCC render it vulnerable to degradation and inactivation, thus limiting its potential application. In this work, based on thorough analysis and understanding of the structural mechanism of how the stabilization domain of TSC2 secures the association of TSC2-GAP with Rheb and thus enhances its GAP activity, we designed two proteins, namely SSG-MTM (short stabilization domain and GAP domain-membrane targeting motif) and SSG-TSC1N, which were able to function like TSCC to negatively regulate Rheb and mTORC1, but with much-reduced sizes (~1/15 and ~ 1/9 of the size of TSCC, respectively). Biochemical and cell biological assays demonstrated that these designed proteins indeed could promote the GTPase activity of Rheb to hydrolyze GTP, inhibit the kinase activity of mTORC1, and prevent mTORC1 from down-regulating catabolism and autophagy.
Insights
Researchers designed smaller proteins that mimic the tuberous sclerosis protein complex (TSCC) to inhibit the mTORC1 pathway, offering potential cancer and longevity treatments by regulating cell growth and metabolism.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Biology
Background:
- The mTORC1 pathway controls cell growth and metabolism, impacting diseases like cancer and aging.
- The tuberous sclerosis protein complex (TSCC) inhibits mTORC1 by activating Rheb GTPase, but its large size limits therapeutic use.
Purpose of the Study:
- To engineer smaller, functional analogs of TSCC for mTORC1 inhibition.
- To overcome the limitations of TSCC's size and stability for potential therapeutic applications.
Main Methods:
- Structural analysis of TSC2-Rheb interaction to understand GAP activity enhancement.
- Protein design and engineering of SSG-MTM and SSG-TSC1N constructs.
- Biochemical and cell-based assays to evaluate Rheb GTPase and mTORC1 kinase activity.
Main Results:
- Designed proteins SSG-MTM and SSG-TSC1N mimic TSCC's negative regulation of mTORC1.
- These smaller proteins enhance Rheb GTPase activity and inhibit mTORC1 kinase activity.
- The engineered proteins prevent mTORC1-mediated suppression of catabolism and autophagy.
Conclusions:
- Engineered proteins offer a stable and smaller alternative to TSCC for mTORC1 pathway modulation.
- These findings present novel therapeutic strategies targeting mTORC1 for cancer and longevity.
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