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Updated: Sep 2, 2025

Identification of Kinase-substrate Pairs Using High Throughput Screening
Published on: August 29, 2015
Interactions between mTORC2 core subunits Rictor and mSin1 dictate selective and context-dependent phosphorylation of
Zanlin Yu1, Junliang Chen2, Enzo Takagi2
1Department of Biochemistry and Biophysics, University of California, San Francisco, California, USA.
Abstract:
Mechanistic target of rapamycin complex 2 (mTORC2) is a multi-subunit kinase complex, central to multiple essential signaling pathways. Two core subunits, Rictor and mSin1, distinguish it from the related mTORC1 and support context-dependent phosphorylation of its substrates. mTORC2 structures have been determined previously; however, important questions remain, particularly regarding the structural determinants mediating substrate specificity and context-dependent activity. Here, we used cryo-EM to obtain high-resolution structures of the human mTORC2 apo-complex in the presence of substrates Akt and SGK1. Using functional assays, we then tested predictions suggested by substrate-induced structural changes in mTORC2. For the first time, we visualized in the apo-state the side chain interactions between Rictor and mTOR that sterically occlude recruitment of mTORC1 substrates and confer resistance to the mTORC1 inhibitor rapamycin. Also in the apo-state, we observed that mSin1 formed extensive contacts with Rictor via a pair of short α-helices nestled between two Rictor helical repeat clusters, as well as by an extended strand that makes multiple weak contacts with Rictor helical cluster 1. In co-complex structures, we found that SGK1, but not Akt, markedly altered the conformation of the mSin1 N-terminal extended strand, disrupting multiple weak interactions while inducing a large rotation of mSin1 residue Arg-83, which then interacts with a patch of negatively charged residues within Rictor. Finally, we demonstrate mutation of Arg-83 to Ala selectively disrupts mTORC2-dependent phosphorylation of SGK1, but not of Akt, supporting context-dependent substrate selection. These findings provide new structural and functional insights into mTORC2 specificity and context-dependent activity.
Insights
Mechanistic target of rapamycin complex 2 (mTORC2) structural studies reveal how Rictor and mSin1 subunits dictate substrate specificity. These findings explain mTORC2
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- Mechanistic target of rapamycin complex 2 (mTORC2) is a crucial kinase complex regulating essential signaling pathways.
- While mTORC2's structure is partly known, its substrate specificity and context-dependent activity mechanisms require further elucidation.
- Rictor and mSin1 are core subunits distinguishing mTORC2 and mediating substrate interactions.
Purpose of the Study:
- To determine high-resolution cryo-EM structures of human mTORC2 in apo and substrate-bound states (Akt and SGK1).
- To investigate the structural basis of mTORC2 substrate specificity and context-dependent activity.
- To functionally validate structural predictions regarding substrate-mTORC2 interactions.
Main Methods:
- Cryo-electron microscopy (cryo-EM) to resolve human mTORC2 structures.
- Functional assays to assess mTORC2 activity and substrate phosphorylation.
- Site-directed mutagenesis to probe specific residue functions.
Main Results:
- Visualized apo-state mTORC2, revealing Rictor-mTOR interactions that prevent mTORC1 substrate binding and rapamycin sensitivity.
- Detailed the apo-state interactions between mSin1 and Rictor, including α-helices and an extended strand.
- Observed substrate-specific conformational changes: SGK1, not Akt, altered the mSin1 N-terminal strand, repositioning Arg-83.
- Demonstrated that mutating Arg-83 selectively impaired SGK1 phosphorylation, confirming context-dependent substrate selection.
Conclusions:
- mTORC2's apo-state structure reveals mechanisms for substrate specificity and rapamycin resistance.
- Substrate binding induces specific conformational changes in mTORC2, particularly involving mSin1.
- The Arg-83 residue in mSin1 plays a key role in selective SGK1 phosphorylation by mTORC2.
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