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Cited 8 time in webofscience Cited 7 time in scopus
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Functional selectivity of insulin receptor revealed by aptamer-trapped receptor structures SCIE SCOPUS

Title
Functional selectivity of insulin receptor revealed by aptamer-trapped receptor structures
Authors
Kim, JunhongYunn, Na-OhPark, MangeunKim, JihanPark, SeongeunKim, YoojoongNoh, JeongeunRYU, SUNGHOCho, Yunje
Date Issued
2022-12
Publisher
Nature Publishing Group
Abstract
Activation of insulin receptor (IR) initiates a cascade of conformational changes and autophosphorylation events. Herein, we determined three structures of IR trapped by aptamers using cryo-electron microscopy. The A62 agonist aptamer selectively activates metabolic signaling. In the absence of insulin, the two A62 aptamer agonists of IR adopt an insulin-accessible arrowhead conformation by mimicking site-1/site-2' insulin coordination. Insulin binding at one site triggers conformational changes in one protomer, but this movement is blocked in the other protomer by A62 at the opposite site. A62 binding captures two unique conformations of IR with a similar stalk arrangement, which underlie Tyr1150 mono-phosphorylation (m-pY1150) and selective activation for metabolic signaling. The A43 aptamer, a positive allosteric modulator, binds at the opposite side of the insulin-binding module, and stabilizes the single insulin-bound IR structure that brings two FnIII-3 regions into closer proximity for full activation. Our results suggest that spatial proximity of the two FnIII-3 ends is important for m-pY1150, but multi-phosphorylation of IR requires additional conformational rearrangement of intracellular domains mediated by coordination between extracellular and transmembrane domains. DNA aptamers can activate insulin receptor as selective agonists or positive allosteric modulators. Here, authors determine structures of the insulin receptor bound to aptamers and provide a basis for the selective activation or allosteric regulation of insulin receptor.
URI
https://oasis.postech.ac.kr/handle/2014.oak/114871
DOI
10.1038/s41467-022-34292-8
ISSN
2041-1723
Article Type
Article
Citation
Nature Communications, vol. 13, no. 1, 2022-12
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조윤제CHO, YUNJE
Dept of Life Sciences
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