Discovery of D‐peptides that allosterically enhance SARS ‐ CoV ‐2 3CLpro activity by stabilizing its monomeric state

Abstract The SARS‐CoV‐2 main protease (3CLpro) is an essential enzyme for viral replication and a major target for antiviral drug development. While its catalytic activity is known to require dimer formation, the mechanism by which it cleaves itself from the monomeric viral polyprotein remains to be further studied. In this study, we engineered several D‐peptides based on a de novo designed D‐peptide inhibitor. These peptides bind to the 3CLpro monomer and unexpectedly activate its catalytic function. By enhancing the turnover number, the peptides significantly boost the catalytic efficiency of 3CLpro. Among them, LY11 stands out with high binding affinity ( K D = 117 nM) and strong potency of enzymatic activation (EC 200 < 1 μM). Through biophysical and computational approaches, we show that LY11 binds in 1:1 stoichiometry, stabilizing the monomeric state while allosterically remodeling the inter‐domain linker of 3CLpro to expand the substrate binding pocket and switch on the protease. These findings suggest new insights into the maturation and catalytic mechanism of 3CLpro. The LY11‐regulated 3CL protease may serve as a versatile molecular tool for synthetic biology applications.

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Publication Details

Journal
Protein Science
Published
2026-09-15
DOI
https://doi.org/10.1002/pro.70788
Primary Topic
Chemical Synthesis and Analysis
Type
article
Field-Weighted Citation Impact
0.00

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article

Discovery of D‐peptides that allosterically enhance SARS ‐ CoV ‐2 3CLpro activity by stabilizing its monomeric state

Weijie Bian, Luhua Lai, Laiyi Feng, Changsheng Zhang et al.
Protein Science
Chemical Synthesis and Analysis
article

Discovery of D‐peptides that allosterically enhance SARS ‐ CoV ‐2 3CLpro activity by stabilizing its monomeric state

Weijie Bian, Luhua Lai, Laiyi Feng, Changsheng Zhang, Xinliao Ling
article en

Abstract

Abstract The SARS‐CoV‐2 main protease (3CLpro) is an essential enzyme for viral replication and a major target for antiviral drug development. While its catalytic activity is known to require dimer formation, the mechanism by which it cleaves itself from the monomeric viral polyprotein remains to be further studied. In this study, we engineered several D‐peptides based on a de novo designed D‐peptide inhibitor. These peptides bind to the 3CLpro monomer and unexpectedly activate its catalytic function. By enhancing the turnover number, the peptides significantly boost the catalytic efficiency of 3CLpro. Among them, LY11 stands out with high binding affinity ( K D = 117 nM) and strong potency of enzymatic activation (EC 200 < 1 μM). Through biophysical and computational approaches, we show that LY11 binds in 1:1 stoichiometry, stabilizing the monomeric state while allosterically remodeling the inter‐domain linker of 3CLpro to expand the substrate binding pocket and switch on the protease. These findings suggest new insights into the maturation and catalytic mechanism of 3CLpro. The LY11‐regulated 3CL protease may serve as a versatile molecular tool for synthetic biology applications.

Protein ScienceVol. 35(10)
Peking University (CN), Beijing National Laboratory for Molecular Sciences (CN), Chengdu University (CN), Center for Life Sciences (CN)
National Natural Science Foundation of China, Chinese Academy of Medical Sciences, Peking University, National Key Research and Development Program of China
Openalex Percentile: Top 18%
Chemical Synthesis and Analysis
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Discovery of D‐peptides that allosterically enhance SARS ‐ CoV ‐2 3CLpro activity by stabilizing its monomeric state — Weijie Bian, Luhua Lai, et al. · Protein Science (2026) | TGRS Research Map | TGRS