Transmembrane Protease, Serine-2 (TMPRSS2) and TMPRSS11D are human proteases that enable SARS-CoV-2 and Influenza A/B virus infections, but their biochemical mechanisms for facilitating viral cell entry remain unclear. We show these proteases spontaneously and efficiently cleave their own zymogen activation motifs, activating their broader protease activity on cellular substrates. We determine TMPRSS11D co-crystal structures with a native and an engineered activation motif, revealing insights into its autocleavage activation and distinct substrate binding cleft features. Leveraging this structural data, we develop nanomolar potency peptidomimetic inhibitors of TMPRSS11D and TMPRSS2. We show that a broad serine protease inhibitor that underwent clinical trials for TMPRSS2-targeted COVID-19 therapy, nafamostat mesylate, was rapidly cleaved by TMPRSS11D and converted to low activity derivatives. In this work, we develop mechanistic insights into human protease viral tropism and highlight both the strengths and limitations of existing human serine protease inhibitors, informing future drug discovery efforts targeting these proteases.
Structural basis of TMPRSS11D specificity and autocleavage activation.
TMPRSS11D 特异性和自切割激活的结构基础
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作者:Fraser Bryan J, Wilson Ryan P, Ferková Sára, Ilyassov Olzhas, Lac Jackie, Dong Aiping, Li Yen-Yen, Seitova Alma, Li Yanjun, Hejazi Zahra, Kenney Tristan M G, Penn Linda Z, Edwards Aled, Leduc Richard, Boudreault Pierre-Luc, Morin Gregg B, Bénard François, Arrowsmith Cheryl H
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2025 | 起止号: | 2025 May 10; 16(1):4351 |
| doi: | 10.1038/s41467-025-59677-3 | ||
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