Cargando…

Crystal structure of inhibitor-bound human MSPL that can activate high pathogenic avian influenza

Infection of certain influenza viruses is triggered when its HA is cleaved by host cell proteases such as proprotein convertases and type II transmembrane serine proteases (TTSP). HA with a monobasic motif is cleaved by trypsin-like proteases, including TMPRSS2 and HAT, whereas the multibasic motif...

Descripción completa

Detalles Bibliográficos
Autores principales: Ohno, Ayako, Maita, Nobuo, Tabata, Takanori, Nagano, Hikaru, Arita, Kyohei, Ariyoshi, Mariko, Uchida, Takayuki, Nakao, Reiko, Ulla, Anayt, Sugiura, Kosuke, Kishimoto, Koji, Teshima-Kondo, Shigetada, Okumura, Yuushi, Nikawa, Takeshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Life Science Alliance LLC 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8046417/
https://www.ncbi.nlm.nih.gov/pubmed/33820827
http://dx.doi.org/10.26508/lsa.202000849
_version_ 1783678845281370112
author Ohno, Ayako
Maita, Nobuo
Tabata, Takanori
Nagano, Hikaru
Arita, Kyohei
Ariyoshi, Mariko
Uchida, Takayuki
Nakao, Reiko
Ulla, Anayt
Sugiura, Kosuke
Kishimoto, Koji
Teshima-Kondo, Shigetada
Okumura, Yuushi
Nikawa, Takeshi
author_facet Ohno, Ayako
Maita, Nobuo
Tabata, Takanori
Nagano, Hikaru
Arita, Kyohei
Ariyoshi, Mariko
Uchida, Takayuki
Nakao, Reiko
Ulla, Anayt
Sugiura, Kosuke
Kishimoto, Koji
Teshima-Kondo, Shigetada
Okumura, Yuushi
Nikawa, Takeshi
author_sort Ohno, Ayako
collection PubMed
description Infection of certain influenza viruses is triggered when its HA is cleaved by host cell proteases such as proprotein convertases and type II transmembrane serine proteases (TTSP). HA with a monobasic motif is cleaved by trypsin-like proteases, including TMPRSS2 and HAT, whereas the multibasic motif found in high pathogenicity avian influenza HA is cleaved by furin, PC5/6, or MSPL. MSPL belongs to the TMPRSS family and preferentially cleaves [R/K]-K-K-R↓ sequences. Here, we solved the crystal structure of the extracellular region of human MSPL in complex with an irreversible substrate-analog inhibitor. The structure revealed three domains clustered around the C-terminal α-helix of the SPD. The inhibitor structure and its putative model show that the P1-Arg inserts into the S1 pocket, whereas the P2-Lys and P4-Arg interacts with the Asp/Glu-rich 99-loop that is unique to MSPL. Based on the structure of MSPL, we also constructed a homology model of TMPRSS2, which is essential for the activation of the SARS-CoV-2 spike protein and infection. The model may provide the structural insight for the drug development for COVID-19.
format Online
Article
Text
id pubmed-8046417
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Life Science Alliance LLC
record_format MEDLINE/PubMed
spelling pubmed-80464172021-04-29 Crystal structure of inhibitor-bound human MSPL that can activate high pathogenic avian influenza Ohno, Ayako Maita, Nobuo Tabata, Takanori Nagano, Hikaru Arita, Kyohei Ariyoshi, Mariko Uchida, Takayuki Nakao, Reiko Ulla, Anayt Sugiura, Kosuke Kishimoto, Koji Teshima-Kondo, Shigetada Okumura, Yuushi Nikawa, Takeshi Life Sci Alliance Research Articles Infection of certain influenza viruses is triggered when its HA is cleaved by host cell proteases such as proprotein convertases and type II transmembrane serine proteases (TTSP). HA with a monobasic motif is cleaved by trypsin-like proteases, including TMPRSS2 and HAT, whereas the multibasic motif found in high pathogenicity avian influenza HA is cleaved by furin, PC5/6, or MSPL. MSPL belongs to the TMPRSS family and preferentially cleaves [R/K]-K-K-R↓ sequences. Here, we solved the crystal structure of the extracellular region of human MSPL in complex with an irreversible substrate-analog inhibitor. The structure revealed three domains clustered around the C-terminal α-helix of the SPD. The inhibitor structure and its putative model show that the P1-Arg inserts into the S1 pocket, whereas the P2-Lys and P4-Arg interacts with the Asp/Glu-rich 99-loop that is unique to MSPL. Based on the structure of MSPL, we also constructed a homology model of TMPRSS2, which is essential for the activation of the SARS-CoV-2 spike protein and infection. The model may provide the structural insight for the drug development for COVID-19. Life Science Alliance LLC 2021-04-05 /pmc/articles/PMC8046417/ /pubmed/33820827 http://dx.doi.org/10.26508/lsa.202000849 Text en © 2021 Ohno et al. https://creativecommons.org/licenses/by/4.0/This article is available under a Creative Commons License (Attribution 4.0 International, as described at https://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Articles
Ohno, Ayako
Maita, Nobuo
Tabata, Takanori
Nagano, Hikaru
Arita, Kyohei
Ariyoshi, Mariko
Uchida, Takayuki
Nakao, Reiko
Ulla, Anayt
Sugiura, Kosuke
Kishimoto, Koji
Teshima-Kondo, Shigetada
Okumura, Yuushi
Nikawa, Takeshi
Crystal structure of inhibitor-bound human MSPL that can activate high pathogenic avian influenza
title Crystal structure of inhibitor-bound human MSPL that can activate high pathogenic avian influenza
title_full Crystal structure of inhibitor-bound human MSPL that can activate high pathogenic avian influenza
title_fullStr Crystal structure of inhibitor-bound human MSPL that can activate high pathogenic avian influenza
title_full_unstemmed Crystal structure of inhibitor-bound human MSPL that can activate high pathogenic avian influenza
title_short Crystal structure of inhibitor-bound human MSPL that can activate high pathogenic avian influenza
title_sort crystal structure of inhibitor-bound human mspl that can activate high pathogenic avian influenza
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8046417/
https://www.ncbi.nlm.nih.gov/pubmed/33820827
http://dx.doi.org/10.26508/lsa.202000849
work_keys_str_mv AT ohnoayako crystalstructureofinhibitorboundhumanmsplthatcanactivatehighpathogenicavianinfluenza
AT maitanobuo crystalstructureofinhibitorboundhumanmsplthatcanactivatehighpathogenicavianinfluenza
AT tabatatakanori crystalstructureofinhibitorboundhumanmsplthatcanactivatehighpathogenicavianinfluenza
AT naganohikaru crystalstructureofinhibitorboundhumanmsplthatcanactivatehighpathogenicavianinfluenza
AT aritakyohei crystalstructureofinhibitorboundhumanmsplthatcanactivatehighpathogenicavianinfluenza
AT ariyoshimariko crystalstructureofinhibitorboundhumanmsplthatcanactivatehighpathogenicavianinfluenza
AT uchidatakayuki crystalstructureofinhibitorboundhumanmsplthatcanactivatehighpathogenicavianinfluenza
AT nakaoreiko crystalstructureofinhibitorboundhumanmsplthatcanactivatehighpathogenicavianinfluenza
AT ullaanayt crystalstructureofinhibitorboundhumanmsplthatcanactivatehighpathogenicavianinfluenza
AT sugiurakosuke crystalstructureofinhibitorboundhumanmsplthatcanactivatehighpathogenicavianinfluenza
AT kishimotokoji crystalstructureofinhibitorboundhumanmsplthatcanactivatehighpathogenicavianinfluenza
AT teshimakondoshigetada crystalstructureofinhibitorboundhumanmsplthatcanactivatehighpathogenicavianinfluenza
AT okumurayuushi crystalstructureofinhibitorboundhumanmsplthatcanactivatehighpathogenicavianinfluenza
AT nikawatakeshi crystalstructureofinhibitorboundhumanmsplthatcanactivatehighpathogenicavianinfluenza