Cargando…

Structural and kinetic insights into flavin-containing monooxygenase and calponin-homology domains in human MICAL3

MICAL is an oxidoreductase that participates in cytoskeleton reorganization via actin disassembly in the presence of NADPH. Although three MICALs (MICAL1, MICAL2 and MICAL3) have been identified in mammals, only the structure of mouse MICAL1 has been reported. Here, the first crystal structure of hu...

Descripción completa

Detalles Bibliográficos
Autores principales: Kim, Junsoo, Lee, Haemin, Roh, Yeon Jin, Kim, Han-ul, Shin, Donghyuk, Kim, Sorah, Son, Jonghyeon, Lee, Aro, Kim, Minseo, Park, Junga, Hwang, Seong Yun, Kim, Kyunghwan, Lee, Yong Kwon, Jung, Hyun Suk, Hwang, Kwang Yeon, Lee, Byung Cheon
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6949599/
https://www.ncbi.nlm.nih.gov/pubmed/31949908
http://dx.doi.org/10.1107/S2052252519015409
_version_ 1783485929010233344
author Kim, Junsoo
Lee, Haemin
Roh, Yeon Jin
Kim, Han-ul
Shin, Donghyuk
Kim, Sorah
Son, Jonghyeon
Lee, Aro
Kim, Minseo
Park, Junga
Hwang, Seong Yun
Kim, Kyunghwan
Lee, Yong Kwon
Jung, Hyun Suk
Hwang, Kwang Yeon
Lee, Byung Cheon
author_facet Kim, Junsoo
Lee, Haemin
Roh, Yeon Jin
Kim, Han-ul
Shin, Donghyuk
Kim, Sorah
Son, Jonghyeon
Lee, Aro
Kim, Minseo
Park, Junga
Hwang, Seong Yun
Kim, Kyunghwan
Lee, Yong Kwon
Jung, Hyun Suk
Hwang, Kwang Yeon
Lee, Byung Cheon
author_sort Kim, Junsoo
collection PubMed
description MICAL is an oxidoreductase that participates in cytoskeleton reorganization via actin disassembly in the presence of NADPH. Although three MICALs (MICAL1, MICAL2 and MICAL3) have been identified in mammals, only the structure of mouse MICAL1 has been reported. Here, the first crystal structure of human MICAL3, which contains the flavin-containing monooxygenase (FMO) and calponin-homology (CH) domains, is reported. MICAL3 has an FAD/NADP-binding Rossmann-fold domain for mono­oxygenase activity like MICAL1. The FMO and CH domains of both MICAL3 and MICAL1 are highly similar in structure, but superimposition of the two structures shows a different relative position of the CH domain in the asymmetric unit. Based on kinetic analyses, the catalytic efficiency of MICAL3 dramatically increased on adding F-actin only when the CH domain was available. However, this did not occur when two residues, Glu213 and Arg530, were mutated in the FMO and CH domains, respectively. Overall, MICAL3 is structurally highly similar to MICAL1, which suggests that they may adopt the same catalytic mechanism, but the difference in the relative position of the CH domain produces a difference in F-actin substrate specificity.
format Online
Article
Text
id pubmed-6949599
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher International Union of Crystallography
record_format MEDLINE/PubMed
spelling pubmed-69495992020-01-16 Structural and kinetic insights into flavin-containing monooxygenase and calponin-homology domains in human MICAL3 Kim, Junsoo Lee, Haemin Roh, Yeon Jin Kim, Han-ul Shin, Donghyuk Kim, Sorah Son, Jonghyeon Lee, Aro Kim, Minseo Park, Junga Hwang, Seong Yun Kim, Kyunghwan Lee, Yong Kwon Jung, Hyun Suk Hwang, Kwang Yeon Lee, Byung Cheon IUCrJ Research Papers MICAL is an oxidoreductase that participates in cytoskeleton reorganization via actin disassembly in the presence of NADPH. Although three MICALs (MICAL1, MICAL2 and MICAL3) have been identified in mammals, only the structure of mouse MICAL1 has been reported. Here, the first crystal structure of human MICAL3, which contains the flavin-containing monooxygenase (FMO) and calponin-homology (CH) domains, is reported. MICAL3 has an FAD/NADP-binding Rossmann-fold domain for mono­oxygenase activity like MICAL1. The FMO and CH domains of both MICAL3 and MICAL1 are highly similar in structure, but superimposition of the two structures shows a different relative position of the CH domain in the asymmetric unit. Based on kinetic analyses, the catalytic efficiency of MICAL3 dramatically increased on adding F-actin only when the CH domain was available. However, this did not occur when two residues, Glu213 and Arg530, were mutated in the FMO and CH domains, respectively. Overall, MICAL3 is structurally highly similar to MICAL1, which suggests that they may adopt the same catalytic mechanism, but the difference in the relative position of the CH domain produces a difference in F-actin substrate specificity. International Union of Crystallography 2020-01-01 /pmc/articles/PMC6949599/ /pubmed/31949908 http://dx.doi.org/10.1107/S2052252519015409 Text en © Junsoo Kim et al. 2020 http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution (CC-BY) Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.http://creativecommons.org/licenses/by/4.0/
spellingShingle Research Papers
Kim, Junsoo
Lee, Haemin
Roh, Yeon Jin
Kim, Han-ul
Shin, Donghyuk
Kim, Sorah
Son, Jonghyeon
Lee, Aro
Kim, Minseo
Park, Junga
Hwang, Seong Yun
Kim, Kyunghwan
Lee, Yong Kwon
Jung, Hyun Suk
Hwang, Kwang Yeon
Lee, Byung Cheon
Structural and kinetic insights into flavin-containing monooxygenase and calponin-homology domains in human MICAL3
title Structural and kinetic insights into flavin-containing monooxygenase and calponin-homology domains in human MICAL3
title_full Structural and kinetic insights into flavin-containing monooxygenase and calponin-homology domains in human MICAL3
title_fullStr Structural and kinetic insights into flavin-containing monooxygenase and calponin-homology domains in human MICAL3
title_full_unstemmed Structural and kinetic insights into flavin-containing monooxygenase and calponin-homology domains in human MICAL3
title_short Structural and kinetic insights into flavin-containing monooxygenase and calponin-homology domains in human MICAL3
title_sort structural and kinetic insights into flavin-containing monooxygenase and calponin-homology domains in human mical3
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6949599/
https://www.ncbi.nlm.nih.gov/pubmed/31949908
http://dx.doi.org/10.1107/S2052252519015409
work_keys_str_mv AT kimjunsoo structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3
AT leehaemin structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3
AT rohyeonjin structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3
AT kimhanul structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3
AT shindonghyuk structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3
AT kimsorah structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3
AT sonjonghyeon structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3
AT leearo structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3
AT kimminseo structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3
AT parkjunga structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3
AT hwangseongyun structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3
AT kimkyunghwan structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3
AT leeyongkwon structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3
AT junghyunsuk structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3
AT hwangkwangyeon structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3
AT leebyungcheon structuralandkineticinsightsintoflavincontainingmonooxygenaseandcalponinhomologydomainsinhumanmical3