Structure–Function Analysis of Streptomyces griseolus CYP105A1 in the Metabolism of Nonsteroidal Anti-inflammatory Drugs
Teisuke Takita
1
,
Moeka Wada
1
,
Masaya Yamagata
1
,
Seiei Kamata
1
,
Kimihiko Mizutani
2
,
Yuya Yogo
3
,
Masahiro Hamada
3
,
KAORI YASUDA
3
,
Bunzo Mikami
4, 5
,
Toshiyuki Sakaki
3
,
Kiyoshi Yasukawa
1
Publication type: Journal Article
Publication date: 2025-01-03
scimago Q1
wos Q3
SJR: 1.175
CiteScore: 5.3
Impact factor: 3.0
ISSN: 00062960, 15204995, 1943295X
PubMed ID:
39752145
Abstract
Streptomyces griseolus CYP105A1 exhibits monooxygenase activity to a wide variety of structurally different substrates with regio- and stereospecificity, making its application range broad. Our previous studies have shown that CYP105A1 wild type and its variants metabolize 12 types of nonsteroidal anti-inflammatory drugs (NSAIDs). In particular, the R84A variant exhibited a high activity against many NSAIDs. We successfully crystallized complexes of wild-type CYP105A1 (WT) and the R84A variant with diclofenac (DIF) or flufenamic acid (FLF). In the WT, the carboxyl group of DIF formed a charged hydrogen bond with Arg84. In contrast, in R84A, the carboxyl group formed two bidentate charged hydrogen bonds with Arg73. The C4′ atom of the benzene ring of DIF, which undergoes hydroxylation by WT and R84A, was positioned approximately 4 Å from the heme iron. Binding of FLF was nearly the same in both WT and R84A. The carboxyl group of FLF formed charged hydrogen bonds with Arg73. In both WT and R84A, FLF appeared to be fixed by this charged hydrogen bonding with Arg73 during the reaction, and the C4′ atom, which undergoes hydroxylation, must face the heme iron. Thus, the dihedral angles of the two N–C bonds connecting the two benzene rings of FLF needed to rotate by 78° and −71°, respectively. The temperature factors of the F-G loop, helix F, and helix G of R84A were remarkably higher than those of WT. This suggests that these regions in R84A are much more flexible compared to those of WT, which may consequently affect substrate binding and product release.
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Takita T. et al. Structure–Function Analysis of Streptomyces griseolus CYP105A1 in the Metabolism of Nonsteroidal Anti-inflammatory Drugs // Biochemistry. 2025. Vol. 64. No. 2. pp. 468-478.
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Takita T., Wada M., Yamagata M., Kamata S., Mizutani K., Yogo Y., Hamada M., YASUDA K., Mikami B., Sakaki T., Yasukawa K. Structure–Function Analysis of Streptomyces griseolus CYP105A1 in the Metabolism of Nonsteroidal Anti-inflammatory Drugs // Biochemistry. 2025. Vol. 64. No. 2. pp. 468-478.
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TY - JOUR
DO - 10.1021/acs.biochem.4c00652
UR - https://pubs.acs.org/doi/10.1021/acs.biochem.4c00652
TI - Structure–Function Analysis of Streptomyces griseolus CYP105A1 in the Metabolism of Nonsteroidal Anti-inflammatory Drugs
T2 - Biochemistry
AU - Takita, Teisuke
AU - Wada, Moeka
AU - Yamagata, Masaya
AU - Kamata, Seiei
AU - Mizutani, Kimihiko
AU - Yogo, Yuya
AU - Hamada, Masahiro
AU - YASUDA, KAORI
AU - Mikami, Bunzo
AU - Sakaki, Toshiyuki
AU - Yasukawa, Kiyoshi
PY - 2025
DA - 2025/01/03
PB - American Chemical Society (ACS)
SP - 468-478
IS - 2
VL - 64
PMID - 39752145
SN - 0006-2960
SN - 1520-4995
SN - 1943-295X
ER -
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BibTex (up to 50 authors)
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@article{2025_Takita,
author = {Teisuke Takita and Moeka Wada and Masaya Yamagata and Seiei Kamata and Kimihiko Mizutani and Yuya Yogo and Masahiro Hamada and KAORI YASUDA and Bunzo Mikami and Toshiyuki Sakaki and Kiyoshi Yasukawa},
title = {Structure–Function Analysis of Streptomyces griseolus CYP105A1 in the Metabolism of Nonsteroidal Anti-inflammatory Drugs},
journal = {Biochemistry},
year = {2025},
volume = {64},
publisher = {American Chemical Society (ACS)},
month = {jan},
url = {https://pubs.acs.org/doi/10.1021/acs.biochem.4c00652},
number = {2},
pages = {468--478},
doi = {10.1021/acs.biochem.4c00652}
}
Cite this
MLA
Copy
Takita, Teisuke, et al. “Structure–Function Analysis of Streptomyces griseolus CYP105A1 in the Metabolism of Nonsteroidal Anti-inflammatory Drugs.” Biochemistry, vol. 64, no. 2, Jan. 2025, pp. 468-478. https://pubs.acs.org/doi/10.1021/acs.biochem.4c00652.