Sequence Analysis and Preliminary X-ray Crystallographic Analysis of an Acetylesterase (LgEstI) from Lactococcus garvieae
Cited 1 time in
Cited 1 time in
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Title
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Sequence Analysis and Preliminary X-ray Crystallographic Analysis of an Acetylesterase (LgEstI) from Lactococcus garvieae
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Other Titles
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해양어류 병원성 미생물 (Lactococcus garvieae)유래 아세틸에스터레이즈 효소의 서열 및 결정화 연구
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Authors
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Do, Hackwon
Wang, Ying
Lee, Chang Woo
Yoo, Wanki
Jeon, Sangeun
Hwang, Jisub
Lee, Min Ju
Kim, Kyeong Kyu
Kim, Han-Woo
Lee, Jun Hyuck
Kim, T. Doohun
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Subject
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Crystallography; Materials Science
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Keywords
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esterase; Lactococcus garvieae; X-ray crystallography
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Issue Date
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2022-01
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Citation
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Do, Hackwon, et al. 2022. "Sequence Analysis and Preliminary X-ray Crystallographic Analysis of an Acetylesterase (LgEstI) from Lactococcus garvieae". CRYSTALS, 12(1): 1-8.
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Abstract
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A gene encoding LgEstI was cloned from a bacterial fish pathogen, Lactococcus garvieae. Sequence and bioinformatic analysis revealed that LgEstI is close to the acetyl esterase family and had maximum similarity to a hydrolase (UniProt: Q5UQ83) from Acanthamoeba polyphaga mimivirus (APMV). Here, we present the results of LgEstI overexpression and purification, and its preliminary X-ray crystallographic analysis. The wild-type LgEstI protein was overexpressed in Escherichia coli, and its enzymatic activity was tested using p-nitrophenyl of varying lengths. LgEstI protein exhib-ited higher esterase activity toward p-nitrophenyl acetate. To better understand the mechanism un-derlying LgEstI activity and subject it to protein engineering, we determined the high-resolution crystal structure of LgEstI. First, the wild-type LgEstI protein was crystallized in 0.1 M Tris-HCl buffer (pH 7.1), 0.2 M calcium acetate hydrate, and 19% (w/v) PEG 3000, and the native X-ray dif-fraction dataset was collected up to 2.0 A resolution. The crystal structure was successfully deter-mined using a molecular replacement method, and structure refinement and model building are underway. The upcoming complete structural information of LgEstI may elucidate the substrate-binding mechanism and provide novel strategies for subjecting LgEstI to protein engineering.
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URI
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https://repository.kopri.re.kr/handle/201206/13714
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DOI
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http://dx.doi.org/10.3390/cryst12010046
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Type
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Article
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Station
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해당사항없음
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Indexed
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SCIE
- Appears in Collections
- 2022-2022, Development of potential antibiotic compounds using polar organism resources (22-22) / Lee, Jun Hyuck (PM22030)
2021-2021, Development of microbial enzymes degrading recalcitrant materials from the Arctic Circle (21-21) / Kim, Han-Woo (PN21014)
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