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논문 기본 정보

자료유형
학술저널
저자정보
Yoo Yeon-Jin (Department of Biological Sciences and Bioengineering Inha University Incheon 22212 Republic of Kore) Choi Kang-Hyun (Department of Biological Sciences and Bioengineering Inha University Incheon 22212 Republic of Kore) Kim Byoung-Kyun (Division of Bioprocess Discovery ST Pharm Gyeonggi-do 15610 Republic of Korea) Choi Si-Sun (Department of Biological Sciences and Bioengineering Inha University Incheon 22212 Republic of Kore) 김응수 (인하대학교)
저널정보
한국미생물생명공학회 Journal of Microbiology and Biotechnology Journal of Microbiology and Biotechnology 제32권 제8호
발행연도
2022.8
수록면
1,041 - 1,046 (6page)
DOI
10.4014/jmb.2204.04041

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Nucleoside deoxyribosyltransferase (NDT) is an enzyme that replaces the purine or pyrimidine base of 2′-deoxyribonucleoside. This enzyme is generally used in the nucleotide salvage pathway in vivo and synthesizes many nucleoside analogs in vitro for various biotechnological purposes. Since NDT is known to exhibit relatively low reactivity toward nucleoside analogs such as 2’-fluoro-2’- deoxynucleoside, it is necessary to develop an enhanced NDT mutant enzyme suitable for nucleoside analogs. In this study, molecular evolution strategy via error-prone PCR was performed with ndt gene derived from Lactobacillus leichmannii as a template to obtain an engineered NDT with higher substrate specificity to 2FDU (2′-fluoro-2′-deoxyuridine). A mutant library of 214 ndt genes with different sequences was obtained and performed for the conversion of 2FDU to 2FDA (2′-fluoro- 2′-deoxyadenosine). The E. coli containing a mutant NDT, named NDTL59Q, showed 1.7-fold (at 40°C) and 4.4-fold (at 50°C) higher 2FDU-to-2FDA conversions compared to the NDTWT, respectively. Subsequently, both NDTWT and NDTL59Q enzymes were over-expressed and purified using a His-tag system in E. coli. Characterization and enzyme kinetics revealed that the NDTL59Q mutant enzyme containing a single point mutation of leucine to glutamine at the 59th position exhibited superior thermal stability with enhanced substrate specificity to 2FDU.

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