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The optimization system for preparation of TG1 competent cells and electrotransformation

An efficient electrotransformation system that includes electrocompetent cells is a critical component for the success of large‐scale gene transduction and replication. The conditions of TG1 competent cell preparation and optimal electrotransformation were evaluated by investigating different parame...

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Autores principales: Chai, Dafei, Wang, Gang, Fang, Lin, Li, Huizhong, Liu, Shanshan, Zhu, Haiying, Zheng, Junnian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7349126/
https://www.ncbi.nlm.nih.gov/pubmed/32394632
http://dx.doi.org/10.1002/mbo3.1043
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author Chai, Dafei
Wang, Gang
Fang, Lin
Li, Huizhong
Liu, Shanshan
Zhu, Haiying
Zheng, Junnian
author_facet Chai, Dafei
Wang, Gang
Fang, Lin
Li, Huizhong
Liu, Shanshan
Zhu, Haiying
Zheng, Junnian
author_sort Chai, Dafei
collection PubMed
description An efficient electrotransformation system that includes electrocompetent cells is a critical component for the success of large‐scale gene transduction and replication. The conditions of TG1 competent cell preparation and optimal electrotransformation were evaluated by investigating different parameters. Certain parameters for preparation of TG1 competent cells (≥8 × 10(10) colony forming units (cfu)/μg DNA) include optimum culture time of monoclonal bacteria (8–10 hr), amplification growth concentration (approximately OD(600) = 0.45), and culture volume (400 ml in 2 L conical flask). With increased storage of competent cells at −80°C, electrotransformation efficiency gradually decreased, but it remains greater than ≥ 10(10) cfu/μg DNA 3 months later. Moreover, the recovery time of electrotransformation also influenced electrotransformation efficiency (1.5–2 hr for optimization). The optimized transformation efficiency of TG1 (≥8 × 10(10) cfu/μg DNA) was observed under suitable electric voltage (2.5 kV), electric intensity (15 kV/cm), and electric time (3.5 ms) of electricity for plasmid transformation. Optimized DNA amount (0.01–100 ng) dissolved in water led to the high efficiency of plasmid transformation (≥8 × 10(10) cfu/μg DNA), but had low efficiency when dissolved in T4 ligation buffer (≤3 × 10(10) cfu/μg DNA). These results indicated that an optimized TG1 transformation system is useful for high electrotransformation efficiency under general laboratory conditions. The optimized TG1 transformation system might facilitate large‐scale gene transduction for phage display library construction.
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spelling pubmed-73491262020-07-14 The optimization system for preparation of TG1 competent cells and electrotransformation Chai, Dafei Wang, Gang Fang, Lin Li, Huizhong Liu, Shanshan Zhu, Haiying Zheng, Junnian Microbiologyopen Original Articles An efficient electrotransformation system that includes electrocompetent cells is a critical component for the success of large‐scale gene transduction and replication. The conditions of TG1 competent cell preparation and optimal electrotransformation were evaluated by investigating different parameters. Certain parameters for preparation of TG1 competent cells (≥8 × 10(10) colony forming units (cfu)/μg DNA) include optimum culture time of monoclonal bacteria (8–10 hr), amplification growth concentration (approximately OD(600) = 0.45), and culture volume (400 ml in 2 L conical flask). With increased storage of competent cells at −80°C, electrotransformation efficiency gradually decreased, but it remains greater than ≥ 10(10) cfu/μg DNA 3 months later. Moreover, the recovery time of electrotransformation also influenced electrotransformation efficiency (1.5–2 hr for optimization). The optimized transformation efficiency of TG1 (≥8 × 10(10) cfu/μg DNA) was observed under suitable electric voltage (2.5 kV), electric intensity (15 kV/cm), and electric time (3.5 ms) of electricity for plasmid transformation. Optimized DNA amount (0.01–100 ng) dissolved in water led to the high efficiency of plasmid transformation (≥8 × 10(10) cfu/μg DNA), but had low efficiency when dissolved in T4 ligation buffer (≤3 × 10(10) cfu/μg DNA). These results indicated that an optimized TG1 transformation system is useful for high electrotransformation efficiency under general laboratory conditions. The optimized TG1 transformation system might facilitate large‐scale gene transduction for phage display library construction. John Wiley and Sons Inc. 2020-05-11 /pmc/articles/PMC7349126/ /pubmed/32394632 http://dx.doi.org/10.1002/mbo3.1043 Text en © 2020 The Authors. MicrobiologyOpen published by John Wiley & Sons Ltd. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Chai, Dafei
Wang, Gang
Fang, Lin
Li, Huizhong
Liu, Shanshan
Zhu, Haiying
Zheng, Junnian
The optimization system for preparation of TG1 competent cells and electrotransformation
title The optimization system for preparation of TG1 competent cells and electrotransformation
title_full The optimization system for preparation of TG1 competent cells and electrotransformation
title_fullStr The optimization system for preparation of TG1 competent cells and electrotransformation
title_full_unstemmed The optimization system for preparation of TG1 competent cells and electrotransformation
title_short The optimization system for preparation of TG1 competent cells and electrotransformation
title_sort optimization system for preparation of tg1 competent cells and electrotransformation
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7349126/
https://www.ncbi.nlm.nih.gov/pubmed/32394632
http://dx.doi.org/10.1002/mbo3.1043
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