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Optimization of chemico-physical transformation methods for various bacterial species using diverse chemical compounds and nanomaterials

Authors
Ren, JunNa, DokyunYoo, Seung Min
Issue Date
Dec-2018
Publisher
ELSEVIER SCIENCE BV
Keywords
Chemico-physical transformation; Chemical compounds; Nanomaterials; Bacteria
Citation
JOURNAL OF BIOTECHNOLOGY, v.288, pp 55 - 60
Pages
6
Journal Title
JOURNAL OF BIOTECHNOLOGY
Volume
288
Start Page
55
End Page
60
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/490
DOI
10.1016/j.jbiotec.2018.11.003
ISSN
0168-1656
1873-4863
Abstract
Bacterial transformation is a fundamental technology to deliver engineered plasmids into bacterial cells, which is essential in industrial protein production, chemical production, etc. Previously, we developed a simple chemico-physical transformation method that can be applied to various bacterial species. Here, to accelerate the advance of bacteria biotechnology we optimize our method by combinatorially evaluating chemical compounds (rubidium chloride, lithium acetate, cesium chloride, dimethyl sulfoxide, and magnesium chloride) for increasing membrane permeability and nanomaterials (sepiolite, gold(III) chloride, multiwalled carbon nanotube, and chitosan) for piercing the membranes. The best transformation efficiencies were achieved as follows; 2.84 x 10(4) CFU/mu g DNA in Lactococcus lactis subsp. lactics (0.1M CsCl and gold(III) chloride), 3.60x10(4) CFU/mu g DNA in Enterococcus faecalis (1 M Li-acetate and MWCNT), 2.41 x 10(4) CFU/mu g DNA in Bacillus sp. (0.01 M RbCl and sepiolite), 3.49 x 10(4) CFU/mu g DNA (0.1M RbCl and gold(III) chloride) in Ralstonia eutropha (also known as Cupriavidus necator) and 8.78 x 10(4) CFU/mu g DNA (1 M RbCl and chitosan) in Methylomonas sp. DH-1. The efficiencies are up to 100-fold higher than those without optimization. Accordingly, our fast and simple chemico-physical transformation with chemical-nanomaterial optimization allows for the efficient DNA entry into various bacterial cells with high efficiency.
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