Literature DB >> 22976563

Droplet electroporation in microfluidics for efficient cell transformation with or without cell wall removal.

Baiyan Qu1, Young-Jae Eu, Won-Joong Jeong, Dong-Pyo Kim.   

Abstract

An efficient cell transformation method is presented that utilizes droplet electroporation on a microfluidic chip. Two types of green microalgae, a wall-less mutant and a wild type of Chlamydomonas reinhardtii, are used as model cells. The PDMS-glass electroporation chip is simply composed of a flow-focusing microstructure for generating cell-encapsulating droplets and a serpentine channel for better mixing of the content in the droplet, and five pairs of parallel microelectrodes on the glass slide, without involving any expensive electrical equipment. The transformation efficiency via the microfluidic electroporation is shown to be more than three orders of magnitude higher for the wall-less mutant, and more than two orders of magnitude higher for the wild type, which has its cell wall intact, than bulk phase electroporation under identical conditions. Furthermore, the microfluidic transformation is remarkably efficient even at a low DNA/cell ratio, facilitating ways of controlling the transgenic copy number, which is important for the stability of the transgene expression.

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Year:  2012        PMID: 22976563     DOI: 10.1039/c2lc40360a

Source DB:  PubMed          Journal:  Lab Chip        ISSN: 1473-0189            Impact factor:   6.799


  11 in total

1.  USNCTAM perspectives on mechanics in medicine.

Authors:  Gang Bao; Yuri Bazilevs; Jae-Hyun Chung; Paolo Decuzzi; Horacio D Espinosa; Mauro Ferrari; Huajian Gao; Shaolie S Hossain; Thomas J R Hughes; Roger D Kamm; Wing Kam Liu; Alison Marsden; Bernhard Schrefler
Journal:  J R Soc Interface       Date:  2014-08-06       Impact factor: 4.118

Review 2.  Microfluidic electroporation for cellular analysis and delivery.

Authors:  Tao Geng; Chang Lu
Journal:  Lab Chip       Date:  2013-10-07       Impact factor: 6.799

Review 3.  Review of Microfluidic Methods for Cellular Lysis.

Authors:  Emil Grigorov; Boris Kirov; Marin B Marinov; Vassil Galabov
Journal:  Micromachines (Basel)       Date:  2021-04-28       Impact factor: 2.891

4.  Enhancement of microalgae growth using magnetic artificial cilia.

Authors:  Thijn Verburg; Allison Schaap; Shuaizhong Zhang; Jaap den Toonder; Ye Wang
Journal:  Biotechnol Bioeng       Date:  2021-04-08       Impact factor: 4.530

5.  Microfluidic high-throughput selection of microalgal strains with superior photosynthetic productivity using competitive phototaxis.

Authors:  Jaoon Young Hwan Kim; Ho Seok Kwak; Young Joon Sung; Hong Il Choi; Min Eui Hong; Hyun Seok Lim; Jae-Hyeok Lee; Sang Yup Lee; Sang Jun Sim
Journal:  Sci Rep       Date:  2016-02-08       Impact factor: 4.379

6.  Biocompatibility of fluids for multiphase drops-in-drops microfluidics.

Authors:  Aishah Prastowo; Alexander Feuerborn; Peter R Cook; Edmond J Walsh
Journal:  Biomed Microdevices       Date:  2016-12       Impact factor: 2.838

Review 7.  Review of Microfluidic Photobioreactor Technology for Metabolic Engineering and Synthetic Biology of Cyanobacteria and Microalgae.

Authors:  Ya-Tang Yang; Chun Ying Wang
Journal:  Micromachines (Basel)       Date:  2016-10-11       Impact factor: 2.891

Review 8.  Microfluidic technology for plankton research.

Authors:  Mathias Girault; Thomas Beneyton; Yolanda Del Amo; Jean-Christophe Baret
Journal:  Curr Opin Biotechnol       Date:  2018-10-13       Impact factor: 9.740

Review 9.  Microfluidic and Nanofluidic Intracellular Delivery.

Authors:  Jeongsoo Hur; Aram J Chung
Journal:  Adv Sci (Weinh)       Date:  2021-06-06       Impact factor: 16.806

10.  Electrofusion of single cells in picoliter droplets.

Authors:  Rogier M Schoeman; Wesley T E van den Beld; Evelien W M Kemna; Floor Wolbers; Jan C T Eijkel; Albert van den Berg
Journal:  Sci Rep       Date:  2018-02-27       Impact factor: 4.379

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