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Gene Engineering Experiment Analysis Utilizing Synthesized Strains Instead Of Living Sars-Cov-2 Strains

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DOI: 10.23977/medcm.2021.030216 | Downloads: 5 | Views: 807

Author(s)

Haotian Deng 1

Affiliation(s)

1 Northwest Catholic High School, West Hartford, 070896, USA

Corresponding Author

Haotian Deng

ABSTRACT

With genome conformation capture (Gene engineering), we have shown that the linear organization of the genome is a true 3D structure that turns neighboring genes into plasmids, which is undoubtedly the most powerful tool in the toolbox of molecular biology that can be used for future microbes that could be the solution to many of the problems that humanity will face in the future. The genomics method has shown that the adjacent genes become small factories that are co-regulated and co-expressed through genome conformation capture, showing that protein-protein interactions form the basis of many different protein types and their interaction with other proteins. It was only in the 1970s that researchers began to manipulate DNA by using gene engineering and developing the first technology for sequencing human genomes. The era of gene engineering and technology began in the late 1960s with the discovery of the “DNA ligase” and its use as a tool for genome engineering.

KEYWORDS

Gene engineering, Dna, Strains, Sars-cov-2 strains

CITE THIS PAPER

Haotian Deng, Gene Engineering Experiment Analysis Utilizing Synthesized Strains Instead Of Living Sars-Cov-2 Strains. MEDS Chinese Medicine (2021) 3: 79-82.DOI: http://dx.doi.org/10.23977/medcm.2021.030216

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