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Whole-Genome Synthesis and Characterization of Viable S13-Like Bacteriophages

BACKGROUND: Unprecedented progresses in high-throughput DNA sequencing and de novo gene synthesis technologies have allowed us to create living organisms in the absence of natural template. METHODOLOGY/PRINCIPAL FINDINGS: The sequence of wild-type S13 phage genome was downloaded from GenBank. Two sy...

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Autores principales: Liu, Yuchen, Han, Yonghua, Huang, Weiren, Duan, Yonggang, Mou, Lisha, Jiang, Zhimao, Fa, Pingping, Xie, Jun, Diao, Ruiying, Chen, Yuanbin, Ye, Yiwang, Yang, Ruilin, Chen, Jing, Sun, Xiaojuan, Li, Zesong, Tang, Aifa, Gui, Yaoting, Cai, Zhiming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3399791/
https://www.ncbi.nlm.nih.gov/pubmed/22815936
http://dx.doi.org/10.1371/journal.pone.0041124
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author Liu, Yuchen
Han, Yonghua
Huang, Weiren
Duan, Yonggang
Mou, Lisha
Jiang, Zhimao
Fa, Pingping
Xie, Jun
Diao, Ruiying
Chen, Yuanbin
Ye, Yiwang
Yang, Ruilin
Chen, Jing
Sun, Xiaojuan
Li, Zesong
Tang, Aifa
Gui, Yaoting
Cai, Zhiming
author_facet Liu, Yuchen
Han, Yonghua
Huang, Weiren
Duan, Yonggang
Mou, Lisha
Jiang, Zhimao
Fa, Pingping
Xie, Jun
Diao, Ruiying
Chen, Yuanbin
Ye, Yiwang
Yang, Ruilin
Chen, Jing
Sun, Xiaojuan
Li, Zesong
Tang, Aifa
Gui, Yaoting
Cai, Zhiming
author_sort Liu, Yuchen
collection PubMed
description BACKGROUND: Unprecedented progresses in high-throughput DNA sequencing and de novo gene synthesis technologies have allowed us to create living organisms in the absence of natural template. METHODOLOGY/PRINCIPAL FINDINGS: The sequence of wild-type S13 phage genome was downloaded from GenBank. Two synonymous mutations were introduced into wt-S13 genome to generate m1-S13 genome. Another mutant, m2-S13 genome, was obtained by engineering two nonsynonymous mutations in the capsid protein coding region of wt-S13 genome. A chimeric phage genome was designed by replacing the F capsid protein open reading frame (ORF) from phage S13 with the F capsid protein ORF from phage G4. The whole genomes of all four phages were assembled from a series of chemically synthesized short overlapping oligonucleotides. The linear synthesized genomes were circularized and electroporated into E.coli C, the standard laboratory host of S13 phage. All four phages were recovered and plaques were visualized. The results of sequencing showed the accuracy of these synthetic genomes. The synthetic phages were capable of lysing their bacterial host and tolerating general environmental conditions. While no phenotypic differences among the variant strains were observed when grown in LB medium with CaCl(2), the S13/G4 chimera was found to be much more sensitive to the absence of calcium and to have a lower adsorption rate under calcium free condition. CONCLUSIONS/SIGNIFICANCE: The bacteriophage S13 and its variants can be chemically synthesized. The major capsid gene of phage G4 is functional in the phage S13 life cycle. These results support an evolutional hypothesis which has been proposed that a homologous recombination event involving gene F of quite divergent ancestral lineages should be included in the history of the microvirid family.
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spelling pubmed-33997912012-07-19 Whole-Genome Synthesis and Characterization of Viable S13-Like Bacteriophages Liu, Yuchen Han, Yonghua Huang, Weiren Duan, Yonggang Mou, Lisha Jiang, Zhimao Fa, Pingping Xie, Jun Diao, Ruiying Chen, Yuanbin Ye, Yiwang Yang, Ruilin Chen, Jing Sun, Xiaojuan Li, Zesong Tang, Aifa Gui, Yaoting Cai, Zhiming PLoS One Research Article BACKGROUND: Unprecedented progresses in high-throughput DNA sequencing and de novo gene synthesis technologies have allowed us to create living organisms in the absence of natural template. METHODOLOGY/PRINCIPAL FINDINGS: The sequence of wild-type S13 phage genome was downloaded from GenBank. Two synonymous mutations were introduced into wt-S13 genome to generate m1-S13 genome. Another mutant, m2-S13 genome, was obtained by engineering two nonsynonymous mutations in the capsid protein coding region of wt-S13 genome. A chimeric phage genome was designed by replacing the F capsid protein open reading frame (ORF) from phage S13 with the F capsid protein ORF from phage G4. The whole genomes of all four phages were assembled from a series of chemically synthesized short overlapping oligonucleotides. The linear synthesized genomes were circularized and electroporated into E.coli C, the standard laboratory host of S13 phage. All four phages were recovered and plaques were visualized. The results of sequencing showed the accuracy of these synthetic genomes. The synthetic phages were capable of lysing their bacterial host and tolerating general environmental conditions. While no phenotypic differences among the variant strains were observed when grown in LB medium with CaCl(2), the S13/G4 chimera was found to be much more sensitive to the absence of calcium and to have a lower adsorption rate under calcium free condition. CONCLUSIONS/SIGNIFICANCE: The bacteriophage S13 and its variants can be chemically synthesized. The major capsid gene of phage G4 is functional in the phage S13 life cycle. These results support an evolutional hypothesis which has been proposed that a homologous recombination event involving gene F of quite divergent ancestral lineages should be included in the history of the microvirid family. Public Library of Science 2012-07-18 /pmc/articles/PMC3399791/ /pubmed/22815936 http://dx.doi.org/10.1371/journal.pone.0041124 Text en Liu et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Liu, Yuchen
Han, Yonghua
Huang, Weiren
Duan, Yonggang
Mou, Lisha
Jiang, Zhimao
Fa, Pingping
Xie, Jun
Diao, Ruiying
Chen, Yuanbin
Ye, Yiwang
Yang, Ruilin
Chen, Jing
Sun, Xiaojuan
Li, Zesong
Tang, Aifa
Gui, Yaoting
Cai, Zhiming
Whole-Genome Synthesis and Characterization of Viable S13-Like Bacteriophages
title Whole-Genome Synthesis and Characterization of Viable S13-Like Bacteriophages
title_full Whole-Genome Synthesis and Characterization of Viable S13-Like Bacteriophages
title_fullStr Whole-Genome Synthesis and Characterization of Viable S13-Like Bacteriophages
title_full_unstemmed Whole-Genome Synthesis and Characterization of Viable S13-Like Bacteriophages
title_short Whole-Genome Synthesis and Characterization of Viable S13-Like Bacteriophages
title_sort whole-genome synthesis and characterization of viable s13-like bacteriophages
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3399791/
https://www.ncbi.nlm.nih.gov/pubmed/22815936
http://dx.doi.org/10.1371/journal.pone.0041124
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