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Establishing chromosomal design-build-test-learn through a synthetic chromosome and its combinatorial reconfiguration

Chromosome-level design-build-test-learn cycles (chrDBTLs) allow systematic combinatorial reconfiguration of chromosomes with ease. Here, we established chrDBTL with a redesigned synthetic Saccharomyces cerevisiae chromosome XV, synXV. We designed and built synXV to harbor strategically inserted fea...

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Autores principales: Foo, Jee Loon, Kitano, Shohei, Susanto, Adelia Vicanatalita, Jin, Zhu, Lin, Yicong, Luo, Zhouqing, Huang, Linsen, Liang, Zhenzhen, Mitchell, Leslie A., Yang, Kun, Wong, Adison, Cai, Yizhi, Cai, Jitong, Stracquadanio, Giovanni, Bader, Joel S., Boeke, Jef D., Dai, Junbiao, Chang, Matthew Wook
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10667554/
https://www.ncbi.nlm.nih.gov/pubmed/38020970
http://dx.doi.org/10.1016/j.xgen.2023.100435
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author Foo, Jee Loon
Kitano, Shohei
Susanto, Adelia Vicanatalita
Jin, Zhu
Lin, Yicong
Luo, Zhouqing
Huang, Linsen
Liang, Zhenzhen
Mitchell, Leslie A.
Yang, Kun
Wong, Adison
Cai, Yizhi
Cai, Jitong
Stracquadanio, Giovanni
Bader, Joel S.
Boeke, Jef D.
Dai, Junbiao
Chang, Matthew Wook
author_facet Foo, Jee Loon
Kitano, Shohei
Susanto, Adelia Vicanatalita
Jin, Zhu
Lin, Yicong
Luo, Zhouqing
Huang, Linsen
Liang, Zhenzhen
Mitchell, Leslie A.
Yang, Kun
Wong, Adison
Cai, Yizhi
Cai, Jitong
Stracquadanio, Giovanni
Bader, Joel S.
Boeke, Jef D.
Dai, Junbiao
Chang, Matthew Wook
author_sort Foo, Jee Loon
collection PubMed
description Chromosome-level design-build-test-learn cycles (chrDBTLs) allow systematic combinatorial reconfiguration of chromosomes with ease. Here, we established chrDBTL with a redesigned synthetic Saccharomyces cerevisiae chromosome XV, synXV. We designed and built synXV to harbor strategically inserted features, modified elements, and synonymously recoded genes throughout the chromosome. Based on the recoded chromosome, we developed a method to enable chrDBTL: CRISPR-Cas9-mediated mitotic recombination with endoreduplication (CRIMiRE). CRIMiRE allowed the creation of customized wild-type/synthetic combinations, accelerating genotype-phenotype mapping and synthetic chromosome redesign. We also leveraged synXV as a “build-to-learn” model organism for translation studies by ribosome profiling. We conducted a locus-to-locus comparison of ribosome occupancy between synXV and the wild-type chromosome, providing insight into the effects of codon changes and redesigned features on translation dynamics in vivo. Overall, we established synXV as a versatile reconfigurable system that advances chrDBTL for understanding biological mechanisms and engineering strains.
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spelling pubmed-106675542023-11-09 Establishing chromosomal design-build-test-learn through a synthetic chromosome and its combinatorial reconfiguration Foo, Jee Loon Kitano, Shohei Susanto, Adelia Vicanatalita Jin, Zhu Lin, Yicong Luo, Zhouqing Huang, Linsen Liang, Zhenzhen Mitchell, Leslie A. Yang, Kun Wong, Adison Cai, Yizhi Cai, Jitong Stracquadanio, Giovanni Bader, Joel S. Boeke, Jef D. Dai, Junbiao Chang, Matthew Wook Cell Genom Article Chromosome-level design-build-test-learn cycles (chrDBTLs) allow systematic combinatorial reconfiguration of chromosomes with ease. Here, we established chrDBTL with a redesigned synthetic Saccharomyces cerevisiae chromosome XV, synXV. We designed and built synXV to harbor strategically inserted features, modified elements, and synonymously recoded genes throughout the chromosome. Based on the recoded chromosome, we developed a method to enable chrDBTL: CRISPR-Cas9-mediated mitotic recombination with endoreduplication (CRIMiRE). CRIMiRE allowed the creation of customized wild-type/synthetic combinations, accelerating genotype-phenotype mapping and synthetic chromosome redesign. We also leveraged synXV as a “build-to-learn” model organism for translation studies by ribosome profiling. We conducted a locus-to-locus comparison of ribosome occupancy between synXV and the wild-type chromosome, providing insight into the effects of codon changes and redesigned features on translation dynamics in vivo. Overall, we established synXV as a versatile reconfigurable system that advances chrDBTL for understanding biological mechanisms and engineering strains. Elsevier 2023-11-09 /pmc/articles/PMC10667554/ /pubmed/38020970 http://dx.doi.org/10.1016/j.xgen.2023.100435 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Foo, Jee Loon
Kitano, Shohei
Susanto, Adelia Vicanatalita
Jin, Zhu
Lin, Yicong
Luo, Zhouqing
Huang, Linsen
Liang, Zhenzhen
Mitchell, Leslie A.
Yang, Kun
Wong, Adison
Cai, Yizhi
Cai, Jitong
Stracquadanio, Giovanni
Bader, Joel S.
Boeke, Jef D.
Dai, Junbiao
Chang, Matthew Wook
Establishing chromosomal design-build-test-learn through a synthetic chromosome and its combinatorial reconfiguration
title Establishing chromosomal design-build-test-learn through a synthetic chromosome and its combinatorial reconfiguration
title_full Establishing chromosomal design-build-test-learn through a synthetic chromosome and its combinatorial reconfiguration
title_fullStr Establishing chromosomal design-build-test-learn through a synthetic chromosome and its combinatorial reconfiguration
title_full_unstemmed Establishing chromosomal design-build-test-learn through a synthetic chromosome and its combinatorial reconfiguration
title_short Establishing chromosomal design-build-test-learn through a synthetic chromosome and its combinatorial reconfiguration
title_sort establishing chromosomal design-build-test-learn through a synthetic chromosome and its combinatorial reconfiguration
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10667554/
https://www.ncbi.nlm.nih.gov/pubmed/38020970
http://dx.doi.org/10.1016/j.xgen.2023.100435
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