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Total synthesis of a functional designer eukaryotic chromosome.


ABSTRACT: Rapid advances in DNA synthesis techniques have made it possible to engineer viruses, biochemical pathways and assemble bacterial genomes. Here, we report the synthesis of a functional 272,871-base pair designer eukaryotic chromosome, synIII, which is based on the 316,617-base pair native Saccharomyces cerevisiae chromosome III. Changes to synIII include TAG/TAA stop-codon replacements, deletion of subtelomeric regions, introns, transfer RNAs, transposons, and silent mating loci as well as insertion of loxPsym sites to enable genome scrambling. SynIII is functional in S. cerevisiae. Scrambling of the chromosome in a heterozygous diploid reveals a large increase in a-mater derivatives resulting from loss of the MATα allele on synIII. The complete design and synthesis of synIII establishes S. cerevisiae as the basis for designer eukaryotic genome biology.

SUBMITTER: Annaluru N 

PROVIDER: S-EPMC4033833 | biostudies-literature | 2014 Apr

REPOSITORIES: biostudies-literature

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Total synthesis of a functional designer eukaryotic chromosome.

Annaluru Narayana N   Muller Héloïse H   Mitchell Leslie A LA   Ramalingam Sivaprakash S   Stracquadanio Giovanni G   Richardson Sarah M SM   Dymond Jessica S JS   Kuang Zheng Z   Scheifele Lisa Z LZ   Cooper Eric M EM   Cai Yizhi Y   Zeller Karen K   Agmon Neta N   Han Jeffrey S JS   Hadjithomas Michalis M   Tullman Jennifer J   Caravelli Katrina K   Cirelli Kimberly K   Guo Zheyuan Z   London Viktoriya V   Yeluru Apurva A   Murugan Sindurathy S   Kandavelou Karthikeyan K   Agier Nicolas N   Fischer Gilles G   Yang Kun K   Martin J Andrew JA   Bilgel Murat M   Bohutski Pavlo P   Boulier Kristin M KM   Capaldo Brian J BJ   Chang Joy J   Charoen Kristie K   Choi Woo Jin WJ   Deng Peter P   DiCarlo James E JE   Doong Judy J   Dunn Jessilyn J   Feinberg Jason I JI   Fernandez Christopher C   Floria Charlotte E CE   Gladowski David D   Hadidi Pasha P   Ishizuka Isabel I   Jabbari Javaneh J   Lau Calvin Y L CY   Lee Pablo A PA   Li Sean S   Lin Denise D   Linder Matthias E ME   Ling Jonathan J   Liu Jaime J   Liu Jonathan J   London Mariya M   Ma Henry H   Mao Jessica J   McDade Jessica E JE   McMillan Alexandra A   Moore Aaron M AM   Oh Won Chan WC   Ouyang Yu Y   Patel Ruchi R   Paul Marina M   Paulsen Laura C LC   Qiu Judy J   Rhee Alex A   Rubashkin Matthew G MG   Soh Ina Y IY   Sotuyo Nathaniel E NE   Srinivas Venkatesh V   Suarez Allison A   Wong Andy A   Wong Remus R   Xie Wei Rose WR   Xu Yijie Y   Yu Allen T AT   Koszul Romain R   Bader Joel S JS   Boeke Jef D JD   Chandrasegaran Srinivasan S  

Science (New York, N.Y.) 20140327 6179


Rapid advances in DNA synthesis techniques have made it possible to engineer viruses, biochemical pathways and assemble bacterial genomes. Here, we report the synthesis of a functional 272,871-base pair designer eukaryotic chromosome, synIII, which is based on the 316,617-base pair native Saccharomyces cerevisiae chromosome III. Changes to synIII include TAG/TAA stop-codon replacements, deletion of subtelomeric regions, introns, transfer RNAs, transposons, and silent mating loci as well as inser  ...[more]

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