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Human to yeast pathway transplantation: cross-species dissection of the adenine de novo pathway regulatory node

Neta Agmon, Jasmine Temple, Zuojian Tang, Tobias Schraink, Maayan Baron, Jun Chen, Paolo Mita, James A. Martin, Benjamin P. Tu, Itai Yanai, David Fenyö, View ORCID ProfileJef D. Boeke
doi: https://doi.org/10.1101/147579
Neta Agmon
1Institute for Systems Genetics, NYU Langone Medical Center, 430 East 29th Street, ACLSW Room 562, New York 10016, USA
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  • For correspondence: neta.agmon@nyumc.org
Jasmine Temple
1Institute for Systems Genetics, NYU Langone Medical Center, 430 East 29th Street, ACLSW Room 562, New York 10016, USA
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Zuojian Tang
1Institute for Systems Genetics, NYU Langone Medical Center, 430 East 29th Street, ACLSW Room 562, New York 10016, USA
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Tobias Schraink
1Institute for Systems Genetics, NYU Langone Medical Center, 430 East 29th Street, ACLSW Room 562, New York 10016, USA
2Institute for Computational Medicine, NYU Langone Medical Center, 430 East 29th Street, ACLSW Room 510, New York 10016, USA
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Maayan Baron
2Institute for Computational Medicine, NYU Langone Medical Center, 430 East 29th Street, ACLSW Room 510, New York 10016, USA
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Jun Chen
3Department of Biochemistry, The University of Texas Southwestern Medical Center, 5323 Harry Hines Boulevard, Dallas, TX 75390-9038, USA
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Paolo Mita
1Institute for Systems Genetics, NYU Langone Medical Center, 430 East 29th Street, ACLSW Room 562, New York 10016, USA
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James A. Martin
1Institute for Systems Genetics, NYU Langone Medical Center, 430 East 29th Street, ACLSW Room 562, New York 10016, USA
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Benjamin P. Tu
3Department of Biochemistry, The University of Texas Southwestern Medical Center, 5323 Harry Hines Boulevard, Dallas, TX 75390-9038, USA
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Itai Yanai
2Institute for Computational Medicine, NYU Langone Medical Center, 430 East 29th Street, ACLSW Room 510, New York 10016, USA
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David Fenyö
1Institute for Systems Genetics, NYU Langone Medical Center, 430 East 29th Street, ACLSW Room 562, New York 10016, USA
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Jef D. Boeke
1Institute for Systems Genetics, NYU Langone Medical Center, 430 East 29th Street, ACLSW Room 562, New York 10016, USA
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  • ORCID record for Jef D. Boeke
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Abstract

Pathway transplantation from one organism to another represents a means to a more complete understanding of a biochemical or regulatory process. The purine biosynthesis pathway, a core metabolic function, was transplanted from human to yeast. We replaced the entire Saccharomyces cerevisiae adenine de novo pathway with the cognate human pathway components. A yeast strain was “humanized” for the full pathway by deleting all relevant yeast genes completely and then providing the human pathway in trans using a neochromosome expressing the human protein coding regions under the transcriptional control of their cognate yeast promoters and terminators. The “humanized” yeast strain grows in the absence of adenine, indicating complementation of the yeast pathway by the full set of human proteins. While the strain with the neochromosome is indeed prototrophic, it grows slowly in the absence of adenine. Dissection of the phenotype revealed that the human ortholog of ADE4, PPAT, shows only partial complementation. We have used several strategies to understand this phenotype, that point to PPAT/ADE4 as the central regulatory node. Pathway metabolites are responsible for regulating PPAT’s protein abundance through transcription and proteolysis as well as its enzymatic activity by allosteric regulation in these yeast cells. Extensive phylogenetic analysis of PPATs from diverse organisms hints at adaptations of the enzyme-level regulation to the metabolite levels in the organism. Finally, we isolated specific mutations in PPAT as well as in other genes involved in the purine metabolic network that alleviate incomplete complementation by PPAT and provide further insight into the complex regulation of this critical metabolic pathway.

Footnotes

  • ↵# Leading contact. E-mail: jef.boeke{at}nyumc.org (J.D.B.)

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
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Posted June 14, 2017.
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Human to yeast pathway transplantation: cross-species dissection of the adenine de novo pathway regulatory node
Neta Agmon, Jasmine Temple, Zuojian Tang, Tobias Schraink, Maayan Baron, Jun Chen, Paolo Mita, James A. Martin, Benjamin P. Tu, Itai Yanai, David Fenyö, Jef D. Boeke
bioRxiv 147579; doi: https://doi.org/10.1101/147579
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Human to yeast pathway transplantation: cross-species dissection of the adenine de novo pathway regulatory node
Neta Agmon, Jasmine Temple, Zuojian Tang, Tobias Schraink, Maayan Baron, Jun Chen, Paolo Mita, James A. Martin, Benjamin P. Tu, Itai Yanai, David Fenyö, Jef D. Boeke
bioRxiv 147579; doi: https://doi.org/10.1101/147579

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