Genome-scale reconstructions of the mammalian secretory pathway predict metabolic costs and limitations of protein secretion
Artikel i vetenskaplig tidskrift, 2020

In mammalian cells, >25% of synthesized proteins are exported through the secretory pathway. The pathway complexity, however, obfuscates its impact on the secretion of different proteins. Unraveling its impact on diverse proteins is particularly important for biopharmaceutical production. Here we delineate the core secretory pathway functions and integrate them with genome-scale metabolic reconstructions of human, mouse, and Chinese hamster ovary cells. The resulting reconstructions enable the computation of energetic costs and machinery demands of each secreted protein. By integrating additional omics data, we find that highly secretory cells have adapted to reduce expression and secretion of other expensive host cell proteins. Furthermore, we predict metabolic costs and maximum productivities of biotherapeutic proteins and identify protein features that most significantly impact protein secretion. Finally, the model successfully predicts the increase in secretion of a monoclonal antibody after silencing a highly expressed selection marker. This work represents a knowledgebase of the mammalian secretory pathway that serves as a novel tool for systems biotechnology.

Författare

Jahir M. Gutierrez

University of California

Amir Feizi

Chalmers, Biologi och bioteknik, Systembiologi

Shangzhong Li

University of California

Thomas B. Kallehauge

Danmarks Tekniske Universitet (DTU)

Hooman Hefzi

University of California

Lise M. Grav

Danmarks Tekniske Universitet (DTU)

Daniel Ley

Danmarks Tekniske Universitet (DTU)

Deniz Baycin Hizal

Turgut Illaclari A.S

Michael J. Betenbaugh

Johns Hopkins University

Bjørn G. Voldborg

Danmarks Tekniske Universitet (DTU)

Helene Faustrup Kildegaard

Danmarks Tekniske Universitet (DTU)

Gyun Min Lee

Danmarks Tekniske Universitet (DTU)

B. O. Palsson

Danmarks Tekniske Universitet (DTU)

University of California

Jens B Nielsen

Danmarks Tekniske Universitet (DTU)

Chalmers, Biologi och bioteknik, Systembiologi

Nathan E. Lewis

University of California

Nature Communications

2041-1723 (ISSN) 20411723 (eISSN)

Vol. 11 1 68

Ämneskategorier

Biokemi och molekylärbiologi

Medicinsk bioteknologi (med inriktning mot cellbiologi (inklusive stamcellsbiologi), molekylärbiologi, mikrobiologi, biokemi eller biofarmaci)

Bioinformatik och systembiologi

DOI

10.1038/s41467-019-13867-y

PubMed

31896772

Mer information

Senast uppdaterat

2020-04-16