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Automation and machine learning drive rapid optimization of isoprenol production in Pseudomonas putida

Abstract Advances in genome engineering have improved our ability to perturb microbial metabolic networks, yet bioproduction campaigns often struggle with parsing complex metabolic datasets to efficiently enhance product titers. We address this challenge by coupling laboratory automation with machin...

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Bibliografiska uppgifter
Huvudupphov: David N. Carruthers, Patrick C. Kinnunen, Yuerong Li, Yan Chen, Jennifer W. Gin, Ian S. Yunus, William R. Galliard, Stephen Tan, Tijana Radivojevic, Paul D. Adams, Anup K. Singh, Jess Sustarich, Christopher J. Petzold, Aindrila Mukhopadhyay, Hector Garcia Martin, Taek Soon Lee
Materialtyp: Artigo
Språk:Inglês
Utgiven: Nature Portfolio 2025-12-01
Serie:Nature Communications
Länkar:https://doi.org/10.1038/s41467-025-66304-8
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