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Advancing the scale of synthetic biology via cross-species transfer of cellular functions enabled by iModulon engraftment. | LitMetric

AI Article Synopsis

  • * This technique allows researchers to pinpoint the essential genes needed for transferring cellular functions between different species, demonstrated through the successful transfer of various metabolic pathways and antimicrobial resistance traits from Pseudomonas to Escherichia coli.
  • * Incorporating both big data analysis and adaptive laboratory evolution provides deeper insights into systems biology and aids in the design of microbial strains for biotechnological applications.

Article Abstract

Machine learning applied to large compendia of transcriptomic data has enabled the decomposition of bacterial transcriptomes to identify independently modulated sets of genes, such iModulons represent specific cellular functions. The identification of iModulons enables accurate identification of genes necessary and sufficient for cross-species transfer of cellular functions. We demonstrate cross-species transfer of: 1) the biotransformation of vanillate to protocatechuate, 2) a malonate catabolic pathway, 3) a catabolic pathway for 2,3-butanediol, and 4) an antimicrobial resistance to ampicillin found in multiple Pseudomonas species to Escherichia coli. iModulon-based engineering is a transformative strategy as it includes all genes comprising the transferred cellular function, including genes without functional annotation. Adaptive laboratory evolution was deployed to optimize the cellular function transferred, revealing mutations in the host. Combining big data analytics and laboratory evolution thus enhances the level of understanding of systems biology, and synthetic biology for strain design and development.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10943186PMC
http://dx.doi.org/10.1038/s41467-024-46486-3DOI Listing

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