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Optimizing Ethanol Production in Saccharomyces cerevisiae at Ambient and Elevated Temperatures through Machine Learning-Guided Combinatorial Promoter Modifications

[Image: see text] Bioethanol has gained popularity in recent decades as an ecofriendly alternative to fossil fuels due to increasing concerns about global climate change. However, economically viable ethanol fermentation remains a challenge. High-temperature fermentation can reduce production costs,...

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Autores principales: Khamwachirapithak, Peerapat, Sae-Tang, Kittapong, Mhuantong, Wuttichai, Tanapongpipat, Sutipa, Zhao, Xin-Qing, Liu, Chen-Guang, Wei, Dong-Qing, Champreda, Verawat, Runguphan, Weerawat
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10594650/
https://www.ncbi.nlm.nih.gov/pubmed/37681736
http://dx.doi.org/10.1021/acssynbio.3c00199
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author Khamwachirapithak, Peerapat
Sae-Tang, Kittapong
Mhuantong, Wuttichai
Tanapongpipat, Sutipa
Zhao, Xin-Qing
Liu, Chen-Guang
Wei, Dong-Qing
Champreda, Verawat
Runguphan, Weerawat
author_facet Khamwachirapithak, Peerapat
Sae-Tang, Kittapong
Mhuantong, Wuttichai
Tanapongpipat, Sutipa
Zhao, Xin-Qing
Liu, Chen-Guang
Wei, Dong-Qing
Champreda, Verawat
Runguphan, Weerawat
author_sort Khamwachirapithak, Peerapat
collection PubMed
description [Image: see text] Bioethanol has gained popularity in recent decades as an ecofriendly alternative to fossil fuels due to increasing concerns about global climate change. However, economically viable ethanol fermentation remains a challenge. High-temperature fermentation can reduce production costs, but Saccharomyces cerevisiae yeast strains normally ferment poorly under high temperatures. In this study, we present a machine learning (ML) approach to optimize bioethanol production in S. cerevisiae by fine-tuning the promoter activities of three endogenous genes. We created 216 combinatorial strains of S. cerevisiae by replacing native promoters with five promoters of varying strengths to regulate ethanol production. Promoter replacement resulted in a 63% improvement in ethanol production at 30 °C. We created an ML-guided workflow by utilizing XGBoost to train high-performance models based on promoter strengths and cellular metabolite concentrations obtained from ethanol production of 216 combinatorial strains at 30 °C. This strategy was then applied to optimize ethanol production at 40 °C, where we selected 31 strains for experimental fermentation. This reduced experimental load led to a 7.4% increase in ethanol production in the second round of the ML-guided workflow. Our study offers a comprehensive library of promoter strength modifications for key ethanol production enzymes, showcasing how machine learning can guide yeast strain optimization and make bioethanol production more cost-effective and efficient. Furthermore, we demonstrate that metabolic engineering processes can be accelerated and optimized through this approach.
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spelling pubmed-105946502023-10-25 Optimizing Ethanol Production in Saccharomyces cerevisiae at Ambient and Elevated Temperatures through Machine Learning-Guided Combinatorial Promoter Modifications Khamwachirapithak, Peerapat Sae-Tang, Kittapong Mhuantong, Wuttichai Tanapongpipat, Sutipa Zhao, Xin-Qing Liu, Chen-Guang Wei, Dong-Qing Champreda, Verawat Runguphan, Weerawat ACS Synth Biol [Image: see text] Bioethanol has gained popularity in recent decades as an ecofriendly alternative to fossil fuels due to increasing concerns about global climate change. However, economically viable ethanol fermentation remains a challenge. High-temperature fermentation can reduce production costs, but Saccharomyces cerevisiae yeast strains normally ferment poorly under high temperatures. In this study, we present a machine learning (ML) approach to optimize bioethanol production in S. cerevisiae by fine-tuning the promoter activities of three endogenous genes. We created 216 combinatorial strains of S. cerevisiae by replacing native promoters with five promoters of varying strengths to regulate ethanol production. Promoter replacement resulted in a 63% improvement in ethanol production at 30 °C. We created an ML-guided workflow by utilizing XGBoost to train high-performance models based on promoter strengths and cellular metabolite concentrations obtained from ethanol production of 216 combinatorial strains at 30 °C. This strategy was then applied to optimize ethanol production at 40 °C, where we selected 31 strains for experimental fermentation. This reduced experimental load led to a 7.4% increase in ethanol production in the second round of the ML-guided workflow. Our study offers a comprehensive library of promoter strength modifications for key ethanol production enzymes, showcasing how machine learning can guide yeast strain optimization and make bioethanol production more cost-effective and efficient. Furthermore, we demonstrate that metabolic engineering processes can be accelerated and optimized through this approach. American Chemical Society 2023-09-08 /pmc/articles/PMC10594650/ /pubmed/37681736 http://dx.doi.org/10.1021/acssynbio.3c00199 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Khamwachirapithak, Peerapat
Sae-Tang, Kittapong
Mhuantong, Wuttichai
Tanapongpipat, Sutipa
Zhao, Xin-Qing
Liu, Chen-Guang
Wei, Dong-Qing
Champreda, Verawat
Runguphan, Weerawat
Optimizing Ethanol Production in Saccharomyces cerevisiae at Ambient and Elevated Temperatures through Machine Learning-Guided Combinatorial Promoter Modifications
title Optimizing Ethanol Production in Saccharomyces cerevisiae at Ambient and Elevated Temperatures through Machine Learning-Guided Combinatorial Promoter Modifications
title_full Optimizing Ethanol Production in Saccharomyces cerevisiae at Ambient and Elevated Temperatures through Machine Learning-Guided Combinatorial Promoter Modifications
title_fullStr Optimizing Ethanol Production in Saccharomyces cerevisiae at Ambient and Elevated Temperatures through Machine Learning-Guided Combinatorial Promoter Modifications
title_full_unstemmed Optimizing Ethanol Production in Saccharomyces cerevisiae at Ambient and Elevated Temperatures through Machine Learning-Guided Combinatorial Promoter Modifications
title_short Optimizing Ethanol Production in Saccharomyces cerevisiae at Ambient and Elevated Temperatures through Machine Learning-Guided Combinatorial Promoter Modifications
title_sort optimizing ethanol production in saccharomyces cerevisiae at ambient and elevated temperatures through machine learning-guided combinatorial promoter modifications
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10594650/
https://www.ncbi.nlm.nih.gov/pubmed/37681736
http://dx.doi.org/10.1021/acssynbio.3c00199
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