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Engineering Flocculation for Improved Tolerance and Production of d-Lactic Acid in Pichia pastoris

d-lactic acid, a chiral organic acid, can enhance the thermal stability of polylactic acid plastics. Microorganisms such as the yeast Pichia pastoris, which lack the natural ability to produce or accumulate high amounts of d-lactic acid, have been metabolically engineered to produce it in high titer...

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Autores principales: Sae-Tang, Kittapong, Bumrungtham, Pornsiri, Mhuantong, Wuttichai, Champreda, Verawat, Tanapongpipat, Sutipa, Zhao, Xin-Qing, Liu, Chen-Guang, Runguphan, Weerawat
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10143824/
https://www.ncbi.nlm.nih.gov/pubmed/37108864
http://dx.doi.org/10.3390/jof9040409
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author Sae-Tang, Kittapong
Bumrungtham, Pornsiri
Mhuantong, Wuttichai
Champreda, Verawat
Tanapongpipat, Sutipa
Zhao, Xin-Qing
Liu, Chen-Guang
Runguphan, Weerawat
author_facet Sae-Tang, Kittapong
Bumrungtham, Pornsiri
Mhuantong, Wuttichai
Champreda, Verawat
Tanapongpipat, Sutipa
Zhao, Xin-Qing
Liu, Chen-Guang
Runguphan, Weerawat
author_sort Sae-Tang, Kittapong
collection PubMed
description d-lactic acid, a chiral organic acid, can enhance the thermal stability of polylactic acid plastics. Microorganisms such as the yeast Pichia pastoris, which lack the natural ability to produce or accumulate high amounts of d-lactic acid, have been metabolically engineered to produce it in high titers. However, tolerance to d-lactic acid remains a challenge. In this study, we demonstrate that cell flocculation improves tolerance to d-lactic acid and increases d-lactic acid production in Pichia pastoris. By incorporating a flocculation gene from Saccharomyces cerevisiae (ScFLO1) into P. pastoris KM71, we created a strain (KM71-ScFlo1) that demonstrated up to a 1.6-fold improvement in specific growth rate at high d-lactic acid concentrations. Furthermore, integrating a d-lactate dehydrogenase gene from Leuconostoc pseudomesenteroides (LpDLDH) into KM71-ScFlo1 resulted in an engineered strain (KM71-ScFlo1-LpDLDH) that could produce d-lactic acid at a titer of 5.12 ± 0.35 g/L in 48 h, a 2.6-fold improvement over the control strain lacking ScFLO1 expression. Transcriptomics analysis of this strain provided insights into the mechanism of increased tolerance to d-lactic acid, including the upregulations of genes involved in lactate transport and iron metabolism. Overall, our work represents an advancement in the efficient microbial production of d-lactic acid by manipulating yeast flocculation.
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spelling pubmed-101438242023-04-29 Engineering Flocculation for Improved Tolerance and Production of d-Lactic Acid in Pichia pastoris Sae-Tang, Kittapong Bumrungtham, Pornsiri Mhuantong, Wuttichai Champreda, Verawat Tanapongpipat, Sutipa Zhao, Xin-Qing Liu, Chen-Guang Runguphan, Weerawat J Fungi (Basel) Article d-lactic acid, a chiral organic acid, can enhance the thermal stability of polylactic acid plastics. Microorganisms such as the yeast Pichia pastoris, which lack the natural ability to produce or accumulate high amounts of d-lactic acid, have been metabolically engineered to produce it in high titers. However, tolerance to d-lactic acid remains a challenge. In this study, we demonstrate that cell flocculation improves tolerance to d-lactic acid and increases d-lactic acid production in Pichia pastoris. By incorporating a flocculation gene from Saccharomyces cerevisiae (ScFLO1) into P. pastoris KM71, we created a strain (KM71-ScFlo1) that demonstrated up to a 1.6-fold improvement in specific growth rate at high d-lactic acid concentrations. Furthermore, integrating a d-lactate dehydrogenase gene from Leuconostoc pseudomesenteroides (LpDLDH) into KM71-ScFlo1 resulted in an engineered strain (KM71-ScFlo1-LpDLDH) that could produce d-lactic acid at a titer of 5.12 ± 0.35 g/L in 48 h, a 2.6-fold improvement over the control strain lacking ScFLO1 expression. Transcriptomics analysis of this strain provided insights into the mechanism of increased tolerance to d-lactic acid, including the upregulations of genes involved in lactate transport and iron metabolism. Overall, our work represents an advancement in the efficient microbial production of d-lactic acid by manipulating yeast flocculation. MDPI 2023-03-27 /pmc/articles/PMC10143824/ /pubmed/37108864 http://dx.doi.org/10.3390/jof9040409 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Sae-Tang, Kittapong
Bumrungtham, Pornsiri
Mhuantong, Wuttichai
Champreda, Verawat
Tanapongpipat, Sutipa
Zhao, Xin-Qing
Liu, Chen-Guang
Runguphan, Weerawat
Engineering Flocculation for Improved Tolerance and Production of d-Lactic Acid in Pichia pastoris
title Engineering Flocculation for Improved Tolerance and Production of d-Lactic Acid in Pichia pastoris
title_full Engineering Flocculation for Improved Tolerance and Production of d-Lactic Acid in Pichia pastoris
title_fullStr Engineering Flocculation for Improved Tolerance and Production of d-Lactic Acid in Pichia pastoris
title_full_unstemmed Engineering Flocculation for Improved Tolerance and Production of d-Lactic Acid in Pichia pastoris
title_short Engineering Flocculation for Improved Tolerance and Production of d-Lactic Acid in Pichia pastoris
title_sort engineering flocculation for improved tolerance and production of d-lactic acid in pichia pastoris
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10143824/
https://www.ncbi.nlm.nih.gov/pubmed/37108864
http://dx.doi.org/10.3390/jof9040409
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