Role of Elm1, Tos3, and Sak1 Protein Kinases in the Maltose Metabolism of Baker’s Yeast

Glucose repression is a key regulatory system controlling the metabolism of non-glucose carbon source in yeast. Glucose represses the utilization of maltose, the most abundant fermentable sugar in lean dough and wort, thereby negatively affecting the fermentation efficiency and product quality of pa...

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Main Authors: Xu Yang, Lu Meng, Xue Lin, Huan-Yuan Jiang, Xiao-Ping Hu, Cong-Fa Li
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-06-01
Series:Frontiers in Microbiology
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fmicb.2021.665261/full
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spelling doaj-3c589624f7324b88b20b0555d92bcce02021-06-01T04:57:14ZengFrontiers Media S.A.Frontiers in Microbiology1664-302X2021-06-011210.3389/fmicb.2021.665261665261Role of Elm1, Tos3, and Sak1 Protein Kinases in the Maltose Metabolism of Baker’s YeastXu Yang0Lu Meng1Xue Lin2Xue Lin3Xue Lin4Huan-Yuan Jiang5Xiao-Ping Hu6Xiao-Ping Hu7Xiao-Ping Hu8Cong-Fa Li9Cong-Fa Li10Cong-Fa Li11College of Food Science and Engineering, Hainan University, Haikou, ChinaCollege of Food Science and Engineering, Hainan University, Haikou, ChinaCollege of Food Science and Engineering, Hainan University, Haikou, ChinaEngineering Research Center of Utilization of Tropical Polysaccharide Resources, Ministry of Education, Haikou, ChinaHainan Key Laboratory of Food Nutrition and Functional Food, Haikou, ChinaCollege of Food Science and Engineering, Hainan University, Haikou, ChinaCollege of Food Science and Engineering, Hainan University, Haikou, ChinaEngineering Research Center of Utilization of Tropical Polysaccharide Resources, Ministry of Education, Haikou, ChinaHainan Key Laboratory of Food Nutrition and Functional Food, Haikou, ChinaCollege of Food Science and Engineering, Hainan University, Haikou, ChinaEngineering Research Center of Utilization of Tropical Polysaccharide Resources, Ministry of Education, Haikou, ChinaHainan Key Laboratory of Food Nutrition and Functional Food, Haikou, ChinaGlucose repression is a key regulatory system controlling the metabolism of non-glucose carbon source in yeast. Glucose represses the utilization of maltose, the most abundant fermentable sugar in lean dough and wort, thereby negatively affecting the fermentation efficiency and product quality of pasta products and beer. In this study, the focus was on the role of three kinases, Elm1, Tos3, and Sak1, in the maltose metabolism of baker’s yeast in lean dough. The results suggested that the three kinases played different roles in the regulation of the maltose metabolism of baker’s yeast with differential regulations on MAL genes. Elm1 was necessary for the maltose metabolism of baker’s yeast in maltose and maltose-glucose, and the overexpression of ELM1 could enhance the maltose metabolism and lean dough fermentation ability by upregulating the transcription of MALx1 (x is the locus) in maltose and maltose-glucose and MALx2 in maltose. The native level of TOS3 and SAK1 was essential for yeast cells to adapt glucose repression, but the overexpression of TOS3 and SAK1 alone repressed the expression of MALx1 in maltose-glucose and MALx2 in maltose. Moreover, the three kinases might regulate the maltose metabolism via the Snf1-parallel pathways with a carbon source-dependent manner. These results, for the first time, suggested that Elm1, rather than Tos3 and Sak1, might be the dominant regulator in the maltose metabolism of baker’s yeast. These findings provided knowledge about the glucose repression of maltose and gave a new perspective for breeding industrial yeasts with rapid maltose metabolism.https://www.frontiersin.org/articles/10.3389/fmicb.2021.665261/fullElm1Tos3Sak1maltose metabolismglucose repressionSaccharomyces cerevisiae
collection DOAJ
language English
format Article
sources DOAJ
author Xu Yang
Lu Meng
Xue Lin
Xue Lin
Xue Lin
Huan-Yuan Jiang
Xiao-Ping Hu
Xiao-Ping Hu
Xiao-Ping Hu
Cong-Fa Li
Cong-Fa Li
Cong-Fa Li
spellingShingle Xu Yang
Lu Meng
Xue Lin
Xue Lin
Xue Lin
Huan-Yuan Jiang
Xiao-Ping Hu
Xiao-Ping Hu
Xiao-Ping Hu
Cong-Fa Li
Cong-Fa Li
Cong-Fa Li
Role of Elm1, Tos3, and Sak1 Protein Kinases in the Maltose Metabolism of Baker’s Yeast
Frontiers in Microbiology
Elm1
Tos3
Sak1
maltose metabolism
glucose repression
Saccharomyces cerevisiae
author_facet Xu Yang
Lu Meng
Xue Lin
Xue Lin
Xue Lin
Huan-Yuan Jiang
Xiao-Ping Hu
Xiao-Ping Hu
Xiao-Ping Hu
Cong-Fa Li
Cong-Fa Li
Cong-Fa Li
author_sort Xu Yang
title Role of Elm1, Tos3, and Sak1 Protein Kinases in the Maltose Metabolism of Baker’s Yeast
title_short Role of Elm1, Tos3, and Sak1 Protein Kinases in the Maltose Metabolism of Baker’s Yeast
title_full Role of Elm1, Tos3, and Sak1 Protein Kinases in the Maltose Metabolism of Baker’s Yeast
title_fullStr Role of Elm1, Tos3, and Sak1 Protein Kinases in the Maltose Metabolism of Baker’s Yeast
title_full_unstemmed Role of Elm1, Tos3, and Sak1 Protein Kinases in the Maltose Metabolism of Baker’s Yeast
title_sort role of elm1, tos3, and sak1 protein kinases in the maltose metabolism of baker’s yeast
publisher Frontiers Media S.A.
series Frontiers in Microbiology
issn 1664-302X
publishDate 2021-06-01
description Glucose repression is a key regulatory system controlling the metabolism of non-glucose carbon source in yeast. Glucose represses the utilization of maltose, the most abundant fermentable sugar in lean dough and wort, thereby negatively affecting the fermentation efficiency and product quality of pasta products and beer. In this study, the focus was on the role of three kinases, Elm1, Tos3, and Sak1, in the maltose metabolism of baker’s yeast in lean dough. The results suggested that the three kinases played different roles in the regulation of the maltose metabolism of baker’s yeast with differential regulations on MAL genes. Elm1 was necessary for the maltose metabolism of baker’s yeast in maltose and maltose-glucose, and the overexpression of ELM1 could enhance the maltose metabolism and lean dough fermentation ability by upregulating the transcription of MALx1 (x is the locus) in maltose and maltose-glucose and MALx2 in maltose. The native level of TOS3 and SAK1 was essential for yeast cells to adapt glucose repression, but the overexpression of TOS3 and SAK1 alone repressed the expression of MALx1 in maltose-glucose and MALx2 in maltose. Moreover, the three kinases might regulate the maltose metabolism via the Snf1-parallel pathways with a carbon source-dependent manner. These results, for the first time, suggested that Elm1, rather than Tos3 and Sak1, might be the dominant regulator in the maltose metabolism of baker’s yeast. These findings provided knowledge about the glucose repression of maltose and gave a new perspective for breeding industrial yeasts with rapid maltose metabolism.
topic Elm1
Tos3
Sak1
maltose metabolism
glucose repression
Saccharomyces cerevisiae
url https://www.frontiersin.org/articles/10.3389/fmicb.2021.665261/full
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