Inhibitory Role of Greatwall-Like Protein Kinase Rim15p in Alcoholic Fermentation via Upregulating the UDP-Glucose Synthesis Pathway in Saccharomyces cerevisiae

Author:

Watanabe Daisuke12,Zhou Yan2,Hirata Aiko3,Sugimoto Yukiko1,Takagi Kenichi1,Akao Takeshi2,Ohya Yoshikazu3,Takagi Hiroshi1,Shimoi Hitoshi24

Affiliation:

1. Graduate School of Biological Sciences, Nara Institute of Science and Technology, Ikoma, Nara, Japan

2. National Research Institute of Brewing, Higashihiroshima, Hiroshima, Japan

3. Department of Integrated Biosciences, Graduate School of Frontier Sciences, University of Tokyo, Kashiwa, Chiba, Japan

4. Faculty of Agriculture, Iwate University, Morioka, Iwate, Japan

Abstract

ABSTRACT The high fermentation rate of Saccharomyces cerevisiae sake yeast strains is attributable to a loss-of-function mutation in the RIM15 gene, which encodes a Greatwall-family protein kinase that is conserved among eukaryotes. In the present study, we performed intracellular metabolic profiling analysis and revealed that deletion of the RIM15 gene in a laboratory strain impaired glucose-anabolic pathways through the synthesis of UDP-glucose (UDPG). Although Rim15p is required for the synthesis of trehalose and glycogen from UDPG upon entry of cells into the quiescent state, we found that Rim15p is also essential for the accumulation of cell wall β-glucans, which are also anabolic products of UDPG. Furthermore, the impairment of UDPG or 1,3-β-glucan synthesis contributed to an increase in the fermentation rate. Transcriptional induction of PGM2 (phosphoglucomutase) and UGP1 (UDPG pyrophosphorylase) was impaired in Rim15p-deficient cells in the early stage of fermentation. These findings demonstrate that the decreased anabolism of glucose into UDPG and 1,3-β-glucan triggered by a defect in the Rim15p-mediated upregulation of PGM2 and UGP1 redirects the glucose flux into glycolysis. Consistent with this, sake yeast strains with defective Rim15p exhibited impaired expression of PGM2 and UGP1 and decreased levels of β-glucans, trehalose, and glycogen during sake fermentation. We also identified a sake yeast-specific mutation in the glycogen synthesis-associated glycogenin gene GLG2 , supporting the conclusion that the glucose-anabolic pathway is impaired in sake yeast. These findings demonstrate that downregulation of the UDPG synthesis pathway is a key mechanism accelerating alcoholic fermentation in industrially utilized S. cerevisiae sake strains.

Funder

Noda Institute for Scientific Research

Japan Society for the Promotion of Science

Kato Memorial Bioscience Foundation

Publisher

American Society for Microbiology

Subject

Ecology,Applied Microbiology and Biotechnology,Food Science,Biotechnology

Reference62 articles.

1. Watanabe D, Takagi H, Shimoi H. 2015. Mechanisms of high alcoholic fermentation ability of sake yeast, p 57–74. In Takagi H, Kitagaki H (ed), Stress biology of yeasts and fungi: application for industrial brewing and fermentation. Springer, New York, NY.

2. Sake yeast strains have difficulty in entering a quiescent state after cell growth cessation

3. Automatic measurement of sake fermentation kinetics using a multi-channel gas monitor system

4. Ethanol fermentation driven by elevated expression of the G1 cyclin gene CLN3 in sake yeast

5. Enhancement of the Initial Rate of Ethanol Fermentation Due to Dysfunction of Yeast Stress Response Components Msn2p and/or Msn4p

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