Importance of Intracellular Energy Status on High-Hydrostatic-Pressure Inactivation of sake Yeast Saccharomyces cerevisiae

Author:

Shigematsu Toru12ORCID,Kuwabara Taisei1,Asama Yuki1,Suzuki Rinta1,Ikezaki Minami2,Nomura Kazuki13,Hori Saori1,Iguchi Akinori12

Affiliation:

1. Faculty of Applied Life Sciences, Niigata University of Pharmacy and Medical and Life Sciences, 265-1 Higashijima, Akiha-ku, Niigata 956-8603, Japan

2. Graduate School of Applied Life Sciences, Niigata University of Pharmacy and Medical and Life Sciences, 265-1 Higashijima, Akiha-ku, Niigata 956-8603, Japan

3. Department of Applied Bioscience, College of Bioscience and Chemistry, Kanazawa Institute of Technology, 7-1 Ohgigaoka, Nonoichi 921-8501, Japan

Abstract

The HHP inactivation behaviors of Niigata sake yeast Saccharomyces cerevisiae strain S9arg and its aerobic respiratory-deficient mutant strains were investigated after cultivating them in a YPD media containing 2% to 15% glucose, as well as in moromi mash, in a laboratory-scale sake brewing process. The piezotolerance of strain S9arg, shown after cultivation in a YPD medium containing 2% glucose, decreased to become piezosensitive with increasing glucose concentrations in YPD media. In contrast, the piezosensitivity of a mutant strain UV1, shown after cultivation in the YPD medium containing 2% glucose, decreased to become piezotolerant with increasing glucose concentrations in the YPD medium. The intracellular ATP concentrations were analyzed for an S. cerevisiae strain with intact aerobic respiratory ability, as well as for strain UV1. The higher concentration of ATP after cultivation suggested a higher energy status and may be closely related to higher piezotolerance for the yeast strains. The decreased piezotolerance of strain S9arg observed after a laboratory-scale sake brewing test may be due to a lower energy status resulting from a high glucose concentration in moromi mash during the early period of brewing, as well as a lower aeration efficiency during the brewing process, compared with cultivation in a YPD medium containing 2% glucose.

Funder

NARO Bio-oriented Technology Research Advancement Institution

JSPS KAKENHI

Uchida Energy Science Promotion Foundation

Publisher

MDPI AG

Reference25 articles.

1. Ministry of Agriculture, Forestry and Fisheries (MAFF) (2024, February 07). Japan. Situation Surrounding Sake. (In Japanese).

2. Akimoto, D. (2020). Prime minister Abe’s saké diplomacy. Electron. J. Contemp. Jpn. Stud., 20, Available online: https://japanesestudies.org.uk/ejcjs/vol20/iss2/akimoto.html.

3. Doona, C.J., and Freeherry, F.E. (2007). High Pressure Processing of Foods, Blackwell Publishing. ISBN-13: 978-8126542345.

4. Food processing by high hydrostatic pressure;Yamamoto;Biosci. Biotechnol. Biochem.,2017

5. Current status and future trends of high-pressure processing in food industry;Huang;Food Control.,2017

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