Aquaporin Expression Correlates with Freeze Tolerance in Baker's Yeast, and Overexpression Improves Freeze Tolerance in Industrial Strains
Open Access
- 1 December 2002
- journal article
- Published by American Society for Microbiology in Applied and Environmental Microbiology
- Vol. 68 (12), 5981-5989
- https://doi.org/10.1128/aem.68.12.5981-5989.2002
Abstract
Little information is available about the precise mechanisms and determinants of freeze resistance in baker's yeast, Saccharomyces cerevisiae. Genomewide gene expression analysis and Northern analysis of different freeze-resistant and freeze-sensitive strains have now revealed a correlation between freeze resistance and the aquaporin genes AQY1 and AQY2. Deletion of these genes in a laboratory strain rendered yeast cells more sensitive to freezing, while overexpression of the respective genes, as well as heterologous expression of the human aquaporin gene hAQP1, improved freeze tolerance. These findings support a role for plasma membrane water transport activity in determination of freeze tolerance in yeast. This appears to be the first clear physiological function identified for microbial aquaporins. We suggest that a rapid, osmotically driven efflux of water during the freezing process reduces intracellular ice crystal formation and resulting cell damage. Aquaporin overexpression also improved maintenance of the viability of industrial yeast strains, both in cell suspensions and in small doughs stored frozen or submitted to freeze-thaw cycles. Furthermore, an aquaporin overexpression transformant could be selected based on its improved freeze-thaw resistance without the need for a selectable marker gene. Since aquaporin overexpression does not seem to affect the growth and fermentation characteristics of yeast, these results open new perspectives for the successful development of freeze-resistant baker's yeast strains for use in frozen dough applications.Keywords
This publication has 60 references indexed in Scilit:
- Isolation and Characterization of a Freeze-Tolerant Diploid Derivative of an Industrial Baker's Yeast Strain and Its Use in Frozen DoughsApplied and Environmental Microbiology, 2002
- Identification of genes responsible for improved cryoresistance in fermenting yeast cellsInternational Journal of Food Microbiology, 2000
- Microbial MIP channelsTrends in Microbiology, 2000
- Engineering baker’s yeast: room for improvementTrends in Biotechnology, 1999
- The PLB2 Gene of Saccharomyces cerevisiae Confers Resistance to Lysophosphatidylcholine and Encodes a Phospholipase B/LysophospholipaseBiochemistry, 1999
- Cloning and characterization of the Saccharomyces cerevisiae C-22 sterol desaturase gene, encoding a second cytochrome P-450 involved in ergosterol biosynthesisGene, 1996
- Functional expression of the human CHIP28 water channel in a yeast secretory mutantFEBS Letters, 1995
- The relationship between membrane fluidity and permeabilities to water, solutes, ammonia, and protons.The Journal of general physiology, 1995
- cDNA cloning and functional expression in yeast Saccharomyces cerevisiae of β‐naphthoflavone‐induced rabbit liver P‐450 LM4 and LM6European Journal of Biochemistry, 1988
- Role of the Plasma Membrane in Freezing Injury and Cold AcclimationAnnual Review of Plant Physiology, 1984