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Mira NP, et al.  (2010) Genome-wide identification of Saccharomyces cerevisiae genes required for tolerance to acetic acid. Microb Cell Fact 9(1):79

Abstract: ABSTRACT: BACKGROUND: Acetic acid is a byproduct of Saccharomyces cerevisiae alcoholic fermentation. Together with high concentrations of ethanol and other toxic metabolites, acetic acid may contribute to fermentation arrest and reduced ethanol productivity. This weak acid is also a present in lignocellulosic hydrolysates, a highly interesting non-feedstock substrate in industrial biotechnology. Therefore, the better understanding of the molecular mechanisms underlying S. cerevisiae tolerance to acetic acid is essential for the rational selection of optimal fermentation conditions and the engineering of more robust industrial strains to be used in processes in which yeast is explored as cell factory. RESULTS: The yeast genes conferring protection against acetic acid were identified in this study at a genome-wide scale, based on the screening of the EUROSCARF haploid mutant collection for susceptibility phenotypes to this weak acid (concentrations in the range 70-110 mM, at pH 4.5). Approximately 650 determinants of tolerance to acetic acid were identified. Clustering of these acetic acid-resistance genes based on their biological function indicated an enrichment of genes involved in transcription, internal pH homeostasis, carbohydrate metabolism, cell wall assembly, biogenesis of mitochondria, ribosome and vacuole, and in the sensing, signalling and uptake of various nutrients in particular iron, potassium, glucose and amino acids. A correlation between increased resistance to acetic acid and the level of potassium in the growth medium was found. The activation of the Snf1p signalling pathway, involved in yeast response to glucose starvation, is demonstrated to occur in response to acetic acid stress but no evidence was obtained supporting the acetic acid-induced inhibition of glucose uptake. CONCLUSIONS: Approximately 490 of the 650 determinants of tolerance to acetic acid identified in this work are implicated, for the first time, in tolerance to this weak acid. These are novel candidate genes for genetic engineering to obtain more robust yeast strains against acetic acid toxicity. Among these genes there are number of transcription factors that are documented regulators of a large percentage of the genes found to exert protection against acetic acid thus being considered interesting targets for subsequent genetic engineering. The increase of potassium concentration in the growth medium was found to improve the expression of maximal tolerance to acetic acid, consistent with the idea that the adequate manipulation of nutrient concentration of industrial growth medium can be an interesting strategy to surpass the deleterious effects of this weak acid in yeast cells.

Status: Published Type: Journal Article PubMed ID: 20973990

Topics addressed in this paper

Number of different genes curated to this paper: 108

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AGP2 ALG2 ANP1 ARL1 ATP1 ATP11 ATP14 ATP4 ATP5 BEM4
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BPH1 BUL1 CHS1 CHS5 COQ5 COX11 COX12 COX23 COX9 CWH43
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CYS3 END3 FET3 FIT2 FIT3 FKS1 FRE3 FUM1 GAS1 GCR1
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Topics Genes linked to topics (#31 - 40 )
GCR2 GDH1 GLY1 GNT1 GON7 GPH1 GTR1 HIS4 HXK2 HXT3
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Topics Genes linked to topics (#41 - 50 )
IRA2 KGD2 KRE1 KRE6 KTR4 LPD1 LTV1 MDM32 MEP3 MET4
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Topics Genes linked to topics (#51 - 60 )
MIG1 MNN11 MNN2 MNN9 MRP51 MRP7 MRPL13 MRPL22 MRPL33 MRPL35
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Topics Genes linked to topics (#61 - 70 )
MRPL36 MRPL40 MRPL6 MRPL8 MRPL9 NDE1 NRG1 PCL7 PDE2 PEP8
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Topics Genes linked to topics (#71 - 80 )
PFK1 PHO85 PHO88 PMR1 PMT1 POR1 PYC1 PYC2 QCR6 QCR7
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Topics Genes linked to topics (#81 - 90 )
QCR8 RAS2 RIM15 RML2 ROM2 ROT2 RPE1 RSM18 RSM23 RVS161
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Topics Genes linked to topics (#91 - 100 )
SCH9 SLM4 SNF1 SNF4 SNF6 SNF7 SPF1 STP1 STP22 TPK2
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Topics Genes linked to topics (#101 - 108 )
TRK1 TYE7 UBC4 VPS1 VPS29 VPS36 VPS8 ZWF1
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