Physiological Genomics of Multistress Resistance in the Yeast Cell Model and Factory: Focus on MDR/MXR Transporters.

Cláudia P Godinho, Isabel Sá-Correia
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引用次数: 6

Abstract

The contemporary approach of physiological genomics is vital in providing the indispensable holistic understanding of the complexity of the molecular targets, signalling pathways and molecular mechanisms underlying the responses and tolerance to stress, a topic of paramount importance in biology and biotechnology. This chapter focuses on the toxicity and tolerance to relevant stresses in the cell factory and eukaryotic model yeast Saccharomyces cerevisiae. Emphasis is given to the function and regulation of multidrug/multixenobiotic resistance (MDR/MXR) transporters. Although these transporters have been considered drug/xenobiotic efflux pumps, the exact mechanism of their involvement in multistress resistance is still open to debate, as highlighted in this chapter. Given the conservation of transport mechanisms from S. cerevisiae to less accessible eukaryotes such as plants, this chapter also provides a proof of concept that validates the relevance of the exploitation of the experimental yeast model to uncover the function of novel MDR/MXR transporters in the plant model Arabidopsis thaliana. This knowledge can be explored for guiding the rational design of more robust yeast strains with improved performance for industrial biotechnology, for overcoming and controlling the deleterious activities of spoiling yeasts in the food industry, for developing efficient strategies to improve crop productivity in agricultural biotechnology.

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酵母细胞模型和工厂中多逆境抗性的生理基因组学研究:关注MDR/MXR转运体。
生理基因组学的当代方法对于提供对应激反应和耐受性背后的分子靶点、信号通路和分子机制的复杂性的不可或缺的整体理解至关重要,这是生物学和生物技术中至关重要的主题。本章重点介绍了细胞工厂酵母和真核模型酵母对相关胁迫的毒性和耐受性。重点是多药/多外源耐药(MDR/MXR)转运体的功能和调控。尽管这些转运蛋白被认为是药物/外源外排泵,但它们参与多逆境抗性的确切机制仍然存在争议,正如本章所强调的那样。鉴于酿酒酵母到植物等不易接近的真核生物的运输机制的保守性,本章还提供了一个概念证明,验证了利用实验酵母模型揭示新型MDR/MXR转运体在植物模型拟南芥中的功能的相关性。这些知识可以用于指导工业生物技术中更健壮的酵母菌株的合理设计,用于克服和控制食品工业中腐败酵母的有害活动,用于制定有效的策略来提高农业生物技术中的作物生产力。
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来源期刊
CiteScore
3.30
自引率
0.00%
发文量
7
期刊介绍: Molecular biology has been providing an overwhelming amount of data on the structural components and molecular machineries of the cell and its organelles and the complexity of intra- and intercellular communication. The molecular basis of hereditary and acquired diseases is beginning to be unravelled, and profound new insights into development and evolutionary biology have been gained from molecular approaches. Progress in Molecular and Subcellular Biology summarises the most recent developments in this fascinating area of biology.
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