The MAP kinase HwHog1 from the halophilic black yeast Hortaea werneckii: coping with stresses in solar salterns.

Metka Lenassi, Tomaz Vaupotic, Nina Gunde-Cimerman, Ana Plemenitas
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引用次数: 39

Abstract

Background: Hortaea werneckii is one of the most salt-tolerant species among microorganisms. It has been isolated from hypersaline waters of salterns as one of the predominant species of a group of halophilic and halotolerant melanized yeast-like fungi, arbitrarily named as "black yeasts". It has previously been shown that H. werneckii has distinct mechanisms of adaptation to high salinity environments that are not seen in salt-sensitive and only moderately salt-tolerant fungi. In H. werneckii, the HOG pathway is important for sensing the changes in environmental osmolarity, as demonstrated by identification of three main pathway components: the mitogen-activated protein kinase (MAPK) HwHog1, the MAPK kinase HwPbs2, and the putative histidine kinase osmosensor HwHhk7.

Results: In this study, we show that the expression of HwHOG1 in salt-adapted cells depends on the environmental salinity and that HwHOG1 transcription responds rapidly but reciprocally to the acute hyper-saline or hypo-saline stress. Molecular modelling of HwHog1 reveals an overall structural homology with other MAPKs. HwHog1 complements the function of ScHog1 in the Saccharomyces cerevisiae multistress response. We also show that hyper-osmolar, oxidative and high-temperature stresses activate the HwHog1 kinase, although under high-temperature stress the signal is not transmitted via the MAPK kinase Pbs2. Identification of HOG1-like genes from other halotolerant fungi isolated from solar salterns demonstrates a high degree of similarity and excellent phylogenetic clustering with orthologues of fungal origin.

Conclusion: The HOG signalling pathway has an important role in sensing and responding to hyper-osmolar, oxidative and high-temperature stresses in the halophilic fungi H. werneckii. These findings are an important advance in our understanding of the HOG pathway response to stress in H. werneckii, a proposed model organism for studying the salt tolerance of halophilic and halotolerant eukaryotes.

Abstract Image

Abstract Image

Abstract Image

嗜盐黑酵母MAP激酶HwHog1在日光环境下的响应。
背景:Hortaea werneckii是微生物中最耐盐的物种之一。它是从盐沼的高咸水中分离出来的,是一组嗜盐和耐盐的黑化酵母样真菌的优势种之一,被随意命名为“黑酵母”。先前的研究表明,H. werneckii具有独特的适应高盐度环境的机制,这在盐敏感和仅适度耐盐的真菌中没有发现。在H. werneckii中,HOG通路对于感知环境渗透压的变化很重要,通过鉴定三个主要通路组分证明了这一点:丝裂原活化蛋白激酶(MAPK) HwHog1, MAPK激酶HwPbs2和假定的组氨酸激酶渗透传感器HwHhk7。结果:在本研究中,我们发现HwHOG1在盐适应细胞中的表达依赖于环境盐度,并且HwHOG1的转录对急性高盐或低盐胁迫有快速而反向的反应。HwHog1的分子模型揭示了其与其他MAPKs的整体结构同源性。HwHog1是ScHog1在酿酒酵母多重胁迫响应中的补充功能。我们还发现,高渗透压、氧化和高温胁迫可以激活HwHog1激酶,尽管在高温胁迫下,信号不通过MAPK激酶Pbs2传递。从太阳盐沼中分离的其他耐盐真菌中鉴定出的hog1样基因与真菌起源的同源物具有高度的相似性和良好的系统发育聚类。结论:HOG信号通路在嗜盐真菌H. werneckii对超渗透、氧化和高温胁迫的感知和响应中起重要作用。这些发现是我们了解嗜盐和耐盐真核生物研究模式生物werneckii的HOG途径对胁迫反应的重要进展。
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