Unveiling superior phenol detoxification and degradation ability in Candida tropicalis SHC-03: a comparative study with Saccharomyces cerevisiae BY4742

IF 4 2区 生物学 Q2 MICROBIOLOGY
Qian Li, Yulei Chen, Hao Tang, Bochao Shu, Zhengyue Zhang, Jiaye Tang, Dang Li, Linjia Jiang, Jiwei Shen, Yaojun Yang, Hanyu Wang, Menggen Ma
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引用次数: 0

Abstract

This study examined the phenol degradation capabilities and oxidative stress responses of Candida tropicalis SHC-03, demonstrating its metabolic superiority and resilience compared to Saccharomyces cerevisiae BY4742 in a culture medium with phenol as the sole carbon source. Through comparative growth, transcriptomic, and metabolomic analyses under different phenol concentrations, this study revealed C. tropicalis SHC-03’s specialized adaptations for thriving in phenol as the sole carbon source environments. These include a strategic shift from carbohydrate metabolism to enhanced phenol degradation pathways, highlighted by the significant upregulation of genes for Phenol 2-monoxygenase and Catechol 1,2-dioxygenase. Despite phenol levels reaching 1.8 g/L, C. tropicalis exhibits a robust oxidative stress response, efficiently managing ROS through antioxidative pathways and the upregulation of genes for peroxisomal proteins like PEX2, PEX13, and PMP34. Concurrently, there was significant upregulation of genes associated with membrane components and transmembrane transporters, enhancing the cell’s capacity for substance exchange and signal transduction. Especially, when the phenol concentration was 1.6 g/L and 1.8 g/L, the degradation rates of C. tropicalis towards it were 99.47 and 95.91%, respectively. Conversely, S. cerevisiae BY4742 shows limited metabolic response, with pronounced growth inhibition and lack of phenol degradation. Therefore, our study not only sheds light on the molecular mechanisms underpinning phenol tolerance and degradation in C. tropicalis but also positions this yeast as a promising candidate for environmental and industrial processes aimed at mitigating phenol pollution.
揭示热带念珠菌 SHC-03 卓越的苯酚解毒和降解能力:与酿酒酵母 BY4742 的比较研究
本研究考察了热带念珠菌 SHC-03 的苯酚降解能力和氧化应激反应,结果表明,在以苯酚为唯一碳源的培养基中,热带念珠菌 SHC-03 与酿酒酵母 BY4742 相比具有更强的代谢优势和适应能力。通过对不同苯酚浓度下的生长、转录组和代谢组进行比较分析,本研究揭示了热带酵母菌 SHC-03 在苯酚作为唯一碳源的环境中生长发育的特殊适应性。其中包括从碳水化合物代谢到增强苯酚降解途径的战略转移,苯酚 2-单氧合酶和儿茶酚 1,2-二氧合酶基因的显著上调突出表明了这一点。尽管苯酚水平达到 1.8 克/升,热带栉水母仍表现出强大的氧化应激反应,通过抗氧化途径和过氧化物酶体蛋白(如 PEX2、PEX13 和 PMP34)基因的上调有效地管理 ROS。同时,与膜成分和跨膜转运体相关的基因也明显上调,从而增强了细胞的物质交换和信号转导能力。特别是当苯酚浓度为 1.6 克/升和 1.8 克/升时,C. tropicalis 对苯酚的降解率分别为 99.47% 和 95.91%。相反,S. cerevisiae BY4742 的新陈代谢反应有限,生长受到明显抑制,苯酚降解能力不足。因此,我们的研究不仅揭示了热带酵母菌耐受和降解苯酚的分子机制,还将热带酵母菌定位为环境和工业过程中缓解苯酚污染的一种有前途的候选酵母菌。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.70
自引率
9.60%
发文量
4837
审稿时长
14 weeks
期刊介绍: Frontiers in Microbiology is a leading journal in its field, publishing rigorously peer-reviewed research across the entire spectrum of microbiology. Field Chief Editor Martin G. Klotz at Washington State University is supported by an outstanding Editorial Board of international researchers. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to researchers, academics, clinicians and the public worldwide.
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