黑酵母菌异黑黑素的遗传、结构和功能表征。异黑黑素是真菌黑色素生产的基础。

IF 4.3 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Tiffany M. Hennessa, Lauren M. Irie, Hong Dong, Eric S. VanArsdale, Evan R. Glaser, Erin C. Carr, Steven D. Harris, Nathan C. Gianneschi, Zheng Wang
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引用次数: 0

摘要

黑化真菌因其对环境压力的显著恢复能力而闻名,这在很大程度上归功于黑色素的保护特性。在这项研究中,我们建立了一种非致病性的,遗传可处理的黑酵母,用于扩展生产和功能分析dhn -黑色素(异黑素)。在瓶和生物反应器中培养可产生高达8.6 g/L的黑色素,其中大部分紧密结合在细胞壁中,成为“黑色素幽灵”。化学分析包括FTIR、XPS、ssNMR和EPR证实了该色素为异黑素,并揭示了与几丁质的结构关联。Pks1、Arp2和Abr2的基因缺失验证了dnn -黑色素生物合成途径,并使色素缺陷突变体得以产生。功能分析表明,黑色素对紫外线和寒冷耐受性有显著贡献,但对γ辐射的保护作用有限,这表明其他色素,如类胡萝卜素,也可能发挥保护作用。粘粘杆菌独特的氧化还原特性、结构完整性和黑色素生成的可扩展性突出了其在辐射屏蔽、环境修复和热调节等生物衍生材料方面的潜力。这项工作确立了粘菌作为黑色素生物制造的一个有前途的基础,以及在材料科学和环境弹性的背景下研究真菌黑色素的一个有价值的模型。•在富培养基中培养粘胶杆菌可产生8.6 g/L的黑色素。•化学和基因分析鉴定这种色素为异黑素。•黑色素增强真菌细胞对紫外线辐射和低温的耐受性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Genetic, structural, and functional characterization of allomelanin from black yeast Exophiala viscosa, a chassis for fungal melanin production

Melanized fungi are known for their remarkable resilience to environmental stress, largely attributed to the protective properties of melanin. In this study, we establish the black yeast Exophiala viscosa as a non-pathogenic, genetically tractable model for the scalable production and functional analysis of DHN-melanin (allomelanin). Cultivation in flasks and bioreactors yielded up to 8.6 g/L of melanin, with the majority tightly incorporated into the cell wall as “melanin ghosts”. Chemical analyses including FTIR, XPS, ssNMR, and EPR confirmed the identity of the pigment as allomelanin and revealed a structural association with chitin. Gene deletions of Pks1, Arp2, and Abr2 validated the DHN-melanin biosynthetic pathway and enabled the generation of pigment-deficient mutants. Functional assays demonstrated that melanin contributes significantly to UV and cold tolerance, while offering limited protection against γ-radiation, suggesting that other pigments,such as carotenoids, may also play a protective role. The unique redox properties, structural integrity, and scalability of melanin production in E. viscosa highlight its potential for bio-derived materials used in radiation shielding, environmental remediation, and thermal regulation. This work establishes E. viscosa as a promising chassis for melanin biomanufacturing and a valuable model for studying fungal melanins in the context of materials science and environmental resilience.

Cultivation of E. viscosa in rich medium yielded up to 8.6 g/L of melanin.

Chemical and genetic analyses identified the pigment as allomelanin.

Melanin enhanced the tolerance of fungal cells to UV radiation and low temperatures.

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来源期刊
Applied Microbiology and Biotechnology
Applied Microbiology and Biotechnology 工程技术-生物工程与应用微生物
CiteScore
10.00
自引率
4.00%
发文量
535
审稿时长
2 months
期刊介绍: Applied Microbiology and Biotechnology focusses on prokaryotic or eukaryotic cells, relevant enzymes and proteins; applied genetics and molecular biotechnology; genomics and proteomics; applied microbial and cell physiology; environmental biotechnology; process and products and more. The journal welcomes full-length papers and mini-reviews of new and emerging products, processes and technologies.
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