地衣共生细菌衍生的吲哚-3-乙酸对藻真菌共生体胁迫反应的影响。

IF 1.9 4区 生物学 Q3 MICROBIOLOGY
Brazilian Journal of Microbiology Pub Date : 2025-09-01 Epub Date: 2025-05-21 DOI:10.1007/s42770-025-01693-y
Yan-Yu Lin, Han-Chen Ho, Jui-Yu Chou
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引用次数: 0

摘要

地衣由丝状真菌和藻类/蓝藻组成,它们相互共生,对环境挑战具有显著的适应性。虽然真菌保护藻类免受干燥条件的影响,但它们减轻其他压力的能力仍不确定。此外,地衣群落中共存细菌的功能仍然相对未被探索。本研究探讨了吲哚-3-乙酸(IAA)在地衣共生中作为胁迫反应信号分子的潜力。我们将iaa处理的藻类单一培养和真菌-藻类复合体的共同培养置于不同的应激条件下。从Parmelia tinctorum地衣中分离的细菌释放的IAA(0-500µM)证明了IAA在增强韧性方面的作用是显而易见的。这些IAA随后被地衣光生成物利用来缓解氧化应激。IAA作为一种通信信号,引导藻类细胞防御即将到来的压力源。进一步的显微镜检查揭示,只有纤维延伸暴露在真菌细胞中,与活藻细胞直接物理接触。共同培养和随后的显微镜观察显示,藻类细胞受到真菌菌丝屏障的保护,免受各种应激源的影响。我们的研究结果强调了IAA在地衣共生环境中增强抗逆性的重要性,从而促进了我们对这些独特生物适应性的理解。进一步探索细菌在地衣共生中的功能有望揭示其生态学和生物学的新见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of lichen symbiotic bacteria-derived indole-3-acetic acid on the stress responses of an algal-fungal symbiont.

Lichens, comprising filamentous fungi and algae/cyanobacteria engaged in mutualistic symbiosis, exhibit remarkable adaptability to environmental challenges. While fungi safeguard algae from dry conditions, their ability to mitigate other stresses remains uncertain. Additionally, the functions of coexisting bacteria within lichen communities remain relatively unexplored. This study investigates the potential of indole-3-acetic acid (IAA) as a stress-response signaling molecule in lichen symbiosis. We subjected IAA-treated monocultures of algae and co-cultures of the fungal-algal complex to various stress conditions. IAA's role in bolstering resilience was evident, as demonstrated by the release of IAA (0-500 µM) by bacteria isolated from the lichen Parmelia tinctorum. This IAA was subsequently utilized by the lichen photobionts to alleviate oxidative stress. IAA acted as a communication signal, priming algal cells to defend against impending stressors. Further microscopic examinations unveiled that only the fibrous extensions were exposed in fungal cells that were in direct physical contact with viable algal cells. Co-cultivation and subsequent microscopic observations revealed that the algal cells were protected from diverse stressors by a barrier of fungal hyphae. Our findings underscore the significance of IAA in enhancing stress resistance within the context of lichen symbiosis, thereby advancing our understanding of the adaptability of these unique organisms. Further exploration of bacterial functions in lichen symbiosis holds promise for uncovering novel insights into their ecology and biology.

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来源期刊
Brazilian Journal of Microbiology
Brazilian Journal of Microbiology 生物-微生物学
CiteScore
4.10
自引率
4.50%
发文量
216
审稿时长
1.0 months
期刊介绍: The Brazilian Journal of Microbiology is an international peer reviewed journal that covers a wide-range of research on fundamental and applied aspects of microbiology. The journal considers for publication original research articles, short communications, reviews, and letters to the editor, that may be submitted to the following sections: Biotechnology and Industrial Microbiology, Food Microbiology, Bacterial and Fungal Pathogenesis, Clinical Microbiology, Environmental Microbiology, Veterinary Microbiology, Fungal and Bacterial Physiology, Bacterial, Fungal and Virus Molecular Biology, Education in Microbiology. For more details on each section, please check out the instructions for authors. The journal is the official publication of the Brazilian Society of Microbiology and currently publishes 4 issues per year.
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