在中性曲霉氮限制生物膜形成过程中,线粒体自噬独立于线粒体裂变。

Autophagy reports Pub Date : 2025-08-22 eCollection Date: 2025-01-01 DOI:10.1080/27694127.2025.2547194
Hari Krishnan Balasubramanian, Stephen A Osmani
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引用次数: 0

摘要

在慢性感染期间,生物膜对抗菌剂和宿主免疫系统都具有耐药性,通常会产生具有线粒体功能降低的顽固性持续性细胞,使生物膜感染难以治愈。在真菌生物膜形成过程中,线粒体动力学和命运是如何调控的,目前还不清楚。在这项研究中,我们使用活细胞显微镜来跟踪细粒曲霉体外生物膜形成过程中的线粒体形态。我们发现线粒体在早期生物膜发育过程中发生断裂,并且外部诱导的氧化应激类似地诱导线粒体断裂,表明氧化还原调节在这一过程中起作用。线粒体裂变机制核心成分的缺失导致线粒体表型膨胀。已知裂变突变菌株中的线粒体在外部诱导的氧化应激下不会完全断裂,并且我们表明这会导致“串珠”表型。我们进一步表明,在分裂突变菌株的生物膜形成过程中,线粒体保持不破碎,尽管其他生物膜细胞修饰,如微管的拆卸,不受影响。我们报道,在氮限制条件下,线粒体自噬在生物膜发育过程中被触发,独立于线粒体裂变。这表明,在限制氮的生物膜发育过程中,线粒体分裂对于线粒体自噬是必不可少的。我们进一步注意到,在碳限制条件下,生物膜发育过程中会触发一般的自噬,而非线粒体自噬,这表明真菌生物膜形成过程中,线粒体命运受到特定营养限制的差异调节。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
During Aspergillus nidulans nitrogen-limited biofilm formation, mitophagy is independent of mitochondrial fission.

During chronic infections, biofilms are resistant to both antimicrobial agents as well as the host immune system, often giving rise to recalcitrant persister cells with reduced mitochondrial function rendering biofilm infections difficult to cure. How mitochondrial dynamics and fate are regulated during fungal biofilm formation is poorly understood. In this study, we used live cell microscopy to track mitochondrial morphology during Aspergillus nidulans in vitro biofilm formation. We show that mitochondria undergo fragmentation during early biofilm development, and that externally induced oxidative stress similarly induces mitochondrial fragmentation, indicating a role for redox regulation in this process. Deletion of core components of the mitochondrial fission machinery resulted in a swollen mitochondrial phenotype. Mitochondria in the fission-mutant strains are known not to complete fragmentation in response to externally induced oxidative stress, and we show that this results in a "beads on a string" phenotype. We further show that mitochondria remain unfragmented during biofilm formation in the fission-mutant strains, although other biofilm cellular modifications, like disassembly of microtubules, are unaffected. We report that mitophagy is triggered during biofilm development in nitrogen-limiting conditions independently of mitochondrial fission. This indicates mitochondrial fission is dispensable for mitophagy during biofilm development with limiting nitrogen. We further note that general autophagy, but notably not mitophagy, is triggered during biofilm development in carbon-limiting conditions, demonstrating differential regulation of mitochondrial fate in response to specific nutritional limitations during fungal biofilm formation.

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