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鉴定丝状蓝藻中锥形纤维末端所需的形态发生基因。

Identification of a morphogene required for tapered filament termini in filamentous cyanobacteria.

机构信息

Department of Biology, University of Colorado Colorado Springs, Colorado Springs, CO 80918, USA.

出版信息

Microbiology (Reading). 2023 Nov;169(11). doi: 10.1099/mic.0.001416.

Abstract

Although the photosynthetic cyanobacteria are monophyletic, they exhibit substantial morphological diversity across species, and even within an individual species due to phenotypic plasticity in response to life cycles and environmental signals. This is particularly prominent among the multicellular filamentous cyanobacteria. One example of this is the appearance of tapering at the filament termini. However, the morphogenes controlling this phenotype and the adaptive function of this morphology are not well defined. Here, using the model filamentous cyanobacterium ATCC29133 (PCC73102), we identify , a morphogene required for the development of tapered filament termini. The gene is specifically expressed in developing hormogonia, motile trichomes where the tapered filament morphology is observed, and encodes a protein containing putative amidase_3 and glucosaminidase domains, implying a function in peptidoglycan hydrolysis. Deletion of abolished filament tapering inidcating that TftA plays a role in remodelling the cell wall to produce tapered filaments. Genomic conservation of specifically in filamentous cyanobacteria indicates this is likely to be a conserved mechanism among these organisms. Finally, motility assays indicate that filaments with tapered termini migrate more efficiently through dense substratum, providing a plausible biological role for this morphology.

摘要

虽然光合蓝藻是单系的,但它们在物种之间表现出显著的形态多样性,甚至在单个物种内也表现出由于对生命周期和环境信号的表型可塑性而导致的形态多样性。这在多细胞丝状蓝藻中尤为突出。一个例子是丝状末端的变细。然而,控制这种表型的形态发生基因和这种形态的适应功能尚未明确界定。在这里,我们使用模式丝状蓝藻 ATCC29133(PCC73102),鉴定出了一个控制丝状末端变细的形态发生基因 。该基因在发育中的异形胞、观察到丝状变细形态的游动毛状体中特异性表达,并编码一种含有假定的酰胺酶_3 和氨基葡萄糖苷酶结构域的蛋白质,暗示其在肽聚糖水解中具有功能。缺失 基因导致丝状变细缺失,表明 TftA 在重塑细胞壁以产生变细的丝状方面发挥作用。 在丝状蓝藻中特异性的基因组保守表明,这可能是这些生物体中保守的机制。最后,运动性测定表明,具有变细末端的丝状体更有效地通过密集的基质迁移,为这种形态提供了一个合理的生物学作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cb35/10710843/a3b8bb95d004/mic-169-1416-g001.jpg

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