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小脆杆藻的胶囊由纤维状前体产生,并促进细菌的附着。

Capsules of the diatom Achnanthidium minutissimum arise from fibrillar precursors and foster attachment of bacteria.

机构信息

Konstanz Research School Chemical Biology , Germany ; Zukunftskolleg at the University of Konstanz , Germany ; Biology Department, University of Konstanz , Germany.

Biology Department, University of Konstanz , Germany.

出版信息

PeerJ. 2015 Mar 26;3:e858. doi: 10.7717/peerj.858. eCollection 2015.

Abstract

Achnanthidium minutissimum is a benthic freshwater diatom that forms biofilms on submerged surfaces in aquatic environments. Within these biofilms, A. minutissimum cells produce extracellular structures which facilitate substrate adhesion, such as stalks and capsules. Both consist of extracellular polymeric substance (EPS), but the microstructure and development stages of the capsules are so far unknown, despite a number of hypotheses about their function, including attachment and protection. We coupled scanning electron microscopy (SEM) to bright-field microscopy (BFM) and found that A. minutissimum capsules mostly possess an unstructured surface. However, capsule material that was mechanically stressed by being stretched between or around cells displayed fibrillar substructures. Fibrils were also found on the frustules of non-encapsulated cells, implicating that A. minutissimum capsules may develop from fibrillar precursors. Energy-dispersive X-ray (EDX) spectroscopy revealed that the capsule material do not contain silicon, distinguishing it from the frustule material. We furthermore show that bacteria preferentially attach to capsules, instead of non-encapsulated A. minutissimum cells, which supports the idea that capsules mediate diatom-bacteria interactions.

摘要

小脆杆藻是一种底栖淡水硅藻,在水生环境中会在水下表面形成生物膜。在这些生物膜中,小脆杆藻细胞会产生促进基质附着的细胞外结构,例如柄部和胶囊。两者均由细胞外多聚物(EPS)组成,但胶囊的微观结构和发育阶段目前仍不清楚,尽管有许多关于其功能的假说,包括附着和保护。我们将扫描电子显微镜(SEM)与明场显微镜(BFM)结合使用,发现小脆杆藻胶囊大多具有无结构的表面。然而,在细胞之间或周围拉伸时受到机械应力的胶囊材料显示出纤维状亚结构。在未被胶囊包裹的细胞的壳面也发现了纤维,这表明小脆杆藻胶囊可能是由纤维状前体发育而来的。能量色散 X 射线(EDX)光谱分析显示胶囊材料不含硅,这与壳面材料不同。我们进一步表明,细菌优先附着在胶囊上,而不是未被胶囊包裹的小脆杆藻细胞,这支持了胶囊介导硅藻-细菌相互作用的观点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fc9c/4380156/2a2509e3f55f/peerj-03-858-g001.jpg

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