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Marine Polysaccharide Networks and Diatoms at the Nanometric Scale

机译:纳米尺度的海洋多糖网络和硅藻

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Despite many advances in research on photosynthetic carbon fixation in marine diatoms, the biophysical and biochemical mechanisms of extracellular polysaccharide production remain significant challenges to be resolved at the molecular scale in order to proceed toward an understanding of their functions at the cellular level, as well as their interactions and fate in the ocean. This review covers studies of diatom extracellular polysaccharides using atomic force microscopy (AFM) imaging and the quantification of physical forces. Following a brief summary of the basic principle of the AFM experiment and the first AFM studies of diatom extracellular polymeric substance (EPS), we focus on the detection of supramolecular structures in polysaccharide systems produced by marine diatoms. Extracellular polysaccharide fibrils, attached to the diatom cell wall or released into the surrounding seawater, form distinct supramolecular assemblies best described as gel networks. AFM makes characterization of the diatom polysaccharide networks at the micro and nanometric scales and a clear distinction between the self-assembly and self-organization of these complex systems in marine environments possible.
机译:尽管在海洋硅藻的光合碳固定研究方面取得了许多进展,但是胞外多糖生产的生物物理和生化机制仍然是要在分子规模上解决的重大挑战,以便逐步了解它们在细胞水平上的功能以及他们的互动和命运在海洋中。这篇综述涵盖了使用原子力显微镜(AFM)成像和物理力定量研究硅藻细胞外多糖的研究。在简要概述了AFM实验的基本原理和首次对硅藻细胞外聚合物(EPS)进行AFM研究之后,我们重点研究了由海洋硅藻产生的多糖系统中的超分子结构。附着在硅藻细胞壁上或释放到周围海水中的细胞外多糖原纤维形成了独特的超分子组装体,最好地描述为凝胶网络。原子力显微镜可以在微米和纳米尺度上表征硅藻多糖网络,并可以在海洋环境中明确区分这些复杂系统的自组装和自组织。

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