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钙华纳米调控巨型海洋寻常海绵的几丁质骨骼

Calcite Nanotuned Chitinous Skeletons of Giant Marine Demosponge.

机构信息

Center of Advanced Technology, Adam Mickiewicz University, Uniwersytetu Poznańskiego 10, 61-614 Poznan, Poland.

Institute of Electronics and Sensor Materials, TU Bergakademie Freiberg, Gustav-Zeuner-Str. 3, Raum 307, 09599 Freiberg, Germany.

出版信息

Int J Mol Sci. 2021 Nov 22;22(22):12588. doi: 10.3390/ijms222212588.

Abstract

Marine sponges were among the first multicellular organisms on our planet and have survived to this day thanks to their unique mechanisms of chemical defense and the specific design of their skeletons, which have been optimized over millions of years of evolution to effectively inhabit the aquatic environment. In this work, we carried out studies to elucidate the nature and nanostructural organization of three-dimensional skeletal microfibers of the giant marine demosponge , the body of which is a micro-reticular, durable structure that determines the ideal filtration function of this organism. For the first time, using the battery of analytical tools including three-dimensional micro-X-ray Fluorescence (3D-µXRF), X-ray diffraction (XRD), infra-red (FTIR), Raman and Near Edge X-ray Fine Structure (NEXAFS) spectroscopy, we have shown that biomineral calcite is responsible for nano-tuning the skeletal fibers of this sponge species. This is the first report on the presence of a calcitic mineral phase in representatives of verongiid sponges which belong to the class Demospongiae. Our experimental data suggest a possible role for structural amino polysaccharide chitin as a template for calcification. Our study suggests further experiments to elucidate both the origin of calcium carbonate inside the skeleton of this sponge and the mechanisms of biomineralization in the surface layers of chitin microfibers saturated with bromotyrosines, which have effective antimicrobial properties and are responsible for the chemical defense of this organism. The discovery of the calcified phase in the chitinous template of skeleton is expected to broaden the knowledge in biomineralization science where the calcium carbonate is regarded as a valuable material for applications in biomedicine, environmental science, and even in civil engineering.

摘要

海洋海绵是地球上最早的多细胞生物之一,由于其独特的化学防御机制和骨骼的特殊设计,它们至今仍得以生存。这些骨骼经过数百万年的进化优化,有效地适应了水生环境。在这项工作中,我们进行了研究,以阐明巨型海洋海绵的三维骨骼微纤维的性质和纳米结构组织,其身体是一种微观的、耐用的网状结构,决定了该生物的理想过滤功能。我们首次使用包括三维微 X 射线荧光(3D-µXRF)、X 射线衍射(XRD)、红外(FTIR)、拉曼和近边 X 射线精细结构(NEXAFS)光谱在内的一系列分析工具,表明生物矿化碳酸钙负责纳米调节这种海绵物种的骨骼纤维。这是关于属于真海绵纲的 verongiid 海绵代表中存在方解石矿物相的第一个报道。我们的实验数据表明,结构氨基酸多糖几丁质可能作为钙化的模板。我们的研究进一步表明,需要进行实验以阐明这种海绵骨骼内碳酸钙的来源以及在富含溴酪氨酸的几丁质微纤维表面层中生物矿化的机制,这些溴酪氨酸具有有效的抗菌性能,并负责该生物的化学防御。在几丁质模板的钙化相中发现碳酸钙有望拓宽生物矿化科学的知识,在生物矿化科学中,碳酸钙被认为是在生物医学、环境科学,甚至在土木工程中应用的有价值材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/36e3/8621073/6d95cd8f9c45/ijms-22-12588-g001.jpg

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