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多种有机大分子对芭蕉属植物草酸钙针晶形成的协同作用

The synergistic effect of multiple organic macromolecules on the formation of calcium oxalate raphides of Musa spp.

作者信息

Zhang Wenjun, Fan Yuke, Chi Jialin

机构信息

College of Resources and Environment, Huazhong Agricultural University, Wuhan 430070, China.

National-Regional Joint Engineering Research Center for Soil Pollution Control and Remediation in South China, Guangdong Key Laboratory of Integrated Agro-environmental Pollution Control and Management, Institute of Eco-environmental and Soil Sciences, Guangdong Academy of Sciences, Guangzhou 510650, China.

出版信息

J Exp Bot. 2024 Apr 15;75(8):2470-2480. doi: 10.1093/jxb/erae022.

Abstract

Needle-like calcium oxalate crystals called raphides are unique structures in the plant kingdom. Multiple biomacromolecules work together in the regulatory and transportation pathways to form raphides; however, the mechanism by which this occurs remains unknown. Using banana (Musa spp.), this study combined in vivo methods including confocal microscopy, transmission electron microscopy, and Q Exactive mass spectrometry to identify the main biomolecules, such as vesicles, together with the compositions of lipids and proteins in the crystal chamber, which is the membrane compartment that surrounds each raphide during its formation. Simulations of the vesicle transportation process and the synthesis of elongated calcium oxalate crystals in vitro were then conducted, and the results suggested that the vesicles carrying amorphous calcium oxalate and proteins embedded in raphides are transported along actin filaments. These vesicles subsequently fuse with the crystal chamber, utilizing the proteins embedded in the raphides as a template for the final formation of the structure. Our findings contribute to the fundamental understanding of the regulation of the diverse biomacromolecules that are crucial for raphide formation. Moreover, the implications of these findings extend to other fields such as materials science, and particularly the synthesis of functionalized materials.

摘要

被称为针晶的针状草酸钙晶体是植物界独特的结构。多种生物大分子在调控和运输途径中协同作用以形成针晶;然而,其发生机制仍不清楚。本研究以香蕉(芭蕉属)为材料,结合共聚焦显微镜、透射电子显微镜和Q Exactive质谱等体内方法,以鉴定主要生物分子,如囊泡,以及晶体腔室中的脂质和蛋白质组成,晶体腔室是针晶形成过程中围绕每个针晶的膜隔室。随后进行了囊泡运输过程的模拟以及体外细长草酸钙晶体的合成,结果表明携带无定形草酸钙和嵌入针晶的蛋白质的囊泡沿着肌动蛋白丝运输。这些囊泡随后与晶体腔室融合,利用嵌入针晶的蛋白质作为最终形成该结构的模板。我们的研究结果有助于从根本上理解对针晶形成至关重要的多种生物大分子的调控。此外,这些发现的意义还扩展到材料科学等其他领域,特别是功能化材料的合成。

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