Bioinspired cell silicification of the model diatom Phaeodactylum tricornutum and its effects on cell metabolism

Sustainable Horizons Pub Date : 2025-06-01 Epub Date: 2025-01-04 DOI:10.1016/j.horiz.2024.100127
Jiwei Chen , Cheng Qian , Yuexuan Shu , Kourosh Salehi-Ashtiani , Jin Shang , Hangjin Jiang , Weiqi Fu
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Abstract

Biosilicification enhances the mechanical strength and chemical stability of organisms. Diatoms are the natural model for studying cell silicification, with the model diatom Phaeodactylum tricornutum being known as the only species that could transition from slightly silicified cells to silicified cells under environmental stress. In this study, single-cell sequencing was employed to investigate the wild-type P. tricornutum strain (WT-Pt) without cell silicification and the engineered strain (SG-Pt) with silicified cells. Our results indicate that SG-Pt exhibits clearly cellular clustering and enhanced iron metabolic function compared to WT-Pt. We further utilize biomimetic techniques to explore the impact of artificial silicification on P. tricornutum. The silicified cells show enhanced resistance to freezing and UVC irradiation conditions. Transcriptomic analysis demonstrated the up-regulation of photosynthesis with pigment accumulation in silicified cells. This work reveals key characteristics of diatoms under artificial biosilicification and provides critical insights into cell metabolism for promoting the development of hybrid living materials, which aligns with the United Nations sustainable development goal (SDG) 12 (Responsible Consumption and Production) by promoting sustainable biomaterials, and SDG 13 (Climate Action) by enhancing carbon sequestration efforts.

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模型硅藻褐指藻的生物激发细胞硅化及其对细胞代谢的影响
生物硅化提高了生物体的机械强度和化学稳定性。硅藻是研究细胞硅化的天然模型,模型硅藻褐藻(Phaeodactylum tricornutum)是已知的唯一能在环境胁迫下由微硅化细胞向硅化细胞转变的物种。本研究采用单细胞测序的方法对未硅化细胞的野生型三角霉菌株(WT-Pt)和硅化细胞的工程菌株(SG-Pt)进行了研究。我们的研究结果表明,与WT-Pt相比,SG-Pt具有明显的细胞聚集性和增强的铁代谢功能。我们进一步利用仿生技术来探讨人工硅化对三角藻的影响。硅化电池对冷冻和UVC辐照条件的抵抗力增强。转录组学分析表明,在硅化细胞中,光合作用随着色素积累而上调。这项工作揭示了人工生物硅化条件下硅藻的关键特征,并为促进混合生物材料的开发提供了重要的细胞代谢见解,这符合联合国可持续发展目标(SDG) 12(负责任的消费和生产),通过促进可持续生物材料,以及可持续发展目标(SDG) 13(气候行动)通过加强碳封存努力。
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