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硅浓度和合成持续时间对木质素结构的影响:光谱和显微镜研究

Effects of Silicon Concentration and Synthesis Duration on Lignin Structure: A Spectroscopic and Microscopic Study.

作者信息

Djikanović Daniela, Jovanović Jelena, Kalauzi Aleksandar, Maksimović Jelena Dragišić, Radotić Ksenija

机构信息

The University of Belgrade, Institute for Multidisciplinary Research, Belgrade, Serbia.

出版信息

Biopolymers. 2025 Jan;116(1):e23640. doi: 10.1002/bip.23640. Epub 2024 Nov 30.

Abstract

Silicon (Si) is a highly abundant mineral in Earth's crust. It plays a vital role in plant growth, providing mechanical support, enhancing grain yield, facilitating mineral nutrition, and aiding stress response mechanisms. The intricate relationship between silicification and lignin chemistry significantly impacts cell wall structure. Yet, the precise influence of Si on lignin synthesis remains elusive. This study investigated the interaction between Si and lignin model compounds during in vitro synthesis. Employing spectroscopic and microscopic analyses, we delineated how Si concentrations modulate lignin polymerization dynamics, particularly affecting molecular conformation and aggregation behavior over time. Fluctuations in the polymer structure are directly related to both the synthesis time and the concentration of silica. Our results demonstrate that lower Si concentrations promote the aggregation of lignin oligomers into larger particles, while higher concentrations increase the possibility of oligomer repulsion, thus preventing particle growth. These findings elucidate the intricate interplay between Si and lignin, which is crucial for understanding plant cell wall structure and stress resilience. Moreover, the results provide insights for developing lignin-silica materials with increasing applications in industry and medicine.

摘要

硅(Si)是地壳中含量极为丰富的矿物质。它在植物生长中起着至关重要的作用,提供机械支撑、提高谷物产量、促进矿物质营养并辅助应激反应机制。硅化作用与木质素化学之间的复杂关系对细胞壁结构有重大影响。然而,硅对木质素合成的确切影响仍不清楚。本研究调查了体外合成过程中硅与木质素模型化合物之间的相互作用。通过光谱和显微镜分析,我们描绘了硅浓度如何调节木质素聚合动力学,特别是随着时间推移对分子构象和聚集行为的影响。聚合物结构的波动与合成时间和二氧化硅浓度都直接相关。我们的结果表明,较低的硅浓度促进木质素低聚物聚集成更大的颗粒,而较高的浓度增加了低聚物排斥的可能性,从而阻止颗粒生长。这些发现阐明了硅与木质素之间的复杂相互作用,这对于理解植物细胞壁结构和抗逆性至关重要。此外,研究结果为开发在工业和医学中应用日益广泛的木质素-二氧化硅材料提供了见解。

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