Biofuels Institute, School of Emergency Management, School of the Environment and Safety Engineering, Jiangsu University, Zhenjiang 212013, Jiangsu, China; Jiangsu Collaborative Innovation Center of Technology and Material of Water Treatment, Suzhou University of Science and Technology, Suzhou 215009, China.
Chemical Engineering Department, College of Engineering, University of Ha'il, Ha'il 81441, Saudi Arabia; Chemical Engineering Process Department, National School of Engineers Gabes, University of Gabes, Gabes 6029, Tunisia.
Int J Biol Macromol. 2024 Mar;260(Pt 2):129595. doi: 10.1016/j.ijbiomac.2024.129595. Epub 2024 Jan 20.
Lignin and Casparian strips are two essential components of plant cells that play critical roles in plant development regulate nutrients and water across the plants cell. Recent studies have extensively investigated lignin diversity and Casparian strip formation, providing valuable insights into plant physiology. This review presents the established lignin biosynthesis pathway, as well as the developmental patterns of lignin and Casparian strip and transcriptional network associated with Casparian strip formation. It describes the biochemical and genetic mechanisms that regulate lignin biosynthesis and deposition in different plants cell types and tissues. Additionally, the review highlights recent studies that have uncovered novel lignin biosynthesis genes and enzymatic pathways, expanding our understanding of lignin diversity. This review also discusses the developmental patterns of Casparian strip in roots and their role in regulating nutrient and water transport, focusing on recent genetic and molecular studies that have identified regulators of Casparian strip formation. Previous research has shown that lignin biosynthesis genes also play a role in Casparian strip formation, suggesting that these processes are interconnected. In conclusion, this comprehensive overview provides insights into the developmental patterns of lignin diversity and Casparian strip as apoplastic barriers. It also identifies future research directions, including the functional characterization of novel lignin biosynthesis genes and the identification of additional regulators of Casparian strip formation. Overall, this review enhances our understanding of the complex and interconnected processes that drive plant growth, pathogen defense, regulation and development.
木质素和凯氏带是植物细胞的两个重要组成部分,在植物发育、调节养分和水分跨植物细胞运输方面起着关键作用。最近的研究广泛探讨了木质素的多样性和凯氏带的形成,为植物生理学提供了有价值的见解。
本文综述了已建立的木质素生物合成途径,以及木质素和凯氏带的发育模式和与凯氏带形成相关的转录调控网络。它描述了调节不同植物细胞类型和组织中木质素生物合成和沉积的生化和遗传机制。此外,本文还强调了最近的研究,这些研究揭示了新的木质素生物合成基因和酶途径,扩展了我们对木质素多样性的理解。
本文还讨论了根中凯氏带的发育模式及其在调节养分和水分运输中的作用,重点介绍了最近的遗传和分子研究,这些研究确定了凯氏带形成的调节因子。先前的研究表明,木质素生物合成基因也在凯氏带形成中发挥作用,这表明这些过程是相互关联的。
总之,本文全面概述了木质素多样性和质外体屏障凯氏带的发育模式。它还确定了未来的研究方向,包括对新的木质素生物合成基因的功能表征和对凯氏带形成的其他调节因子的鉴定。总的来说,本文增强了我们对驱动植物生长、抵御病原体、调节和发育的复杂和相互关联的过程的理解。