Wu Dandan, Wang Yilin, Qi Shuang, Yuan Yufeng, Guo Jiaqi, Chen Gegu, Ahmad Mehraj, Jiang Bo, Jin Yongcan
Jiangsu Co-Innovation Center of Efficient Processing and Utilization of Forest Resources, International Innovation Center for Forest Chemicals and Materials, College of Light Industry and Food Engineering, Nanjing Forestry University, Nanjing 210037, China.
Beijing Key Laboratory of Lignocellulosic Chemistry, Beijing Forestry University, Beijing 100083, China.
Biomacromolecules. 2023 Mar 13;24(3):1377-1387. doi: 10.1021/acs.biomac.2c01392. Epub 2023 Feb 17.
The abundant and low-cost features of lignin in combination with its natural activities make it a fascinating biopolymer for valorization, especially, in agriculture as an active plant growth regulator. However, the structure-activity relationship of lignin in regulating plant growth and metabolism remains unclear. In this work, rice-straw-based low-molecular-weight (LWM, 1860 Da) and high-molecular-weight (HMW, 6840 Da) alkali-oxygen lignins are structurally and comparatively investigated to understand their effects on the growth and metabolism of maize seedlings. The results indicate that LMW lignin at 150 mg·L displays early growth stimulation in maize. Under the optimal concentration of LMW lignin (25 mg·L), the growth of maize shoot is ∼83% higher than that of the control one. Furthermore, LMW lignin also has a positive effect on the upregulation of photosynthetic pigment, carbohydrate, and protein synthesis. In contrast, HMW lignin shows an overall inhibitory effect on the above-mentioned biochemical parameters. Based on the structural characterization, LMW lignin contains a higher syringyl/guaiacyl ratio (0.78) and carboxyl content (1.64 mmol·g) than HMW lignin (0.43 and 1.27 mmol·g, respectively), which demonstrates that methoxyl and carboxyl content of lignin may play a decisive role in seedling growth.
木质素丰富且成本低廉,再加上其天然活性,使其成为一种极具吸引力的可增值生物聚合物,特别是在农业领域作为一种活性植物生长调节剂。然而,木质素在调节植物生长和代谢方面的构效关系仍不清楚。在这项工作中,对稻草基低分子量(LWM,1860 Da)和高分子量(HMW,6840 Da)碱氧木质素进行了结构和比较研究,以了解它们对玉米幼苗生长和代谢的影响。结果表明,150 mg·L的低分子量木质素对玉米早期生长有促进作用。在低分子量木质素的最佳浓度(25 mg·L)下,玉米地上部分的生长比对照高出约83%。此外,低分子量木质素对光合色素、碳水化合物和蛋白质合成的上调也有积极作用。相比之下,高分子量木质素对上述生化参数表现出总体抑制作用。基于结构表征,低分子量木质素的紫丁香基/愈创木基比率(0.78)和羧基含量(1.64 mmol·g)高于高分子量木质素(分别为0.43和1.27 mmol·g),这表明木质素的甲氧基和羧基含量可能在幼苗生长中起决定性作用。