UT/ORNL Center for Molecular Biophysics, Oak Ridge National Laboratory, Oak Ridge, TN, United States of America; Department of Biochemistry and Cellular and Molecular Biology, University of Tennessee, Knoxville, TN 37996, United States of America.
Biological Sciences Department, New York City College of Technology, Brooklyn, NY 11201, United States of America.
Biochim Biophys Acta Gen Subj. 2020 May;1864(5):129547. doi: 10.1016/j.bbagen.2020.129547. Epub 2020 Feb 4.
Lignin, the second most abundant biopolymer on earth, plays a major structural role in plants, conferring mechanical strength and regulating water conduction. Understanding the three-dimensional structure of lignin is important for fundamental reasons as well as engineering plants towards lignin valorization. Lignin lacks a specific primary sequence, making its average chemical composition the focus of most recent studies. However, it remains unclear whether the 3D structure of lignin molecules depends on their sequence.
We performed all-atom molecular dynamics simulation of three S/G-lignin molecules with the same average composition but different sequence.
A detailed statistical analysis of the radius of gyration and relative shape anisotropy reveals that the lignin sequence has no statistically significant effect on the global three-dimensional structure. We found however, that homopolymers of C-lignin with the same molecular weight have smaller radii of gyration than S/G-lignin. We attribute this to lower hydroxyl content of C-lignin, which makes it more compact and rigid.
The 3D structure of lignin is influenced by the overall content of monomeric units and interunit linkages and not by its precise primary sequence.
Lignin is assumed to not have a well-defined primary structure. The results presented here demonstrate there are no significant differences in the global 3D structure of lignin molecules with the same average composition but different primary sequence.
木质素是地球上第二丰富的生物聚合物,在植物中起着主要的结构作用,赋予其机械强度并调节水分传导。了解木质素的三维结构具有重要的基础意义,也有助于通过工程手段实现木质素的增值利用。木质素缺乏特定的一级序列,因此其平均化学组成成为最近研究的焦点。然而,木质素分子的 3D 结构是否取决于其序列仍不清楚。
我们对具有相同平均组成但序列不同的三种 S/G-木质素分子进行了全原子分子动力学模拟。
对回转半径和相对形状各向异性的详细统计分析表明,木质素序列对全局三维结构没有统计学上的显著影响。然而,我们发现具有相同分子量的 C-木质素均聚物的回转半径小于 S/G-木质素。我们将此归因于 C-木质素中羟基含量较低,使其更紧凑和刚性。
木质素的 3D 结构受单体单元和单元间连接的总体含量影响,而不受其精确的一级序列影响。
木质素被认为没有明确的一级结构。这里呈现的结果表明,具有相同平均组成但一级序列不同的木质素分子在全局 3D 结构上没有显著差异。