State Key Laboratory of Tree Genetics and Breeding, Chinese Academy of Forestry, Beijing, 100091, China.
Department of Biochemistry and DOE Great Lakes Bioenergy Research Center, Wisconsin Energy Institute, University of Wisconsin-Madison, Wisconsin, 53726, USA.
J Integr Plant Biol. 2024 Aug;66(8):1658-1674. doi: 10.1111/jipb.13717. Epub 2024 Jun 21.
The biosynthesis of cellulose, lignin, and hemicelluloses in plant secondary cell walls (SCWs) is regulated by a hierarchical transcriptional regulatory network. This network features orthologous transcription factors shared between poplar and Arabidopsis, highlighting a foundational similarity in their genetic regulation. However, knowledge on the discrepant behavior of the transcriptional-level molecular regulatory mechanisms between poplar and Arabidopsis remains limited. In this study, we investigated the function of PagMYB128 during wood formation and found it had broader impacts on SCW formation compared to its Arabidopsis ortholog, AtMYB103. Transgenic poplar trees overexpressing PagMYB128 exhibited significantly enhanced xylem development, with fiber cells and vessels displaying thicker walls, and an increase in the levels of cellulose, lignin, and hemicelluloses in the wood. In contrast, plants with dominant repression of PagMYB128 demonstrated the opposite phenotypes. RNA sequencing and reverse transcription - quantitative polymerase chain reaction showed that PagMYB128 could activate SCW biosynthetic gene expression, and chromatin immunoprecipitation along with yeast one-hybrid, and effector-reporter assays showed this regulation was direct. Further analysis revealed that PagSND1 (SECONDARY WALL-ASSOCIATED NAC-DOMAIN PROTEIN1) directly regulates PagMYB128 but not cell wall metabolic genes, highlighting the pivotal role of PagMYB128 in the SND1-driven regulatory network for wood development, thereby creating a feedforward loop in SCW biosynthesis.
植物次生细胞壁(SCWs)中纤维素、木质素和半纤维素的生物合成受到一个层次分明的转录调控网络的调节。该网络的特点是杨树和拟南芥之间存在同源转录因子,突出了它们在遗传调控上的基础相似性。然而,关于杨树和拟南芥之间转录水平分子调控机制的差异行为的知识仍然有限。在这项研究中,我们研究了 PagMYB128 在木材形成过程中的功能,发现它对 SCW 形成的影响比其拟南芥同源物 AtMYB103 更广泛。过表达 PagMYB128 的转基因杨树表现出明显增强的木质部发育,纤维细胞和导管壁更厚,并且木材中的纤维素、木质素和半纤维素水平增加。相比之下,PagMYB128 显性抑制的植物表现出相反的表型。RNA 测序和反转录-定量聚合酶链反应显示 PagMYB128 可以激活 SCW 生物合成基因的表达,染色质免疫沉淀和酵母单杂交以及效应物-报告基因检测表明这种调控是直接的。进一步分析表明,PagSND1(次生壁相关 NAC 结构域蛋白 1)直接调节 PagMYB128 但不调节细胞壁代谢基因,突出了 PagMYB128 在 SND1 驱动的木材发育调控网络中的关键作用,从而在 SCW 生物合成中形成正反馈环。