UMRT INRAE 1158 BioEcoAgro-BIOPI Biologie des Plantes et Innovation, Université de Picardie, 33 Rue St Leu, Amiens 80039, France.
School of Chemical Sciences, The University of Auckland, Private Bag 92019, Auckland 1142, New Zealand.
Plant Cell. 2023 Aug 2;35(8):3073-3091. doi: 10.1093/plcell/koad134.
Polygalacturonases (PGs) fine-tune pectins to modulate cell wall chemistry and mechanics, impacting plant development. The large number of PGs encoded in plant genomes leads to questions on the diversity and specificity of distinct isozymes. Herein, we report the crystal structures of 2 Arabidopsis thaliana PGs, POLYGALACTURONASE LATERAL ROOT (PGLR), and ARABIDOPSIS DEHISCENCE ZONE POLYGALACTURONASE2 (ADPG2), which are coexpressed during root development. We first determined the amino acid variations and steric clashes that explain the absence of inhibition of the plant PGs by endogenous PG-inhibiting proteins (PGIPs). Although their beta helix folds are highly similar, PGLR and ADPG2 subsites in the substrate binding groove are occupied by divergent amino acids. By combining molecular dynamic simulations, analysis of enzyme kinetics, and hydrolysis products, we showed that these structural differences translated into distinct enzyme-substrate dynamics and enzyme processivities: ADPG2 showed greater substrate fluctuations with hydrolysis products, oligogalacturonides (OGs), with a degree of polymerization (DP) of ≤4, while the DP of OGs generated by PGLR was between 5 and 9. Using the Arabidopsis root as a developmental model, exogenous application of purified enzymes showed that the highly processive ADPG2 had major effects on both root cell elongation and cell adhesion. This work highlights the importance of PG processivity on pectin degradation regulating plant development.
多聚半乳糖醛酸酶(PGs)精细调控果胶以调节细胞壁的化学和力学特性,从而影响植物的发育。植物基因组中编码的大量 PG 引发了对不同同工酶多样性和特异性的问题。在此,我们报告了 2 种拟南芥 PG 的晶体结构,即多聚半乳糖醛酸酶侧根(PGLR)和拟南芥离层区多聚半乳糖醛酸酶 2(ADPG2),它们在根发育过程中共同表达。我们首先确定了氨基酸变异和空间位阻,这些变异和位阻解释了植物 PG 不受内源性 PG 抑制蛋白(PGIPs)抑制的原因。尽管它们的β螺旋折叠非常相似,但 PGLR 和 ADPG2 在底物结合槽中的亚基位置被不同的氨基酸占据。通过结合分子动力学模拟、酶动力学分析和水解产物分析,我们表明这些结构差异转化为不同的酶-底物动力学和酶的进程性:ADPG2 显示出更大的底物波动,水解产物为寡半乳糖醛酸(OGs),聚合度(DP)≤4,而 PGLR 产生的 OGs 的 DP 介于 5 和 9 之间。利用拟南芥根作为发育模型,纯化酶的外源应用表明,高进程性的 ADPG2 对根细胞伸长和细胞黏附都有重大影响。这项工作强调了 PG 进程性在果胶降解调节植物发育中的重要性。