Liu Wuyu, Zhang Weiqin, Cheng Huaping, Ding Yuxin, Yao Baihui, Shangguan Zhouping, Wei Gehong, Chen Juan
State Key Laboratory for Crop Stress Resistance and High-Efficiency Production, Shaanxi Key Laboratory of Agricultural and Environmental Microbiology, College of Life Sciences, Northwest A&F University, 712100 Yangling, Shaanxi, P.R. China.
State Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, Northwest A&F University, 712100 Yangling, Shaanxi, P.R. China.
Plant Physiol. 2024 Dec 2;196(4):2232-2250. doi: 10.1093/plphys/kiae411.
Hydrogen sulfide (H2S) is required for optimal establishment of soybean (Glycine max)-Sinorhizobium fredii symbiotic interaction, yet its role in regulating the nitrogen fixation-senescence transition remains poorly understood. A S. fredii cystathionine γ-lyase (CSE) mutant deficient in H2S synthesis showed early nodule senescence characterized by reduced nitrogenase activity, structural changes in nodule cells, and accelerated bacteroid death. In parallel, the CSE mutant facilitated the generation of reactive oxygen species (ROS) and elicited antioxidant responses. We observed that H2S-mediated persulfidation of cysteine C31/C80 in ascorbate peroxidase (APX) and C32 in APX2-modulated enzyme activity, thereby participating in hydrogen peroxide (H2O2) detoxification and delaying nodule senescence. Comparative transcriptomic analysis revealed a significant upregulation of GmMYB128, an MYB transcription factor (TF), in the CSE mutant nodules. Functional analysis through overexpression and RNAi lines of GmMYB128 demonstrated its role as a positive regulator in nodule senescence. MYB128-OE inoculated with the CSE mutant strain exhibited a reduction in nitrogenase activity and a significant increase in DD15 expression, both of which were mitigated by NaHS addition. Changes at the protein level encompassed the activation of plant defenses alongside turnover in carbohydrates and amino acids. Our results suggest that H2S plays an important role in maintaining efficient symbiosis and preventing premature senescence of soybean nodules.
硫化氢(H₂S)是大豆(Glycine max)与费氏中华根瘤菌(Sinorhizobium fredii)共生相互作用得以最佳建立所必需的,但人们对其在调节固氮-衰老转变过程中的作用仍知之甚少。一个缺乏H₂S合成能力的费氏中华根瘤菌胱硫醚γ-裂合酶(CSE)突变体表现出早期根瘤衰老,其特征为固氮酶活性降低、根瘤细胞结构变化以及类菌体死亡加速。与此同时,CSE突变体促进了活性氧(ROS)的产生并引发了抗氧化反应。我们观察到,H₂S介导的抗坏血酸过氧化物酶(APX)中半胱氨酸C31/C80和APX2中半胱氨酸C32的过硫化作用调节了酶活性,从而参与过氧化氢(H₂O₂)解毒并延缓根瘤衰老。比较转录组分析显示,CSE突变体根瘤中一个MYB转录因子(TF)GmMYB⁃128显著上调。通过GmMYB128的过表达和RNA干扰株系进行的功能分析表明,它在根瘤衰老中起正调控作用。接种CSE突变体菌株的MYB128过表达植株表现出固氮酶活性降低以及DD15表达显著增加,添加NaHS均可缓解这两种情况。蛋白质水平的变化包括植物防御的激活以及碳水化合物和氨基酸的周转。我们的结果表明,H₂S在维持大豆根瘤高效共生和防止过早衰老方面发挥着重要作用。