Center for Plant Water-use and Nutrition Regulation and College of Life Sciences, Joint International Research Laboratory of Water and Nutrient in Crop, Fujian Agriculture and Forestry University, Fuzhou, China.
College of Agriculture, Yangzhou University, Yangzhou, China.
Plant J. 2021 May;106(3):706-719. doi: 10.1111/tpj.15193. Epub 2021 Apr 6.
Phosphorus is a crucial macronutrient for plant growth and development. The mechanisms for maintaining inorganic phosphate (Pi) homeostasis in rice are not well understood. The ubiquitin-conjugating enzyme variant protein OsUEV1B was previously found to interact with OsUbc13 and mediate lysine63-linked polyubiquitination. In the present study, we found OsUEV1B was specifically inhibited by Pi deficiency, and was localized in the nucleus and cytoplasm. Both osuev1b mutant and OsUEV1B-RNA interference (RNAi) lines displayed serious symptoms of toxicity due to Pi overaccumulation. Some Pi starvation inducible and phosphate transporter genes were upregulated in osuev1b mutant and OsUEV1B-RNAi plants in association with enhanced Pi acquisition, and representative Pi starvation responses, including stimulation of acid phosphatase activity and root hair growth, were also activated in the presence of sufficient Pi. A yeast two-hybrid screen revealed an interaction between OsUEV1B and OsVDAC1, which was confirmed by bimolecular fluorescence complementation and firefly split-luciferase complementation assays. OsVDAC1 encoded a voltage-dependent anion channel protein localized in the mitochondria, and OsUbc13 was shown to interact with OsVDAC1 via yeast two-hybrid and bimolecular fluorescence complementation assays. Under sufficient Pi conditions, similar to osuev1b, a mutation in OsVDAC1 resulted in significantly greater Pi concentrations in the roots and second leaves, improved acid phosphatase activity, and enhanced expression of the Pi starvation inducible and phosphate transporter genes compared with wild-type DongJin, whereas overexpression of OsVDAC1 had the opposite effects. OsUEV1B or OsVDAC1 knockout reduced the mitochondrial membrane potential and adenosine triphosphate levels. Moreover, overexpression of OsVDAC1 in osuev1b partially restored its high Pi concentration to a level between those of osuev1b and DongJin. Our results indicate that OsUEV1B is required for rice phosphate homeostasis.
磷是植物生长和发育的关键大量营养素。维持水稻无机磷酸盐(Pi)动态平衡的机制尚不清楚。先前发现泛素连接酶变体蛋白 OsUEV1B 与 OsUbc13 相互作用并介导赖氨酸 63 连接的多泛素化。在本研究中,我们发现 OsUEV1B 特异性地被 Pi 缺乏抑制,并且定位于核和细胞质中。osuev1b 突变体和 OsUEV1B-RNAi 系由于 Pi 过度积累而表现出严重的毒性症状。在 osuev1b 突变体和 OsUEV1B-RNAi 植物中,一些 Pi 饥饿诱导和磷酸盐转运体基因上调,与增强的 Pi 摄取有关,并且在存在足够 Pi 的情况下,代表性的 Pi 饥饿反应,包括酸性磷酸酶活性和根毛生长的刺激,也被激活。酵母双杂交筛选揭示了 OsUEV1B 和 OsVDAC1 之间的相互作用,通过双分子荧光互补和萤火虫分裂荧光素酶互补测定证实了这一点。OsVDAC1 编码一种定位于线粒体的电压依赖性阴离子通道蛋白,并且 OsUbc13 被证明通过酵母双杂交和双分子荧光互补测定与 OsVDAC1 相互作用。在充足的 Pi 条件下,与 osuev1b 相似,OsVDAC1 突变导致根和第二叶中的 Pi 浓度显著增加,酸性磷酸酶活性提高,并且 Pi 饥饿诱导和磷酸盐转运体基因的表达增强,与野生型 DongJin 相比,而 OsVDAC1 的过表达则具有相反的效果。OsUEV1B 或 OsVDAC1 敲除降低了线粒体膜电位和三磷酸腺苷水平。此外,OsVDAC1 在 osuev1b 中的过表达部分将其高 Pi 浓度恢复到介于 osuev1b 和 DongJin 之间的水平。我们的结果表明,OsUEV1B 是水稻磷酸盐动态平衡所必需的。