An Baoguang, Lan Jie, Deng Xiaolong, Chen Silan, Ouyang Chao, Shi Huiyun, Yang Jing, Li Yangsheng
State Key Laboratory of Hybrid Rice, Key Laboratory for Research and Utilization of Heterosis in Indica Rice, Ministry of Agriculture, The Yangtze River Valley Hybrid Rice Collaboration Innovation Center, College of Life Sciences, Wuhan University, Wuhan, China.
Hainan Bolian Rice Gene Technology Co., Ltd., Haikou, China.
Front Plant Sci. 2017 Dec 5;8:2071. doi: 10.3389/fpls.2017.02071. eCollection 2017.
D-Lactate is oxidized by two classes of D-lactate dehydrogenase (D-LDH), namely, NAD-dependent and NAD-independent D-LDHs. Little is known about the characteristics and biological functions of D-LDHs in rice. In this study, a functional NAD-independent D-LDH (LOC_Os07g06890) was identified in rice, as a result of alternative splicing events. Characterization of the expression profile, subcellular localization, and enzymatic properties of the functional OsD-LDH revealed that it is a mitochondrial cytochrome--dependent D-LDH with high affinity and catalytic efficiency. Functional analysis of RNAi transgenic rice demonstrated that OsD-LDH participates in methylglyoxal metabolism by affecting the activity of the glyoxalase system and aldo-keto reductases. Under methylglyoxal treatment, silencing of OsD-LDH in rice resulted in the accumulation of methylglyoxal and D-lactate, the decrease of reduced glutathione in leaves, and ultimately severe growth inhibition. Moreover, the detached leaves of RNAi plants were more sensitive to salt stress. However, the silencing of OsD-LDH did not affect the growth under photorespiration conditions. Our results provide new insights into the role of NAD-independent D-LDHs in rice.
D-乳酸可被两类D-乳酸脱氢酶(D-LDH)氧化,即依赖NAD的和不依赖NAD的D-LDH。关于水稻中D-LDH的特性和生物学功能知之甚少。在本研究中,通过可变剪接事件在水稻中鉴定出一种功能性不依赖NAD的D-LDH(LOC_Os07g06890)。对功能性OsD-LDH的表达谱、亚细胞定位和酶学特性进行表征,结果表明它是一种线粒体细胞色素依赖性D-LDH,具有高亲和力和催化效率。对RNAi转基因水稻的功能分析表明,OsD-LDH通过影响乙二醛酶系统和醛酮还原酶的活性参与甲基乙二醛代谢。在甲基乙二醛处理下,水稻中OsD-LDH的沉默导致甲基乙二醛和D-乳酸的积累、叶片中还原型谷胱甘肽的减少,并最终导致严重的生长抑制。此外,RNAi植株的离体叶片对盐胁迫更敏感。然而,OsD-LDH的沉默并不影响光呼吸条件下的生长。我们的结果为不依赖NAD的D-LDH在水稻中的作用提供了新的见解。