Alfatih Alamin, Wu Jie, Zhang Zi-Sheng, Xia Jin-Qiu, Jan Sami Ullah, Yu Lin-Hui, Xiang Cheng-Bin
School of Life Sciences and Division of Molecular & Cell Biophysics, Hefei National Science Center for Physical Sciences at the Microscale, University of Science and Technology of China, The Innovative Academy of Seed Design, Chinese Academy of Sciences, Hefei, Anhui Province, China.
J Exp Bot. 2020 Oct 7;71(19):6032-6042. doi: 10.1093/jxb/eraa292.
Nitrogen (N) is indispensable for crop growth and yield, but excessive agricultural application of nitrogenous fertilizers has generated severe environmental problems. A desirable and economical solution to cope with these issues is to improve crop nitrogen use efficiency (NUE). Plant NUE has been a focal point of intensive research worldwide, yet much still has to be learned about its genetic determinants and regulation. Here, we show that rice (Oryza sativa L.) NIN-LIKE PROTEIN 1 (OsNLP1) plays a fundamental role in N utilization. OsNLP1 protein localizes in the nucleus and its transcript level is rapidly induced by N starvation. Overexpression of OsNLP1 improves plant growth, grain yield, and NUE under different N conditions, while knockout of OsNLP1 impairs grain yield and NUE under N-limiting conditions. OsNLP1 regulates nitrate and ammonium utilization by cooperatively orchestrating multiple N uptake and assimilation genes. Chromatin immunoprecipitation and yeast one-hybrid assays showed that OsNLP1 can directly bind to the promoter of these genes to activate their expression. Therefore, our results demonstrate that OsNLP1 is a key regulator of N utilization and represents a potential target for improving NUE and yield in rice.
氮(N)对于作物生长和产量不可或缺,但农业上过量施用氮肥已引发严重的环境问题。应对这些问题的一个理想且经济的解决方案是提高作物氮素利用效率(NUE)。植物氮素利用效率一直是全球密集研究的焦点,但其遗传决定因素和调控机制仍有许多有待了解之处。在此,我们表明水稻(Oryza sativa L.)中的NIN样蛋白1(OsNLP1)在氮素利用中发挥着重要作用。OsNLP1蛋白定位于细胞核,其转录水平在氮饥饿时迅速诱导。过表达OsNLP1可改善不同氮条件下的植物生长、籽粒产量和氮素利用效率,而敲除OsNLP1则会在氮限制条件下损害籽粒产量和氮素利用效率。OsNLP1通过协同调控多个氮吸收和同化基因来调节硝酸盐和铵的利用。染色质免疫沉淀和酵母单杂交试验表明,OsNLP1可直接结合这些基因的启动子以激活其表达。因此,我们的结果表明OsNLP1是氮素利用的关键调节因子,也是提高水稻氮素利用效率和产量的潜在靶点。