Department of Biotechnology, Science Campus, Alagappa University, Karaikudi, Tamil Nadu, 630 003, India.
T. Stanes & Company Ltd, Phytopharma Testing Laboratory, Herbal Division, 1128, Coimbatore, 641 018, India.
Sci Rep. 2018 Jun 18;8(1):9270. doi: 10.1038/s41598-018-27703-8.
The diversity in plant metabolites with improved phytonutrients is essential to achieve global food security and sustainable crop yield. Our study using computational metabolomics genome wide association study (cmGWAS) reports on a comprehensive profiling of threonine (Thr) metabolite in rice. Sixteen abiotic stress responsive (AbSR) - Thr metabolite producing genes (ThrMPG), modulate metabolite levels and play a significant role determining both physiological and nutritional importance of rice. These AbSR-ThrMPG were computationally analysed for their protein properties using OryzaCyc through plant metabolic network analyser. A total of 1373 and 1028 SNPs were involved in complex traits and genomic variations. Comparative mapping of AbSR-ThrMPG revealed the chromosomal colinearity with C4 grass species. Further, computational expression pattern of these genes predicted a differential expression profiling in diverse developmental tissues. Protein interaction of protein coding gene sequences revealed that the abiotic stresses (AbS) are multigenic in nature. In silico expression of AbSR-ThrMPG determined the putative involvement in response to individual AbS. This is the first comprehensive genome wide study reporting on AbSR -ThrMPG analysis in rice. The results of this study provide a pivotal resource for further functional investigation of these key genes in the vital areas of manipulating AbS signaling in rice improvement.
植物代谢物的多样性和提高的植物营养素对于实现全球粮食安全和可持续作物产量至关重要。我们使用计算代谢组学全基因组关联研究(cmGWAS)的研究报告了对水稻中苏氨酸(Thr)代谢物的全面分析。16 个非生物胁迫响应(AbSR)-苏氨酸代谢产物产生基因(ThrMPG),调节代谢物水平,并在确定水稻的生理和营养重要性方面发挥重要作用。这些 AbSR-ThrMPG 通过植物代谢网络分析器中的 OryzaCyc 进行了蛋白质特性的计算分析。共有 1373 个和 1028 个 SNP 参与了复杂性状和基因组变异。AbSR-ThrMPG 的比较作图揭示了与 C4 草本植物的染色体共线性。此外,这些基因的计算表达模式预测了在不同发育组织中的差异表达谱。蛋白质编码基因序列的蛋白质相互作用表明,非生物胁迫(AbS)在本质上是多基因的。AbSR-ThrMPG 的计算机表达确定了它们在单个 AbS 反应中的潜在参与。这是在水稻中首次进行全面的全基因组研究,报告了 AbSR-ThrMPG 分析。这项研究的结果为进一步研究这些关键基因在水稻改良中操纵 AbS 信号的重要领域的功能提供了重要资源。