Mehra Poonam, Pandey Bipin Kumar, Giri Jitender
National Institute of Plant Genome Research, New Delhi, India.
Plant Biotechnol J. 2017 Aug;15(8):1054-1067. doi: 10.1111/pbi.12699. Epub 2017 Mar 2.
Phosphate (Pi) deficiency in soil system is a limiting factor for rice growth and yield. Majority of the soil phosphorus (P) is organic in nature, not readily available for root uptake. Low Pi-inducible purple acid phosphatases (PAPs) are hypothesized to enhance the availability of Pi in soil and cellular system. However, information on molecular and physiological roles of rice PAPs is very limited. Here, we demonstrate the role of a novel rice PAP, OsPAP21b in improving plant utilization of organic-P. OsPAP21b was found to be under the transcriptional control of OsPHR2 and strictly regulated by plant Pi status at both transcript and protein levels. Biochemically, OsPAP21b showed hydrolysis of several organophosphates at acidic pH and possessed sufficient thermostability befitting for high-temperature rice ecosystems with acidic soils. Interestingly, OsPAP21b was revealed to be a secretory PAP and encodes a distinguishable major APase (acid phosphatase) isoform under low Pi in roots. Further, OsPAP21b-overexpressing transgenics showed increased biomass, APase activity and P content in both hydroponics supplemented with organic-P sources and soil containing organic manure as sole P source. Additionally, overexpression lines depicted increased root length, biomass and lateral roots under low Pi while RNAi lines showed reduced root length and biomass as compared to WT. In the light of these evidences, present study strongly proposes OsPAP21b as a useful candidate for improving Pi acquisition and utilization in rice.
土壤系统中的磷(Pi)缺乏是水稻生长和产量的限制因素。大多数土壤磷(P)本质上是有机的,不易被根系吸收。低磷诱导型紫色酸性磷酸酶(PAPs)被认为可以提高土壤和细胞系统中磷的有效性。然而,关于水稻PAPs分子和生理作用的信息非常有限。在此,我们证明了一种新型水稻PAP——OsPAP21b在提高植物对有机磷利用方面的作用。发现OsPAP21b受OsPHR2的转录调控,并且在转录和蛋白质水平上都受到植物磷状态的严格调节。生化分析表明,OsPAP21b在酸性pH条件下能水解多种有机磷酸盐,并且具有足够的热稳定性,适合于酸性土壤的高温水稻生态系统。有趣的是,OsPAP21b被发现是一种分泌型PAP,并且在低磷条件下在根中编码一种可区分的主要酸性磷酸酶(APase)同工型。此外,过表达OsPAP21b的转基因植株在补充有机磷源的水培体系和以有机肥作为唯一磷源的土壤中,生物量、APase活性和磷含量均增加。此外,在低磷条件下,过表达株系的根长、生物量和侧根增加,而RNA干扰株系与野生型相比根长和生物量减少。鉴于这些证据,本研究强烈建议将OsPAP21b作为提高水稻磷吸收和利用的有用候选基因。