Enhanced Proton Translocating Pyrophosphatase Activity Improves Nitrogen Use Efficiency in Romaine Lettuce

Author:

Paez-Valencia Julio1,Sanchez-Lares Jonathan1,Marsh Ellen1,Dorneles Liane T.1,Santos Mirella P.1,Sanchez Diego1,Winter Alexander1,Murphy Sean1,Cox Jennifer1,Trzaska Marcin1,Metler Jason1,Kozic Alex1,Facanha Arnoldo R.1,Schachtman Daniel1,Sanchez Charles A.1,Gaxiola Roberto A.1

Affiliation:

1. School of Life Sciences, Arizona State University, Tempe, Arizona 85287 (J.P.-V., J.L.-S., L.T.D., M.P.S., A.W., S.M., J.C., M.T., J.M., R.A.G.); Donald Danforth Plant Science Center, St. Louis, Missouri 63132 (E.M., D.Sc.); Universidade de Caxias do Sul Centro de Ciências Exatas, da Natureza e de Tecnologia Alameda João Dal Sasso, 95700–000 Bento Gonçalves, Rio Grande do Su, Brazil (L.T.D.); Uni

Abstract

Abstract Plant nitrate (NO3  −) acquisition depends on the combined activities of root high- and low-affinity NO3  − transporters and the proton gradient generated by the plasma membrane H+-ATPase. These processes are coordinated with photosynthesis and the carbon status of the plant. Here, we present the characterization of romaine lettuce (Lactuca sativa ‘Conquistador’) plants engineered to overexpress an intragenic gain-of-function allele of the type I proton translocating pyrophosphatase (H+-PPase) of Arabidopsis (Arabidopsis thaliana). The proton-pumping and inorganic pyrophosphate hydrolytic activities of these plants are augmented compared with control plants. Immunohistochemical data show a conspicuous increase in H+-PPase protein abundance at the vasculature of the transgenic plants. Transgenic plants displayed an enhanced rhizosphere acidification capacity consistent with the augmented plasma membrane H+-ATPase proton transport values, and ATP hydrolytic capacities evaluated in vitro. These transgenic lines outperform control plants when challenged with NO3  − limitations in laboratory, greenhouse, and field scenarios. Furthermore, we report the characterization of a lettuce LsNRT2.1 gene that is constitutive up-regulated in the transgenic plants. Of note, the expression of the LsNRT2.1 gene in control plants is regulated by NO3  − and sugars. Enhanced accumulation of 15N-labeled fertilizer by transgenic lettuce compared with control plants was observed in greenhouse experiments. A negative correlation between the level of root soluble sugars and biomass is consistent with the strong root growth that characterizes these transgenic plants.

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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