Nutrient dose-responsive transcriptome changes driven by Michaelis Menten kinetics underlie plant growth rates

Swift, Joseph; Alvarez, Jose M.; Araus, Viviana; Gutierrez, Rodrigo A.; Coruzzi, Gloria M.

Abstract

An increase in nutrient dose leads to proportional increases in crop biomass and agricultural yield. However, the molecular underpinnings of this nutrient dose-response are largely unknown. To investigate, we assayed changes in the Arabidopsis root transcriptome to different doses of nitrogen (N) a key plant nutrient as a function of time. By these means, we found that rate changes of genome-wide transcript levels in response to N-dose could be explained by a simple kinetic principle: the Michaelis-Menten (MM) model. Fitting the MM model allowed us to estimate the maximum rate of transcript change (V-max), as well as the N-dose at which one-half of V-max was achieved (K-m) for 1,153 N-dose-responsive genes. Since transcription factors (TF5) can act in part as the catalytic agents that determine the rates of transcript change, we investigated their role in regulating N-dose-responsive MM-modeled genes. We found that altering the abundance of TGA1, an early N -responsive TF, perturbed the maximum rates of N-dose transcriptomic responses (V-max), K-m, as well as the rate of N-dose-responsive plant growth. We experimentally validated that MM -modeled N-dose-responsive genes included both direct and indirect TGA1 targets, using a root cell TF assay to detect TF binding and/or TF regulation genome-wide. Taken together, our results support a molecular mechanism of transcriptional control that allows an increase in N-dose to lead to a proportional change in the rate of genome-wide expression and plant growth.

Más información

Título según WOS: Nutrient dose-responsive transcriptome changes driven by Michaelis Menten kinetics underlie plant growth rates
Título de la Revista: PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
Volumen: 117
Número: 23
Editorial: NATL ACAD SCIENCES
Fecha de publicación: 2020
Página de inicio: 12531
Página final: 12540
DOI:

10.1073/PNAS.1918619117

Notas: ISI