Nutrient dose-responsive transcriptome changes driven by Michaelis–Menten kinetics underlie plant growth rates
Abstract
An increase in nutrient dose leads to proportional increases in crop biomass and agricultural yield. However, the molecular underpinnings of this nutrient doseâresponse are largely unknown. To investigate, we assayed changes in the Arabidopsis root transcriptome to different doses of nitrogen (N)âa key plant nutrientâas 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 MichaelisâMenten (MM) model. Fitting the MM model allowed us to estimate the maximum rate of transcript change (Vmax), as well as the N-dose at which one-half of Vmax was achieved (Km) for 1,153 N-doseâresponsive genes. Since transcription factors (TFs) can act in part as the catalytic agents that determine the rates of transcript change, we investigated their role in regulating N-doseâresponsive 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 (Vmax), Km, as well as the rate of N-doseâresponsive plant growth. We experimentally validated that MM-modeled N-doseâresponsive 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 según SCOPUS: | Nutrient dose-responsive transcriptome changes driven by MichaelisâMenten 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: | National Academy of Sciences |
| Fecha de publicación: | 2020 |
| Página final: | 12540 |
| Idioma: | English |
| URL: | https://www.pnas.org/content/pnas/117/23/12531.full.pdf |
| DOI: |
10.1073/pnas.1918619117 |
| Notas: | ISI, SCOPUS - ISI SCOPUS |