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  4. Model-to-crop conserved NUE Regulons enhance machine learning predictions of nitrogen use efficiency
 
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Model-to-crop conserved NUE Regulons enhance machine learning predictions of nitrogen use efficiency

Journal
The Plant Cell
Journal Volume
37
Journal Issue
5
Start Page
koaf093
ISSN
1040-4651
1532-298X
Date Issued
2025-05-01
Author(s)
Huang, Ji
CHIA-YI CHENG  
Brooks, Matthew D
Jeffers, Tim L
Doner, Nathan M
Shih, Hung-Jui
Frangos, Samantha
Katari, Manpreet Singh
Coruzzi, Gloria M
DOI
10.1093/plcell/koaf093
URI
https://www.scopus.com/record/display.uri?eid=2-s2.0-105007195739&origin=resultslist
https://scholars.lib.ntu.edu.tw/handle/123456789/730233
Abstract
Systems biology aims to uncover gene regulatory networks (GRNs) for agricultural traits, but validating them in crops is challenging. We addressed this challenge by learning and validating model-to-crop transcription factor (TF) regulons governing nitrogen use efficiency (NUE). First, a fine-scale time-course nitrogen (N) response transcriptome analysis revealed a conserved temporal N response cascade in maize (Zea mays) and Arabidopsis (Arabidopsis thaliana). These data were used to infer time-based causal TF target edges in N-regulated GRNs. By validating 23 maize TFs in a cell-based TF-perturbation assay (Transient Assay Reporting Genome-wide Effects of Transcription factors), precision/recall analysis enabled us to prune high-confidence edges between ∼200 TFs/700 maize target genes. We next learned gene-to-NUE trait scores using XGBoost machine learning models trained on conserved N-responsive genes across maize and Arabidopsis accessions. By integrating NUE gene scores within our N-GRN, we ranked maize TFs based on a cumulative NUE Regulon score. NUE Regulons for top-ranked TFs were validated using the cell-based TARGET assay in maize (e.g. ZmMYB34/R3→24 targets) and the Arabidopsis ZmMYB34/R3 ortholog (e.g. AtDIV1→23 targets). The genes in this NUE Regulon significantly enhanced the ability of XGBoost models to predict NUE traits in both maize and Arabidopsis. Thus, our pipeline for identifying TF regulons that combines GRN inference, machine learning, and orthologous network regulons offers a strategic framework for crop trait improvement.
SDGs

[SDGs]SDG2

Publisher
Oxford University Press (OUP)
Type
journal article

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