Unveiling organ-specific metabolism of <i>Citrus clementina</i>

A Anurag Passi (Department of Pediatrics, University of California) D Diego Tec-Campos (Department of Pediatrics, University of California) M Manish Kumar J Juan D. Tibocha-Bonilla (Department of Pediatrics, University of California) C Cristal Zuñiga (Department of Pediatrics, University of California) B Beth Peacock (Department of Microbiology and Plant Pathology, University of California) A Amanda Hale (Department of Microbiology and Plant Pathology, University of California) R Rodrigo Santibáñez-Palominos (Department of Pediatrics, University of California) J James Borneman (Department of Microbiology and Plant Pathology, University of California) K Karsten Zengler (Department of Pediatrics, University of California)

Abstract

Understanding plant response to environmental factors such as temperature, drought, diseases, and carbon-to-nitrogen (C:N) ratio is essential for crop resilience, quality, and adaptation to climate change. Here, we present i Citrus2616, a high-resolution organ-specific genome-scale metabolic model for Citrus clementina , comprising 2,616 genes, 8,653 metabolites, and 10,654 reactions. The model integrates organ-specific metabolomics data, i.e., leaf, stem, and root, and predicts plant responses to different conditions with high accuracy. Lower C:N ratios showed higher growth rates compared to higher C:N ratios, suggesting an inverse relationship between growth and C:N ratios. Simulations show that polymers such as starch and hemicellulose increased 4-fold under mixotrophic compared to phototrophic conditions, contributing to enhanced rigidity of cell walls, thus improving mechanical and drought stress. Furthermore, i Citrus2616 revealed higher production of specialized metabolites such as flavonoids in the presence of specific nutrients. Additionally, transcriptomics data from symptomatic and asymptomatic leaf and root tissues across four seasons (winter, spring, fall, and summer) during Huanglongbing infection (citrus greening) were integrated into the model. This integration revealed tissue-specific metabolic adaptations, including shifts in energy allocation, secondary metabolite production, and stress-response pathways under biotic stress. These findings underscore the utility of i Citrus2616 in elucidating the metabolic underpinnings of biotic and abiotic stress resilience and could aid in improving crop productivity and quality, thereby meeting escalating market demands.

Article Details

Volume / Issue Vol. 122, Issue 29
Published July 22, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

A

Anurag Passi

Department of Pediatrics, University of California

D

Diego Tec-Campos

Department of Pediatrics, University of California

M

Manish Kumar

J

Juan D. Tibocha-Bonilla

Department of Pediatrics, University of California

C

Cristal Zuñiga

Department of Pediatrics, University of California

B

Beth Peacock

Department of Microbiology and Plant Pathology, University of California

A

Amanda Hale

Department of Microbiology and Plant Pathology, University of California

R

Rodrigo Santibáñez-Palominos

Department of Pediatrics, University of California

J

James Borneman

Department of Microbiology and Plant Pathology, University of California

K

Karsten Zengler

Department of Pediatrics, University of California