TY - JOUR
T1 - Bridging Metabolic Pathways
T2 - Coordinated Regulation of Isoprenoid and Phenylpropanoid Metabolism in Plants
AU - Di, Xueni
AU - Hu, Runmeng
AU - Gao, Yangyang
AU - Schaller, Hubert
AU - Madhujith, Terrance
AU - Hao, Gefei
AU - Hemmerlin, Andréa
AU - Liao, Pan
N1 - This work was partially supported by the Early Career Scheme grant from the RGC (Project No. 22100923 to P.L.), the NSFC/RGC Joint Research Scheme (Project No. N_HKBU201/23 to P.L.), the Areas of Excellence Scheme from the RGC (AoE/M-402/25-N), the PROCORE-France/HK Joint Research Scheme (Project No. F-HKBU201/23), the Department Start-up fund of Hong Kong Baptist University (Project No. BIOL-22-23-01), Hong Kong Baptist University, Research Committee, Initiation Grant - Faculty Niche Research Areas (IG-FNRA) 2022/23 (RC-FNRA-IG/22-23/SCI/01), and the Innovation and Technology Fund of Innovation Technology Commission: Funding Support to State Key Laboratory of Agrobiotechnology (to P.L.) and JC STEM Early Career Research Fellows supported by The Hong Kong Jockey Club Charities Trust (to X.D.). The authors acknowledge the facility support from the Advanced Life Sciences and Mass Spectrometry Laboratory (LSMS) of Hong Kong Baptist University and the Wu Jieh Yee Institute of Translational Chinese Medicine Research, HKBU. Any opinions, findings, conclusions or recommendations expressed in this publication do not reflect the views of the Government of the Hong Kong Special Administrative Region or the Innovation and Technology Commission.
Publisher copyright:
© The Author(s) 2026. Published by Oxford University Press on behalf of the Society for Experimental Biology.
PY - 2026/4/22
Y1 - 2026/4/22
N2 - Plants face the core challenge of balancing growth and defense through fine-tuned metabolic regulation, which hinges on the coordinated biosynthesis of specialized metabolites such as isoprenoids and phenylpropanoids. This review integrates current insights into the dynamic interplay between these pathways, highlighting their role as a unified adaptive response to abiotic stresses, including drought, light, salinity, heavy metals, nutrient deficiency, altitude, temperature extremes, and combined stressors. Their interaction establishes a context-dependent regulatory network, characterized by both synergistic and antagonistic effects, potentially driven by competition for the shared precursor phosphoenolpyruvate. This metabolic node demands dynamic resource allocation, inherently generating trade-offs that shape its complex regulatory relationship. Hierarchical transcriptional networks, involving specific of transcription factors families, further refine this cross-pathway communication. By integrating environmental and developmental cues, these networks fine-tune metabolic output to achieve coordinated physiological responses. The crosstalk between isoprenoid and phenylpropanoid pathways is a key regulatory node for metabolic plasticity, enabling plants to deploy robust, multi-layered defenses. Deciphering the systemic signals and regulatory hubs governing these pathways is critical for the rational engineering of resilient crops and the optimization of phytochemical production. Adopting a holistic view of plant metabolic networks is equally vital for addressing global challenges from climate adaptation to sustainable agriculture.
AB - Plants face the core challenge of balancing growth and defense through fine-tuned metabolic regulation, which hinges on the coordinated biosynthesis of specialized metabolites such as isoprenoids and phenylpropanoids. This review integrates current insights into the dynamic interplay between these pathways, highlighting their role as a unified adaptive response to abiotic stresses, including drought, light, salinity, heavy metals, nutrient deficiency, altitude, temperature extremes, and combined stressors. Their interaction establishes a context-dependent regulatory network, characterized by both synergistic and antagonistic effects, potentially driven by competition for the shared precursor phosphoenolpyruvate. This metabolic node demands dynamic resource allocation, inherently generating trade-offs that shape its complex regulatory relationship. Hierarchical transcriptional networks, involving specific of transcription factors families, further refine this cross-pathway communication. By integrating environmental and developmental cues, these networks fine-tune metabolic output to achieve coordinated physiological responses. The crosstalk between isoprenoid and phenylpropanoid pathways is a key regulatory node for metabolic plasticity, enabling plants to deploy robust, multi-layered defenses. Deciphering the systemic signals and regulatory hubs governing these pathways is critical for the rational engineering of resilient crops and the optimization of phytochemical production. Adopting a holistic view of plant metabolic networks is equally vital for addressing global challenges from climate adaptation to sustainable agriculture.
KW - Abiotic stress
KW - Crosstalk
KW - Isoprenoid
KW - Metabolic plasticity
KW - Phenylpropanoid
KW - Transcription factors
U2 - 10.1093/jxb/erag199
DO - 10.1093/jxb/erag199
M3 - Journal article
C2 - 42017303
SN - 0022-0957
JO - Journal of Experimental Botany
JF - Journal of Experimental Botany
ER -