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Editorial: Phenylpropanoid metabolism in plants: functional diversity, stress resilience, and biotechnological applications

Sep 2026 · Frontiers in Plant Science · 10 references

Abstract

that govern them (Hanusch et al., 2026;Ninkuu et al., 2022;Tohge et al., 2018). Recent studies compiled in this special issue collectively demonstrate that plant chemodiversity is driven by intricate coordination between regulatory networks, metabolic pathways, and environmental signals. These studies, ranging from molecular evolution of biosynthetic enzymes to the ecological consequences of volatile compounds, collectively demonstrate how plants optimize their chemical architecture, highlighting novel perspectives on harnessing metabolic diversity for sustainable agriculture and biotechnological benefits.One fundamental question in plant metabolism is the expansion and diversification of gene families to produce chemical complexity. This question was addressed by Kaur et al through molecular characterization of the 4-Coumarate CoA ligase (4CL) gene family in orchids. 4-Coumarate CoA ligase is a key enzyme in the phenylpropanoid pathway involved in metabolic flux distribution by catalyzing the conversion of p-coumaric acid into p-coumaroyl-CoA. This key branching metabolite simultaneously feeds both the lignin and flavonoid pathways, producing a diverse array of metabolites (Ninkuu et al., 2023).Kaur et al in-silico analysis highlighted the structural diversity, evolutionary conservation, and potential functional specialization of 4CL members in orchids (Figure 1b). A comprehensive understanding of the 4CL enzyme can help elucidate the evolution of novel phenylpropanoid metabolites by plants.Although gene-family diversification expands the metabolic capacity for chemical diversification, this is dynamically regulated by transcriptional, epigenetic, and environmental factors. Hence, plant metabolism is driven by interconnected networks of biosynthetic genes, signaling pathways, transcription factors, and other regulatory mechanisms. Zheng et al. demonstrated this complexity in a transcriptome analysis of leaves from the upper and mid portions of Xanthoceras sorbifolia, revealing distinctions in flavonoid production between leaf tissues and emphasizing that flavonoid accumulation is driven by coordinated pathway components rather than by biosynthetic genes alone. The study also noted that higher flavonoid accumulation was associated with enhanced antioxidant capacity and stress tolerance, with FLS, 4CL, and FG3 regulating this process. These findings demonstrate that chemodiversity is not solely driven by expansion of biosynthetic capacity, but also by context-dependent modulation of metabolic flux. In related findings, Zhang et al. demonstrated that geographical origin can influence acteoside metabolism in Rehmannia glutinosa by reprogramming its transcriptome and metabolomic architecture in a coordinated manner (Figure 1d). This study showed that environmental cues influence the molecular signature underpinning medicinal plant quality. Specifically, Henan-grown roots showed coordinated upregulation of PAL, C4H, 4CL, TyDC, and UGT, supporting enhanced flux through the phenylpropanoid and tyrosinederived branches of acteoside biosynthesis. Understanding the environmental factors that influence medicinal plants' metabolism is essential for optimizing cultivation practices, standardizing these crops, and preserving the authenticity of products derived from them.Plants' internal regulations can also impact their ecological functions. For instance, the volatile profile in specific cultivars of Passiflora edulis (passion fruit) influences the feeding preference of thrips. According to Li et al., plant metabolites can mediate ecological signaling cascades, enhancing plant-organism interactions by using volatile compounds as communication signals for pollinators, herbivores, and microorganisms. Leaf volatile organic compounds (VOCs) in P. edulis influence thrips preference and resistance. A total of 87 differential VOCs, metabolically associated with the phenylpropanoid and αlinolenic acid pathways, were identified, including benzaldehyde and (Z)-3-hexenol as key compounds.Whereas benzaldehyde attracted 58% of thrips, (Z)-3-hexenol repelled 22% of them. This mechanism offers an interesting opportunity for future translational studies to develop environmentally friendly pest management products and provides clues for breeding targets to address pest resistance. These studies collectively showed that plant chemodiversity is generated through an intricate network of regulators, including transcription factors, gene families, environmental conditions, epigenetic modifications, and ecological interactions, rather than through isolated pathways. The intricate interactions among these factors equip plants to respond to external and internal stimuli.Future research should move beyond descriptive metabolite profiling toward predictive models that connect genotype, regulatory state, environment, and metabolic phenotype. Integrating multi-omics with machine learning, genome editing, and synthetic biology could enable researchers to predict and experimentally redirect metabolic flux under defined environmental conditions (Figure 1e). Predicting how environmental conditions, genetic variation, and regulatory mechanisms fine-tune metabolite production provides an opportunity to improve crop breeding, medicinal plant cultivation, and the sustainable production of natural products from plants (Feng et al., 2024).The contributions in this special issue reiterate that metabolites are dynamic outputs of environmental control, evolutionary history, and ecological relationships, rather than mere chemical molecules accumulated in plant tissues. Therefore, harnessing the potential of plant chemodiversity requires reframing an integrated approach beyond cataloging metabolites towards elucidating the biological principles governing their emergence, modulation, and functions. Moreover, the recent impact of climate change and growing demand for sustainable resource production have increased attention on deciphering plants' chemical language as alternative strategies to develop resilient crops, novel bioactive compounds, and build a sustainable future.

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