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REVIEW article

Front. Plant Sci.

Sec. Plant Metabolism and Chemodiversity

This article is part of the Research TopicDecoding the chemical lexicon of plant defense in a shifting ecosystemView all 4 articles

Cytochrome P450 Gene Family: Cross-Pathway Functional Conservation, Novel Catalytic Reactions, and Synthetic Biology-Driven Applications in Plant Secondary Metabolism

Provisionally accepted
Lang  ChenLang Chen1Yingying  ZhaoYingying Zhao2Sujing  HeSujing He1Jialing  LeiJialing Lei1Hongwei  LiHongwei Li1Liu  ZhizhaiLiu Zhizhai3Liang  ZhangLiang Zhang4Liwen  YangLiwen Yang5Kuanping  DengKuanping Deng2Run-Lan  WanRun-Lan Wan6Delin  XuDelin Xu1*
  • 1Zunyi Medical University, Zunyi, China
  • 2Zunyi Academy of Agricultural Sciences, Zunyi, China
  • 3Southwest University, Chongqing, China
  • 4Xihua University, Chengdu, China
  • 5Southwest Jiaotong University, Chengdu, China
  • 6The Affiliated Hospital of Southwest Medical University, Luzhou, China

The final, formatted version of the article will be published soon.

Plant secondary metabolites play fundamental roles in plant defense and environmental adaptation, and possess extensive high-value applications in medicine, agriculture, and industrial biotechnology. The cytochrome P450 (CYPs) family occupies a central position in metabolic networks by catalyzing key reactions in the biosynthesis of terpenoids, alkaloids, and flavonoids. Although the role of CYPs in these pathways is well documented, their precise catalytic mechanisms and regulatory networks remain poorly characterized.In this review, we summarize recent advances in CYP classification, structural features, and catalytic diversity across plant species. We also analyze the transcriptional regulation and environmental signals that control CYP gene expression. Based on this synthesis, we propose an integrated strategy combining CYP enzyme engineering with metabolic pathway optimization to enhance the sustainable production of valuable secondary metabolites. Furthermore, we outline how CYP-centered approaches can improve the quality of medicinal plants and enable scalable bioreactor-based production. Interdisciplinary collaboration, supported by emerging technologies such as synthetic biology and machine learning, will be essential to overcome current limitations in CYP functional characterization, providing both mechanistic insights and practical solutions for the large-scale production of plant-derived natural products.

Keywords: biosynthesis, CYPs, cytochrome P450 enzymes, Engineering application, gene regulation, secondary metabolites

Received: 11 Dec 2025; Accepted: 03 Feb 2026.

Copyright: © 2026 Chen, Zhao, He, Lei, Li, Zhizhai, Zhang, Yang, Deng, Wan and Xu. This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.

* Correspondence: Delin Xu

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