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June 1, 2026Frontiers in Bioscience-Landmark1 citationsOpen Access

Revealing the Molecular Network of Pattern-Triggered Immunity (PTI) Signal Transduction

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FYFengchang YeJDJiatong DongBLBaishan Liu

Key Points

  • This review aims to elucidate the mechanisms underlying pattern-triggered immunity (PTI) signaling pathways in plants.
  • Summarized advancements in PTI signaling mechanisms, focusing on kinase cascades, calcium dynamics, and reactive oxygen species.
  • Discussed lipid signaling and the interactions between immune signaling and plant hormones.
  • Explored the relationship between PTI and effector-triggered immunity (ETI).
  • Confirmed that MAPKs and CDPKs amplify defense signals through kinase cascades.
  • Demonstrated the role of calcium ion (Ca2+) dynamics as rapid secondary messengers in PTI.
  • Highlighted the importance of EDS1-PAD4-ADR1 modules in integrating immune signals to boost pathogen resistance.

Abstract

Pattern-triggered immunity (PTI), the first line of defense in plants, is activated when host pattern recognition receptors (PRRs) detect pathogen-associated molecular patterns (PAMPs) or damage-associated molecular patterns (DAMPs) released during microbial invasion. Over the past decade, major advances have clarified PTI’s complex signaling network, revealing its role as a dynamic regulator of plant immune responses. This review summarizes recent progress in PTI signal transduction, emphasizing the core mechanisms: (1) kinase cascades, including MAPKs and calcium-dependent protein kinases (CDPKs), that amplify defense signals; (2) calcium ion (Ca2+) dynamics acting as rapid secondary messengers; and (3) reactive oxygen species (ROS) bursts that mediate antimicrobial and signaling. The roles of lipid signaling, crosstalk between immune signaling and plant hormones, and scaffold proteins are also discussed. Furthermore, we explore the interplay between PTI and effector-triggered immunity (ETI), highlighting synergistic modules, such as the enhanced disease susceptibility 1–phytoalexin deficient 4–activated disease resistance 1 (EDS1-PAD4-ADR1) which integrate immune signals to enhance pathogen resistance. By linking molecular mechanisms to systemic immune regulation, this review provides a comprehensive framework for understanding plant defense strategies and identifies emerging opportunities to engineer disease-resistant crops through modulation of immune pathways.

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Cite This Study

Ye et al. (2026) studied this question.

synapsesocial.com/papers/6a1d234302fbce9130638debhttps://doi.org/10.31083/fbl40847
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