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April 3, 2026Plant Cell & Environment0 citations

Arabidopsis ECHIDNA Plays an Important Role in Auxin Regulation of Clathrin‐Mediated Trafficking During Root Gravitropism

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MXMei XuShaoxing UniversityYSYonghua ShaoYWYutong WangTianshui Normal University

Key Points

  • This research investigates how ECHIDNA influences clathrin-mediated trafficking and auxin regulation during root gravitropism in Arabidopsis.
  • Analyzed the role of ECHIDNA in clathrin-mediated endocytosis and trafficking
  • Examined root gravitropic responses in ech mutants
  • Investigated membrane localization of clathrin and adaptor protein complexes
  • Assessed PIN2 and TRANSMEMBRANE KINASE1 trafficking under altered ECH function
  • Loss of ECHIDNA function resulted in defective root gravitropism
  • Clathrin and adaptor proteins were reduced at the plasma membrane and trans-Golgi network in ech mutants
  • Disruption of auxin receptor trafficking was observed
  • Impaired PIN2 localization was linked to ECHIDNA deficiencies

Abstract

ABSTRACT In plant cells, clathrin and its adaptor protein complexes at the plasma membrane (PM) and the trans ‐Golgi network/early endosome (TGN/EE) coordinate clathrin‐mediated endocytosis and post‐Golgi trafficking, processes that are essential for responses to diverse environmental cues. Previous studies show that the phytohormone auxin differentially regulates clathrin light and heavy chain (CLC and CHC, respectively) recruitment to establish the asymmetric distribution of the auxin efflux carrier PIN‐FORMED2 (PIN2), thereby promoting root gravitropic responses. Our results showed that loss‐of‐function of the TGN/EE component protein ECHIDNA (ECH) in Arabidopsis resulted in defective root gravitropism and impaired PIN2 trafficking. We further found that membrane‐associated clathrin and its adaptor protein complexes AP‐1, AP‐2 and the TPLATE complex were reduced at the PM and/or TGN/EE in ech mutants. Furthermore, loss of ECH function disrupted the trafficking of the auxin receptor TRANSMEMBRANE KINASE1, thereby preventing auxin‐induced modulation of CLC and CHC membrane association during root gravitropism. Together, these findings suggest that ECH is essential for proper membrane localisation of clathrin and its adaptor complexes, highlighting its central role in clathrin‐mediated trafficking and auxin‐responsive regulation.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/69cf5ecb5a333a821460d66chttps://doi.org/10.1111/pce.70512
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