AI Article Synopsis

  • The AUXIN RESPONSE FACTOR (ARF) transcription factors in plants regulate gene expression in response to auxin, but in its absence, their activity is suppressed by AUXIN/INDOLE 3-ACETIC ACID (Aux/IAA) proteins.
  • The study reveals the crystal structure of the C-terminal domain of Arabidopsis ARF7, identifying a Phox and Bem1p (PB1) domain critical for protein interactions.
  • Mutations in the PB1 domain disrupt ARF7's ability to form complexes with itself and Aux/IAA proteins, indicating that multimerization is essential for ARF's repression of gene expression and refining the model of auxin signaling.

Article Abstract

In plants, the AUXIN RESPONSE FACTOR (ARF) transcription factor family regulates gene expression in response to auxin. In the absence of auxin, ARF transcription factors are repressed by interaction with AUXIN/INDOLE 3-ACETIC ACID (Aux/IAA) proteins. Although the C termini of ARF and Aux/IAA proteins facilitate their homo- and heterooligomerization, the molecular basis for this interaction remained undefined. The crystal structure of the C-terminal interaction domain of Arabidopsis ARF7 reveals a Phox and Bem1p (PB1) domain that provides both positive and negative electrostatic interfaces for directional protein interaction. Mutation of interface residues in the ARF7 PB1 domain yields monomeric protein and abolishes interaction with both itself and IAA17. Expression of a stabilized Aux/IAA protein (i.e., IAA16) bearing PB1 mutations in Arabidopsis suggests a multimerization requirement for ARF protein repression, leading to a refined auxin-signaling model.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3986151PMC
http://dx.doi.org/10.1073/pnas.1400074111DOI Listing

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