Intrinsic disorder and conformational coexistence in auxin coreceptors

Author:

Ramans-Harborough Sigurd1ORCID,Kalverda Arnout P.2,Manfield Iain W.2ORCID,Thompson Gary S.3ORCID,Kieffer Martin1ORCID,Uzunova Veselina4,Quareshy Mussa4ORCID,Prusinska Justyna M.4,Roychoudhry Suruchi1,Hayashi Ken-ichiro5ORCID,Napier Richard4ORCID,Genio Charo del6ORCID,Kepinski Stefan1

Affiliation:

1. School of Biology, Faculty of Biological Sciences, University of Leeds, Leeds LS2 9JT, United Kingdom

2. Astbury Centre for Structural Molecular Biology, Faculty of Biological Sciences, University of Leeds, Leeds LS2 9JT, United Kingdom

3. Wellcome Biological Nuclear Magnetic Resonance Facility, Division of Natural Sciences, University of Kent, Canterbury CT2 7NJ, United Kingdom

4. School of Life Sciences, University of Warwick, Coventry CV4 7AL, United Kingdom

5. Department of Bioscience, Okayama University of Science, Okayama 700-0005, Japan

6. Centre for Fluid and Complex Systems, Coventry University, Coventry CV1 5FB, United Kingdom

Abstract

AUXIN/INDOLE 3-ACETIC ACID (Aux/IAA) transcriptional repressor proteins and the TRANSPORT INHIBITOR RESISTANT 1/AUXIN SIGNALING F-BOX (TIR1/AFB) proteins to which they bind act as auxin coreceptors. While the structure of TIR1 has been solved, structural characterization of the regions of the Aux/IAA protein responsible for auxin perception has been complicated by their predicted disorder. Here, we use NMR, CD and molecular dynamics simulation to investigate the N-terminal domains of the Aux/IAA protein IAA17/AXR3. We show that despite the conformational flexibility of the region, a critical W–P bond in the core of the Aux/IAA degron motif occurs at a strikingly high (1:1) ratio ofcistotransisomers, consistent with the requirement of thecisconformer for the formation of the fully-docked receptor complex. We show that the N-terminal half of AXR3 is a mixture of multiple transiently structured conformations with a propensity for two predominant and distinct conformational subpopulations within the overall ensemble. These two states were modeled together with the C-terminal PB1 domain to provide the first complete simulation of an Aux/IAA. Using MD to recreate the assembly of each complex in the presence of auxin, both structural arrangements were shown to engage with the TIR1 receptor, and contact maps from the simulations match closely observations of NMR signal-decreases. Together, our results and approach provide a platform for exploring the functional significance of variation in the Aux/IAA coreceptor family and for understanding the role of intrinsic disorder in auxin signal transduction and other signaling systems.

Funder

UKRI | Biotechnology and Biological Sciences Research Council

UK Research and Innovation

Syngenta International

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

Reference75 articles.

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1. Auxin research: creating tools for a greener future;Journal of Experimental Botany;2023-12-01

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