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Arabidopsis thaliana myosin XIK is recruited to the Golgi through interaction with a MyoB receptor

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Abstract

Plant cell organelles are highly mobile and their positioning play key roles in plant growth, development and responses to changing environmental conditions. Movement is acto-myosin dependent. Despite controlling the dynamics of several organelles, myosin and myosin receptors identified so far in Arabidopsis thaliana generally do not localise to the organelles whose movement they control, raising the issue of how specificity is determined. Here we show that a MyoB myosin receptor, MRF7, specifically localises to the Golgi membrane and affects its movement. Myosin XI-K was identified as a putative MRF7 interactor through mass spectrometry analysis. Co-expression of MRF7 and XI-K tail triggers the relocation of XI-K to the Golgi, linking a MyoB/myosin complex to a specific organelle in Arabidopsis. FRET-FLIM confirmed the in vivo interaction between MRF7 and XI-K tail on the Golgi and in the cytosol, suggesting that myosin/myosin receptor complexes perhaps cycle on and off organelle membranes. This work supports a traditional mechanism for organelle movement where myosins bind to receptors and adaptors on the organelle membranes, allowing them to actively move on the actin cytoskeleton, rather than passively in the recently proposed cytoplasmic streaming model.

Original languageEnglish
Article number1182
JournalCommunications Biology
Volume4
Issue number1
DOIs
Publication statusPublished - 13 Oct 2021

Bibliographical note

Funding Information:
We would like to acknowledge the memory of Professor Chris Hawes and thank his group at the University of Oxford Brookes, for providing the Arabidopsis thaliana plants over-expressing ST-mRFP, and the ST-mRFP and ST-CFP constructs. We would also like to acknowledge the Wolfson Bioimaging Facility and BBSRC (BB/F011709/1) for supporting the imaging carried out at Bristol University. This work was supported by the BBSRC (BB/I006184/2) and STFC (PM-1216) grants to I.S, and C.P. was supported by studentship from the Gatsby Charitable Foundation.

Publisher Copyright:
© 2021, The Author(s).

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  • CONFOCAL MICROSCOPY

    Grierson, C. S. (Principal Investigator)

    1/01/091/01/10

    Project: Research

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