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Updated: Apr 23, 2026

A Cell-to-cell Macromolecular Transport Assay in Planta Utilizing Biolistic Bombardment
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Plasmodesmata: channels for viruses on the move.

Manfred Heinlein1

  • 1Institut de Biologie Moléculaire des Plantes (IBMP), Centre National de la Recherche Scientifique (CNRS), 12 rue du Général Zimmer, 67084, Strasbourg, France, manfred.heinlein@ibmp-cnrs.unistra.fr.

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Summary

Plant viruses exploit plasmodesmata (PD) for cell-to-cell movement using unique movement proteins (MPs). Studying these viruses reveals diverse mechanisms of intercellular macromolecule trafficking.

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Area of Science:

  • Plant virology
  • Cell biology
  • Molecular plant-pathology

Background:

  • Plasmodesmata (PD) form a symplastic network crucial for plant intercellular communication.
  • Plant viruses utilize PD to spread their genomes between cells, causing systemic infections.
  • Virus-encoded movement proteins (MPs) are key effectors targeting PD for viral trafficking.

Purpose of the Study:

  • To introduce the diverse strategies viruses employ to traffic macromolecules through PD.
  • To highlight how viruses leverage and manipulate cellular transport pathways.
  • To underscore the role of viruses in elucidating PD-mediated intercellular transport mechanisms.

Main Methods:

  • Review of existing literature on viral movement proteins and PD interactions.
  • Analysis of different viral strategies for navigating the symplastic pathway.
  • Comparison of virus-host interactions at the PD level.

Main Results:

  • Viruses exhibit varied mechanisms for PD targeting and manipulation, including altering PD architecture or utilizing cellular transport machinery.
  • Some viruses move as assembled particles, while others transport non-encapsidated genomes.
  • Viral strategies involve interactions with the secretory pathway, cortical endoplasmic reticulum, and cytoskeleton.

Conclusions:

  • Viral MPs are critical for understanding intercellular macromolecule trafficking.
  • Viruses offer unique models for dissecting the complex cellular mechanisms governing PD function.
  • Investigating viral strategies provides insights into fundamental plant cell biology and disease development.