The influence of electrical charge on plasmodesma conductivity

  • Proc Natl Acad Sci U S A. 2026 Apr 14;123(15):e2527879123. doi: 10.1073/pnas.2527879123.
Alexander H Howell  #  1 Vincent James  #  1 Anneline H Christensen  2 Viktoriya V Vasina  1 Kaare H Jensen  2 James Foley  3 James E Evans  4 Howard A Stone  5 Winfried S Peters  1  6  7 Michael Knoblauch  1
Affiliations
  • 1. School of Biological Sciences, Washington State University, Pullman, WA 99164.
  • 2. Department of Physics, Technical University of Denmark, Lyngby DK-2800 Kgs., Denmark.
  • 3. Rowland Institute, Harvard University, Cambridge, MA 02142.
  • 4. Environmental Molecular Sciences Laboratory, Pacific Northwest National Laboratory, Richland, WA 99352.
  • 5. Department of Mechanical and Aerospace Engineering, Princeton University, Princeton, NJ 08544.
  • 6. Department of Biological Sciences, Purdue University Fort Wayne, Fort Wayne, IN 46805.
  • 7. Department of Marine Zoology, Senckenberg Research Institute and Natural History Museum, Frankfurt a.M. 60325, Germany.
  • # Contributed equally.
Abstract

Most plant tissues are symplasms in which cells are connected by plasmodesmata, membrane-lined cytosplasmic bridges that enable diffusive and/or advective cell-to-cell movements of components of the cytosol. Current models assume that hydrodynamic radius alone governs the mobility of molecules through plasmodesmata. In contrast, physical theory predicts that nm-sized pores with electrically charged walls are selective for counterions. Narrow plasmodesmal pores lined by membranes-which carry negative surface charges-therefore should be permselective for cations. Quantifying cell-to-cell movements of fluorophores varying in molecular mass and electrical charge in cell types with differently sized plasmodesmata, we confirmed the applicability of physical theory to plasmodesmata. Surprisingly, narrow plasmodesmata were permselective for anions rather than cations, suggesting a major flaw in our current understanding of plasmodesma structure. We hypothesize that structural proteins known to exist in plasmodesmata may establish the cationic electrostatic environment required to explain our findings.

Keywords
cell cell movement; nano channel; plasmodesma.
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