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Li, Z. P.

Publications and source records attributed to Li, Z. P..

2 recordsLinked to original sources

Plasmodesmata act as unconventional membrane contact sites regulating inter-cellular molecular exchange in plants

Membrane contact sites (MCS) are fundamental for intracellular communication, but their role in intercellular communication remains unexplored. We show that in plants, plasmodesmata communication bridges function as atypical endoplasmic reticulum (ER)-plasma membrane (PM) tubular MCS, operating at cell-cell interfaces. Similar to other MCS, ER-PM apposition is controlled by a protein-lipid tethering complex, but uniquely, this serves intercellular communication. Combining high-resolution microscopy, molecular dynamics, pharmacological and genetic approaches, we show that cell-cell trafficking is modulated through the combined action of Multiple C2 domains and transmembrane domain proteins (MCTP) 3, 4, and 6 ER-PM tethers, and phosphatidylinositol-4-phosphate (PI4P) lipid. Graded PI4P amounts regulate MCTP docking to the PM, their plasmodesmata localization and cell-cell permeability. SAC7, an ER-localized PI4P-phosphatase, regulates MCTP4 accumulation at plasmodesmata and modulates cell-cell trafficking capacity in a cell-type specific manner. Our findings expand MCSs functions in information transmission, from intracellular to intercellular cellular activities. In briefPlant intercellular communication is regulated via tubular membrane contact through PI4P binding-ER-PM tether MCTP proteins HighlightsO_LIPlasmodesmata are unconventional ER/PM tubular contact sites located at cell-cell interface C_LIO_LIPlasmodesmata operate as control valves, modulating ER-PM contacts to regulate transport C_LIO_LIMCTP3, MCTP4, MCTP6 and PI4P tethering elements act as valve regulators C_LIO_LISAC7 PI4P phosphatase controls plasmodesmata MCS in a cell-type-specific manner C_LI

plant biology↗

Plant plasmodesmata bridges form through ER-driven incomplete cytokinesis

Diverging from conventional cell division models, plant cells undergo incomplete division to generate plasmodesmata communication bridges between daughter cells. While fundamental for plant multicellularity, the molecular events leading to bridge stabilization, as opposed to severing, remain unknown. Using electron tomography, we mapped the transition from cell plate fenestrae to plasmodesmata. We show that the ER connects daughter cells across fenestrae, and as the cell plate matures, fenestrae contract, causing the PM to mold around constricted ER tubes. The ERs presence prevents fenestrae fusion, forming plasmodesmata, while its absence results in closure. The ER-PM tethers MCTP3, 4, and 6 further stabilize nascent plasmodesmata during fenestrae contraction. Genetic deletion in Arabidopsis reduces plasmodesmata formation. Our findings reveal how plants undergo incomplete division to promote intercellular communication. One-Sentence SummaryThe ER is important for stabilizing nascent plasmodesmata, a process integral to incomplete cytokinesis in plants.

plant biology↗