A molecular glue: LecRKI.9 creates stiff plasma membrane cell wall connections
Water stress challenges plasma membrane - wall attachment. When plants are exposed to strong hyperosmotic stress, water exits the cell leading to plasmolysis, where the plasma membrane detaches partially from the cell wall and reveals discrete and persistent attachment sites in the form of Hechtian strands. Although these structures have been observed in several species for more than a century, the molecular bases behind plasma membrane - wall attachment remains elusive. Through a screen of candidate proteins, we reveal that the overexpression of two lectin receptor-like proteins (LecRK-I.9 and LecTM) increases the density of plasma membrane - wall connections in N. Benthamiana. The extracellular lectin domain of LecRK-I.9 was able to remain in the wall during plasmolysis. Conversely, deletion of the lectin domain in the LecRK-I.9 overexpressor restored the density of Hechtian strands to WT levels. In Arabidopsis, upon hyperosmotic stress, LecRK-I.9 formed largely immobile clusters, whereas lectin-deleted versions of LecRK-I.9 clusters were mobile. Cluster density correlated with predicted tensile stress levels and mechanical reinforcement in the wall before plasmolysis, consistent with a scenario in which attachment of the lectin domain also reflects the wall properties. Last, while overexpressing LecRK-I.9 conferred resistance to low water potential conditions, deletion of the lectin domain in the LecRK-I.9 overexpressor restored a WT response to water stress. Altogether, this demonstrates that the lectin domain of LecRK-I.9 creates persistent plasma membrane - wall attachment sites, with physiological relevance for plant resistance to water stress. SIGNIFICANCE STATEMENTAs observed since the mid-19th century, when placed in hyperosmotic conditions, plant cells undergo plasmolysis and form thin membraneous threads called Hechtian strands. These structures reflect the presence of persistent plasma membrane - cell wall attachment sites. Yet, the molecular components behind these sites are unknown. Through a candidate screen approach, we identify and demonstrate that the lectin domain of a receptor-like kinase provides such molecular glue. We also show that the clustering of the receptor is patterned and correlate with mechanically reinforced cell walls. Conversely, we find that the promotion of attachment increases resistance to water stress. This work revisits an old plant cell biology classic, and opens new avenues of research for plant adaptation to their environment.