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Schilling, N.

Publications and source records attributed to Schilling, N..

2 recordsLinked to original sources

Arabidopsis BAG proteins regulate cellulose synthase stability

Cellulose synthase complexes (CSCs) synthesize cellulose at the plasma membrane, and their activity and trafficking are critical for maintaining cell wall integrity during plant growth. Clathrin-mediated endocytosis (CME) regulates CSC internalization and has been implicated in their rapid stress-induced removal from the plasma membrane. Stress adaptation, instead, requires the maintenance of a subset of CSCs at the plasma membrane, yet the mechanisms underlying this homeostasis remain poorly understood. The Arabidopsis Bcl-2-associated athanogene4 (BAG4) was identified as an interactor of the adaptor protein 2 complex (AP-2) and the TPLATE complex (TPC), two key components of plant CME. Here, we show that AP-2 and the TPC associated with four closely related BAG proteins, BAG1-BAG4. A quadruple mutant exhibited abnormal growth, increased sensitivity to salt stress, and reduced endocytic flux. However, the abundance, localization and dynamics of CME machinery was largely unaffected, suggesting that BAG proteins are not core regulators of CME. Instead, BAG1-BAG4 deficiency caused hypersensitivity to cellulose biosynthesis inhibitors and impaired hypocotyl elongation in darkness, consistent with defective cellulose-dependent growth. BAG1-BAG4 also interacted with CESA6, and salt-induced CESA6 degradation and ubiquitination was enhanced in the quadruple mutant. Together, these findings identify BAG1-BAG4 as redundant proteostasis factors that safeguard CESA6 stability during salt stress, thereby maintaining cellulose synthesis, cell wall integrity, and plant stress tolerance.

plant biology↗

The structural scaffold of the TPLATE complex deforms the membrane during plant endocytosis

Summary paragraphEukaryotic cells maintain homeostasis of their outer membrane by controlled internalization of lipid and protein constituents via endocytosis1. Endocytosis is evolutionary conserved and utilizes similar structural folds. How these structural folds are combined into proteins and protein complexes however differs between eukaryotic kingdoms2. The TPLATE complex in plants is an evolutionary ancient protein module that combines several endocytic folds into a single octameric protein complex3-5. Its molecular architecture, lipid-nucleated condensate formation, and its requirement for clathrin cage curvature revealed its function in endocytosis initiation in plants6-8. Mechanistic understanding of how this complex drives membrane deformation during plant endocytosis is, however, lacking. Here, we used an integrative structural approach to obtain a precise molecular structure of the TPLATE complex. In addition, our approach allowed visualizing the structural flexibility that hallmarks this enigmatic complex. We prove that the intrinsic structural flexibility is required for its functionality and membrane recruitment. The membrane binding interface consists of several domains with differential lipid preferences. Finally, we show that the crescent shape of the structured part of the complex is sufficient for membrane curvature generation. Our mechanistic insight answers the long-standing question of how plants execute endocytosis without cytoskeletal-based force generation.

plant biology↗