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Schulmeister, S.

Publications and source records attributed to Schulmeister, S..

2 recordsLinked to original sources

Processes essential for Physcomitrium patens protonemal development require distinct levels of total activity provided by functionally redundant PpROP GTPases

RHO GTPases are key regulators of cellular and developmental processes in most eukaryotic organisms. ROPs (RHO of plants) constitute a plant-specific RHO subfamily. ROP families expanded and functionally diversified during the evolution of structurally complex vascular plants, but generally contain few members in non-vascular plants with ancient features. In vascular and non-vascular plants, ROP proteins are required for cell polarization, directional cell expansion, and mitotic cell plate positioning. All these processes are impaired by the disruption of PpROP activity in the non-vascular moss Physcomitrium patens. The aim of the study presented here was to further characterize PpROP functions during P. patens protonemal development by a) knocking out individually or in all possible combinations each of the four RpROP genes, which encode nearly identical proteins, b) complementing knock-out mutants with WT or mutant PpROP isoforms, or with heterologous homologs, and c) performing overexpression experiments. PpROPs were found to have additional previously unknown functions in the regulation of cell proliferation, caulonema differentiation, and gametophore formation. Furthermore, different cellular and developmental processes were shown to require distinct levels of total PpROP activity, rather than individual PpROP isoforms. Implications of the remarkable sequence conservation and functional integration within the PpROP protein family are discussed. One-sentence summaryKnock-out, complementation, and overexpression experiments further defined PpROP functions in P. patens development, and demonstrated their dependence on distinct levels of total PpROP activity.

cell biology↗

Plasma membrane and cytoplasmic compartmentalization: a dynamic structural framework required for pollen tube tip growth

Rapid, unidirectional pollen tube tip growth is essential for fertilization and is widely employed as a model of polar cell expansion, a process crucial for plant morphogenesis. Different proteins and lipids with key functions in the control of polar cell expansion are associated with distinct domains of the plasma membrane (PM) at the pollen tube tip. These domains need to be dynamically maintained during tip growth, which depends on massive secretory and endocytic membrane traffic. Very little is currently known about the regulatory and cellular mechanisms responsible for the compartmentalization of the pollen tube PM. To provide a reliable structural framework for the further characterization of these mechanisms, an integrated quantitative map was compiled of the relative positions in normally growing tobacco pollen tubes of PM domains 1) enriched in key signaling proteins or lipids, 2) displaying high membrane order, or 3) in contact with cytoplasmic structures playing important roles in apical membrane traffic. Previously identified secretory and endocytic PM domains were also included into this map. Internalization of regulatory proteins or lipids associated with PM regions overlapping with the endocytic domain was assessed based on brefeldin A (BFA) treatment. These analyses revealed remarkable aspects of the structural organization of tobacco pollen tube tips, which enhance our understanding of tip growth by providing important insights into 1) RAC/ROP signaling, 2) phosphatidylinositol 4,5-bisphosphate (PI4,5P2) metabolism and functions, 3) trafficking of signaling lipids, 4) functions of domains displaying high membrane order, and 5) Ca2+ regulation of secretion. SummaryQuantitative mapping of plasma membrane and cytoplasmic domains at the tip of elongating tobacco pollen provides important insights into regulatory and cellular mechanisms essential for tip growth.

cell biology↗