Proceedings of the National Academy of Sciences · 2013 · 343 citations · 27 references
Protein AssemblyMolecular BiologyCytoskeletonCellular PhysiologyLignin ChemistryLignin-based Casparian StripProtein FoldingPlant CytologyBiochemistryDirigent Domain-containing ProteinPlant RootsCell BiologyLigninStructural BiologyBiomolecular EngineeringNatural SciencesCell-matrix InteractionIntracellular TraffickingCellular BiochemistrySecond SkinMedicineCasparian StripsPlant PhysiologyExtracellular Matrix
The endodermis acts as a "second skin" in plant roots by providing the cellular control necessary for the selective entry of water and solutes into the vascular system. To enable such control, Casparian strips span the cell wall of adjacent endodermal cells to form a tight junction that blocks extracellular diffusion across the endodermis. This junction is composed of lignin that is polymerized by oxidative coupling of monolignols through the action of a NADPH oxidase and peroxidases. Casparian strip domain proteins (CASPs) correctly position this biosynthetic machinery by forming a protein scaffold in the plasma membrane at the site where the Casparian strip forms. Here, we show that the dirigent-domain containing protein, enhanced suberin1 (ESB1), is part of this machinery, playing an essential role in the correct formation of Casparian strips. ESB1 is localized to Casparian strips in a CASP-dependent manner, and in the absence of ESB1, disordered and defective Casparian strips are formed. In addition, loss of ESB1 disrupts the localization of the CASP1 protein at the casparian strip domain, suggesting a reciprocal requirement for both ESB1 and CASPs in forming the casparian strip domain.
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The Pfam Protein Families Database
Alex Bateman · Nucleic Acids Research · 2002 · 14.2K citations · Full text
The Pfam protein families database
ROBERT FINN, Jaina Mistry, John Tate et al. · Nucleic Acids Research · 2009 · 2.7K citations · Full text