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1.
Proc Natl Acad Sci U S A ; 121(15): e2321759121, 2024 Apr 09.
Article in English | MEDLINE | ID: mdl-38579009

ABSTRACT

Adjacent plant cells are connected by specialized cell wall regions, called middle lamellae, which influence critical agricultural characteristics, including fruit ripening and organ abscission. Middle lamellae are enriched in pectin polysaccharides, specifically homogalacturonan (HG). Here, we identify a plant-specific Arabidopsis DUF1068 protein, called NKS1/ELMO4, that is required for middle lamellae integrity and cell adhesion. NKS1 localizes to the Golgi apparatus and loss of NKS1 results in changes to Golgi structure and function. The nks1 mutants also display HG deficient phenotypes, including reduced seedling growth, changes to cell wall composition, and tissue integrity defects. These phenotypes are comparable to qua1 and qua2 mutants, which are defective in HG biosynthesis. Notably, genetic interactions indicate that NKS1 and the QUAs work in a common pathway. Protein interaction analyses and modeling corroborate that they work together in a stable protein complex with other pectin-related proteins. We propose that NKS1 is an integral part of a large pectin synthesis protein complex and that proper function of this complex is important to support Golgi structure and function.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Arabidopsis/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Cell Adhesion/genetics , Pectins/metabolism , Golgi Apparatus/genetics , Golgi Apparatus/metabolism , Cell Wall/metabolism
2.
Trends Plant Sci ; 27(1): 56-68, 2022 01.
Article in English | MEDLINE | ID: mdl-34561180

ABSTRACT

Perennial life cycles enable plants to have remarkably long lifespans, as exemplified by trees that can live for thousands of years. For this, they require sophisticated regulatory networks that sense environmental changes and initiate adaptive responses in their growth patterns. Recent research has gradually elucidated fundamental mechanisms underlying the perennial life cycle. Intriguingly, several conserved components of the floral transition pathway in annuals such as Arabidopsis thaliana also participate in these regulatory mechanisms underpinning perenniality. Here, we provide an overview of perennials' physiological features and summarise their recently discovered molecular foundations. We also highlight the importance of deepening our understanding of perenniality in the development of perennial grain crops, which are promising elements of future sustainable agriculture.


Subject(s)
Arabidopsis , Agriculture , Arabidopsis/genetics , Crops, Agricultural , Edible Grain , Trees
3.
Curr Biol ; 31(6): 1154-1164.e3, 2021 03 22.
Article in English | MEDLINE | ID: mdl-33417884

ABSTRACT

Tissue bending is vital to plant development, as exemplified by apical hook formation during seedling emergence by bending of the hypocotyl. How tissue bending is coordinated during development remains poorly understood, especially in plants where cells are attached via rigid cell walls. Asymmetric distribution of the plant hormone auxin underlies differential cell elongation during apical hook formation. Yet the underlying mechanism remains unclear. Here, we demonstrate spatial correlation between asymmetric auxin distribution, methylesterified homogalacturonan (HG) pectin, and mechanical properties of the epidermal layer of the hypocotyl in Arabidopsis. Genetic and cell biological approaches show that this mechanochemical asymmetry is essential for differential cell elongation. We show that asymmetric auxin distribution underlies differential HG methylesterification, and conversely changes in HG methylesterification impact the auxin response domain. Our results suggest that a positive feedback loop between auxin distribution and HG methylesterification underpins asymmetric cell wall mechanochemical properties to promote tissue bending and seedling emergence.


Subject(s)
Arabidopsis/growth & development , Arabidopsis/metabolism , Indoleacetic Acids/metabolism , Seedlings/growth & development , Seedlings/metabolism , Esterification , Feedback, Physiological , Hypocotyl/metabolism , Methylation , Pectins/metabolism
4.
Plant Cell ; 29(10): 2433-2449, 2017 Oct.
Article in English | MEDLINE | ID: mdl-28947492

ABSTRACT

The evolution of the plant vasculature was essential for the emergence of terrestrial life. Xylem vessels are solute-transporting elements in the vasculature that possess secondary wall thickenings deposited in intricate patterns. Evenly dispersed microtubule (MT) bands support the formation of these wall thickenings, but how the MTs direct cell wall synthesis during this process remains largely unknown. Cellulose is the major secondary wall constituent and is synthesized by plasma membrane-localized cellulose synthases (CesAs) whose catalytic activity propels them through the membrane. We show that the protein CELLULOSE SYNTHASE INTERACTING1 (CSI1)/POM2 is necessary to align the secondary wall CesAs and MTs during the initial phase of xylem vessel development in Arabidopsis thaliana and rice (Oryza sativa). Surprisingly, these MT-driven patterns successively become imprinted and sufficient to sustain the continued progression of wall thickening in the absence of MTs and CSI1/POM2 function. Hence, two complementary principles underpin wall patterning during xylem vessel development.


Subject(s)
Cell Wall/metabolism , Xylem/metabolism , Arabidopsis/metabolism , Arabidopsis Proteins/metabolism , Cell Membrane/metabolism , Cell Wall/genetics , Cellulose/metabolism , Glucosyltransferases/metabolism , Microtubules/metabolism , Xylem/genetics
5.
Nat Commun ; 7: 11656, 2016 06 09.
Article in English | MEDLINE | ID: mdl-27277162

ABSTRACT

As the most abundant biopolymer on Earth, cellulose is a key structural component of the plant cell wall. Cellulose is produced at the plasma membrane by cellulose synthase (CesA) complexes (CSCs), which are assembled in the endomembrane system and trafficked to the plasma membrane. While several proteins that affect CesA activity have been identified, components that regulate CSC assembly and trafficking remain unknown. Here we show that STELLO1 and 2 are Golgi-localized proteins that can interact with CesAs and control cellulose quantity. In the absence of STELLO function, the spatial distribution within the Golgi, secretion and activity of the CSCs are impaired indicating a central role of the STELLO proteins in CSC assembly. Point mutations in the predicted catalytic domains of the STELLO proteins indicate that they are glycosyltransferases facing the Golgi lumen. Hence, we have uncovered proteins that regulate CSC assembly in the plant Golgi apparatus.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/enzymology , Glucosyltransferases/metabolism , Glycosyltransferases/metabolism , Golgi Apparatus/enzymology , Arabidopsis/ultrastructure , Cellulose/biosynthesis , Phenotype
6.
Plant Physiol ; 167(2): 381-93, 2015 Feb.
Article in English | MEDLINE | ID: mdl-25535279

ABSTRACT

Cellulose synthase complexes (CSCs) at the plasma membrane (PM) are aligned with cortical microtubules (MTs) and direct the biosynthesis of cellulose. The mechanism of the interaction between CSCs and MTs, and the cellular determinants that control the delivery of CSCs at the PM, are not yet well understood. We identified a unique small molecule, CESA TRAFFICKING INHIBITOR (CESTRIN), which reduces cellulose content and alters the anisotropic growth of Arabidopsis (Arabidopsis thaliana) hypocotyls. We monitored the distribution and mobility of fluorescently labeled cellulose synthases (CESAs) in live Arabidopsis cells under chemical exposure to characterize their subcellular effects. CESTRIN reduces the velocity of PM CSCs and causes their accumulation in the cell cortex. The CSC-associated proteins KORRIGAN1 (KOR1) and POM2/CELLULOSE SYNTHASE INTERACTIVE PROTEIN1 (CSI1) were differentially affected by CESTRIN treatment, indicating different forms of association with the PM CSCs. KOR1 accumulated in bodies similar to CESA; however, POM2/CSI1 dissociated into the cytoplasm. In addition, MT stability was altered without direct inhibition of MT polymerization, suggesting a feedback mechanism caused by cellulose interference. The selectivity of CESTRIN was assessed using a variety of subcellular markers for which no morphological effect was observed. The association of CESAs with vesicles decorated by the trans-Golgi network-localized protein SYNTAXIN OF PLANTS61 (SYP61) was increased under CESTRIN treatment, implicating SYP61 compartments in CESA trafficking. The properties of CESTRIN compared with known CESA inhibitors afford unique avenues to study and understand the mechanism under which PM-associated CSCs are maintained and interact with MTs and to dissect their trafficking routes in etiolated hypocotyls.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/metabolism , Carrier Proteins/metabolism , Cellulase/metabolism , Cellulose/metabolism , Enzyme Inhibitors/pharmacology , Glucosyltransferases/metabolism , Membrane Proteins/metabolism , Multiprotein Complexes/metabolism , Anisotropy , Arabidopsis/cytology , Arabidopsis/enzymology , Arabidopsis/growth & development , Benzamides/pharmacology , Cell Compartmentation/drug effects , Cell Membrane/drug effects , Cell Membrane/metabolism , Dinitrobenzenes/pharmacology , Glucose/metabolism , Green Fluorescent Proteins/metabolism , Hypocotyl/drug effects , Hypocotyl/metabolism , Microtubules/drug effects , Microtubules/metabolism , Protein Transport/drug effects , Sulfanilamides/pharmacology
7.
Curr Biol ; 23(10): 895-900, 2013 May 20.
Article in English | MEDLINE | ID: mdl-23623553

ABSTRACT

The parallel alignment of stiff cellulose microfibrils in plant-cell walls mediates anisotropic growth. This is largely controlled by cortical microtubules, which drive the insertion and trajectory of the cellulose synthase (CESA) complex at the plasma membrane. The CESA interactive protein 1 (CSI1) acts as a physical linker between CESA and cortical microtubules. Here we show that the inflorescence stems of csi1 mutants exhibit subtle right-handed torsion. Because cellulose deposition is largely uncoupled from cortical microtubules in csi1, we hypothesize that strictly transverse deposition of microfibrils in the wild-type is replaced by a helical orientation of uniform handedness in the mutant and that the helical microfibril alignment generates torsion. Interestingly, both elastic and viscous models for an expanding cell predict that a net helical orientation of microfibrils gives rise to a torque. We indeed observed tilted microfibrils in csi1 cells, and the torsion was almost absent in a csi1 prc1 background with impaired cellulose synthesis. In addition, the stem torsion led to a novel bimodal and robust phyllotactic pattern in the csi1 mutant, illustrating how growth perturbations can replace one robust mathematical pattern with a different, equally robust pattern.


Subject(s)
Arabidopsis/physiology , Glucosyltransferases/metabolism , Plant Stems/physiology , Arabidopsis/enzymology , Glucosyltransferases/genetics
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