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1.
Plant Cell ; 35(9): 3522-3543, 2023 09 01.
Article in English | MEDLINE | ID: mdl-37352123

ABSTRACT

Uridine diphosphate (UDP)-sugars are important metabolites involved in the biosynthesis of polysaccharides and may be important signaling molecules. UDP-glucose 4-epimerase (UGE) catalyzes the interconversion between UDP-Glc and UDP-Gal, whose biological function in rice (Oryza sativa) fertility is poorly understood. Here, we identify and characterize the botryoid pollen 1 (bp1) mutant and show that BP1 encodes a UGE that regulates UDP-sugar homeostasis, thereby controlling the development of rice anthers. The loss of BP1 function led to massive accumulation of UDP-Glc and imbalance of other UDP-sugars. We determined that the higher levels of UDP-Glc and its derivatives in bp1 may induce the expression of NADPH oxidase genes, resulting in a premature accumulation of reactive oxygen species (ROS), thereby advancing programmed cell death (PCD) of anther walls but delaying the end of tapetal degradation. The accumulation of UDP-Glc as metabolites resulted in an abnormal degradation of callose, producing an adhesive microspore. Furthermore, the UDP-sugar metabolism pathway is not only involved in the formation of intine but also in the formation of the initial framework for extine. Our results reveal how UDP-sugars regulate anther development and provide new clues for cellular ROS accumulation and PCD triggered by UDP-Glc as a signaling molecule.


Subject(s)
Oryza , Oryza/metabolism , Reactive Oxygen Species/metabolism , Apoptosis , Pollen/metabolism , Homeostasis , Sugars/metabolism , Uridine Diphosphate/metabolism , Gene Expression Regulation, Plant , Plant Proteins/genetics , Plant Proteins/metabolism
2.
Plant Physiol ; 192(2): 1000-1015, 2023 05 31.
Article in English | MEDLINE | ID: mdl-36856724

ABSTRACT

Cell wall synthesis and protein glycosylation require the import of nucleotide diphosphate-sugar conjugates into the Golgi that must be counterbalanced by phosphate (Pi) export. Numerous Golgi nucleotide-sugar transporters have been characterized, but transporters mediating Golgi Pi export remain poorly understood. We used plant and yeast genetics to characterize the role of 2 Arabidopsis (Arabidopsis thaliana) proteins possessing an EXS domain, namely ERD1A and ERD1B, in Golgi Pi homeostasis. ERD1A and ERD1B localized in cis-Golgi and were broadly expressed in vegetative and reproductive tissues. We identified ERD1 putative orthologs in algae, bryophytes, and vascular plants. Expressing ERD1A and ERD1B in yeast complemented the erd1 mutant phenotype of cellular Pi loss via exocytosis associated with reduced Golgi Pi export. The Arabidopsis erd1a mutant had a similar phenotype of apoplastic Pi loss dependent on exocytosis. ERD1A overexpression in Nicotiana benthamiana and Arabidopsis led to partial mislocalization of ERD1A to the plasma membrane and specific Pi export to the apoplastic space. Arabidopsis erd1a had defects in cell wall biosynthesis, which were associated with reduced shoot development, hypocotyl growth, cell wall extensibility, root elongation, pollen germination, pollen tube elongation, and fertility. We identified ERD1 proteins as Golgi Pi exporters that are essential for optimal plant growth and fertility.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Arabidopsis/metabolism , Phosphate Transport Proteins/genetics , Phosphate Transport Proteins/metabolism , Saccharomyces cerevisiae/metabolism , Golgi Apparatus/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Plant Development , Nucleotides/metabolism
3.
Plant Physiol ; 194(1): 137-152, 2023 Dec 30.
Article in English | MEDLINE | ID: mdl-37647538

ABSTRACT

The plant cell wall (CW) is one of the most important physical barriers that phytopathogens must conquer to invade their hosts. This barrier is a dynamic structure that responds to pathogen infection through a complex network of immune receptors, together with CW-synthesizing and CW-degrading enzymes. Callose deposition in the primary CW is a well-known physical response to pathogen infection. Notably, callose and cellulose biosynthesis share an initial substrate, UDP-glucose, which is the main load-bearing component of the CW. However, how these 2 critical biosynthetic processes are balanced during plant-pathogen interactions remains unclear. Here, using 2 different pathogen-derived molecules, bacterial flagellin (flg22) and the diffusible signal factor (DSF) produced by Xanthomonas campestris pv. campestris, we show a negative correlation between cellulose and callose biosynthesis in Arabidopsis (Arabidopsis thaliana). By quantifying the abundance of callose and cellulose under DSF or flg22 elicitation and characterizing the dynamics of the enzymes involved in the biosynthesis and degradation of these 2 polymers, we show that the balance of these 2 CW components is mediated by the activity of a ß-1,3-glucanase (BG2). Our data demonstrate balanced cellulose and callose biosynthesis during plant immune responses.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Arabidopsis/metabolism , Innate Immunity Recognition , Glucans/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Cellulose/metabolism , Plant Immunity
4.
Plant J ; 104(1): 252-267, 2020 09.
Article in English | MEDLINE | ID: mdl-32662159

ABSTRACT

Rhamnogalacturonan-II (RG-II) is structurally the most complex glycan in higher plants, containing 13 different sugars and 21 distinct glycosidic linkages. Two monomeric RG-II molecules can form an RG-II-borate diester dimer through the two apiosyl (Api) residues of side chain A to regulate cross-linking of pectin in the cell wall. But the relationship of Api biosynthesis and RG-II dimer is still unclear. In this study we investigated the two homologous UDP-D-apiose/UDP-D-xylose synthases (AXSs) in Arabidopsis thaliana that synthesize UDP-D-apiose (UDP-Api). Both AXSs are ubiquitously expressed, while AXS2 has higher overall expression than AXS1 in the tissues analyzed. The homozygous axs double mutant is lethal, while heterozygous axs1/+ axs2 and axs1 axs2/+ mutants display intermediate phenotypes. The axs1/+ axs2 mutant plants are unable to set seed and die. By contrast, the axs1 axs2/+ mutant plants exhibit loss of shoot and root apical dominance. UDP-Api content in axs1 axs2/+ mutants is decreased by 83%. The cell wall of axs1 axs2/+ mutant plants is thicker and contains less RG-II-borate complex than wild-type Col-0 plants. Taken together, these results provide direct evidence of the importance of AXSs for UDP-Api and RG-II-borate complex formation in plant growth and development.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/growth & development , Pectins/metabolism , Uridine Diphosphate Sugars/metabolism , Arabidopsis/metabolism , Arabidopsis Proteins/physiology , Pollen/metabolism
5.
Hum Mol Genet ; 28(21): 3543-3551, 2019 11 01.
Article in English | MEDLINE | ID: mdl-31423530

ABSTRACT

We report the case of a consanguineous couple who lost four pregnancies associated with skeletal dysplasia. Radiological examination of one fetus was inconclusive. Parental exome sequencing showed that both parents were heterozygous for a novel missense variant, p.(Pro133Leu), in the SLC35D1 gene encoding a nucleotide sugar transporter. The affected fetus was homozygous for the variant. The radiological features were reviewed, and being similar, but atypical, the phenotype was classified as a 'Schneckenbecken-like dysplasia.' The effect of the missense change was assessed using protein modelling techniques and indicated alterations in the mouth of the solute channel. A detailed biochemical investigation of SLC35D1 transport function and that of the missense variant p.(Pro133Leu) revealed that SLC35D1 acts as a general UDP-sugar transporter and that the p.(Pro133Leu) mutation resulted in a significant decrease in transport activity. The reduced transport activity observed for p.(Pro133Leu) was contrasted with in vitro activity for SLC35D1 p.(Thr65Pro), the loss-of-function mutation was associated with Schneckenbecken dysplasia. The functional classification of SLC35D1 as a general nucleotide sugar transporter of the endoplasmic reticulum suggests an expanded role for this transporter beyond chondroitin sulfate biosynthesis to a variety of important glycosylation reactions occurring in the endoplasmic reticulum.


Subject(s)
Fetal Diseases/genetics , Monosaccharide Transport Proteins/genetics , Osteochondrodysplasias/genetics , Alleles , Animals , Endoplasmic Reticulum/genetics , Endoplasmic Reticulum/metabolism , Female , Fetal Diseases/metabolism , Fetal Diseases/pathology , Heterozygote , Humans , Loss of Function Mutation , Male , Mice , Monosaccharide Transport Proteins/metabolism , Mutation, Missense , Osteochondrodysplasias/embryology , Osteochondrodysplasias/metabolism
6.
J Integr Plant Biol ; 63(5): 865-877, 2021 May.
Article in English | MEDLINE | ID: mdl-33615714

ABSTRACT

A series of nucleotide sugar interconversion enzymes (NSEs) generate the activated sugar donors required for biosynthesis of cell wall matrix polysaccharides and glycoproteins. UDP-glucose 4-epimerases (UGEs) are NSEs that function in the interconversion of UDP-glucose (UDP-Glc) and UDP-galactose (UDP-Gal). The roles of UDP-glucose 4-epimerases in monocots remain unclear due to redundancy in the pathways. Here, we report a brittle plant (bp1) rice mutant that exhibits brittle leaves and culms at all growth stages. The mutant culms had reduced levels of rhamnogalacturonan I, homogalacturonan, and arabinogalactan proteins. Moreover, the mutant had altered contents of uronic acids, neutral noncellulosic monosaccharides, and cellulose. Map-based cloning demonstrated that OsBP1 encodes a UDP-glucose 4-epimerase (OsUGE2), a cytosolic protein. We also show that BP1 can form homo- and hetero-protein complexes with other UGE family members and with UDP-galactose transporters 2 (OsUGT2) and 3 (OsUGT3), which may facilitate the channeling of Gal to polysaccharides and proteoglycans. Our results demonstrate that BP1 participates in regulating the sugar composition and structure of rice cell walls.


Subject(s)
Cell Wall/metabolism , Mucoproteins/metabolism , Oryza/metabolism , UDPglucose 4-Epimerase/metabolism , Gene Expression Regulation, Plant , Mucoproteins/genetics , Oryza/genetics , Pectins/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , UDPglucose 4-Epimerase/genetics
7.
J Biol Chem ; 294(26): 10042-10054, 2019 06 28.
Article in English | MEDLINE | ID: mdl-31118275

ABSTRACT

Nucleotide sugar transporters (NSTs) regulate the flux of activated sugars from the cytosol into the lumen of the Golgi apparatus where glycosyltransferases use them for the modification of proteins, lipids, and proteoglycans. It has been well-established that NSTs are antiporters that exchange nucleotide sugars with the respective nucleoside monophosphate. Nevertheless, information about the molecular basis of ligand recognition and transport is scarce. Here, using topology predictors, cysteine-scanning mutagenesis, expression of GFP-tagged protein variants, and phenotypic complementation of the yeast strain Kl3, we identified residues involved in the activity of a mouse UDP-GlcNAc transporter, murine solute carrier family 35 member A3 (mSlc35a3). We specifically focused on the putative transmembrane helix 2 (TMH2) and observed that cells expressing E47C or K50C mSlc35a3 variants had lower levels of GlcNAc-containing glycoconjugates than WT cells, indicating impaired UDP-GlcNAc transport activity of these two variants. A conservative substitution analysis revealed that single or double substitutions of Glu-47 and Lys-50 do not restore GlcNAc glycoconjugates. Analysis of mSlc35a3 and its genetic variants reconstituted into proteoliposomes disclosed the following: (i) all variants act as UDP-GlcNAc/UMP antiporters; (ii) conservative substitutions (E47D, E47Q, K50R, or K50H) impair UDP-GlcNAc uptake; and (iii) substitutions of Glu-47 and Lys-50 dramatically alter kinetic parameters, consistent with a critical role of these two residues in mSlc35a3 function. A bioinformatics analysis revealed that an EXXK motif in TMH2 is highly conserved across SLC35 A subfamily members, and a 3D-homology model predicted that Glu-47 and Lys-50 are facing the central cavity of the protein.


Subject(s)
Glutamic Acid/metabolism , Lysine/metabolism , Sodium-Phosphate Cotransporter Proteins, Type IIc/metabolism , Uridine Diphosphate N-Acetylglucosamine/metabolism , Uridine Monophosphate/metabolism , Amino Acid Sequence , Animals , Golgi Apparatus/metabolism , Ion Transport , Mice , Models, Molecular , Protein Conformation , Sequence Homology , Sodium-Phosphate Cotransporter Proteins, Type IIc/chemistry , Sodium-Phosphate Cotransporter Proteins, Type IIc/genetics , Uridine Diphosphate N-Acetylglucosamine/genetics
8.
PLoS Pathog ; 14(1): e1006765, 2018 01.
Article in English | MEDLINE | ID: mdl-29346417

ABSTRACT

Cryptococcus neoformans, an AIDS-defining opportunistic pathogen, is the leading cause of fungal meningitis worldwide and is responsible for hundreds of thousands of deaths annually. Cryptococcal glycans are required for fungal survival in the host and for pathogenesis. Most glycans are made in the secretory pathway, although the activated precursors for their synthesis, nucleotide sugars, are made primarily in the cytosol. Nucleotide sugar transporters are membrane proteins that solve this topological problem, by exchanging nucleotide sugars for the corresponding nucleoside phosphates. The major virulence factor of C. neoformans is an anti-phagocytic polysaccharide capsule that is displayed on the cell surface; capsule polysaccharides are also shed from the cell and impede the host immune response. Xylose, a neutral monosaccharide that is absent from model yeast, is a significant capsule component. Here we show that Uxt1 and Uxt2 are both transporters specific for the xylose donor, UDP-xylose, although they exhibit distinct subcellular localization, expression patterns, and kinetic parameters. Both proteins also transport the galactofuranose donor, UDP-galactofuranose. We further show that Uxt1 and Uxt2 are required for xylose incorporation into capsule and protein; they are also necessary for C. neoformans to cause disease in mice, although surprisingly not for fungal viability in the context of infection. These findings provide a starting point for deciphering the substrate specificity of an important class of transporters, elucidate a synthetic pathway that may be productively targeted for therapy, and contribute to our understanding of fundamental glycobiology.


Subject(s)
Cryptococcus neoformans/metabolism , Fungal Proteins/metabolism , Glycoproteins/metabolism , Nucleotide Transport Proteins/metabolism , Uridine Diphosphate Xylose/metabolism , Animals , Biological Transport , Cryptococcosis/microbiology , Cryptococcosis/pathology , Cryptococcus neoformans/pathogenicity , Cryptococcus neoformans/ultrastructure , Female , Fungal Capsules/metabolism , Fungal Capsules/ultrastructure , Fungal Proteins/genetics , Galactose/analogs & derivatives , Galactose/metabolism , Gene Deletion , Gene Expression Regulation, Fungal , Glycoproteins/genetics , Kinetics , Mice , Microscopy, Electron, Transmission , Mutation , Nucleotide Transport Proteins/genetics , Protein Isoforms/genetics , Protein Isoforms/metabolism , Protein Transport , Uridine Diphosphate/analogs & derivatives , Uridine Diphosphate/metabolism , Virulence
9.
J Exp Bot ; 71(1): 356-369, 2020 01 01.
Article in English | MEDLINE | ID: mdl-31557299

ABSTRACT

Maize can grow in cool temperate climates but is often exposed to spring chilling temperatures that can affect early seedling growth. Here, we used two sister double-haploid lines displaying a contrasted tolerance to chilling to identify major determinants of long-term chilling tolerance. The chilling-sensitive (CS) and the chilling-tolerant (CT) lines were grown at 14 °C day/10 °C night for 60 d. CS plants displayed a strong reduction in growth and aerial biomass compared with CT plants. Photosynthetic efficiency was affected with an increase in energy dissipation in both lines. Chilling tolerance in CT plants was associated with higher chlorophyll content, glucose-6-phosphate dehydrogenase activity, and higher sucrose to starch ratio. Few changes in cell wall composition were observed in both genotypes. There was no obvious correlation between nucleotide sugar content and cell wall polysaccharide composition. Our findings suggest that the central starch-sucrose metabolism is one major determinant of the response to low temperature, and its modulation accounts for the ability of CT plants to cope with low temperature. This modulation seemed to be linked to a strong alteration in the biosynthesis of nucleotide sugars that, at a high level, could reflect the remobilization of carbon in response to chilling.


Subject(s)
Carbon/metabolism , Cold Temperature , Zea mays/metabolism , Adaptation, Physiological/genetics , Zea mays/genetics
10.
Plant Cell ; 29(1): 129-143, 2017 01.
Article in English | MEDLINE | ID: mdl-28062750

ABSTRACT

UDP-glucuronic acid (UDP-GlcA) is the precursor of many plant cell wall polysaccharides and is required for production of seed mucilage. Following synthesis in the cytosol, it is transported into the lumen of the Golgi apparatus, where it is converted to UDP-galacturonic acid (UDP-GalA), UDP-arabinose, and UDP-xylose. To identify the Golgi-localized UDP-GlcA transporter, we screened Arabidopsis thaliana mutants in genes coding for putative nucleotide sugar transporters for altered seed mucilage, a structure rich in the GalA-containing polysaccharide rhamnogalacturonan I. As a result, we identified UUAT1, which encodes a Golgi-localized protein that transports UDP-GlcA and UDP-GalA in vitro. The seed coat of uuat1 mutants had less GalA, rhamnose, and xylose in the soluble mucilage, and the distal cell walls had decreased arabinan content. Cell walls of other organs and cells had lower arabinose levels in roots and pollen tubes, but no differences were observed in GalA or xylose contents. Furthermore, the GlcA content of glucuronoxylan in the stem was not affected in the mutant. Interestingly, the degree of homogalacturonan methylation increased in uuat1 These results suggest that this UDP-GlcA transporter plays a key role defining the seed mucilage sugar composition and that its absence produces pleiotropic effects in this component of the plant extracellular matrix.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/metabolism , Golgi Apparatus/metabolism , Nucleotide Transport Proteins/metabolism , Polysaccharides/metabolism , Seeds/metabolism , Arabidopsis/genetics , Arabidopsis Proteins/genetics , Cell Wall/genetics , Cell Wall/metabolism , Gene Expression Regulation, Plant , Immunoblotting , Microscopy, Confocal , Mutation , Nucleotide Transport Proteins/genetics , Pectins/metabolism , Plants, Genetically Modified , Seeds/genetics , Uridine Diphosphate Sugars/metabolism
11.
Proc Natl Acad Sci U S A ; 114(16): 4261-4266, 2017 04 18.
Article in English | MEDLINE | ID: mdl-28373556

ABSTRACT

In plants, L-arabinose (Ara) is a key component of cell wall polymers, glycoproteins, as well as flavonoids, and signaling peptides. Whereas the majority of Ara found in plant glycans occurs as a furanose ring (Araf), the activated precursor has a pyranose ring configuration (UDP-Arap). The biosynthesis of UDP-Arap mainly occurs via the epimerization of UDP-xylose (UDP-Xyl) in the Golgi lumen. Given that the predominant Ara form found in plants is Araf, UDP-Arap must exit the Golgi to be interconverted into UDP-Araf by UDP-Ara mutases that are located outside on the cytosolic surface of the Golgi. Subsequently, UDP-Araf must be transported back into the lumen. This step is vital because glycosyltransferases, the enzymes mediating the glycosylation reactions, are located within the Golgi lumen, and UDP-Arap, synthesized within the Golgi, is not their preferred substrate. Thus, the transport of UDP-Araf into the Golgi is a prerequisite. Although this step is critical for cell wall biosynthesis and the glycosylation of proteins and signaling peptides, the identification of these transporters has remained elusive. In this study, we present data demonstrating the identification and characterization of a family of Golgi-localized UDP-Araf transporters in Arabidopsis The application of a proteoliposome-based transport assay revealed that four members of the nucleotide sugar transporter (NST) family can efficiently transport UDP-Araf in vitro. Subsequent analysis of mutant lines affected in the function of these NSTs confirmed their role as UDP-Araf transporters in vivo.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/metabolism , Golgi Apparatus/metabolism , Uridine Diphosphate Sugars/metabolism , Arabidopsis/genetics , Arabidopsis/growth & development , Arabidopsis Proteins/genetics , Biological Transport , Cell Wall/metabolism , Gene Expression Regulation, Plant
12.
Plant Cell Physiol ; 59(12): 2624-2636, 2018 Dec 01.
Article in English | MEDLINE | ID: mdl-30184190

ABSTRACT

Pectin is a major component of primary cell walls and performs a plethora of functions crucial for plant growth, development and plant-defense responses. Despite the importance of pectic polysaccharides their biosynthesis is poorly understood. Several genes have been implicated in pectin biosynthesis by mutant analysis, but biochemical activity has been shown for very few. We used reverse genetics and biochemical analysis to study members of Glycosyltransferase Family 92 (GT92) in Arabidopsis thaliana. Biochemical analysis gave detailed insight into the properties of GALS1 (Galactan synthase 1) and showed galactan synthase activity of GALS2 and GALS3. All proteins are responsible for adding galactose onto existing galactose residues attached to the rhamnogalacturonan-I (RG-I) backbone. Significant GALS activity was observed with galactopentaose as acceptor but longer acceptors are favored. Overexpression of the GALS proteins in Arabidopsis resulted in accumulation of unbranched ß-1, 4-galactan. Plants in which all three genes were inactivated had no detectable ß-1, 4-galactan, and surprisingly these plants exhibited no obvious developmental phenotypes under standard growth conditions. RG-I in the triple mutants retained branching indicating that the initial Gal substitutions on the RG-I backbone are added by enzymes different from GALS.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/enzymology , Galactans/metabolism , Glycosyltransferases/metabolism , Arabidopsis/genetics , Cell Wall/metabolism , Genes, Plant , Golgi Apparatus/metabolism , Plant Leaves/metabolism , Recombinant Proteins/isolation & purification , Subcellular Fractions/metabolism , Substrate Specificity , Nicotiana/metabolism
13.
Plant Physiol ; 173(1): 240-255, 2017 01.
Article in English | MEDLINE | ID: mdl-27246096

ABSTRACT

Aliphatic and aromatic lipids are both essential structural components of the plant cuticle, an important interface between the plant and environment. Although cross links between aromatic and aliphatic or other moieties are known to be associated with the formation of leaf cutin and root and seed suberin, the contribution of aromatic lipids to the biosynthesis of anther cuticles and pollen walls remains elusive. In this study, we characterized the rice (Oryza sativa) male sterile mutant, defective pollen wall 2 (dpw2), which showed an abnormal anther cuticle, a defective pollen wall, and complete male sterility. Compared with the wild type, dpw2 anthers have increased amounts of cutin and waxes and decreased levels of lipidic and phenolic compounds. DPW2 encodes a cytoplasmically localized BAHD acyltransferase. In vitro assays demonstrated that recombinant DPW2 specifically transfers hydroxycinnamic acid moieties, using ω-hydroxy fatty acids as acyl acceptors and hydroxycinnamoyl-CoAs as acyl donors. Thus, The cytoplasmic hydroxycinnamoyl-CoA:ω-hydroxy fatty acid transferase DPW2 plays a fundamental role in male reproduction via the biosynthesis of key components of the anther cuticle and pollen wall.


Subject(s)
Acyltransferases/metabolism , Oryza/enzymology , Oryza/growth & development , Plant Proteins/metabolism , Pollen/enzymology , Pollen/growth & development , Amino Acid Sequence , Cell Wall/metabolism , Cloning, Molecular , Gene Expression Regulation, Plant , Lipid Metabolism , Membrane Lipids/metabolism , Models, Biological , Mutation/genetics , Oryza/genetics , Oryza/ultrastructure , Phenols/metabolism , Phenotype , Pollen/ultrastructure , Protein Transport , Recombinant Proteins/metabolism , Sequence Analysis, Protein , Waxes/metabolism
14.
J Exp Bot ; 69(5): 1125-1134, 2018 02 23.
Article in English | MEDLINE | ID: mdl-29300997

ABSTRACT

UDP-xylose (UDP-Xyl) is synthesized by UDP-glucuronic acid decarboxylases, also termed UDP-Xyl synthases (UXSs). The Arabidopsis genome encodes six UXSs, which fall into two groups based upon their subcellular location: the Golgi lumen and the cytosol. The latter group appears to play an important role in xylan biosynthesis. Cytosolic UDP-Xyl is transported into the Golgi lumen by three UDP-Xyl transporters (UXT1, 2, and 3). However, while single mutants affected in the UDP-Xyl transporter 1 (UXT1) showed a substantial reduction in cell wall xylose content, a double mutant affected in UXT2 and UXT3 had no obvious effect on cell wall xylose deposition. This prompted us to further investigate redundancy among the members of the UXT family. Multiple uxt mutants were generated, including a triple mutant, which exhibited collapsed vessels and reduced cell wall thickness in interfascicular fiber cells. Monosaccharide composition, molecular weight, nuclear magnetic resonance, and immunolabeling studies demonstrated that both xylan biosynthesis (content) and fine structure were significantly affected in the uxt triple mutant, leading to phenotypes resembling those of the irx mutants. Pollination was also impaired in the uxt triple mutant, likely due to reduced filament growth and anther dehiscence caused by alterations in the composition of the cell walls. Moreover, analysis of the nucleotide sugar composition of the uxt mutants indicated that nucleotide sugar interconversion is influenced by the cytosolic UDP-Xyl pool within the cell. Taken together, our results underpin the physiological roles of the UXT family in xylan biosynthesis and provide novel insights into the nucleotide sugar metabolism and trafficking in plants.


Subject(s)
Arabidopsis Proteins/genetics , Arabidopsis/genetics , Nucleoside Transport Proteins/genetics , Uridine Diphosphate Xylose/metabolism , Xylans/biosynthesis , Xylose/metabolism , Arabidopsis/metabolism , Arabidopsis Proteins/metabolism , Golgi Apparatus/metabolism , Nucleoside Transport Proteins/metabolism
15.
Plant Cell ; 27(4): 1218-27, 2015 Apr.
Article in English | MEDLINE | ID: mdl-25804536

ABSTRACT

Most glycosylation reactions require activated glycosyl donors in the form of nucleotide sugars to drive processes such as posttranslational modifications and polysaccharide biosynthesis. Most plant cell wall polysaccharides are biosynthesized in the Golgi apparatus from cytosolic-derived nucleotide sugars, which are actively transferred into the Golgi lumen by nucleotide sugar transporters (NSTs). An exception is UDP-xylose, which is biosynthesized in both the cytosol and the Golgi lumen by a family of UDP-xylose synthases. The NST-based transport of UDP-xylose into the Golgi lumen would appear to be redundant. However, employing a recently developed approach, we identified three UDP-xylose transporters in the Arabidopsis thaliana NST family and designated them UDP-XYLOSE TRANSPORTER1 (UXT1) to UXT3. All three transporters localize to the Golgi apparatus, and UXT1 also localizes to the endoplasmic reticulum. Mutants in UXT1 exhibit ∼30% reduction in xylose in stem cell walls. These findings support the importance of the cytosolic UDP-xylose pool and UDP-xylose transporters in cell wall biosynthesis.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/metabolism , Golgi Apparatus/metabolism , Monosaccharide Transport Proteins/metabolism , Uridine Diphosphate Xylose/metabolism , Arabidopsis/genetics , Arabidopsis Proteins/genetics , Monosaccharide Transport Proteins/genetics
16.
Proc Natl Acad Sci U S A ; 111(31): 11563-8, 2014 Aug 05.
Article in English | MEDLINE | ID: mdl-25053812

ABSTRACT

Plant cells are surrounded by a cell wall that plays a key role in plant growth, structural integrity, and defense. The cell wall is a complex and diverse structure that is mainly composed of polysaccharides. The majority of noncellulosic cell wall polysaccharides are produced in the Golgi apparatus from nucleotide sugars that are predominantly synthesized in the cytosol. The transport of these nucleotide sugars from the cytosol into the Golgi lumen is a critical process for cell wall biosynthesis and is mediated by a family of nucleotide sugar transporters (NSTs). Numerous studies have sought to characterize substrate-specific transport by NSTs; however, the availability of certain substrates and a lack of robust methods have proven problematic. Consequently, we have developed a novel approach that combines reconstitution of NSTs into liposomes and the subsequent assessment of nucleotide sugar uptake by mass spectrometry. To address the limitation of substrate availability, we also developed a two-step reaction for the enzymatic synthesis of UDP-l-rhamnose (Rha) by expressing the two active domains of the Arabidopsis UDP-l-Rha synthase. The liposome approach and the newly synthesized substrates were used to analyze a clade of Arabidopsis NSTs, resulting in the identification and characterization of six bifunctional UDP-l-Rha/UDP-d-galactose (Gal) transporters (URGTs). Further analysis of loss-of-function and overexpression plants for two of these URGTs supported their roles in the transport of UDP-l-Rha and UDP-d-Gal for matrix polysaccharide biosynthesis.


Subject(s)
Arabidopsis/metabolism , Golgi Apparatus/metabolism , Monosaccharide Transport Proteins/metabolism , Multigene Family , Rhamnose/metabolism , Uridine Diphosphate Glucose/metabolism , Arabidopsis/enzymology , Biological Transport , Kinetics , Molecular Sequence Data , Pectins/metabolism , Phylogeny , Proteolipids/metabolism , Subcellular Fractions/metabolism , Time Factors
17.
Plant Cell ; 24(12): 5024-36, 2012 Dec.
Article in English | MEDLINE | ID: mdl-23243126

ABSTRACT

ß-1,4-Galactans are abundant polysaccharides in plant cell walls, which are generally found as side chains of rhamnogalacturonan I. Rhamnogalacturonan I is a major component of pectin with a backbone of alternating rhamnose and galacturonic acid residues and side chains that include α-1,5-arabinans, ß-1,4-galactans, and arabinogalactans. Many enzymes are required to synthesize pectin, but few have been identified. Pectin is most abundant in primary walls of expanding cells, but ß-1,4-galactan is relatively abundant in secondary walls, especially in tension wood that forms in response to mechanical stress. We investigated enzymes in glycosyltransferase family GT92, which has three members in Arabidopsis thaliana, which we designated GALACTAN SYNTHASE1, (GALS1), GALS2 and GALS3. Loss-of-function mutants in the corresponding genes had a decreased ß-1,4-galactan content, and overexpression of GALS1 resulted in plants with 50% higher ß-1,4-galactan content. The plants did not have an obvious growth phenotype. Heterologously expressed and affinity-purified GALS1 could transfer Gal residues from UDP-Gal onto ß-1,4-galactopentaose. GALS1 specifically formed ß-1,4-galactosyl linkages and could add successive ß-1,4-galactosyl residues to the acceptor. These observations confirm the identity of the GT92 enzyme as ß-1,4-galactan synthase. The identification of this enzyme could provide an important tool for engineering plants with improved bioenergy properties.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/enzymology , Arabidopsis/metabolism , Pectins/biosynthesis , Arabidopsis/genetics , Arabidopsis Proteins/genetics , Galactosyltransferases/genetics , Galactosyltransferases/metabolism , Plants, Genetically Modified
18.
Proc Natl Acad Sci U S A ; 109(42): 17117-22, 2012 Oct 16.
Article in English | MEDLINE | ID: mdl-23027943

ABSTRACT

Xylan is the second most abundant polysaccharide on Earth and represents an immense quantity of stored energy for biofuel production. Despite its importance, most of the enzymes that synthesize xylan have yet to be identified. Xylans have a backbone of ß-1,4-linked xylose residues with substitutions that include α-(1→2)-linked glucuronosyl, 4-O-methyl glucuronosyl, and α-1,2- and α-1,3-arabinofuranosyl residues. The substitutions are structurally diverse and vary by taxonomy, with grass xylan representing a unique composition distinct from dicots and other monocots. To date, no enzyme has yet been identified that is specific to grass xylan synthesis. We identified a xylose-deficient loss-of-function rice mutant in Os02g22380, a putative glycosyltransferase in a grass-specific subfamily of family GT61. We designate the mutant xax1 for xylosyl arabinosyl substitution of xylan 1. Enzymatic fingerprinting of xylan showed the specific absence in the mutant of a peak, which was isolated and determined by (1)H-NMR to be (ß-1,4-Xyl)(4) with a ß-Xylp-(1→2)-α-Araf-(1→3). Rice xax1 mutant plants are deficient in ferulic and coumaric acid, aromatic compounds known to be attached to arabinosyl residues in xylan substituted with xylosyl residues. The xax1 mutant plants exhibit an increased extractability of xylan and increased saccharification, probably reflecting a lower degree of diferulic cross-links. Activity assays with microsomes isolated from tobacco plants transiently expressing XAX1 demonstrated xylosyltransferase activity onto endogenous acceptors. Our results provide insight into grass xylan synthesis and how substitutions may be modified for increased saccharification for biofuel generation.


Subject(s)
Cell Wall/chemistry , Oryza/enzymology , Pentosyltransferases/metabolism , Xylans/metabolism , Xylose/metabolism , Biofuels , Magnetic Resonance Spectroscopy , Microsomes , Oryza/metabolism , Pentosyltransferases/genetics , UDP Xylose-Protein Xylosyltransferase
19.
BMC Plant Biol ; 14: 344, 2014 Dec 10.
Article in English | MEDLINE | ID: mdl-25492673

ABSTRACT

BACKGROUND: Engineering of plants with a composition of lignocellulosic biomass that is more suitable for downstream processing is of high interest for next-generation biofuel production. Lignocellulosic biomass contains a high proportion of pentose residues, which are more difficult to convert into fuels than hexoses. Therefore, increasing the hexose/pentose ratio in biomass is one approach for biomass improvement. A genetic engineering approach was used to investigate whether the amount of pectic galactan can be specifically increased in cell walls of Arabidopsis fiber cells, which in turn could provide a potential source of readily fermentable galactose. RESULTS: First it was tested if overexpression of various plant UDP-glucose 4-epimerases (UGEs) could increase the availability of UDP-galactose and thereby increase the biosynthesis of galactan. Constitutive and tissue-specific expression of a poplar UGE and three Arabidopsis UGEs in Arabidopsis plants could not significantly increase the amount of cell wall bound galactose. We then investigated co-overexpression of AtUGE2 together with the ß-1,4-galactan synthase GalS1. Co-overexpression of AtUGE2 and GalS1 led to over 80% increase in cell wall galactose levels in Arabidopsis stems, providing evidence that these proteins work synergistically. Furthermore, AtUGE2 and GalS1 overexpression in combination with overexpression of the NST1 master regulator for secondary cell wall biosynthesis resulted in increased thickness of fiber cell walls in addition to the high cell wall galactose levels. Immunofluorescence microscopy confirmed that the increased galactose was present as ß-1,4-galactan in secondary cell walls. CONCLUSIONS: This approach clearly indicates that simultaneous overexpression of AtUGE2 and GalS1 increases the cell wall galactose to much higher levels than can be achieved by overexpressing either one of these proteins alone. Moreover, the increased galactan content in fiber cells while improving the biomass composition had no impact on plant growth and development and hence on the overall biomass amount. Thus, we could show that the gene stacking approach described here is a promising method to engineer advanced feedstocks for biofuel production.


Subject(s)
Arabidopsis/genetics , Galactans/metabolism , Galactose/metabolism , Gene Expression Regulation, Plant , Plant Proteins/genetics , Populus/genetics , Arabidopsis/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Biofuels/analysis , Breeding , Cell Wall/metabolism , Plant Proteins/metabolism , Plants, Genetically Modified/genetics , Plants, Genetically Modified/metabolism , Populus/metabolism , Promoter Regions, Genetic , UDPglucose 4-Epimerase/genetics , UDPglucose 4-Epimerase/metabolism
20.
Plant Physiol ; 161(4): 1615-33, 2013 Apr.
Article in English | MEDLINE | ID: mdl-23391577

ABSTRACT

Grass cell wall properties influence food, feed, and biofuel feedstock usage efficiency. The glucuronoarabinoxylan of grass cell walls is esterified with the phenylpropanoid-derived hydroxycinnamic acids ferulic acid (FA) and para-coumaric acid (p-CA). Feruloyl esters undergo oxidative coupling with neighboring phenylpropanoids on glucuronoarabinoxylan and lignin. Examination of rice (Oryza sativa) mutants in a grass-expanded and -diverged clade of BAHD acyl-coenzyme A-utilizing transferases identified four mutants with altered cell wall FA or p-CA contents. Here, we report on the effects of overexpressing one of these genes, OsAt10 (LOC_Os06g39390), in rice. An activation-tagged line, OsAT10-D1, shows a 60% reduction in matrix polysaccharide-bound FA and an approximately 300% increase in p-CA in young leaf tissue but no discernible phenotypic alterations in vegetative development, lignin content, or lignin composition. Two additional independent OsAt10 overexpression lines show similar changes in FA and p-CA content. Cell wall fractionation and liquid chromatography-mass spectrometry experiments isolate the cell wall alterations in the mutant to ester conjugates of a five-carbon sugar with p-CA and FA. These results suggest that OsAT10 is a p-coumaroyl coenzyme A transferase involved in glucuronoarabinoxylan modification. Biomass from OsAT10-D1 exhibits a 20% to 40% increase in saccharification yield depending on the assay. Thus, OsAt10 is an attractive target for improving grass cell wall quality for fuel and animal feed.


Subject(s)
Acyltransferases/metabolism , Carbohydrate Metabolism , Cell Wall/enzymology , Coumaric Acids/metabolism , Oryza/cytology , Oryza/enzymology , Plant Proteins/metabolism , Acetyl-CoA C-Acyltransferase/metabolism , Coumaric Acids/chemistry , DNA, Bacterial/genetics , Gene Expression Regulation, Developmental , Gene Expression Regulation, Plant , Genetic Testing , Genome, Plant/genetics , Glucose/metabolism , Inheritance Patterns/genetics , Lignin/metabolism , Mutagenesis, Insertional/genetics , Mutation/genetics , Oryza/genetics , Oryza/growth & development , Penicillium/metabolism , Phenotype , Phylogeny , Plant Leaves/metabolism , Principal Component Analysis , Solubility , Trifluoroacetic Acid/metabolism
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