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1.
PeerJ ; 12: e17625, 2024.
Article in English | MEDLINE | ID: mdl-38948221

ABSTRACT

Plasmodesmata are transmembrane channels embedded within the cell wall that can facilitate the intercellular communication in plants. Plasmodesmata callose-binding (PDCB) protein that associates with the plasmodesmata contributes to cell wall extension. Given that the elongation of cotton fiber cells correlates with the dynamics of the cell wall, this protein can be related to the cotton fiber elongation. This study sought to identify PDCB family members within the Gossypium. hirsutum genome and to elucidate their expression profiles. A total of 45 distinct family members were observed through the identification and screening processes. The analysis of their physicochemical properties revealed the similarity in the amino acid composition and molecular weight across most members. The phylogenetic analysis facilitated the construction of an evolutionary tree, categorizing these members into five groups mainly distributed on 20 chromosomes. The fine mapping results facilitated a tissue-specific examination of group V, revealing that the expression level of GhPDCB9 peaked five days after flowering. The VIGS experiments resulted in a marked decrease in the gene expression level and a significant reduction in the mature fiber length, averaging a shortening of 1.43-4.77 mm. The results indicated that GhPDCB9 played a pivotal role in the cotton fiber development and served as a candidate for enhancing cotton yield.


Subject(s)
Cotton Fiber , Gossypium , Phylogeny , Plant Proteins , Plasmodesmata , Gossypium/genetics , Gossypium/metabolism , Plasmodesmata/metabolism , Cotton Fiber/analysis , Plant Proteins/genetics , Plant Proteins/metabolism , Gene Expression Regulation, Plant , Glucans/metabolism , Multigene Family , Cell Wall/metabolism , Cell Wall/genetics , Carrier Proteins/genetics , Carrier Proteins/metabolism
2.
Neuropathol Appl Neurobiol ; 50(3): e12995, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38923610

ABSTRACT

AIMS: Polyglucosan storage disorders represent an emerging field within neurodegenerative and neuromuscular conditions, including Lafora disease (EPM2A, EPM2B), adult polyglucosan body disease (APBD, GBE1), polyglucosan body myopathies associated with RBCK1 deficiency (PGBM1, RBCK1) or glycogenin-1 deficiency (PGBM2, GYG1). While the storage material primarily comprises glycans, this study aimed to gain deeper insights into the protein components by proteomic profiling of the storage material in glycogenin-1 deficiency. METHODS: We employed molecular genetic analyses, quantitative mass spectrometry of laser micro-dissected polyglucosan bodies and muscle homogenate, immunohistochemistry and western blot analyses in muscle tissue from a 45-year-old patient with proximal muscle weakness from late teenage years due to polyglucosan storage myopathy. RESULTS: The muscle tissue exhibited a complete absence of glycogenin-1 due to a novel homozygous deep intronic variant in GYG1 (c.7+992T>G), introducing a pseudo-exon causing frameshift and a premature stop codon. Accumulated proteins in the polyglucosan bodies constituted components of glycogen metabolism, protein quality control pathways and desmin. Muscle fibres containing polyglucosan bodies frequently exhibited depletion of normal glycogen. CONCLUSIONS: The absence of glycogenin-1, a protein important for glycogen synthesis initiation, causes storage of polyglucosan that displays accumulation of several proteins, including those essential for glycogen synthesis, sequestosome 1/p62 and desmin, mirroring findings in RBCK1 deficiency. These results suggest shared pathogenic pathways across different diseases exhibiting polyglucosan storage. Such insights have implications for therapy in these rare yet devastating and presently untreatable disorders.


Subject(s)
Glucans , Glycogen Storage Disease , Muscle, Skeletal , Proteomics , Humans , Muscle, Skeletal/metabolism , Muscle, Skeletal/pathology , Middle Aged , Glucans/metabolism , Glycogen Storage Disease/metabolism , Glycogen Storage Disease/genetics , Glycogen Storage Disease/pathology , Male , Muscular Diseases/metabolism , Muscular Diseases/pathology , Muscular Diseases/genetics , Glucosyltransferases , Glycoproteins , Nervous System Diseases
3.
PLoS One ; 19(6): e0304614, 2024.
Article in English | MEDLINE | ID: mdl-38870218

ABSTRACT

Humanity is often fascinated by structures and materials developed by Nature. While structural materials such as wood have been widely studied, the structural and mechanical properties of fungi are still largely unknown. One of the structurally interesting fungi is the polypore Fomes fomentarius. The present study deals with the investigation of the light but robust fruiting body of F. fomentarius. The four segments of the fruiting body (crust, trama, hymenium, and mycelial core) were examined. The comprehensive analysis included structural, chemical, and mechanical characterization with particular attention to cell wall composition, such as chitin/chitosan and glucan content, degree of deacetylation, and distribution of trace elements. The hymenium exhibited the best mechanical properties even though having the highest porosity. Our results suggest that this outstanding strength is due to the high proportion of skeletal hyphae and the highest chitin/chitosan content in the cell wall, next to its honeycomb structure. In addition, an increased calcium content was found in the hymenium and crust, and the presence of calcium oxalate crystals was confirmed by SEM-EDX. Interestingly, layers with different densities as well as layers of varying calcium and potassium depletion were found in the crust. Our results show the importance of considering the different structural and compositional characteristics of the segments when developing fungal-inspired materials and products. Moreover, the porous yet robust structure of hymenium is a promising blueprint for the development of advanced smart materials.


Subject(s)
Fruiting Bodies, Fungal , Fruiting Bodies, Fungal/chemistry , Chitin/chemistry , Chitin/metabolism , Cell Wall/chemistry , Coriolaceae/metabolism , Coriolaceae/chemistry , Chitosan/chemistry , Compressive Strength , Glucans/chemistry , Glucans/metabolism , Porosity
4.
BMC Genomics ; 25(1): 495, 2024 May 20.
Article in English | MEDLINE | ID: mdl-38769483

ABSTRACT

Bacteria of the genera Xylanibacter and Segatella are among the most dominant groups in the rumen microbiota. They are characterized by the ability to utilize different hemicelluloses and pectin of plant cell-wall as well as plant energy storage polysaccharides. The degradation is possible with the use of cell envelope bound multiprotein apparatuses coded in polysaccharide utilization loci (PULs), which have been shown to be substrate specific. The knowledge of PUL presence in rumen Xylanibacter and Segatella based on bioinformatic analyses is already established and transcriptomic and genetic approaches confirmed predicted PULs for a limited number of substrates. In this study, we transcriptomically identified additional different PULs in Xylanibacter ruminicola KHP1 and Segatella bryantii TF1-3. We also identified substrate preferences and found that specific growth rate and extent of growth impacted the choice of substrates preferentially used for degradation. These preferred substrates were used by both strains simultaneously as judged by their PUL upregulation. Lastly, ß-glucan and xyloglucan were used by these strains in the absence of bioinformatically and transcriptomically identifiable PUL systems.


Subject(s)
Gene Expression Profiling , Polysaccharides , Rumen , Xylans , Animals , Xylans/metabolism , Polysaccharides/metabolism , Rumen/microbiology , Rumen/metabolism , Glucans/metabolism , beta-Glucans/metabolism , Substrate Specificity , Bacteroidetes/genetics , Bacteroidetes/metabolism , Transcriptome
5.
Mar Drugs ; 22(5)2024 Apr 28.
Article in English | MEDLINE | ID: mdl-38786594

ABSTRACT

Marine macroalgae are increasingly recognized for their significant biological and economic potential. The key to unlocking this potential lies in the efficient degradation of all carbohydrates from the macroalgae biomass. However, a variety of polysaccharides (alginate, cellulose, fucoidan, and laminarin), are difficult to degrade simultaneously in a short time. In this study, the brown alga Saccharina japonica was found to be rapidly and thoroughly degraded by the marine bacterium Agarivorans albus B2Z047. This strain harbors a broad spectrum of carbohydrate-active enzymes capable of degrading various polysaccharides, making it uniquely equipped to efficiently break down both fresh and dried kelp, achieving a hydrolysis rate of up to 52%. A transcriptomic analysis elucidated the presence of pivotal enzyme genes implicated in the degradation pathways of alginate, cellulose, fucoidan, and laminarin. This discovery highlights the bacterium's capability for the efficient and comprehensive conversion of kelp biomass, indicating its significant potential in biotechnological applications for macroalgae resource utilization.


Subject(s)
Phaeophyceae , Polysaccharides , Seaweed , Seaweed/metabolism , Phaeophyceae/metabolism , Polysaccharides/metabolism , Hydrolysis , Biomass , Glucans/metabolism , Flavobacteriaceae/metabolism , Kelp/metabolism
6.
Proc Natl Acad Sci U S A ; 121(21): e2319707121, 2024 May 21.
Article in English | MEDLINE | ID: mdl-38743622

ABSTRACT

Glycogen is a glucose storage molecule composed of branched α-1,4-glucan chains, best known as an energy reserve that can be broken down to fuel central metabolism. Because fungal cells have a specialized need for glucose in building cell wall glucans, we investigated whether glycogen is used for this process. For these studies, we focused on the pathogenic yeast Cryptococcus neoformans, which causes ~150,000 deaths per year worldwide. We identified two proteins that influence formation of both glycogen and the cell wall: glycogenin (Glg1), which initiates glycogen synthesis, and a protein that we call Glucan organizing enzyme 1 (Goe1). We found that cells missing Glg1 lack α-1,4-glucan in their walls, indicating that this material is derived from glycogen. Without Goe1, glycogen rosettes are mislocalized and ß-1,3-glucan in the cell wall is reduced. Altogether, our results provide mechanisms for a close association between glycogen and cell wall.


Subject(s)
Cell Wall , Cryptococcus neoformans , Fungal Proteins , Glucans , Glycogen , Cell Wall/metabolism , Glycogen/metabolism , Glucans/metabolism , Fungal Proteins/metabolism , Cryptococcus neoformans/metabolism , Glucosyltransferases/metabolism , beta-Glucans/metabolism
7.
Environ Microbiol ; 26(5): e16624, 2024 May.
Article in English | MEDLINE | ID: mdl-38757353

ABSTRACT

Laminarin, a ß(1,3)-glucan, serves as a storage polysaccharide in marine microalgae such as diatoms. Its abundance, water solubility and simple structure make it an appealing substrate for marine bacteria. Consequently, many marine bacteria have evolved strategies to scavenge and decompose laminarin, employing carbohydrate-binding modules (CBMs) as crucial components. In this study, we characterized two previously unassigned domains as laminarin-binding CBMs in multimodular proteins from the marine bacterium Christiangramia forsetii KT0803T, thereby introducing the new laminarin-binding CBM families CBM102 and CBM103. We identified four CBM102s in a surface glycan-binding protein (SGBP) and a single CBM103 linked to a glycoside hydrolase module from family 16 (GH16_3). Our analysis revealed that both modular proteins have an elongated shape, with GH16_3 exhibiting greater flexibility than SGBP. This flexibility may aid in the recognition and/or degradation of laminarin, while the constraints in SGBP could facilitate the docking of laminarin onto the bacterial surface. Exploration of bacterial metagenome-assembled genomes (MAGs) from phytoplankton blooms in the North Sea showed that both laminarin-binding CBM families are widespread among marine Bacteroidota. The high protein abundance of CBM102- and CBM103-containing proteins during phytoplankton blooms further emphasizes their significance in marine laminarin utilization.


Subject(s)
Bacterial Proteins , Glucans , Phytoplankton , Glucans/metabolism , Phytoplankton/metabolism , Phytoplankton/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Bacteroidetes/metabolism , Bacteroidetes/genetics , Eutrophication , Diatoms/metabolism , Diatoms/genetics , Receptors, Cell Surface
8.
Nat Commun ; 15(1): 4048, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38744821

ABSTRACT

Phytoplankton blooms provoke bacterioplankton blooms, from which bacterial biomass (necromass) is released via increased zooplankton grazing and viral lysis. While bacterial consumption of algal biomass during blooms is well-studied, little is known about the concurrent recycling of these substantial amounts of bacterial necromass. We demonstrate that bacterial biomass, such as bacterial alpha-glucan storage polysaccharides, generated from the consumption of algal organic matter, is reused and thus itself a major bacterial carbon source in vitro and during a diatom-dominated bloom. We highlight conserved enzymes and binding proteins of dominant bloom-responder clades that are presumably involved in the recycling of bacterial alpha-glucan by members of the bacterial community. We furthermore demonstrate that the corresponding protein machineries can be specifically induced by extracted alpha-glucan-rich bacterial polysaccharide extracts. This recycling of bacterial necromass likely constitutes a large-scale intra-population energy conservation mechanism that keeps substantial amounts of carbon in a dedicated part of the microbial loop.


Subject(s)
Bacteria , Carbon Cycle , Glucans , Glucans/metabolism , Bacteria/metabolism , Bacteria/classification , Bacteria/genetics , Phytoplankton/metabolism , Biomass , Diatoms/metabolism , Eutrophication , Carbon/metabolism , Zooplankton/metabolism , Polysaccharides, Bacterial/metabolism , Polysaccharides, Bacterial/chemistry , Bacterial Proteins/metabolism
9.
Int J Biol Macromol ; 270(Pt 2): 132404, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38754672

ABSTRACT

To understand the role of the X25 domains of the amylopullulanase enzyme from Thermoanaerobacter brockii brockii (T. brockii brockii), four truncated variants that are TbbApuΔX25-1-SH3 (S130-A1484), TbbApuΔX25-2-SH3 (T235-A1484), TbbApuΔX25-1-CBM20 (S130-P1254), and TbbApuΔX25-2-CBM20 (T235-P1254) were constructed, expressed and characterized together with the SH3 and CBM20 domain truncated variants (TbbApuΔSH3 (V1-A1484) and TbbApuΔCBM20 (V1-P1254). TbbApuΔSH3 showed improved affinity and specificity for both pullulan and soluble starch than full-length TbbApu with lower Km and higher kcat/Km values. It indicates that SH3 is a disposable domain without any effect on the activity and stability of the enzyme. However, TbbApuΔX25-1-SH3, TbbApuΔX25-2-SH3, TbbApuΔX25-1-CBM20, TbbApuΔX25-2-CBM20 (T235-P1254) and TbbApuΔCBM20 showed higher Km and lower kcat/Km values than TbbApuΔSH3 to both soluble starch and pullulan. It specifies that the X25 domains and CBM20 play an important role in both α-amylase and pullulanase activity. Also, it is revealed that while truncation of the CBM20 domain as starch binding domain (SBD) did not affect on raw starch binding ability of the enzyme, truncation of both X25 domains caused almost complete loss of the raw starch binding ability of the enzyme. All these results enlightened the function of the X25 domains that play a more crucial role than CBM20 in the enzyme's binding to raw starch and also play a crucial role in its activity.


Subject(s)
Glycoside Hydrolases , Protein Domains , Thermoanaerobacter , Thermoanaerobacter/enzymology , Thermoanaerobacter/genetics , Glycoside Hydrolases/genetics , Glycoside Hydrolases/chemistry , Glycoside Hydrolases/metabolism , Starch/metabolism , Substrate Specificity , Kinetics , Enzyme Stability , Glucans/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism
10.
J Agric Food Chem ; 72(19): 11041-11050, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38700846

ABSTRACT

The function of polysaccharides is intimately associated with their size, which is largely determined by the processivity of transferases responsible for their synthesis. A tunnel active center architecture has been recognized as a key factor that governs processivity of several glycoside hydrolases (GHs), e.g., cellulases and chitinases. Similar tunnel architecture is also observed in the Limosilactobacillus reuteri 121 GtfB (Lr121 GtfB) α-glucanotransferase from the GH70 family. The molecular element underpinning processivity of these transglucosylases remains underexplored. Here, we report the synthesis of the smallest (α1 → 4)-α-glucan interspersed with linear and branched (α1 → 6) linkages by a novel 4,6-α-glucanotransferase from L. reuteri N1 (LrN1 GtfB) with an open-clefted active center instead of the tunnel structure. Notably, the loop swapping engineering of LrN1 GtfB and Lr121 GtfB based on their crystal structures clarified the impact of the loop-mediated tunnel/cleft structure at the donor subsites -2 to -3 on processivity of these α-glucanotransferases, enabling the tailoring of both product sizes and substrate preferences. This study provides unprecedented insights into the processivity determinants and evolutionary diversification of GH70 α-glucanotransferases and offers a simple route for engineering starch-converting α-glucanotransferases to generate diverse α-glucans for different biotechnological applications.


Subject(s)
Bacterial Proteins , Glucans , Limosilactobacillus reuteri , Glucans/chemistry , Glucans/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Limosilactobacillus reuteri/enzymology , Limosilactobacillus reuteri/genetics , Limosilactobacillus reuteri/chemistry , Catalytic Domain , Glucosyltransferases/chemistry , Glucosyltransferases/genetics , Glucosyltransferases/metabolism , Protein Engineering , Glycogen Debranching Enzyme System/genetics , Glycogen Debranching Enzyme System/metabolism , Glycogen Debranching Enzyme System/chemistry
11.
Int J Biol Macromol ; 268(Pt 2): 131680, 2024 May.
Article in English | MEDLINE | ID: mdl-38641282

ABSTRACT

The subfamily GH13_16 trehalose synthase (TreS) converts maltose to trehalose and vice versa. Typically, it consists of three domains, but it may contain a C-terminal extension exhibiting clear sequence features of a maltokinase (MaK). The present in silico study was focused on collection of naturally fused TreS-MaKs and their subsequent detailed bioinformatics analysis. Hence a set of total 3354 unique sequences was compared consisting of 1900 single TreSs, 1426 fused TreS-MaKs and 28 single MaKs. Fused TreS-MaKs were divided into five groups, namely with a standard MaK, with mutations in the maltose-binding site, of the catalytic nucleophile, of the general acid/base and of both catalytic residues. Sequence logos bearing the best conserved sequence regions were prepared for both TreSs and MaKs in an effort to find unique sequence features. In addition, linkers connecting the TreS and MaK parts in the fused enzymes were analysed. This analysis revealed that MaKs in fused enzymes have an extended N-terminal regions compared to single MaKs. Finally, the evolutionary relationships were demonstrated by phylogenetic trees of TreS parts from single TreSs and fused TreS-MaKs from the same organism as well as of single TreSs existing in multiple isoforms in the same organism.


Subject(s)
Glucosyltransferases , Phylogeny , Glucosyltransferases/genetics , Glucosyltransferases/chemistry , Glucosyltransferases/metabolism , Glucans/biosynthesis , Glucans/metabolism , Protein Domains , Amino Acid Sequence
12.
Int J Biol Macromol ; 268(Pt 1): 131820, 2024 May.
Article in English | MEDLINE | ID: mdl-38670184

ABSTRACT

In this study, an NSDD gene, which encoded a GATA-type transcription factor involved in the regulation and biosynthesis of melanin, pullulan, and polymalate (PMA) in Aureobasidium melanogenum, was characterized. After the NSDD gene was completely removed, melanin production by the Δnsd mutants was enhanced, while pullulan and polymalate production was significantly reduced. Transcription levels of the genes involved in melanin biosynthesis were up-regulated while expression levels of the genes responsible for pullulan and PMA biosynthesis were down-regulated in the Δnsdd mutants. In contrast, the complementation of the NSDD gene in the Δnsdd mutants made the overexpressing mutants restore melanin production and transcription levels of the genes responsible for melanin biosynthesis. Inversely, the complementation strains, compared to the wild type strains, showed enhanced pullulan and PMA yields. These results demonstrated that the NsdD was not only a negative regulator for melanin biosynthesis, but also a key positive regulator for pullulan and PMA biosynthesis in A. melanogenum. It was proposed how the same transcriptional factor could play a negative role in melanin biosynthesis and a positive role in pullulan and PMA biosynthesis. This study provided novel insights into the regulatory mechanisms of multiple A. melanogenum metabolites and the possibility for improving its yields of some industrial products through genetic approaches.


Subject(s)
Aureobasidium , Gene Expression Regulation, Fungal , Glucans , Melanins , Glucans/biosynthesis , Glucans/metabolism , Melanins/biosynthesis , Aureobasidium/metabolism , Aureobasidium/genetics , Fungal Proteins/genetics , Fungal Proteins/metabolism , GATA Transcription Factors/metabolism , GATA Transcription Factors/genetics , Mutation , Transcription Factors/genetics , Transcription Factors/metabolism
13.
Proteins ; 92(8): 984-997, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38641972

ABSTRACT

Glycoside hydrolase (GH) family 13 is among the main families of enzymes acting on starch; recently, subfamily 47 of GH13 (GH13_47) has been established. The crystal structure and function of a GH13_47 enzyme from Bacteroides ovatus has only been reported to date. This enzyme has α-amylase activity, while the GH13_47 enzymes comprise approximately 800-900 amino acid residues which are almost double those of typical α-amylases. It is important to know how different the GH13_47 enzymes are from other α-amylases. Rhodothermus marinus JCM9785, a thermophilic bacterium, possesses a gene for the GH13_47 enzyme, which is designated here as RmGH13_47A. Its structure has been predicted to be composed of seven domains: N1, N2, N3, A, B, C, and D. We constructed a plasmid encoding Gly266-Glu886, which contains the N3, A, B, and C domains and expressed the protein in Escherichia coli. The enzyme hydrolyzed starch and pullulan by a neopullulanase-type action. Additionally, the enzyme acted on maltotetraose, and saccharides with α-1,6-glucosidic linkages were observed in the products. Following the replacement of the catalytic residue Asp563 with Ala, the crystal structure of the variant D563A in complex with the enzymatic products from maltotetraose was determined; as a result, electron density for an α-1,6-branched pentasaccharide was observed in the catalytic pocket, and Ile762 and Asp763 interacted with the branched chain of the pentasaccharide. These findings suggest that RmGH13_47A is an α-amylase that prefers α-1,6-branched parts of starch to produce oligosaccharides.


Subject(s)
Bacterial Proteins , Models, Molecular , Rhodothermus , alpha-Amylases , Rhodothermus/enzymology , Rhodothermus/genetics , alpha-Amylases/chemistry , alpha-Amylases/metabolism , alpha-Amylases/genetics , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Glucans/metabolism , Glucans/chemistry , Substrate Specificity , Starch/metabolism , Starch/chemistry , Amino Acid Sequence , Oligosaccharides/metabolism , Oligosaccharides/chemistry , Catalytic Domain , Protein Binding , Escherichia coli/genetics , Escherichia coli/metabolism , Hydrolysis , Protein Interaction Domains and Motifs , Crystallography, X-Ray , Recombinant Proteins/chemistry , Recombinant Proteins/metabolism , Recombinant Proteins/genetics , Cloning, Molecular , Glycoside Hydrolases/chemistry , Glycoside Hydrolases/metabolism , Glycoside Hydrolases/genetics , Binding Sites , Protein Conformation, alpha-Helical , Maltose/analogs & derivatives
14.
Biochemistry ; 63(9): 1194-1205, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38598309

ABSTRACT

Barley (1,3;1,4)-ß-d-glucanase is believed to have evolved from an ancestral monocotyledon (1,3)-ß-d-glucanase, enabling the hydrolysis of (1,3;1,4)-ß-d-glucans in the cell walls of leaves and germinating grains. In the present study, we investigated the substrate specificities of variants of the barley enzymes (1,3;1,4)-ß-d-glucan endohydrolase [(1,3;1,4)-ß-d-glucanase] isoenzyme EII (HvEII) and (1,3)-ß-d-glucan endohydrolase [(1,3)-ß-d-glucanase] isoenzyme GII (HvGII) obtained by protein segment hybridization and site-directed mutagenesis. Using protein segment hybridization, we obtained three variants of HvEII in which the substrate specificity was that of a (1,3)-ß-d-glucanase and one variant that hydrolyzed both (1,3)-ß-d-glucans and (1,3;1,4)-ß-d-glucans; the wild-type enzyme hydrolyzed only (1,3;1,4)-ß-d-glucans. Using substitutions of specific amino acid residues, we obtained one variant of HvEII that hydrolyzed both substrates. However, neither protein segment hybridization nor substitutions of specific amino acid residues gave variants of HvGII that could hydrolyze (1,3;1,4)-ß-d-glucans; the wild-type enzyme hydrolyzed only (1,3)-ß-d-glucans. Other HvEII and HvGII variants showed changes in specific activity and their ability to degrade the (1,3;1,4)-ß-d-glucans or (1,3)-ß-d-glucans to larger oligosaccharides. We also used molecular dynamics simulations to identify amino-acid residues or structural regions of wild-type HvEII and HvGII that interact with (1,3;1,4)-ß-d-glucans and (1,3)-ß-d-glucans, respectively, and may be responsible for the substrate specificities of the two enzymes.


Subject(s)
Hordeum , Hordeum/enzymology , Hordeum/genetics , Substrate Specificity , Mutagenesis, Site-Directed , Plant Proteins/genetics , Plant Proteins/metabolism , Plant Proteins/chemistry , Glucans/metabolism , Isoenzymes/genetics , Isoenzymes/metabolism , Isoenzymes/chemistry , Mutagenesis , beta-Glucans/metabolism
15.
J Hazard Mater ; 470: 134172, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38569340

ABSTRACT

Xyloglucan endotransglucosylase/hydrolases (XTH) are cell wall-modifying enzymes important in plant response to abiotic stress. However, the role of XTH in cadmium (Cd) tolerance in ramie remains largely unknown. Here, we identified and cloned BnXTH1, a member of the XTH family, in response to Cd stress in ramie. The BnXTH1 promoter (BnXTH1p) demonstrated that MeJA induces the response of BnXTH1p to Cd stress. Moreover, overexpressing BnXTH1 in Boehmeria nivea increased Cd tolerance by significantly increasing the Cd content in the cell wall and decreasing Cd inside ramie cells. Cadmium stress induced BnXTH1-expression and consequently increased xyloglucan endotransglucosylase (XET) activity, leading to high xyloglucan contents and increased hemicellulose contents in ramie. The elevated hemicellulose content increased Cd chelation onto the cell walls and reduced the level of intracellular Cd. Interestingly, overexpressing BnXTH1 significantly increased the content of Cd in vacuoles of ramie and vacuolar compartmentalization genes. Altogether, these results evidence that Cd stress induced MeJA accumulation in ramie, thus, activating BnXTH1 expression and increasing the content of xyloglucan to enhance the hemicellulose binding capacity and increase Cd chelation onto cell walls. BnXTH1 also enhances the vacuolar Cd compartmentalization and reduces the level of Cd entering the organelles and soluble solution.


Subject(s)
Boehmeria , Cadmium , Cell Wall , Vacuoles , Cadmium/toxicity , Cadmium/metabolism , Cell Wall/metabolism , Cell Wall/drug effects , Boehmeria/metabolism , Boehmeria/drug effects , Vacuoles/metabolism , Vacuoles/drug effects , Glycosyltransferases/metabolism , Glycosyltransferases/genetics , Plant Proteins/metabolism , Plant Proteins/genetics , Polysaccharides/metabolism , Oxylipins/metabolism , Gene Expression Regulation, Plant/drug effects , Glucans/metabolism , Xylans/metabolism , Stress, Physiological/drug effects
16.
Chem Rev ; 124(8): 4863-4934, 2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38606812

ABSTRACT

Bacteria have acquired sophisticated mechanisms for assembling and disassembling polysaccharides of different chemistry. α-d-Glucose homopolysaccharides, so-called α-glucans, are the most widespread polymers in nature being key components of microorganisms. Glycogen functions as an intracellular energy storage while some bacteria also produce extracellular assorted α-glucans. The classical bacterial glycogen metabolic pathway comprises the action of ADP-glucose pyrophosphorylase and glycogen synthase, whereas extracellular α-glucans are mostly related to peripheral enzymes dependent on sucrose. An alternative pathway of glycogen biosynthesis, operating via a maltose 1-phosphate polymerizing enzyme, displays an essential wiring with the trehalose metabolism to interconvert disaccharides into polysaccharides. Furthermore, some bacteria show a connection of intracellular glycogen metabolism with the genesis of extracellular capsular α-glucans, revealing a relationship between the storage and structural function of these compounds. Altogether, the current picture shows that bacteria have evolved an intricate α-glucan metabolism that ultimately relies on the evolution of a specific enzymatic machinery. The structural landscape of these enzymes exposes a limited number of core catalytic folds handling many different chemical reactions. In this Review, we present a rationale to explain how the chemical diversity of α-glucans emerged from these systems, highlighting the underlying structural evolution of the enzymes driving α-glucan bacterial metabolism.


Subject(s)
Bacteria , Glucans , Glucans/metabolism , Glucans/chemistry , Bacteria/enzymology , Bacteria/metabolism , Evolution, Molecular
17.
Food Funct ; 15(9): 4832-4851, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38623620

ABSTRACT

This study aimed to assess the impact of Lactobacillaceae (L or H represents a low or high dose), inulin (I), and polydextrose (P) combined with aerobic exercise (A) on the composition of the gut microbiota and metabolic profiles in db/db mice. After a 12-week intervention, LIP, LIPA, and HIPA groups exhibited significant improvements in hyperglycemia, glucose tolerance, insulin resistance, inflammatory response, and short-chain fatty acid (SCFA) and blood lipid levels compared to type 2 diabetes mice (MC). After treatment, the gut microbiota composition shifted favorably in the treatment groups which significantly increased the abundance of beneficial bacteria, such as Bacteroides, Blautia, Akkermansia, and Faecalibaculum, and significantly decreased the abundance of Proteus. Metabolomics analysis showed that compared to the MC group, the contents of 5-hydroxyindoleacetic acid, 3-hydroxysebacic acid, adenosine monophosphate (AMP), xanthine and hypoxanthine were significantly decreased, while 3-ketosphinganine, sphinganine, and sphingosine were significantly increased in the LIP and LIPA groups, respectively. Additionally, LIP and LIPA not only improved sphingolipid metabolism and purine metabolism pathways but also activated AMP-activated protein kinase to promote ß-oxidation by increasing the levels of SCFAs. Faecalibaculum, Blautia, Bacteroides, and Akkermansia exhibited positive correlations with sphingosine, 3-ketosphinganine, and sphinganine, and exhibited negative correlations with hypoxanthine, xanthine and AMP. Faecalibaculum, Blautia, Bacteroides, and Akkermansia may have the potential to improve sphingolipid metabolism and purine metabolism pathways. These findings suggest that the synergism of Lactobacillaceae, inulin, polydextrose, and aerobic exercise provides a promising strategy for the prevention and management of type 2 diabetes.


Subject(s)
Diabetes Mellitus, Type 2 , Gastrointestinal Microbiome , Hyperglycemia , Inulin , Lactobacillaceae , Physical Conditioning, Animal , Animals , Gastrointestinal Microbiome/drug effects , Mice , Inulin/pharmacology , Hyperglycemia/metabolism , Male , Diabetes Mellitus, Type 2/metabolism , Diabetes Mellitus, Type 2/therapy , Lactobacillaceae/metabolism , Glucans/metabolism , Metabolome , Mice, Inbred C57BL , Fatty Acids, Volatile/metabolism , Bacteria/classification , Bacteria/genetics , Bacteria/metabolism , Bacteria/isolation & purification
18.
Life Sci Space Res (Amst) ; 41: 110-118, 2024 May.
Article in English | MEDLINE | ID: mdl-38670637

ABSTRACT

Over the course of more than a decade, space biology investigations have consistently indicated that cell wall remodeling occurs in a variety of spaceflight-grown plants. Here, we describe a mass spectrometric method to study the fundamental composition of xyloglucan, the most abundant hemicellulose in dicot cell walls, in space-grown plants. Four representative Arabidopsis root samples, from a previously conducted spaceflight experiment - Advanced Plant EXperiment - 04 (APEX-04), were used to investigate changes in xyloglucan oligosaccharides abundances in spaceflight-grown plants compared to ground controls. In situ localized enzymatic digestions and surface sampling mass spectrometry analysis provided spatial resolution of the changes in xyloglucan oligosaccharides abundances. Overall, the results showed that oligosaccharide XXLG/XLXG and XXFG branching patterns were more abundant in the lateral roots of spaceflight-grown plants, while XXXG, XLFG, and XLFG/XLFG were more abundant in the lateral roots of ground control plants. In the primary roots, XXFG had a higher abundance in ground controls than in spaceflight plants. This methodology of analyzing the basic components of the cell wall in this paper highlights two important findings. First, that are differences in the composition of xyloglucan oligosaccharides in spaceflight root cell walls compared to ground controls and, second, most of these differences are observed in the lateral roots. Thus, the methodology described in this paper provides insights into spaceflight cell wall modifications for future investigations.


Subject(s)
Arabidopsis , Cell Wall , Glucans , Oligosaccharides , Plant Roots , Space Flight , Xylans , Arabidopsis/metabolism , Cell Wall/metabolism , Glucans/analysis , Glucans/metabolism , Xylans/analysis , Xylans/metabolism , Plant Roots/metabolism , Oligosaccharides/analysis , Oligosaccharides/metabolism , Mass Spectrometry
19.
BMC Plant Biol ; 24(1): 339, 2024 Apr 26.
Article in English | MEDLINE | ID: mdl-38671375

ABSTRACT

BACKGROUND: Many phytopathogens secrete a large number of cell wall degrading enzymes (CWDEs) to decompose host cell walls in order to penetrate the host, obtain nutrients and accelerate colonization. There is a wide variety of CWDEs produced by plant pathogens, including glycoside hydrolases (GHs), which determine the virulence, pathogenicity, and host specificity of phytopathogens. The specific molecular mechanisms by which pathogens suppress host immunity remain obscure. RESULT: In this study, we found that CgEC124 encodes a glycosyl hydrolase with a signal peptide and a conserved Glyco_hydro_cc domain which belongs to glycoside hydrolase 128 family. The expression of CgEC124 was significantly induced in the early stage of Colletotrichum graminicola infection, especially at 12 hpi. Furthermore, CgEC124 positively regulated the pathogenicity, but it did not impact the vegetative growth of mycelia. Ecotopic transient expression of CgEC124 decreased the disease resistance and callose deposition in maize. Moreover, CgEC124 exhibited the ß-1,3-glucanase activity and suppresses glucan-induced ROS burst in maize leaves. CONCLUSIONS: Our results indicate that CgEC124 is required for full virulence of C. graminicola but not for vegetative growth. CgEC124 increases maize susceptibility by inhibiting host reactive oxygen species burst as well as callose deposition. Meanwhile, our data suggests that CgEC124 explores its ß-1,3-glucanase activity to prevent induction of host defenses.


Subject(s)
Colletotrichum , Plant Diseases , Plant Immunity , Zea mays , Colletotrichum/pathogenicity , Disease Resistance , Fungal Proteins/metabolism , Fungal Proteins/genetics , Glucan 1,3-beta-Glucosidase/metabolism , Glucan 1,3-beta-Glucosidase/genetics , Glucans/metabolism , Plant Diseases/microbiology , Plant Diseases/immunology , Reactive Oxygen Species/metabolism , Zea mays/immunology , Zea mays/microbiology
20.
Enzyme Microb Technol ; 178: 110441, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38574421

ABSTRACT

Millions of tons of citrus peel waste are produced every year as a byproduct of the juice industry. Citrus peel is rich in pectin and xyloglucan, but while the pectin is extracted for use in the food industry, the xyloglucan is currently not valorized. To target hydrolytic degradation of citrus peel xyloglucan into oligosaccharides, we have used bioinformatics to identify three glycoside hydrolase 12 (GH12) endoxyloglucanases (EC 3.2.1.151) from the citrus fruit pathogens Penicillium italicum GL-Gan1 and Penicillium digitatum Pd1 and characterized them on xyloglucan obtained by alkaline extraction from citrus peel. The enzymes displayed pH-temperature optima of pH 4.6-5.3 and 35-37°C. PdGH12 from P. digitatum and PiGH12A from P. italicum share 84% sequence identity and displayed similar kinetics, although kcat was highest for PdGH12. In contrast, PiGH12B from P. italicum, which has the otherwise conserved Trp in subsite -4 replaced with a Tyr, displayed a 3 times higher KM and a 4 times lower kcat/KM than PiGH12A, but was the most thermostable enzyme of the three Penicillium-derived endoxyloglucanases. The benchmark enzyme AnGH12 from Aspergillus nidulans was more thermally stable and had a higher pH-temperature optimum than the enzymes from Penicillum spp. The difference in structure of the xyloglucan oligosaccharides extracted from citrus peel xyloglucan and tamarind xyloglucan by the new endoxyloglucanases was determined by LC-MS. The inclusion of citrus peel xyloglucan demonstrated that the endoxyloglucanases liberated fucosylated xyloglucan oligomers, implying that these enzymes have the potential to upgrade citrus peel residues to produce oligomers useful as intermediates or bioactive compounds.


Subject(s)
Citrus , Computational Biology , Fungal Proteins , Glucans , Glycoside Hydrolases , Penicillium , Xylans , Penicillium/enzymology , Penicillium/genetics , Citrus/microbiology , Glycoside Hydrolases/metabolism , Glycoside Hydrolases/genetics , Glycoside Hydrolases/chemistry , Glycoside Hydrolases/isolation & purification , Fungal Proteins/genetics , Fungal Proteins/metabolism , Fungal Proteins/chemistry , Fungal Proteins/isolation & purification , Xylans/metabolism , Glucans/metabolism , Hydrogen-Ion Concentration , Kinetics , Substrate Specificity , Amino Acid Sequence , Enzyme Stability , Temperature , Hydrolysis
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