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1.
J Biol Chem ; 296: 100638, 2021.
Artículo en Inglés | MEDLINE | ID: mdl-33838183

RESUMEN

Carbohydrate active enzymes, such as those involved in plant cell wall and storage polysaccharide biosynthesis and deconstruction, often contain repeating noncatalytic carbohydrate-binding modules (CBMs) to compensate for low-affinity binding typical of protein-carbohydrate interactions. The bacterium Saccharophagus degradans produces an endo-ß-mannanase of glycoside hydrolase family 5 subfamily 8 with three phylogenetically distinct family 10 CBMs located C-terminally from the catalytic domain (SdGH5_8-CBM10x3). However, the functional roles and cooperativity of these CBM domains in polysaccharide binding are not clear. To learn more, we studied the full-length enzyme, three stepwise CBM family 10 (CBM10) truncations, and GFP fusions of the individual CBM10s and all three domains together by pull-down assays, affinity gel electrophoresis, and activity assays. Only the C-terminal CBM10-3 was found to bind strongly to microcrystalline cellulose (dissociation constant, Kd = 1.48 µM). CBM10-3 and CBM10-2 bound galactomannan with similar affinity (Kd = 0.2-0.4 mg/ml), but CBM10-1 had 20-fold lower affinity for this substrate. CBM10 truncations barely affected specific activity on carob galactomannan and konjac glucomannan. Full-length SdGH5_8-CBM10x3 was twofold more active on the highly galactose-decorated viscous guar gum galactomannan and crystalline ivory nut mannan at high enzyme concentrations, but the specific activity was fourfold to ninefold reduced at low enzyme and substrate concentrations compared with the enzyme lacking CBM10-2 and CBM10-3. Comparison of activity and binding data for the different enzyme forms indicates unproductive and productive polysaccharide binding to occur. We conclude that the C-terminal-most CBM10-3 secures firm binding, with contribution from CBM10-2, which with CBM10-1 also provides spatial flexibility.


Asunto(s)
Celulosa/metabolismo , Gammaproteobacteria/enzimología , Mananos/metabolismo , beta-Manosidasa/metabolismo , Secuencia de Aminoácidos , Dominio Catalítico , Galactosa/análogos & derivados , Conformación Proteica , Homología de Secuencia , Especificidad por Sustrato , beta-Manosidasa/química , beta-Manosidasa/genética
2.
J Biol Chem ; 296: 100086, 2021.
Artículo en Inglés | MEDLINE | ID: mdl-33199373

RESUMEN

Understanding enzymatic breakdown of plant biomass is crucial to develop nature-inspired biotechnological processes. Lytic polysaccharide monooxygenases (LPMOs) are microbial enzymes secreted by fungal saprotrophs involved in carbon recycling. LPMOs modify biomass by oxidatively cleaving polysaccharides, thereby enhancing the efficiency of glycoside hydrolases. Fungal AA9 LPMOs are active on cellulose, but some members also display activity on hemicelluloses and/or oligosaccharides. Although the active site subsites are well defined for a few model LPMOs, the molecular determinants driving broad substrate specificity are still not easily predictable. Based on bioinformatic clustering and sequence alignments, we selected seven fungal AA9 LPMOs that differ in the amino-acid residues constituting their subsites. Investigation of their substrate specificities revealed that all these LPMOs are active on cellulose and cello-oligosaccharides, as well as plant cell wall-derived hemicellulosic polysaccharides, and carry out C4 oxidative cleavage. The product profiles from cello-oligosaccharide degradation suggest that the subtle differences in amino-acid sequence within the substrate-binding loop regions lead to different preferred binding modes. Our functional analyses allowed us to probe the molecular determinants of substrate binding within two AA9 LPMO subclusters. Many wood-degrading fungal species rich in AA9 genes have at least one AA9 enzyme with structural loop features that allow recognition of short ß-(1,4)-linked glucan chains. Time-course monitoring of these AA9 LPMOs on cello-oligosaccharides also provides a useful model system for mechanistic studies of LPMO catalysis. These results are valuable for the understanding of LPMO contribution to wood decaying process in nature and for the development of sustainable biorefineries.


Asunto(s)
Pared Celular/metabolismo , Celulosa/metabolismo , Oxigenasas de Función Mixta/metabolismo , Pared Celular/química , Biología Computacional , Hongos/enzimología , Hongos/metabolismo , Oligosacáridos/química , Oligosacáridos/metabolismo , Polisacáridos/química , Polisacáridos/metabolismo , Especificidad por Sustrato
3.
Mol Biol Evol ; 38(4): 1428-1446, 2021 04 13.
Artículo en Inglés | MEDLINE | ID: mdl-33211093

RESUMEN

As actors of global carbon cycle, Agaricomycetes (Basidiomycota) have developed complex enzymatic machineries that allow them to decompose all plant polymers, including lignin. Among them, saprotrophic Agaricales are characterized by an unparalleled diversity of habitats and lifestyles. Comparative analysis of 52 Agaricomycetes genomes (14 of them sequenced de novo) reveals that Agaricales possess a large diversity of hydrolytic and oxidative enzymes for lignocellulose decay. Based on the gene families with the predicted highest evolutionary rates-namely cellulose-binding CBM1, glycoside hydrolase GH43, lytic polysaccharide monooxygenase AA9, class-II peroxidases, glucose-methanol-choline oxidase/dehydrogenases, laccases, and unspecific peroxygenases-we reconstructed the lifestyles of the ancestors that led to the extant lignocellulose-decomposing Agaricomycetes. The changes in the enzymatic toolkit of ancestral Agaricales are correlated with the evolution of their ability to grow not only on wood but also on leaf litter and decayed wood, with grass-litter decomposers as the most recent eco-physiological group. In this context, the above families were analyzed in detail in connection with lifestyle diversity. Peroxidases appear as a central component of the enzymatic toolkit of saprotrophic Agaricomycetes, consistent with their essential role in lignin degradation and high evolutionary rates. This includes not only expansions/losses in peroxidase genes common to other basidiomycetes but also the widespread presence in Agaricales (and Russulales) of new peroxidases types not found in wood-rotting Polyporales, and other Agaricomycetes orders. Therefore, we analyzed the peroxidase evolution in Agaricomycetes by ancestral-sequence reconstruction revealing several major evolutionary pathways and mapped the appearance of the different enzyme types in a time-calibrated species tree.


Asunto(s)
Agaricales/genética , Genoma Fúngico , Lignina/metabolismo , Peroxidasas/genética , Filogenia , Agaricales/enzimología , Ecosistema , Familia de Multigenes , Peroxidasas/metabolismo
4.
Nat Chem Biol ; 16(3): 345-350, 2020 03.
Artículo en Inglés | MEDLINE | ID: mdl-31932718

RESUMEN

Lytic polysaccharide monooxygenases (LPMOs) are copper-containing enzymes that play a key role in the oxidative degradation of various biopolymers such as cellulose and chitin. While hunting for new LPMOs, we identified a new family of proteins, defined here as X325, in various fungal lineages. The three-dimensional structure of X325 revealed an overall LPMO fold and a His brace with an additional Asp ligand to Cu(II). Although LPMO-type activity of X325 members was initially expected, we demonstrated that X325 members do not perform oxidative cleavage of polysaccharides, establishing that X325s are not LPMOs. Investigations of the biological role of X325 in the ectomycorrhizal fungus Laccaria bicolor revealed exposure of the X325 protein at the interface between fungal hyphae and tree rootlet cells. Our results provide insights into a family of copper-containing proteins, which is widespread in the fungal kingdom and is evolutionarily related to LPMOs, but has diverged to biological functions other than polysaccharide degradation.


Asunto(s)
Cobre/metabolismo , Oxigenasas de Función Mixta/química , Oxigenasas de Función Mixta/metabolismo , Sitios de Unión , Celulosa/metabolismo , Quitina/metabolismo , Proteínas Fúngicas/química , Proteínas Fúngicas/metabolismo , Hongos/metabolismo , Oxigenasas de Función Mixta/ultraestructura , Oxidación-Reducción , Filogenia , Polisacáridos/metabolismo
5.
Biochem J ; 478(14): 2927-2944, 2021 07 30.
Artículo en Inglés | MEDLINE | ID: mdl-34240737

RESUMEN

The release of glucose from lignocellulosic waste for subsequent fermentation into biofuels holds promise for securing humankind's future energy needs. The discovery of a set of copper-dependent enzymes known as lytic polysaccharide monooxygenases (LPMOs) has galvanised new research in this area. LPMOs act by oxidatively introducing chain breaks into cellulose and other polysaccharides, boosting the ability of cellulases to act on the substrate. Although several proteins have been implicated as electron sources in fungal LPMO biochemistry, no equivalent bacterial LPMO electron donors have been previously identified, although the proteins Cbp2D and E from Cellvibrio japonicus have been implicated as potential candidates. Here we analyse a small c-type cytochrome (CjX183) present in Cellvibrio japonicus Cbp2D, and show that it can initiate bacterial CuII/I LPMO reduction and also activate LPMO-catalyzed cellulose-degradation. In the absence of cellulose, CjX183-driven reduction of the LPMO results in less H2O2 production from O2, and correspondingly less oxidative damage to the enzyme than when ascorbate is used as the reducing agent. Significantly, using CjX183 as the activator maintained similar cellulase boosting levels relative to the use of an equivalent amount of ascorbate. Our results therefore add further evidence to the impact that the choice of electron source can have on LPMO action. Furthermore, the study of Cbp2D and other similar proteins may yet reveal new insight into the redox processes governing polysaccharide degradation in bacteria.


Asunto(s)
Proteínas Bacterianas/metabolismo , Cellvibrio/enzimología , Grupo Citocromo c/metabolismo , Oxigenasas de Función Mixta/metabolismo , Polisacáridos Bacterianos/metabolismo , Proteínas Bacterianas/química , Proteínas Bacterianas/genética , Biocatálisis , Celulosa/metabolismo , Cellvibrio/genética , Grupo Citocromo c/química , Grupo Citocromo c/genética , Peróxido de Hidrógeno/metabolismo , Isoenzimas/química , Isoenzimas/genética , Isoenzimas/metabolismo , Oxigenasas de Función Mixta/química , Oxigenasas de Función Mixta/genética , Modelos Moleculares , Oligosacáridos/metabolismo , Oxidación-Reducción , Oxígeno/metabolismo , Dominios Proteicos , Espectrofotometría/métodos , Especificidad por Sustrato
6.
Nat Chem Biol ; 14(3): 306-310, 2018 03.
Artículo en Inglés | MEDLINE | ID: mdl-29377002

RESUMEN

Wood biomass is the most abundant feedstock envisioned for the development of modern biorefineries. However, the cost-effective conversion of this form of biomass into commodity products is limited by its resistance to enzymatic degradation. Here we describe a new family of fungal lytic polysaccharide monooxygenases (LPMOs) prevalent among white-rot and brown-rot basidiomycetes that is active on xylans-a recalcitrant polysaccharide abundant in wood biomass. Two AA14 LPMO members from the white-rot fungus Pycnoporus coccineus substantially increase the efficiency of wood saccharification through oxidative cleavage of highly refractory xylan-coated cellulose fibers. The discovery of this unique enzyme activity advances our knowledge on the degradation of woody biomass in nature and offers an innovative solution for improving enzyme cocktails for biorefinery applications.


Asunto(s)
Basidiomycota/enzimología , Biomasa , Oxigenasas de Función Mixta/química , Polisacáridos/química , Madera/microbiología , Biodegradación Ambiental , Biotecnología/economía , Biotecnología/métodos , Celulosa/química , Biología Computacional , Análisis Costo-Beneficio , Cristalografía por Rayos X , Espectroscopía de Resonancia por Spin del Electrón , Genómica , Glicosilación , Oxígeno/química , Filogenia , Especificidad por Sustrato , Transcriptoma , Xilanos/química
7.
Mar Drugs ; 18(9)2020 Sep 09.
Artículo en Inglés | MEDLINE | ID: mdl-32916905

RESUMEN

Even if the ocean represents a large part of Earth's surface, only a few studies describe marine-derived fungi compared to their terrestrial homologues. In this ecosystem, marine-derived fungi have had to adapt to the salinity and to the plant biomass composition. This articles studies the growth of five marine isolates and the tuning of lignocellulolytic activities under different conditions, including the salinity. A de novo transcriptome sequencing and assembly were used in combination with a proteomic approach to characterize the Carbohydrate Active Enzymes (CAZy) repertoire of one of these strains. Following these approaches, Stemphylium lucomagnoense was selected for its adapted growth on xylan in saline conditions, its high xylanase activity, and its improved laccase activities in seagrass-containing cultures with salt. De novo transcriptome sequencing and assembly indicated the presence of 51 putative lignocellulolytic enzymes. Its secretome composition was studied in detail when the fungus was grown on either a terrestrial or a marine substrate, under saline and non-saline conditions. Proteomic analysis of the four S. lucomagnoense secretomes revealed a minimal suite of extracellular enzymes for plant biomass degradation and highlighted potential enzyme targets to be further studied for their adaptation to salts and for potential biotechnological applications.


Asunto(s)
Ascomicetos/enzimología , Enzimas/metabolismo , Proteínas Fúngicas/metabolismo , Lignina/metabolismo , Tolerancia a la Sal , Ascomicetos/genética , Ascomicetos/crecimiento & desarrollo , Bases de Datos Genéticas , Enzimas/genética , Enzimas/aislamiento & purificación , Proteínas Fúngicas/genética , Proteínas Fúngicas/aislamiento & purificación , Perfilación de la Expresión Génica , Proteoma , Proteómica , Salinidad , Agua de Mar/microbiología , Especificidad por Sustrato , Transcriptoma , Microbiología del Agua
8.
BMC Genomics ; 20(1): 485, 2019 Jun 12.
Artículo en Inglés | MEDLINE | ID: mdl-31189469

RESUMEN

BACKGROUND: The growing importance of the ubiquitous fungal genus Trichoderma (Hypocreales, Ascomycota) requires understanding of its biology and evolution. Many Trichoderma species are used as biofertilizers and biofungicides and T. reesei is the model organism for industrial production of cellulolytic enzymes. In addition, some highly opportunistic species devastate mushroom farms and can become pathogens of humans. A comparative analysis of the first three whole genomes revealed mycoparasitism as the innate feature of Trichoderma. However, the evolution of these traits is not yet understood. RESULTS: We selected 12 most commonly occurring Trichoderma species and studied the evolution of their genome sequences. Trichoderma evolved in the time of the Cretaceous-Palaeogene extinction event 66 (±15) mya, but the formation of extant sections (Longibrachiatum, Trichoderma) or clades (Harzianum/Virens) happened in Oligocene. The evolution of the Harzianum clade and section Trichoderma was accompanied by significant gene gain, but the ancestor of section Longibrachiatum experienced rapid gene loss. The highest number of genes gained encoded ankyrins, HET domain proteins and transcription factors. We also identified the Trichoderma core genome, completely curated its annotation, investigated several gene families in detail and compared the results to those of other fungi. Eighty percent of those genes for which a function could be predicted were also found in other fungi, but only 67% of those without a predictable function. CONCLUSIONS: Our study presents a time scaled pattern of genome evolution in 12 Trichoderma species from three phylogenetically distant clades/sections and a comprehensive analysis of their genes. The data offer insights in the evolution of a mycoparasite towards a generalist.


Asunto(s)
Evolución Molecular , Genómica , Trichoderma/genética , Biopolímeros/metabolismo , Carbono/metabolismo , Espacio Extracelular/metabolismo , Proteínas Fúngicas/química , Proteínas Fúngicas/metabolismo , Genes Fúngicos/genética , Hidrólisis , Reproducción , Trichoderma/citología , Trichoderma/metabolismo , Trichoderma/fisiología
9.
New Phytol ; 222(3): 1584-1598, 2019 05.
Artículo en Inglés | MEDLINE | ID: mdl-30636349

RESUMEN

Glomeromycotina is a lineage of early diverging fungi that establish arbuscular mycorrhizal (AM) symbiosis with land plants. Despite their major ecological role, the genetic basis of their obligate mutualism remains largely unknown, hindering our understanding of their evolution and biology. We compared the genomes of Glomerales (Rhizophagus irregularis, Rhizophagus diaphanus, Rhizophagus cerebriforme) and Diversisporales (Gigaspora rosea) species, together with those of saprotrophic Mucoromycota, to identify gene families and processes associated with these lineages and to understand the molecular underpinning of their symbiotic lifestyle. Genomic features in Glomeromycotina appear to be very similar with a very high content in transposons and protein-coding genes, extensive duplications of protein kinase genes, and loss of genes coding for lignocellulose degradation, thiamin biosynthesis and cytosolic fatty acid synthase. Most symbiosis-related genes in R. irregularis and G. rosea are specific to Glomeromycotina. We also confirmed that the present species have a homokaryotic genome organisation. The high interspecific diversity of Glomeromycotina gene repertoires, affecting all known protein domains, as well as symbiosis-related orphan genes, may explain the known adaptation of Glomeromycotina to a wide range of environmental settings. Our findings contribute to an increasingly detailed portrait of genomic features defining the biology of AM fungi.


Asunto(s)
Genoma Fúngico , Genómica , Glomeromycota/genética , Secuencia Conservada , Elementos Transponibles de ADN/genética , Genes Fúngicos , Lignina/metabolismo , Familia de Multigenes , Filogenia , Polisacáridos/metabolismo , Reproducción , Simbiosis/genética , Transcripción Genética , Regulación hacia Arriba/genética
10.
Fungal Genet Biol ; 112: 40-46, 2018 03.
Artículo en Inglés | MEDLINE | ID: mdl-28803908

RESUMEN

Basidiomycete fungi can degrade a wide range of plant biomass, including living and dead trees, forest litter, crops, and plant matter in soils. Understanding the process of plant biomass decay by basidiomycetes could facilitate their application in various industrial sectors such as food & feed, detergents and biofuels, and also provide new insights into their essential biological role in the global carbon cycle. The fast expansion of basidiomycete genomic and functional genomics data (e.g. transcriptomics, proteomics) has facilitated exploration of key genes and regulatory mechanisms of plant biomass degradation. In this study, we comparatively analyzed 22 transcriptome datasets from basidiomycetes related to plant biomass degradation, and identified 328 commonly induced genes and 318 repressed genes, and defined a core set of carbohydrate active enzymes (CAZymes), which was shared by most of the basidiomycete species. High conservation of these CAZymes in genomes and similar regulation pattern in transcriptomics data from lignocellulosic substrates indicate their key role in plant biomass degradation and need for their further biochemical investigation.


Asunto(s)
Basidiomycota/enzimología , Basidiomycota/genética , Hidrolasas/biosíntesis , Hidrolasas/genética , Lignina/metabolismo , Plantas/metabolismo , Transcriptoma , Basidiomycota/metabolismo , Biomasa
11.
New Phytol ; 220(4): 1309-1321, 2018 12.
Artículo en Inglés | MEDLINE | ID: mdl-29624684

RESUMEN

In ectomycorrhiza, root ingress and colonization of the apoplast by colonizing hyphae is thought to rely mainly on the mechanical force that results from hyphal tip growth, but this could be enhanced by secretion of cell-wall-degrading enzymes, which have not yet been identified. The sole cellulose-binding module (CBM1) encoded in the genome of the ectomycorrhizal Laccaria bicolor is linked to a glycoside hydrolase family 5 (GH5) endoglucanase, LbGH5-CBM1. Here, we characterize LbGH5-CBM1 gene expression and the biochemical properties of its protein product. We also immunolocalized LbGH5-CBM1 by immunofluorescence confocal microscopy in poplar ectomycorrhiza. We show that LbGH5-CBM1 expression is substantially induced in ectomycorrhiza, and RNAi mutants with a decreased LbGH5-CBM1 expression have a lower ability to form ectomycorrhiza, suggesting a key role in symbiosis. Recombinant LbGH5-CBM1 displays its highest activity towards cellulose and galactomannans, but no activity toward L. bicolor cell walls. In situ localization of LbGH5-CBM1 in ectomycorrhiza reveals that the endoglucanase accumulates at the periphery of hyphae forming the Hartig net and the mantle. Our data suggest that the symbiosis-induced endoglucanase LbGH5-CBM1 is an enzymatic effector involved in cell wall remodeling during formation of the Hartig net and is an important determinant for successful symbiotic colonization.


Asunto(s)
Celulasa/metabolismo , Laccaria/enzimología , Micorrizas/enzimología , Simbiosis/fisiología , Celulasa/química , Celulasa/aislamiento & purificación , Celulosa/metabolismo , Proteínas Fúngicas/química , Proteínas Fúngicas/aislamiento & purificación , Proteínas Fúngicas/metabolismo , Regulación Fúngica de la Expresión Génica , Hifa/metabolismo , Laccaria/genética , Mananos/metabolismo , Micorrizas/genética , Pichia/metabolismo , Dominios Proteicos , Proteínas Recombinantes/metabolismo , Saccharomyces cerevisiae/metabolismo , Transcripción Genética
12.
Nat Chem Biol ; 12(4): 298-303, 2016 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-26928935

RESUMEN

Lytic polysaccharide monooxygenases (LPMOs) are copper-containing enzymes that oxidatively break down recalcitrant polysaccharides such as cellulose and chitin. Since their discovery, LPMOs have become integral factors in the industrial utilization of biomass, especially in the sustainable generation of cellulosic bioethanol. We report here a structural determination of an LPMO-oligosaccharide complex, yielding detailed insights into the mechanism of action of these enzymes. Using a combination of structure and electron paramagnetic resonance spectroscopy, we reveal the means by which LPMOs interact with saccharide substrates. We further uncover electronic and structural features of the enzyme active site, showing how LPMOs orchestrate the reaction of oxygen with polysaccharide chains.


Asunto(s)
Celulosa/metabolismo , Quitina/metabolismo , Oxigenasas de Función Mixta/metabolismo , Secuencia de Aminoácidos , Aspergillus oryzae/enzimología , Aspergillus oryzae/genética , Sitios de Unión , Dominio Catalítico , Cobre/metabolismo , Cristalografía por Rayos X , Transferencia Resonante de Energía de Fluorescencia , Lentinula/enzimología , Lentinula/genética , Oxigenasas de Función Mixta/química , Oxigenasas de Función Mixta/genética , Modelos Moleculares , Datos de Secuencia Molecular , Oligosacáridos/química , Oxidación-Reducción , Especificidad por Sustrato
13.
Can J Microbiol ; 64(12): 992-1003, 2018 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-30338698

RESUMEN

The phylum Chloroflexi is phylogenetically diverse and is a deeply branching lineage of bacteria that express a broad spectrum of physiological and metabolic capabilities. Members of the order Ktedonobacteriales, including the families Ktedonobacteriaceae, Thermosporotrichaceae, and Thermogemmatisporaceae, all have flexible aerobic metabolisms capable of utilizing a wide range of carbohydrates. A number of species within these families are considered cellulolytic and are capable of using cellulose as a sole carbon and energy source. In contrast, Ktedonobacter racemifer, the type strain of the order, does not appear to possess this cellulolytic phenotype. In this study, we confirmed the ability of Thermogemmatispora sp. strain T81 to hydrolyze cellulose, determined the whole-genome sequence of Thermogemmatispora sp. T81, and using comparative bioinformatics analyses, identified genes encoding putative carbohydrate-active enzymes (CAZymes) in the Thermogemmatispora sp. T81, Thermogemmatispora onikobensis, and Ktedonobacter racemifer genomes. Analyses of the Thermogemmatispora sp. T81 genome identified 64 CAZyme gene sequences belonging to 57 glycoside hydrolase families. The genome of Thermogemmatispora sp. T81 encodes 19 genes for putative extracellular CAZymes, similar to the number of putative extracellular CAZymes identified in T. onikobensis (17) and K. racemifer (17), despite K. racemifer not possessing a cellulolytic phenotype. These results suggest that these members of the order Ktedonobacteriales may use a broader range of carbohydrate polymers than currently described.


Asunto(s)
Metabolismo de los Hidratos de Carbono , Chloroflexi/metabolismo , Celulosa/metabolismo , Chloroflexi/genética , Biología Computacional
14.
J Biol Chem ; 291(3): 1175-97, 2016 Jan 15.
Artículo en Inglés | MEDLINE | ID: mdl-26507654

RESUMEN

The recent classification of glycoside hydrolase family 5 (GH5) members into subfamilies enhances the prediction of substrate specificity by phylogenetic analysis. However, the small number of well characterized members is a current limitation to understanding the molecular basis of the diverse specificity observed across individual GH5 subfamilies. GH5 subfamily 4 (GH5_4) is one of the largest, with known activities comprising (carboxymethyl)cellulases, mixed-linkage endo-glucanases, and endo-xyloglucanases. Through detailed structure-function analysis, we have revisited the characterization of a classic GH5_4 carboxymethylcellulase, PbGH5A (also known as Orf4, carboxymethylcellulase, and Cel5A), from the symbiotic rumen Bacteroidetes Prevotella bryantii B14. We demonstrate that carboxymethylcellulose and phosphoric acid-swollen cellulose are in fact relatively poor substrates for PbGH5A, which instead exhibits clear primary specificity for the plant storage and cell wall polysaccharide, mixed-linkage ß-glucan. Significant activity toward the plant cell wall polysaccharide xyloglucan was also observed. Determination of PbGH5A crystal structures in the apo-form and in complex with (xylo)glucan oligosaccharides and an active-site affinity label, together with detailed kinetic analysis using a variety of well defined oligosaccharide substrates, revealed the structural determinants of polysaccharide substrate specificity. In particular, this analysis highlighted the PbGH5A active-site motifs that engender predominant mixed-linkage endo-glucanase activity vis à vis predominant endo-xyloglucanases in GH5_4. However the detailed phylogenetic analysis of GH5_4 members did not delineate particular clades of enzymes sharing these sequence motifs; the phylogeny was instead dominated by bacterial taxonomy. Nonetheless, our results provide key enzyme functional and structural reference data for future bioinformatics analyses of (meta)genomes to elucidate the biology of complex gut ecosystems.


Asunto(s)
Proteínas Bacterianas/metabolismo , Celulasa/metabolismo , Endo-1,3(4)-beta-Glucanasa/metabolismo , Glicósido Hidrolasas/metabolismo , Modelos Moleculares , Prevotella/enzimología , Sustitución de Aminoácidos , Apoenzimas/antagonistas & inhibidores , Apoenzimas/química , Apoenzimas/genética , Apoenzimas/metabolismo , Proteínas Bacterianas/antagonistas & inhibidores , Proteínas Bacterianas/química , Proteínas Bacterianas/genética , Biocatálisis , Dominio Catalítico , Celulasa/antagonistas & inhibidores , Celulasa/química , Celulasa/genética , Celulosa/química , Celulosa/metabolismo , Endo-1,3(4)-beta-Glucanasa/antagonistas & inhibidores , Endo-1,3(4)-beta-Glucanasa/química , Endo-1,3(4)-beta-Glucanasa/genética , Inhibidores Enzimáticos/química , Inhibidores Enzimáticos/metabolismo , Inhibidores Enzimáticos/farmacología , Glucanos/química , Glucanos/metabolismo , Glicósido Hidrolasas/antagonistas & inhibidores , Glicósido Hidrolasas/química , Glicósido Hidrolasas/genética , Calor , Concentración de Iones de Hidrógeno , Mutación , Filogenia , Conformación Proteica , Proteínas Recombinantes/química , Proteínas Recombinantes/metabolismo , Especificidad por Sustrato , Xilanos/química , Xilanos/metabolismo
15.
Glycobiology ; 27(5): 392-399, 2017 05 01.
Artículo en Inglés | MEDLINE | ID: mdl-28168306

RESUMEN

It was recently shown that Mycobacterium tuberculosis produces cellulose which forms an integral part of its extracellular polymeric substances within a biofilm set-up. Using Mycobacterium smegmatis as a proxy model organism, we demonstrate that M. smegmatis biofilms treated with purified MSMEG_6752 releases the main cellulose degradation-product (cellobiose), detected by using ionic chromatography, suggesting that MSMEG_6752 encodes a cellulase. Its overexpression in M. smegmatis prevents spontaneous biofilm formation. Moreover, the method reported here allowed detecting cellobiose when M. smegmatis cultures were exposed to a subinhibitory dose of rifampicin. Overall, this study highlights the role of the MSMEG_6752 in managing cellulose production induced during biofilm formation and antibiotic stress response.


Asunto(s)
Biopelículas/crecimiento & desarrollo , Celulasa/química , Celulosa/metabolismo , Mycobacterium smegmatis/enzimología , Antibacterianos/farmacología , Biopelículas/efectos de los fármacos , Celulasa/metabolismo , Celulosa/biosíntesis , Celulosa/química , Cromatografía , Regulación Enzimológica de la Expresión Génica/efectos de los fármacos , Mycobacterium tuberculosis/enzimología , Rifampin/farmacología
16.
Appl Microbiol Biotechnol ; 101(6): 2603-2618, 2017 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-28078400

RESUMEN

Recently, several endophytic fungi have been demonstrated to produce volatile organic compounds (VOCs) with properties similar to fossil fuels, called "mycodiesel," while growing on lignocellulosic plant and agricultural residues. The fact that endophytes are plant symbionts suggests that some may be able to produce lignocellulolytic enzymes, making them capable of both deconstructing lignocellulose and converting it into mycodiesel, two properties that indicate that these strains may be useful consolidated bioprocessing (CBP) hosts for the biofuel production. In this study, four endophytes Hypoxylon sp. CI4A, Hypoxylon sp. EC38, Hypoxylon sp. CO27, and Daldinia eschscholzii EC12 were selected and evaluated for their CBP potential. Analysis of their genomes indicates that these endophytes have a rich reservoir of biomass-deconstructing carbohydrate-active enzymes (CAZys), which includes enzymes active on both polysaccharides and lignin, as well as terpene synthases (TPSs), enzymes that may produce fuel-like molecules, suggesting that they do indeed have CBP potential. GC-MS analyses of their VOCs when grown on four representative lignocellulosic feedstocks revealed that these endophytes produce a wide spectrum of hydrocarbons, the majority of which are monoterpenes and sesquiterpenes, including some known biofuel candidates. Analysis of their cellulase activity when grown under the same conditions revealed that these endophytes actively produce endoglucanases, exoglucanases, and ß-glucosidases. The richness of CAZymes as well as terpene synthases identified in these four endophytic fungi suggests that they are great candidates to pursue for development into platform CBP organisms.


Asunto(s)
Endófitos/enzimología , Proteínas Fúngicas/metabolismo , Genoma Fúngico , Lignina/metabolismo , Xylariales/enzimología , Transferasas Alquil y Aril/genética , Transferasas Alquil y Aril/metabolismo , Biocombustibles , Celulasa/genética , Celulasa/metabolismo , Celulasas/genética , Celulasas/metabolismo , Endófitos/clasificación , Endófitos/genética , Proteínas Fúngicas/genética , Expresión Génica , Glicósido Hidrolasas/genética , Glicósido Hidrolasas/metabolismo , Monoterpenos/metabolismo , Filogenia , Polisacáridos/metabolismo , Sesquiterpenos/metabolismo , Compuestos Orgánicos Volátiles/metabolismo , Xylariales/clasificación , Xylariales/genética
17.
Proc Natl Acad Sci U S A ; 111(27): 9923-8, 2014 Jul 08.
Artículo en Inglés | MEDLINE | ID: mdl-24958869

RESUMEN

Basidiomycota (basidiomycetes) make up 32% of the described fungi and include most wood-decaying species, as well as pathogens and mutualistic symbionts. Wood-decaying basidiomycetes have typically been classified as either white rot or brown rot, based on the ability (in white rot only) to degrade lignin along with cellulose and hemicellulose. Prior genomic comparisons suggested that the two decay modes can be distinguished based on the presence or absence of ligninolytic class II peroxidases (PODs), as well as the abundance of enzymes acting directly on crystalline cellulose (reduced in brown rot). To assess the generality of the white-rot/brown-rot classification paradigm, we compared the genomes of 33 basidiomycetes, including four newly sequenced wood decayers, and performed phylogenetically informed principal-components analysis (PCA) of a broad range of gene families encoding plant biomass-degrading enzymes. The newly sequenced Botryobasidium botryosum and Jaapia argillacea genomes lack PODs but possess diverse enzymes acting on crystalline cellulose, and they group close to the model white-rot species Phanerochaete chrysosporium in the PCA. Furthermore, laboratory assays showed that both B. botryosum and J. argillacea can degrade all polymeric components of woody plant cell walls, a characteristic of white rot. We also found expansions in reducing polyketide synthase genes specific to the brown-rot fungi. Our results suggest a continuum rather than a dichotomy between the white-rot and brown-rot modes of wood decay. A more nuanced categorization of rot types is needed, based on an improved understanding of the genomics and biochemistry of wood decay.


Asunto(s)
Basidiomycota/genética , Basidiomycota/metabolismo , Genoma Fúngico , Madera , Basidiomycota/clasificación , Lignina/metabolismo , Datos de Secuencia Molecular , Filogenia
18.
PLoS Genet ; 10(12): e1004759, 2014 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-25474575

RESUMEN

Collectively classified as white-rot fungi, certain basidiomycetes efficiently degrade the major structural polymers of wood cell walls. A small subset of these Agaricomycetes, exemplified by Phlebiopsis gigantea, is capable of colonizing freshly exposed conifer sapwood despite its high content of extractives, which retards the establishment of other fungal species. The mechanism(s) by which P. gigantea tolerates and metabolizes resinous compounds have not been explored. Here, we report the annotated P. gigantea genome and compare profiles of its transcriptome and secretome when cultured on fresh-cut versus solvent-extracted loblolly pine wood. The P. gigantea genome contains a conventional repertoire of hydrolase genes involved in cellulose/hemicellulose degradation, whose patterns of expression were relatively unperturbed by the absence of extractives. The expression of genes typically ascribed to lignin degradation was also largely unaffected. In contrast, genes likely involved in the transformation and detoxification of wood extractives were highly induced in its presence. Their products included an ABC transporter, lipases, cytochrome P450s, glutathione S-transferase and aldehyde dehydrogenase. Other regulated genes of unknown function and several constitutively expressed genes are also likely involved in P. gigantea's extractives metabolism. These results contribute to our fundamental understanding of pioneer colonization of conifer wood and provide insight into the diverse chemistries employed by fungi in carbon cycling processes.


Asunto(s)
Basidiomycota/crecimiento & desarrollo , Basidiomycota/genética , Basidiomycota/metabolismo , Proteínas Fúngicas/metabolismo , Genoma Fúngico , Madera/microbiología , Pared Celular/genética , Pared Celular/metabolismo , Celulosa/metabolismo , Regulación Fúngica de la Expresión Génica , Lignina/metabolismo , Anotación de Secuencia Molecular , Transcriptoma , Madera/metabolismo
19.
New Phytol ; 209(4): 1705-19, 2016 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-26527297

RESUMEN

Ectomycorrhizal fungi are thought to have a key role in mobilizing organic nitrogen that is trapped in soil organic matter (SOM). However, the extent to which ectomycorrhizal fungi decompose SOM and the mechanism by which they do so remain unclear, considering that they have lost many genes encoding lignocellulose-degrading enzymes that are present in their saprotrophic ancestors. Spectroscopic analyses and transcriptome profiling were used to examine the mechanisms by which five species of ectomycorrhizal fungi, representing at least four origins of symbiosis, decompose SOM extracted from forest soils. In the presence of glucose and when acquiring nitrogen, all species converted the organic matter in the SOM extract using oxidative mechanisms. The transcriptome expressed during oxidative decomposition has diverged over evolutionary time. Each species expressed a different set of transcripts encoding proteins associated with oxidation of lignocellulose by saprotrophic fungi. The decomposition 'toolbox' has diverged through differences in the regulation of orthologous genes, the formation of new genes by gene duplications, and the recruitment of genes from diverse but functionally similar enzyme families. The capacity to oxidize SOM appears to be common among ectomycorrhizal fungi. We propose that the ancestral decay mechanisms used primarily to obtain carbon have been adapted in symbiosis to scavenge nutrients instead.


Asunto(s)
Hongos/fisiología , Micorrizas/fisiología , Compuestos Orgánicos/análisis , Suelo/química , Proteínas Fúngicas/genética , Proteínas Fúngicas/metabolismo , Hongos/genética , Regulación Fúngica de la Expresión Génica , Genes Fúngicos , Lacasa/metabolismo , Lignina/metabolismo , Oxidación-Reducción , Filogenia , Metabolismo Secundario/genética , Transcripción Genética
20.
J Biol Chem ; 289(8): 5261-73, 2014 Feb 21.
Artículo en Inglés | MEDLINE | ID: mdl-24394409

RESUMEN

α-L-arabinofuranosidases are glycoside hydrolases that specifically hydrolyze non-reducing residues from arabinose-containing polysaccharides. In the case of arabinoxylans, which are the main components of hemicellulose, they are part of microbial xylanolytic systems and are necessary for complete breakdown of arabinoxylans. Glycoside hydrolase family 62 (GH62) is currently a small family of α-L-arabinofuranosidases that contains only bacterial and fungal members. Little is known about the GH62 mechanism of action, because only a few members have been biochemically characterized and no three-dimensional structure is available. Here, we present the first crystal structures of two fungal GH62 α-L-arabinofuranosidases from the basidiomycete Ustilago maydis (UmAbf62A) and ascomycete Podospora anserina (PaAbf62A). Both enzymes are able to efficiently remove the α-L-arabinosyl substituents from arabinoxylan. The overall three-dimensional structure of UmAbf62A and PaAbf62A reveals a five-bladed ß-propeller fold that confirms their predicted classification into clan GH-F together with GH43 α-L-arabinofuranosidases. Crystallographic structures of the complexes with arabinose and cellotriose reveal the important role of subsites +1 and +2 for sugar binding. Intriguingly, we observed that PaAbf62A was inhibited by cello-oligosaccharides and displayed binding affinity to cellulose although no activity was observed on a range of cellulosic substrates. Bioinformatic analyses showed that UmAbf62A and PaAbf62A belong to two distinct subfamilies within the GH62 family. The results presented here provide a framework to better investigate the structure-function relationships within the GH62 family.


Asunto(s)
Proteínas Fúngicas/química , Glicósido Hidrolasas/química , Familia de Multigenes , Podospora/enzimología , Ustilago/enzimología , Arabinosa/metabolismo , Calorimetría , Dominio Catalítico , Celulosa/metabolismo , Cristalografía por Rayos X , Proteínas Fúngicas/metabolismo , Glicósido Hidrolasas/metabolismo , Cinética , Modelos Moleculares , Filogenia
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