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1.
Plant Biotechnol J ; 18(3): 859-871, 2020 03.
Artigo em Inglês | MEDLINE | ID: mdl-31498543

RESUMO

Prefoldin (PFD) is a group II chaperonin that is ubiquitously present in the eukaryotic kingdom. Six subunits (PFD1-6) form a jellyfish-like heterohexameric PFD complex and function in protein folding and cytoskeleton organization. However, little is known about its function in plant cell wall-related processes. Here, we report the functional characterization of a PFD gene from Populus deltoides, designated as PdPFD2.2. There are two copies of PFD2 in Populus, and PdPFD2.2 was ubiquitously expressed with high transcript abundance in the cambial region. PdPFD2.2 can physically interact with DELLA protein RGA1_8g, and its subcellular localization is affected by the interaction. In P. deltoides transgenic plants overexpressing PdPFD2.2, the lignin syringyl/guaiacyl ratio was increased, but cellulose content and crystallinity index were unchanged. In addition, the total released sugar (glucose and xylose) amounts were increased by 7.6% and 6.1%, respectively, in two transgenic lines. Transcriptomic and metabolomic analyses revealed that secondary metabolic pathways, including lignin and flavonoid biosynthesis, were affected by overexpressing PdPFD2.2. A total of eight hub transcription factors (TFs) were identified based on TF binding sites of differentially expressed genes in Populus transgenic plants overexpressing PdPFD2.2. In addition, several known cell wall-related TFs, such as MYB3, MYB4, MYB7, TT8 and XND1, were affected by overexpression of PdPFD2.2. These results suggest that overexpression of PdPFD2.2 can reduce biomass recalcitrance and PdPFD2.2 is a promising target for genetic engineering to improve feedstock characteristics to enhance biofuel conversion and reduce the cost of lignocellulosic biofuel production.


Assuntos
Biomassa , Chaperonas Moleculares/genética , Populus/genética , Genes de Plantas , Lignina , Plantas Geneticamente Modificadas
2.
Appl Microbiol Biotechnol ; 101(6): 2603-2618, 2017 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-28078400

RESUMO

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.


Assuntos
Endófitos/enzimologia , Proteínas Fúngicas/metabolismo , Genoma Fúngico , Lignina/metabolismo , Xylariales/enzimologia , Alquil e Aril Transferases/genética , Alquil e Aril Transferases/metabolismo , Biocombustíveis , Celulase/genética , Celulase/metabolismo , Celulases/genética , Celulases/metabolismo , Endófitos/classificação , Endófitos/genética , Proteínas Fúngicas/genética , Expressão Gênica , Glicosídeo Hidrolases/genética , Glicosídeo Hidrolases/metabolismo , Monoterpenos/metabolismo , Filogenia , Polissacarídeos/metabolismo , Sesquiterpenos/metabolismo , Compostos Orgânicos Voláteis/metabolismo , Xylariales/classificação , Xylariales/genética
3.
Proc Natl Acad Sci U S A ; 111(27): 9923-8, 2014 Jul 08.
Artigo em Inglês | MEDLINE | ID: mdl-24958869

RESUMO

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.


Assuntos
Basidiomycota/genética , Basidiomycota/metabolismo , Genoma Fúngico , Madeira , Basidiomycota/classificação , Lignina/metabolismo , Dados de Sequência Molecular , Filogenia
4.
PLoS Genet ; 10(12): e1004759, 2014 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-25474575

RESUMO

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.


Assuntos
Basidiomycota/crescimento & desenvolvimento , Basidiomycota/genética , Basidiomycota/metabolismo , Proteínas Fúngicas/metabolismo , Genoma Fúngico , Madeira/microbiologia , Parede Celular/genética , Parede Celular/metabolismo , Celulose/metabolismo , Regulação Fúngica da Expressão Gênica , Lignina/metabolismo , Anotação de Sequência Molecular , Transcriptoma , Madeira/metabolismo
5.
Proc Natl Acad Sci U S A ; 109(14): 5458-63, 2012 Apr 03.
Artigo em Inglês | MEDLINE | ID: mdl-22434909

RESUMO

Efficient lignin depolymerization is unique to the wood decay basidiomycetes, collectively referred to as white rot fungi. Phanerochaete chrysosporium simultaneously degrades lignin and cellulose, whereas the closely related species, Ceriporiopsis subvermispora, also depolymerizes lignin but may do so with relatively little cellulose degradation. To investigate the basis for selective ligninolysis, we conducted comparative genome analysis of C. subvermispora and P. chrysosporium. Genes encoding manganese peroxidase numbered 13 and five in C. subvermispora and P. chrysosporium, respectively. In addition, the C. subvermispora genome contains at least seven genes predicted to encode laccases, whereas the P. chrysosporium genome contains none. We also observed expansion of the number of C. subvermispora desaturase-encoding genes putatively involved in lipid metabolism. Microarray-based transcriptome analysis showed substantial up-regulation of several desaturase and MnP genes in wood-containing medium. MS identified MnP proteins in C. subvermispora culture filtrates, but none in P. chrysosporium cultures. These results support the importance of MnP and a lignin degradation mechanism whereby cleavage of the dominant nonphenolic structures is mediated by lipid peroxidation products. Two C. subvermispora genes were predicted to encode peroxidases structurally similar to P. chrysosporium lignin peroxidase and, following heterologous expression in Escherichia coli, the enzymes were shown to oxidize high redox potential substrates, but not Mn(2+). Apart from oxidative lignin degradation, we also examined cellulolytic and hemicellulolytic systems in both fungi. In summary, the C. subvermispora genetic inventory and expression patterns exhibit increased oxidoreductase potential and diminished cellulolytic capability relative to P. chrysosporium.


Assuntos
Basidiomycota/genética , Genômica , Lignina/metabolismo , Basidiomycota/classificação , Hidrólise , Dados de Sequência Molecular , Oxirredução , Filogenia , Especificidade da Espécie
6.
Proc Natl Acad Sci U S A ; 109(43): 17501-6, 2012 Oct 23.
Artigo em Inglês | MEDLINE | ID: mdl-23045686

RESUMO

Agaricus bisporus is the model fungus for the adaptation, persistence, and growth in the humic-rich leaf-litter environment. Aside from its ecological role, A. bisporus has been an important component of the human diet for over 200 y and worldwide cultivation of the "button mushroom" forms a multibillion dollar industry. We present two A. bisporus genomes, their gene repertoires and transcript profiles on compost and during mushroom formation. The genomes encode a full repertoire of polysaccharide-degrading enzymes similar to that of wood-decayers. Comparative transcriptomics of mycelium grown on defined medium, casing-soil, and compost revealed genes encoding enzymes involved in xylan, cellulose, pectin, and protein degradation are more highly expressed in compost. The striking expansion of heme-thiolate peroxidases and ß-etherases is distinctive from Agaricomycotina wood-decayers and suggests a broad attack on decaying lignin and related metabolites found in humic acid-rich environment. Similarly, up-regulation of these genes together with a lignolytic manganese peroxidase, multiple copper radical oxidases, and cytochrome P450s is consistent with challenges posed by complex humic-rich substrates. The gene repertoire and expression of hydrolytic enzymes in A. bisporus is substantially different from the taxonomically related ectomycorrhizal symbiont Laccaria bicolor. A common promoter motif was also identified in genes very highly expressed in humic-rich substrates. These observations reveal genetic and enzymatic mechanisms governing adaptation to the humic-rich ecological niche formed during plant degradation, further defining the critical role such fungi contribute to soil structure and carbon sequestration in terrestrial ecosystems. Genome sequence will expedite mushroom breeding for improved agronomic characteristics.


Assuntos
Adaptação Fisiológica/genética , Agaricus/genética , Ecologia , Genoma Fúngico , Agaricus/metabolismo , Agaricus/fisiologia , Evolução Molecular , Lignina/metabolismo
7.
Proc Natl Acad Sci U S A ; 106(6): 1954-9, 2009 Feb 10.
Artigo em Inglês | MEDLINE | ID: mdl-19193860

RESUMO

Brown-rot fungi such as Postia placenta are common inhabitants of forest ecosystems and are also largely responsible for the destructive decay of wooden structures. Rapid depolymerization of cellulose is a distinguishing feature of brown-rot, but the biochemical mechanisms and underlying genetics are poorly understood. Systematic examination of the P. placenta genome, transcriptome, and secretome revealed unique extracellular enzyme systems, including an unusual repertoire of extracellular glycoside hydrolases. Genes encoding exocellobiohydrolases and cellulose-binding domains, typical of cellulolytic microbes, are absent in this efficient cellulose-degrading fungus. When P. placenta was grown in medium containing cellulose as sole carbon source, transcripts corresponding to many hemicellulases and to a single putative beta-1-4 endoglucanase were expressed at high levels relative to glucose-grown cultures. These transcript profiles were confirmed by direct identification of peptides by liquid chromatography-tandem mass spectrometry (LC-MS/MS). Also up-regulated during growth on cellulose medium were putative iron reductases, quinone reductase, and structurally divergent oxidases potentially involved in extracellular generation of Fe(II) and H(2)O(2). These observations are consistent with a biodegradative role for Fenton chemistry in which Fe(II) and H(2)O(2) react to form hydroxyl radicals, highly reactive oxidants capable of depolymerizing cellulose. The P. placenta genome resources provide unparalleled opportunities for investigating such unusual mechanisms of cellulose conversion. More broadly, the genome offers insight into the diversification of lignocellulose degrading mechanisms in fungi. Comparisons with the closely related white-rot fungus Phanerochaete chrysosporium support an evolutionary shift from white-rot to brown-rot during which the capacity for efficient depolymerization of lignin was lost.


Assuntos
Perfilação da Expressão Gênica , Genoma Fúngico , Lignina/metabolismo , Redes e Vias Metabólicas/genética , Polyporales/genética , Sequência de Bases , Evolução Biológica , Celulases , Enzimas/genética , Glicosídeo Hidrolases , Dados de Sequência Molecular , Oxirredutases , Polyporales/metabolismo , Madeira/metabolismo
8.
Nat Biotechnol ; 25(3): 319-26, 2007 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-17334359

RESUMO

Xylose is a major constituent of plant lignocellulose, and its fermentation is important for the bioconversion of plant biomass to fuels and chemicals. Pichia stipitis is a well-studied, native xylose-fermenting yeast. The mechanism and regulation of xylose metabolism in P. stipitis have been characterized and genes from P. stipitis have been used to engineer xylose metabolism in Saccharomyces cerevisiae. We have sequenced and assembled the complete genome of P. stipitis. The sequence data have revealed unusual aspects of genome organization, numerous genes for bioconversion, a preliminary insight into regulation of central metabolic pathways and several examples of colocalized genes with related functions. The genome sequence provides insight into how P. stipitis regulates its redox balance while very efficiently fermenting xylose under microaerobic conditions.


Assuntos
Vias Biossintéticas/genética , Celulose/metabolismo , Genoma Bacteriano/genética , Lignina/metabolismo , Pichia/genética , Xilose/metabolismo , Biomassa , DNA Fúngico/análise , Fermentação , Biblioteca Gênica , Dados de Sequência Molecular , Filogenia , Pichia/enzimologia , Alinhamento de Sequência , Análise de Sequência de DNA
9.
Science ; 336(6089): 1715-9, 2012 Jun 29.
Artigo em Inglês | MEDLINE | ID: mdl-22745431

RESUMO

Wood is a major pool of organic carbon that is highly resistant to decay, owing largely to the presence of lignin. The only organisms capable of substantial lignin decay are white rot fungi in the Agaricomycetes, which also contains non-lignin-degrading brown rot and ectomycorrhizal species. Comparative analyses of 31 fungal genomes (12 generated for this study) suggest that lignin-degrading peroxidases expanded in the lineage leading to the ancestor of the Agaricomycetes, which is reconstructed as a white rot species, and then contracted in parallel lineages leading to brown rot and mycorrhizal species. Molecular clock analyses suggest that the origin of lignin degradation might have coincided with the sharp decrease in the rate of organic carbon burial around the end of the Carboniferous period.


Assuntos
Basidiomycota/enzimologia , Basidiomycota/genética , Evolução Molecular , Genoma Fúngico , Lignina/metabolismo , Peroxidases/genética , Basidiomycota/classificação , Teorema de Bayes , Indóis , Peroxidases/metabolismo , Madeira/metabolismo
10.
Science ; 333(6043): 762-5, 2011 Aug 05.
Artigo em Inglês | MEDLINE | ID: mdl-21764756

RESUMO

Brown rot decay removes cellulose and hemicellulose from wood--residual lignin contributing up to 30% of forest soil carbon--and is derived from an ancestral white rot saprotrophy in which both lignin and cellulose are decomposed. Comparative and functional genomics of the "dry rot" fungus Serpula lacrymans, derived from forest ancestors, demonstrated that the evolution of both ectomycorrhizal biotrophy and brown rot saprotrophy were accompanied by reductions and losses in specific protein families, suggesting adaptation to an intercellular interaction with plant tissue. Transcriptome and proteome analysis also identified differences in wood decomposition in S. lacrymans relative to the brown rot Postia placenta. Furthermore, fungal nutritional mode diversification suggests that the boreal forest biome originated via genetic coevolution of above- and below-ground biota.


Assuntos
Basidiomycota/genética , Biodiversidade , Parede Celular/metabolismo , Micorrizas/genética , Árvores/microbiologia , Madeira/microbiologia , Basidiomycota/classificação , Basidiomycota/enzimologia , Basidiomycota/fisiologia , Evolução Biológica , Biota , Coriolaceae/enzimologia , Coriolaceae/genética , Coriolaceae/fisiologia , Perfilação da Expressão Gênica , Genes Fúngicos , Genômica , Lignina/metabolismo , Magnoliopsida/microbiologia , Micorrizas/enzimologia , Micorrizas/fisiologia , Oxirredutases/genética , Oxirredutases/metabolismo , Peroxidases/genética , Peroxidases/metabolismo , Filogenia , Proteoma , Simbiose , Traqueófitas/microbiologia , Madeira/metabolismo
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