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1.
Nucleic Acids Res ; 47(11): 5988-5997, 2019 06 20.
Artículo en Inglés | MEDLINE | ID: mdl-31106374

RESUMEN

The σ70 family alternative σI factors and their cognate anti-σI factors are widespread in Clostridia and Bacilli and play a role in heat stress response, virulence, and polysaccharide sensing. Multiple σI/anti-σI factors exist in some lignocellulolytic clostridial species, specifically for regulation of components of a multienzyme complex, termed the cellulosome. The σI and anti-σI factors are unique, because the C-terminal domain of σI (SigIC) and the N-terminal inhibitory domain of anti-σI (RsgIN) lack homology to known proteins. Here, we report structure and interaction studies of a pair of σI and anti-σI factors, SigI1 and RsgI1, from the cellulosome-producing bacterium, Clostridium thermocellum. In contrast to other known anti-σ factors that have N-terminal helical structures, RsgIN has a ß-barrel structure. Unlike other anti-σ factors that bind both σ2 and σ4 domains of the σ factors, RsgIN binds SigIC specifically. Structural analysis showed that SigIC contains a positively charged surface region that recognizes the promoter -35 region, and the synergistic interactions among multiple interfacial residues result in the specificity displayed by different σI/anti-σI pairs. We suggest that the σI/anti-σI factors represent a distinctive mode of σ/anti-σ complex formation, which provides the structural basis for understanding the molecular mechanism of the intricate σI/anti-σI system.


Asunto(s)
Proteínas Bacterianas/metabolismo , Celulosomas/metabolismo , Clostridium thermocellum/genética , Clostridium thermocellum/metabolismo , Regulación Bacteriana de la Expresión Génica , Regiones Promotoras Genéticas , Factor sigma/metabolismo , Bacterias/metabolismo , Proteínas Bacterianas/química , ARN Polimerasas Dirigidas por ADN/química , Espectroscopía de Resonancia Magnética , Mutagénesis , Plásmidos/metabolismo , Conformación Proteica , Dominios Proteicos , Estructura Secundaria de Proteína , Resonancia por Plasmón de Superficie
2.
Proteins ; 2020 Aug 06.
Artículo en Inglés | MEDLINE | ID: mdl-32761961

RESUMEN

Dihydrolipoamide dehydrogenase (DLDH) is a mitochondrial enzyme that comprises an essential component of the pyruvate dehydrogenase complex. Lines of evidence have shown that many dehydrogenases possess unrelated actions known as moonlightings in addition to their oxidoreductase activity. As part of these activities, we have demonstrated that DLDH binds TiO2 as well as produces reactive oxygen species (ROS). This ROS production capability was harnessed for cancer therapy via integrin-mediated drug-delivery of RGD-modified DLDH (DLDHRGD ), leading to apoptotic cell death. In these experiments, DLDHRGD not only accumulated in the cytosol but also migrated to the cell nuclei, suggesting a potential DNA-binding capability of this enzyme. To explore this interaction under cell-free conditions, we have analyzed DLDH binding to phage lambda (λ) DNA by gel-shift assays and analytic ultracentrifugation, showing complex formation between the two, which led to full coverage of the DNA molecule with DLDH molecules. DNA binding did not affect DLDH enzymatic activity, indicating that there are neither conformational changes nor active site hindering in DLDH upon DNA-binding. A Docking algorithm for prediction of protein-DNA complexes, Paradoc, identified a putative DNA binding site at the C-terminus of DLDH. Our finding that TiO2 -bound DLDH failed to form a complex with DNA suggests partial overlapping between the two sites. To conclude, DLDH binding to DNA presents a novel moonlight activity which may be used for DNA alkylating in cancer treatment.

3.
Proteins ; 87(11): 917-930, 2019 11.
Artículo en Inglés | MEDLINE | ID: mdl-31162722

RESUMEN

Cellulolytic clostridia use a highly efficient cellulosome system to degrade polysaccharides. To regulate genes encoding enzymes of the multi-enzyme cellulosome complex, certain clostridia contain alternative sigma I (σI ) factors that have cognate membrane-associated anti-σI factors (RsgIs) which act as polysaccharide sensors. In this work, we analyzed the structure-function relationship of the extracellular sensory elements of Clostridium (Ruminiclostridium) thermocellum and Clostridium clariflavum (RsgI3 and RsgI4, respectively). These elements were selected for comparison, as each comprised two tandem PA14-superfamily motifs. The X-ray structures of the PA14 modular dyads from the two bacterial species were determined, both of which showed a high degree of structural and sequence similarity, although their binding preferences differed. Bioinformatic approaches indicated that the DNA sequence of promoter of sigI/rsgI operons represents a strong signature, which helps to differentiate binding specificity of the structurally similar modules. The σI4 -dependent C. clariflavum promoter sequence correlates with binding of RsgI4_PA14 to xylan and was identified in genes encoding xylanases, whereas the σI3 -dependent C. thermocellum promoter sequence correlates with RsgI3_PA14 binding to pectin and regulates pectin degradation-related genes. Structural similarity between clostridial PA14 dyads to PA14-containing proteins in yeast helped identify another crucial signature element: the calcium-binding loop 2 (CBL2), which governs binding specificity. Variations in the five amino acids that constitute this loop distinguish the pectin vs xylan specificities. We propose that the first module (PA14A ) is dominant in directing the binding to the ligand in both bacteria. The two X-ray structures of the different PA14 dyads represent the first reported structures of tandem PA14 modules.


Asunto(s)
Proteínas Bacterianas/metabolismo , Celulosomas/metabolismo , Clostridium/metabolismo , Secuencia de Aminoácidos , Proteínas Bacterianas/química , Proteínas Bacterianas/genética , Biomasa , Celulosomas/química , Celulosomas/genética , Clostridium/química , Clostridium/genética , Clostridium thermocellum/química , Clostridium thermocellum/genética , Clostridium thermocellum/metabolismo , Cristalografía por Rayos X , Modelos Moleculares , Regiones Promotoras Genéticas , Conformación Proteica , Alineación de Secuencia
4.
Annu Rev Microbiol ; 68: 279-96, 2014.
Artículo en Inglés | MEDLINE | ID: mdl-25002092

RESUMEN

Mammals rely entirely on symbiotic microorganisms within their digestive tract to gain energy from plant biomass that is resistant to mammalian digestive enzymes. Especially in herbivorous animals, specialized organs (the rumen, cecum, and colon) have evolved that allow highly efficient fermentation of ingested plant biomass by complex anaerobic microbial communities. We consider here the two most intensively studied, representative gut microbial communities involved in degradation of plant fiber: those of the rumen and the human large intestine. These communities are dominated by bacteria belonging to the Firmicutes and Bacteroidetes phyla. In Firmicutes, degradative capacity is largely restricted to the cell surface and involves elaborate cellulosome complexes in specialized cellulolytic species. By contrast, in the Bacteroidetes, utilization of soluble polysaccharides, encoded by gene clusters (PULs), entails outer membrane binding proteins, and degradation is largely periplasmic or intracellular. Biomass degradation involves complex interplay between these distinct groups of bacteria as well as (in the rumen) eukaryotic microorganisms.


Asunto(s)
Bacterias/metabolismo , Tracto Gastrointestinal/microbiología , Microbiota , Animales , Bacterias/clasificación , Bacterias/genética , Bacterias/aislamiento & purificación , Biomasa , Tracto Gastrointestinal/metabolismo , Humanos
5.
Appl Environ Microbiol ; 84(8)2018 04 15.
Artículo en Inglés | MEDLINE | ID: mdl-29453253

RESUMEN

Heterologous display of enzymes on microbial cell surfaces is an extremely desirable approach, since it enables the engineered microbe to interact directly with the plant wall extracellular polysaccharide matrix. In recent years, attempts have been made to endow noncellulolytic microbes with genetically engineered cellulolytic capabilities for improved hydrolysis of lignocellulosic biomass and for advanced probiotics. Thus far, however, owing to the hurdles encountered in secreting and assembling large, intricate complexes on the bacterial cell wall, only free cellulases or relatively simple cellulosome assemblies have been introduced into live bacteria. Here, we employed the "adaptor scaffoldin" strategy to compensate for the low levels of protein displayed on the bacterial cell surface. That strategy mimics natural elaborated cellulosome architectures, thus exploiting the exponential features of their Lego-like combinatorics. Using this approach, we produced several bacterial consortia of Lactobacillus plantarum, a potent gut microbe which provides a very robust genetic framework for lignocellulosic degradation. We successfully engineered surface display of large, fully active self-assembling cellulosomal complexes containing an unprecedented number of catalytic subunits all produced in vivo by the cell consortia. Our results demonstrate that the enzyme stability and performance of the cellulosomal machinery, which are superior to those seen with the equivalent secreted free enzyme system, and the high cellulase-to-xylanase ratios proved beneficial for efficient degradation of wheat straw.IMPORTANCE The multiple benefits of lactic acid bacteria are well established in health and industry. Here we present an approach designed to extensively increase the cell surface display of proteins via successive assembly of interactive components. Our findings present a stepping stone toward proficient engineering of Lactobacillus plantarum, a widespread, environmentally important bacterium and potent microbiome member, for improved degradation of lignocellulosic biomass and advanced probiotics.


Asunto(s)
Membrana Celular/metabolismo , Celulasa/química , Celulasa/metabolismo , Celulosa/metabolismo , Celulosomas/metabolismo , Lactobacillus plantarum/metabolismo , Celulasa/genética , Microbioma Gastrointestinal
6.
Appl Environ Microbiol ; 83(8)2017 04 15.
Artículo en Inglés | MEDLINE | ID: mdl-28159788

RESUMEN

Cellulosomes are considered to be one of the most efficient systems for the degradation of plant cell wall polysaccharides. The central cellulosome component comprises a large, noncatalytic protein subunit called scaffoldin. Multiple saccharolytic enzymes are incorporated into the scaffoldins via specific high-affinity cohesin-dockerin interactions. Recently, the regulation of genes encoding certain cellulosomal components by multiple RNA polymerase alternative σI factors has been demonstrated in Clostridium (Ruminiclostridium) thermocellum In the present report, we provide experimental evidence demonstrating that the C. thermocellum cipA gene, which encodes the primary cellulosomal scaffoldin, is regulated by several alternative σI factors and by the vegetative σA factor. Furthermore, we show that previously suggested transcriptional start sites (TSSs) of C. thermocellum cipA are actually posttranscriptional processed sites. By using comparative bioinformatic analysis, we have also identified highly conserved σI- and σA-dependent promoters upstream of the primary scaffoldin-encoding genes of other clostridia, namely, Clostridium straminisolvens, Clostridium clariflavum, Acetivibrio cellulolyticus, and Clostridium sp. strain Bc-iso-3. Interestingly, a previously identified TSS of the primary scaffoldin CbpA gene of Clostridium cellulovorans matches the predicted σI-dependent promoter identified in the present work rather than the previously proposed σA promoter. With the exception of C. cellulovorans, both σI and σA promoters of primary scaffoldin genes are located more than 600 nucleotides upstream of the start codon, yielding long 5'-untranslated regions (5'-UTRs). Furthermore, these 5'-UTRs have highly conserved stem-loop structures located near the start codon. We propose that these large 5'-UTRs may be involved in the regulation of both the primary scaffoldin and other cellulosomal components.IMPORTANCE Cellulosome-producing bacteria are among the most effective cellulolytic microorganisms known. This group of bacteria has biotechnological potential for the production of second-generation biofuels and other biocommodities from cellulosic wastes. The efficiency of cellulose hydrolysis is due to their cellulosomes, which arrange enzymes in close proximity on the cellulosic substrate, thereby increasing synergism among the catalytic domains. The backbone of these multienzyme nanomachines is the scaffoldin subunit, which has been the subject of study for many years. However, its genetic regulation is poorly understood. Hence, from basic and applied points of view, it is imperative to unravel the regulatory mechanisms of the scaffoldin genes. The understanding of these regulatory mechanisms can help to improve the performance of the industrially relevant strains of C. thermocellum and related cellulosome-producing bacteria en route to the consolidated bioprocessing of biomass.


Asunto(s)
Proteínas Bacterianas/genética , Proteínas Portadoras/genética , Celulosa/metabolismo , Celulosomas/metabolismo , Clostridium thermocellum/genética , Clostridium thermocellum/metabolismo , Regulación Bacteriana de la Expresión Génica , Regiones no Traducidas 5' , Hidrólisis , Regiones Promotoras Genéticas , Factor sigma/metabolismo , Sitio de Iniciación de la Transcripción
7.
J Biol Chem ; 290(22): 13654-66, 2015 May 29.
Artículo en Inglés | MEDLINE | ID: mdl-25833947

RESUMEN

Interactions between cohesin and dockerin modules play a crucial role in the assembly of multienzyme cellulosome complexes. Although intraspecies cohesin and dockerin modules bind in general with high affinity but indiscriminately, cross-species binding is rare. Here, we combined ELISA-based experiments with Rosetta-based computational design to evaluate the contribution of distinct residues at the Clostridium thermocellum cohesin-dockerin interface to binding affinity, specificity, and promiscuity. We found that single mutations can show distinct and significant effects on binding affinity and specificity. In particular, mutations at cohesin position Asn(37) show dramatic variability in their effect on dockerin binding affinity and specificity: the N37A mutant binds promiscuously both to cognate (C. thermocellum) as well as to non-cognate Clostridium cellulolyticum dockerin. N37L in turn switches binding specificity: compared with the wild-type C. thermocellum cohesin, this mutant shows significantly increased preference for C. cellulolyticum dockerin combined with strongly reduced binding to its cognate C. thermocellum dockerin. The observation that a single mutation can overcome the naturally observed specificity barrier provides insights into the evolutionary dynamics of this system that allows rapid modulation of binding specificity within a high affinity background.


Asunto(s)
Proteínas Bacterianas/química , Proteínas Portadoras/química , Proteínas de Ciclo Celular/química , Proteínas Cromosómicas no Histona/química , Carbohidratos/química , Celulosa/metabolismo , Clostridium cellulolyticum/metabolismo , Clostridium thermocellum/metabolismo , Biología Computacional , Ensayo de Inmunoadsorción Enzimática , Concentración 50 Inhibidora , Mutación , Análisis por Matrices de Proteínas , Unión Proteica , Estructura Terciaria de Proteína , Programas Informáticos , Especificidad de la Especie , Especificidad por Sustrato , Termodinámica , Cohesinas
8.
Environ Microbiol ; 17(9): 3407-26, 2015 Sep.
Artículo en Inglés | MEDLINE | ID: mdl-25845888

RESUMEN

A cellulolytic fiber-degrading bacterium, Ruminococcus champanellensis, was isolated from human faecal samples, and its genome was recently sequenced. Bioinformatic analysis of the R. champanellensis genome revealed numerous cohesin and dockerin modules, the basic elements of the cellulosome, and manual sequencing of partially sequenced genomic segments revealed two large tandem scaffoldin-coding genes that form part of a gene cluster. Representative R. champanellensis dockerins were tested against putative cohesins, and the results revealed three different cohesin-dockerin binding profiles which implied two major types of cellulosome architectures: (i) an intricate cell-bound system and (ii) a simplistic cell-free system composed of a single cohesin-containing scaffoldin. The cell-bound system can adopt various enzymatic architectures, ranging from a single enzyme to a large enzymatic complex comprising up to 11 enzymes. The variety of cellulosomal components together with adaptor proteins may infer a very tight regulation of its components. The cellulosome system of the human gut bacterium R. champanellensis closely resembles that of the bovine rumen bacterium Ruminococcus flavefaciens. The two species contain orthologous gene clusters comprising fundamental components of cellulosome architecture. Since R. champanellensis is the only human colonic bacterium known to degrade crystalline cellulose, it may thus represent a keystone species in the human gut.


Asunto(s)
Proteínas Bacterianas/genética , Proteínas de Ciclo Celular/genética , Celulosa/metabolismo , Celulosomas/genética , Proteínas Cromosómicas no Histona/genética , Complejos Multienzimáticos/genética , Rumen/microbiología , Ruminococcus/metabolismo , Secuencia de Aminoácidos , Animales , Proteínas Bacterianas/clasificación , Secuencia de Bases , Bovinos , Proteínas de Ciclo Celular/clasificación , Proteínas Cromosómicas no Histona/clasificación , ADN Bacteriano/genética , Heces/microbiología , Humanos , Datos de Secuencia Molecular , Complejos Multienzimáticos/metabolismo , Familia de Multigenes/genética , Filogenia , Ruminococcus/genética , Ruminococcus/aislamiento & purificación , Análisis de Secuencia de ADN , Cohesinas
9.
J Mol Recognit ; 28(3): 148-54, 2015 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-25639797

RESUMEN

Cellulosomes are large multicomponent cellulose-degrading assemblies found on the surfaces of cellulolytic microorganisms. Often containing hundreds of components, the self-assembly of cellulosomes is mediated by the ultra-high-affinity cohesin-dockerin interaction, which allows them to adopt the complex architectures necessary for degrading recalcitrant cellulose. Better understanding of how the cellulosome assembles and functions and what kinds of structures it adopts will further effort to develop industrial applications of cellulosome components, including their use in bioenergy production. Ruminococcus flavefaciens is a well-studied anaerobic cellulolytic bacteria found in the intestinal tracts of ruminants and other herbivores. Key to cellulosomal self-assembly in this bacterium is the dockerin ScaADoc, found on the non-catalytic structural subunit scaffoldin ScaA, which is responsible for assembling arrays of cellulose-degrading enzymes. This work expands on previous efforts by conducting a series of binding studies on ScaADoc constructs that contain mutations in their cohesin recognition interface, in order to identify which residues play important roles in binding. Molecular dynamics simulations were employed to gain insight into the structural basis for our findings. A specific residue pair in the first helix of ScaADoc, as well as a glutamate near the C-terminus, was identified to be essential for cohesin binding. By advancing our understanding of the cohesin binding of ScaADoc, this study serves as a foundation for future work to more fully understand the structural basis of cellulosome assembly in R. flavefaciens.


Asunto(s)
Proteínas Bacterianas/química , Proteínas Bacterianas/genética , Proteínas de Ciclo Celular/metabolismo , Proteínas Cromosómicas no Histona/metabolismo , Ácido Glutámico/metabolismo , Ruminococcus/metabolismo , Proteínas Bacterianas/metabolismo , Sitios de Unión , Celulosa/metabolismo , Celulosomas/química , Celulosomas/metabolismo , Modelos Moleculares , Simulación de Dinámica Molecular , Mutación , Estructura Secundaria de Proteína , Cohesinas
10.
Proc Natl Acad Sci U S A ; 109(26): 10298-303, 2012 Jun 26.
Artículo en Inglés | MEDLINE | ID: mdl-22689961

RESUMEN

The conversion of recalcitrant plant-derived cellulosic biomass into biofuels is dependent on highly efficient cellulase systems that produce near-quantitative levels of soluble saccharides. Similar to other fungal and bacterial cellulase systems, the multienzyme cellulosome system of the anaerobic, cellulolytic bacterium Clostridium thermocellum is strongly inhibited by the major end product cellobiose. Cellobiose-induced inhibition can be relieved via its cleavage to noninhibitory glucose by the addition of exogenous noncellulosomal enzyme ß-glucosidase; however, because the cellulosome is adsorbed to the insoluble substrate only a fraction of ß-glucosidase would be available to the cellulosome. Towards this end, we designed a chimeric cohesin-fused ß-glucosidase (BglA-CohII) that binds directly to the cellulosome through an unoccupied dockerin module of its major scaffoldin subunit. The ß-glucosidase activity is thus focused at the immediate site of cellobiose production by the cellulosomal enzymes. BglA-CohII was shown to retain cellobiase activity and was readily incorporated into the native cellulosome complex. Surprisingly, it was found that the native C. thermocellum cellulosome exists as a homooligomer and the high-affinity interaction of BglA-CohII with the scaffoldin moiety appears to dissociate the oligomeric state of the cellulosome. Complexation of the cellulosome and BglA-CohII resulted in higher overall degradation of microcrystalline cellulose and pretreated switchgrass compared to the native cellulosome alone or in combination with wild-type BglA in solution. These results demonstrate the effect of enzyme targeting and its potential for enhanced degradation of cellulosic biomass.


Asunto(s)
Proteínas de Ciclo Celular/metabolismo , Celulosa/metabolismo , Proteínas Cromosómicas no Histona/metabolismo , Clostridium thermocellum/metabolismo , beta-Glucosidasa/metabolismo , Clostridium thermocellum/enzimología , Hidrólisis , Cohesinas
11.
J Struct Biol ; 188(2): 188-93, 2014 Nov.
Artículo en Inglés | MEDLINE | ID: mdl-25270376

RESUMEN

Dockerin modules of the cellulosomal enzyme subunits play an important role in the assembly of the cellulosome by binding tenaciously to cohesin modules of the scaffoldin subunit. A previously reported NMR-derived solution structure of the type-I dockerin module from Cel48S of Clostridium thermocellum, which utilized two-dimensional homonuclear (1)H-(1)H NOESY and three-dimensional (15)N-edited NOESY distance restraints, displayed substantial conformational differences from subsequent structures of dockerin modules in complex with their cognate cohesin modules, raising the question whether the source of the observed differences resulted from cohesin-induced structural rearrangements. Here, we determined the solution structure of the Cel48S type-I dockerin based on (15)N- and (13)C-edited NOESY-derived distance restraints. The structure adopted a fold similar to X-ray crystal structures of dockerin modules in complex with their cohesin partners. A unique cis-peptide bond between Leu-65 and Pro-66 in the Cel48S type-I dockerin module was also identified in the present structure. Our structural analysis of the Cel48S type-I dockerin module indicates that it does not undergo appreciable cohesin-induced structural alterations but rather assumes an inherent calcium-dependent cohesin-primed conformation.


Asunto(s)
Proteínas Bacterianas/química , Proteínas de Ciclo Celular/química , Proteínas Cromosómicas no Histona/química , Clostridium thermocellum/química , Secuencia de Aminoácidos , Cristalografía por Rayos X , Espectroscopía de Resonancia Magnética/métodos , Datos de Secuencia Molecular , Proteínas Nucleares/química , Unión Proteica , Estructura Secundaria de Proteína , Estructura Terciaria de Proteína , Alineación de Secuencia , Soluciones/química , Cohesinas
12.
J Biol Chem ; 288(23): 16827-16838, 2013 Jun 07.
Artículo en Inglés | MEDLINE | ID: mdl-23580648

RESUMEN

The rumen bacterium Ruminococcus flavefaciens produces a highly organized multienzyme cellulosome complex that plays a key role in the degradation of plant cell wall polysaccharides, notably cellulose. The R. flavefaciens cellulosomal system is anchored to the bacterial cell wall through a relatively small ScaE scaffoldin subunit, which bears a single type IIIe cohesin responsible for the attachment of two major dockerin-containing scaffoldin proteins, ScaB and the cellulose-binding protein CttA. Although ScaB recruits the catalytic machinery onto the complex, CttA mediates attachment of the bacterial substrate via its two putative carbohydrate-binding modules. In an effort to understand the structural basis for assembly and cell surface attachment of the cellulosome in R. flavefaciens, we determined the crystal structure of the high affinity complex (Kd = 20.83 nM) between the cohesin module of ScaE (CohE) and its cognate X-dockerin (XDoc) modular dyad from CttA at 1.97-Å resolution. The structure reveals an atypical calcium-binding loop containing a 13-residue insert. The results further pinpoint two charged specificity-related residues on the surface of the cohesin module that are responsible for specific versus promiscuous cross-strain binding of the dockerin module. In addition, a combined functional role for the three enigmatic dockerin inserts was established whereby these extraneous segments serve as structural buttresses that reinforce the stalklike conformation of the X-module, thus segregating its tethered complement of cellulosomal components from the cell surface. The novel structure of the RfCohE-XDoc complex sheds light on divergent dockerin structure and function and provides insight into the specificity features of the type IIIe cohesin-dockerin interaction.


Asunto(s)
Proteínas Bacterianas/química , Proteínas de Ciclo Celular/química , Proteínas Cromosómicas no Histona/química , Subunidades de Proteína/química , Ruminococcus/enzimología , Proteínas Bacterianas/metabolismo , Proteínas de Ciclo Celular/metabolismo , Celulosa/química , Celulosa/metabolismo , Proteínas Cromosómicas no Histona/metabolismo , Cristalografía por Rayos X , Estructura Cuaternaria de Proteína , Estructura Secundaria de Proteína , Subunidades de Proteína/metabolismo , Relación Estructura-Actividad , Cohesinas
13.
Acta Crystallogr D Biol Crystallogr ; 70(Pt 2): 522-34, 2014 Feb.
Artículo en Inglés | MEDLINE | ID: mdl-24531486

RESUMEN

The anaerobic, thermophilic, cellulosome-producing bacterium Clostridium thermocellum relies on a variety of carbohydrate-active enzymes in order to efficiently break down complex carbohydrates into utilizable simple sugars. The regulation mechanism of the cellulosomal genes was unknown until recently, when genomic analysis revealed a set of putative operons in C. thermocellum that encode σI factors (i.e. alternative σ factors that control specialized regulon activation) and their cognate anti-σI factor (RsgI). These putative anti-σI-factor proteins have modules that are believed to be carbohydrate sensors. Three of these modules were crystallized and their three-dimensional structures were solved. The structures show a high overall degree of sequence and structural similarity to the cellulosomal family 3 carbohydrate-binding modules (CBM3s). The structures of the three carbohydrate sensors (RsgI-CBM3s) and a reference CBM3 are compared in the context of the structural determinants for the specificity of cellulose and complex carbohydrate binding. Fine structural variations among the RsgI-CBM3s appear to result in alternative substrate preferences for each of the sensors.


Asunto(s)
Celulosa/química , Clostridium thermocellum/química , Proteínas Represoras/química , Factor sigma/química , Transducción de Señal , Secuencia de Aminoácidos , Biomasa , Celulosa/metabolismo , Celulosomas/química , Celulosomas/metabolismo , Clostridium thermocellum/metabolismo , Cristalografía por Rayos X , Escherichia coli/genética , Escherichia coli/metabolismo , Modelos Moleculares , Datos de Secuencia Molecular , Operón , Estructura Secundaria de Proteína , Estructura Terciaria de Proteína , Proteínas Recombinantes/química , Proteínas Recombinantes/genética , Proteínas Recombinantes/metabolismo , Proteínas Represoras/genética , Proteínas Represoras/metabolismo , Alineación de Secuencia , Factor sigma/genética , Factor sigma/metabolismo , Homología Estructural de Proteína , Especificidad por Sustrato
14.
J Biol Chem ; 287(12): 9213-21, 2012 Mar 16.
Artículo en Inglés | MEDLINE | ID: mdl-22270362

RESUMEN

ß-Xylosidases are hemicellulases that hydrolyze short xylo-oligosaccharides into xylose units, thus complementing endoxylanase degradation of the hemicellulose component of lignocellulosic substrates. Here, we describe the cloning, characterization, and kinetic analysis of a glycoside hydrolase family 43 ß-xylosidase (Xyl43A) from the aerobic cellulolytic bacterium, Thermobifida fusca. Temperature and pH optima of 55-60 °C and 5.5-6, respectively, were determined. The apparent K(m) value was 0.55 mM, using p-nitrophenyl xylopyranoside as substrate, and the catalytic constant (k(cat)) was 6.72 s(-1). T. fusca Xyl43A contains a catalytic module at the N terminus and an ancillary module (termed herein as Module-A) of undefined function at the C terminus. We expressed the two recombinant modules independently in Escherichia coli and examined their remaining catalytic activity and binding properties. The separation of the two Xyl43A modules caused the complete loss of enzymatic activity, whereas potent binding to xylan was fully maintained in the catalytic module and partially in the ancillary Module-A. Nondenaturing gel electrophoresis revealed a specific noncovalent coupling of the two modules, thereby restoring enzymatic activity to 66.7% (relative to the wild-type enzyme). Module-A contributes a phenylalanine residue that functions as an essential part of the active site, and the two juxtaposed modules function as a single functional entity.


Asunto(s)
Actinomycetales/enzimología , Proteínas Bacterianas/química , Proteínas Bacterianas/metabolismo , Xilosidasas/química , Xilosidasas/metabolismo , Actinomycetales/química , Actinomycetales/genética , Proteínas Bacterianas/genética , Dominio Catalítico , Estabilidad de Enzimas , Cinética , Modelos Moleculares , Datos de Secuencia Molecular , Especificidad por Sustrato , Xilosidasas/genética
15.
Appl Environ Microbiol ; 79(17): 5242-9, 2013 Sep.
Artículo en Inglés | MEDLINE | ID: mdl-23811500

RESUMEN

Lactobacillus plantarum is an attractive candidate for bioprocessing of lignocellulosic biomass due to its high metabolic variability, including its ability to ferment both pentoses and hexoses, as well as its high acid tolerance, a quality often utilized in industrial processes. This bacterium grows naturally on biomass; however, it lacks the inherent ability to deconstruct lignocellulosic substrates. As a first step toward engineering lignocellulose-converting lactobacilli, we have introduced genes coding for a GH6 cellulase and a GH11 xylanase from a highly active cellulolytic bacterium into L. plantarum. For this purpose, we employed the recently developed pSIP vectors for efficient secretion of heterologous proteins. Both enzymes were secreted by L. plantarum at levels estimated at 0.33 nM and 3.3 nM, for the cellulase and xylanase, respectively, in culture at an optical density at 600 nm (OD600) of 1. Transformed cells demonstrated the ability to degrade individually either cellulose or xylan and wheat straw. When mixed together to form a two-strain cell-based consortium secreting both cellulase and xylanase, they exhibited synergistic activity in the overall release of soluble sugar from wheat straw. This result paves the way toward metabolic harnessing of L. plantarum for novel biorefining applications, such as production of ethanol and polylactic acid directly from plant biomass.


Asunto(s)
Celulasas/metabolismo , Lactobacillus plantarum/enzimología , Lactobacillus plantarum/metabolismo , Lignina/metabolismo , Consorcios Microbianos , Xilosidasas/metabolismo , Celulasas/genética , Lactobacillus plantarum/genética , Ingeniería Metabólica/métodos , Tallos de la Planta/química , Plásmidos , Proteínas Recombinantes/genética , Proteínas Recombinantes/metabolismo , Triticum/química , Xilosidasas/genética
16.
Artículo en Inglés | MEDLINE | ID: mdl-23832198

RESUMEN

The cellulosome of the cellulolytic bacterium Clostridium thermocellum has a structural multi-modular protein called CipA (cellulosome-integrating protein A) that includes nine enzyme-binding cohesin modules and a family 3 cellulose-binding module (CBM3a). In the CipA protein, the CBM3a module is located between the second and third cohesin modules and is connected to them via proline/threonine-rich linkers. The structure of CBM3a with portions of the C- and N-terminal flanking linker regions, CBM3a-L, has been determined to a resolution of 1.98 Å. The structure is a ß-sandwich with a structural Ca(2+) ion. The structure is consistent with the previously determined CipA CBM structure; however, the structured linker regions provide a deeper insight into the overall cellulosome structure and assembly.


Asunto(s)
Proteínas Bacterianas/química , Celulasas/química , Celulosomas/metabolismo , Clostridium thermocellum/metabolismo , Proteínas de la Membrana/química , Secuencia de Aminoácidos , Proteínas Bacterianas/genética , Proteínas Bacterianas/metabolismo , Sitios de Unión , Celulasas/genética , Celulasas/metabolismo , Clostridium thermocellum/genética , Cristalización , Cristalografía por Rayos X , Proteínas de la Membrana/genética , Proteínas de la Membrana/metabolismo , Modelos Moleculares , Datos de Secuencia Molecular , Conformación Proteica
17.
Proc Natl Acad Sci U S A ; 107(43): 18646-51, 2010 Oct 26.
Artículo en Inglés | MEDLINE | ID: mdl-20937888

RESUMEN

Clostridium thermocellum produces a highly efficient cellulolytic extracellular complex, termed the cellulosome, for hydrolyzing plant cell wall biomass. The composition of the cellulosome is affected by the presence of extracellular polysaccharides; however, the regulatory mechanism is unknown. Recently, we have identified in C. thermocellum a set of putative σ and anti-σ factors that include extracellular polysaccharide-sensing components [Kahel-Raifer et al. (2010) FEMS Microbiol Lett 308:84-93]. These factor-encoding genes are homologous to the Bacillus subtilis bicistronic operon sigI-rsgI, which encodes for an alternative σ(I) factor and its cognate anti-σ(I) regulator RsgI that is functionally regulated by an extracytoplasmic signal. In this study, the binding of C. thermocellum putative anti-σ(I) factors to their corresponding σ factors was measured, demonstrating binding specificity and dissociation constants in the range of 0.02 to 1 µM. Quantitative real-time RT-PCR measurements revealed three- to 30-fold up-expression of the alternative σ factor genes in the presence of cellulose and xylan, thus connecting their expression to direct detection of their extracellular polysaccharide substrates. Cellulosomal genes that are putatively regulated by two of these σ factors, σ(I1) or σ(I6), were identified based on the sequence similarity of their promoters. The ability of σ(I1) to direct transcription from the sigI1 promoter and from the promoter of celS (encodes the family 48 cellulase) was demonstrated in vitro by runoff transcription assays. Taken together, the results reveal a regulatory mechanism in which alternative σ factors are involved in regulating the cellulosomal genes via an external carbohydrate-sensing mechanism.


Asunto(s)
Celulasa/genética , Celulasa/metabolismo , Clostridium thermocellum/genética , Clostridium thermocellum/metabolismo , Genes Bacterianos , Complejos Multienzimáticos/genética , Complejos Multienzimáticos/metabolismo , Polisacáridos Bacterianos/metabolismo , Factor sigma/metabolismo , Secuencia de Aminoácidos , Proteínas Bacterianas/genética , Proteínas Bacterianas/metabolismo , Secuencia de Bases , Celulosa/metabolismo , ADN Bacteriano/genética , Regulación Bacteriana de la Expresión Génica , Regulación Enzimológica de la Expresión Génica , Cinética , Modelos Biológicos , Datos de Secuencia Molecular , Operón , Regiones Promotoras Genéticas , Factor sigma/genética , Termodinámica
18.
J Bacteriol ; 194(12): 3290-1, 2012 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-22628515

RESUMEN

Clostridium thermocellum wild-type strain YS is an anaerobic, thermophilic, cellulolytic bacterium capable of directly converting cellulosic substrates into ethanol. Strain YS and a derived cellulose adhesion-defective mutant strain, AD2, played pivotal roles in describing the original cellulosome concept. We present their draft genome sequences.


Asunto(s)
Clostridium thermocellum/genética , ADN Bacteriano/química , ADN Bacteriano/genética , Genoma Bacteriano , Adhesión Bacteriana , Celulosa/metabolismo , Clostridium thermocellum/metabolismo , Clostridium thermocellum/fisiología , Etanol/metabolismo , Datos de Secuencia Molecular , Mutación , Análisis de Secuencia de ADN
19.
BMC Genomics ; 13: 210, 2012 May 30.
Artículo en Inglés | MEDLINE | ID: mdl-22646801

RESUMEN

BACKGROUND: Microbial degradation of plant cell walls and its conversion to sugars and other byproducts is a key step in the carbon cycle on Earth. In order to process heterogeneous plant-derived biomass, specialized anaerobic bacteria use an elaborate multi-enzyme cellulosome complex to synergistically deconstruct cellulosic substrates. The cellulosome was first discovered in the cellulolytic thermophile, Clostridium thermocellum, and much of our knowledge of this intriguing type of protein composite is based on the cellulosome of this environmentally and biotechnologically important bacterium. The recently sequenced genome of the cellulolytic mesophile, Acetivibrio cellulolyticus, allows detailed comparison of the cellulosomes of these two select cellulosome-producing bacteria. RESULTS: Comprehensive analysis of the A. cellulolyticus draft genome sequence revealed a very sophisticated cellulosome system. Compared to C. thermocellum, the cellulosomal architecture of A. cellulolyticus is much more extensive, whereby the genome encodes for twice the number of cohesin- and dockerin-containing proteins. The A. cellulolyticus genome has thus evolved an inflated number of 143 dockerin-containing genes, coding for multimodular proteins with distinctive catalytic and carbohydrate-binding modules that play critical roles in biomass degradation. Additionally, 41 putative cohesin modules distributed in 16 different scaffoldin proteins were identified in the genome, representing a broader diversity and modularity than those of Clostridium thermocellum. Although many of the A. cellulolyticus scaffoldins appear in unconventional modular combinations, elements of the basic structural scaffoldins are maintained in both species. In addition, both species exhibit similarly elaborate cell-anchoring and cellulosome-related gene- regulatory elements. CONCLUSIONS: This work portrays a particularly intricate, cell-surface cellulosome system in A. cellulolyticus and provides a blueprint for examining the specific roles of the various cellulosomal components in the degradation of complex carbohydrate substrates of the plant cell wall by the bacterium.


Asunto(s)
Celulosomas/metabolismo , Genoma Bacteriano , Bacterias Grampositivas/genética , Proteínas Bacterianas/genética , Proteínas Bacterianas/metabolismo , Biomasa , Proteínas de Ciclo Celular/genética , Proteínas de Ciclo Celular/metabolismo , Celulosa/metabolismo , Celulosomas/química , Celulosomas/genética , Proteínas Cromosómicas no Histona/genética , Proteínas Cromosómicas no Histona/metabolismo , Clostridium thermocellum/genética , Clostridium thermocellum/metabolismo , Bacterias Grampositivas/metabolismo , Estructura Terciaria de Proteína , Cohesinas
20.
Acta Crystallogr D Biol Crystallogr ; 68(Pt 7): 819-28, 2012 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-22751667

RESUMEN

The crystal structure of the family 3b carbohydrate-binding module (CBM3b) of the cellulosomal multimodular hydrolytic enzyme cellobiohydrolase 9A (Cbh9A) from Clostridium thermocellum has been determined. Cbh9A CBM3b crystallized in space group P4(1) with four molecules in the asymmetric unit and diffracted to a resolution of 2.20 Šusing synchrotron radiation. The structure was determined by molecular replacement using C. thermocellum Cel9V CBM3b' (PDB entry 2wnx) as a model. The C. thermocellum Cbh9A CBM3b molecule forms a nine-stranded antiparallel ß-sandwich similar to other family 3 carbohydrate-binding modules (CBMs). It has a short planar array of two aromatic residues that are assumed to bind cellulose, yet it lacks the ability to bind cellulose. The molecule contains a shallow groove of unknown function that characterizes other family 3 CBMs with high sequence homology. In addition, it contains a calcium-binding site formed by a group of amino-acid residues that are highly conserved in similar structures. After determination of the three-dimensional structure of Cbh9A CBM3b, the site-specific N126W mutant was produced with the intention of enhancing the cellulose-binding ability of the CBM. Cbh9A CBM3b(N126W) crystallized in space group P4(1)2(1)2, with one molecule in the asymmetric unit. The crystals diffracted to 1.04 Šresolution using synchrotron radiation. The structure of Cbh9A CBM3b(N126W) revealed incorporation of the mutated Trp126 into the putative cellulose-binding strip of residues. Cellulose-binding experiments demonstrated the ability of Cbh9A CBM3b(N126W) to bind cellulose owing to the mutation. This is the first report of the engineered conversion of a non-cellulose-binding CBM3 to a binding CBM3 by site-directed mutagenesis. The three-dimensional structure of Cbh9A CBM3b(N126W) provided a structural correlation with cellulose-binding ability, revealing a longer planar array of definitive cellulose-binding residues.


Asunto(s)
Celulosa 1,4-beta-Celobiosidasa/química , Celulosa 1,4-beta-Celobiosidasa/metabolismo , Celulosa/metabolismo , Clostridium thermocellum/enzimología , Secuencia de Aminoácidos , Sitios de Unión , Calcio/metabolismo , Celulosa 1,4-beta-Celobiosidasa/genética , Clostridium thermocellum/química , Clostridium thermocellum/genética , Clostridium thermocellum/metabolismo , Cristalografía por Rayos X , Modelos Moleculares , Datos de Secuencia Molecular , Mutagénesis Sitio-Dirigida , Estructura Terciaria de Proteína , Alineación de Secuencia
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