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Tjo, H.

Publications and source records attributed to Tjo, H..

5 recordsLinked to original sources

Expanding the Promoter Toolbox for Metabolic Engineering in the Lignocellulolytic Thermophile Anaerocellum bescii

Anaerocellum (formerly Caldicellulosiruptor) bescii, an anaerobic, extremely thermophilic (Topt [~]78 {degrees}C) lignocellulolytic bacterium, is a promising chassis for metabolic engineering and next-generation bioprocessing. Yet, a lack of well-characterized genetic parts in A. bescii has hampered metabolic engineering efforts. Here, using a previously developed hyperthermophilic {beta}-galactosidase reporter system, we screened a diverse panel of putative A. bescii promoter sequences, identifying promoters that drove reporter output across a broad range. For a select subset, we mapped their transcriptional start sites (TSSs) and evaluated ribosome binding site (RBS) regions using chimeric promoter constructs. By constructing truncated promoter variants, we defined functional regions within the widely used, high-expression S-layer protein promoter (Pslp) and engineered a compact 99 bp variant that retained substantial reporter activity. Finally, we demonstrated that these new promoters can be used for metabolic engineering by using two newly characterized promoters to express an established thermostable alcohol dehydrogenase from Thermoclostridium stercorarium to drive ethanol production in A. bescii. Together, this work expands and diversifies the A. bescii genetic toolkit, opening doors to future metabolic engineering efforts in this species.

Synthetic Biology↗

Structural insights into xyloglucan recognition by an ABC transporter from a Gram-positive, thermophilic bacterium

Xyloglucan (an -1,6-xylosyl-substituted {beta}-1,4-glucan) is a major hemicellulose of the primary cell wall of many plants and an important growth substrate for biomass-degrading bacteria in diverse ecological niches, including the gut microbiome and hot springs. In Gram-positive bacteria, xyloglucan is deconstructed into soluble oligosaccharides in the extracytoplasmic space before import by ATP-Binding Cassette (ABC) transporters, but the structural basis for this process remains poorly understood. Here, we identified an ABC transporter for xyloglucan uptake (Athe_2052-2054) in the Gram-positive, plant biomass-degrading thermophile Anaerocellum bescii, which is conserved across the Anaerocellum genus. We solved the apo crystal structure of its extracellular substrate-binding protein (SBP), Athe_2052, revealing a unique tertiary fold found only in a small subset of SBPs that bind complex oligosaccharides. This structure represents the first ABC SBP known to bind xyloglucan oligosaccharides. Biophysical analysis showed that while Athe_2052 binds unsubstituted {beta}-glucan chains, recognition of xyloglucan side chains in the binding pocket markedly increases affinity (Kd = 14 nM) for xyloglucan heptasaccharide (XXXG), the principal oligosaccharide released during xyloglucan deconstruction. Molecular modeling revealed that xyloglucan heptasaccharide, owing to its branched substitutions, is bound in a distinct conformation compared to unsubstituted {beta}-glucans. This represents a unique mode of xyloglucan recognition driven by -linked side-chain interactions rather than {beta}-glucan backbone recognition alone. Together, these findings provide the first structural basis for xyloglucan oligosaccharide recognition by an ABC transporter in Gram-positive bacteria.

molecular biology↗

A Straightforward and Robust Enzymatic Reporter System for Anaerobic Thermophiles

Thermophilic anaerobic organisms, particularly species that can naturally degrade lignocellulosic biomass, show great promise for next generation bioprocessing. This has led to the development of nascent genetic systems to metabolically engineer these non-model organisms. However, a major challenge remains a lack of reliable reporter systems compatible with the combination of thermophilic and anaerobic growth conditions. Additionally, native glycoside hydrolases in these organisms limit the usefulness of traditional glycosidic enzyme reporters (e.g. LacZ) because of the native background activity present on para-nitrophenyl glucoside substrates. Here we describe the development of a straightforward and robust enzymatic reporter system that overcomes these challenges in Anaerocellum (f. Caldicellulosiruptor) bescii, an anaerobic, extremely thermophilic (Topt [~]78 {degrees}C), lignocellulolytic bacterium. Our method is based on heterologous expression of hyperthermophilic archaeal galactosidases: an -galactosidase from Pyroccous furiosus (Pfgal), and a {beta}-galactosidase from Caldivirga maquilingensis (Cm{beta}gal). We show that these reporters produce strong, orthogonal signals on colorimetric substrates at high temperatures ([≥]90{degrees}C) that eliminate background activity from endogenous galactosidases. We then demonstrate the capability of Cm{beta}gal, the stronger of the two reporters, to distinguish differences in levels of expression between A. bescii promoter sequences, which we verify through qRT-PCR. With its high signal to noise ratio and ease of use, this reporter system offers a reliable method for assessing protein expression in anaerobic thermophilic organisms, opening doors to improved genetic tools and metabolic engineering applications for industrial biotechnology.

synthetic biology↗

A Highly Conserved ABC Transporter Mediates Cello-Oligosaccharide Uptake in the Extremely Thermophilic, Lignocellulolytic Bacterium Anaerocellum (f. Caldicellulosiruptor) bescii

Cellulose deconstruction and utilization are key to unlocking renewable fuel and chemical production. Anaerocellum bescii (formerly Caldicellulosiruptor bescii) is an extremely thermophilic cellulolytic bacterium, among the most effective at degrading lignocellulosic biomass due to its arsenal of multi-domain cellulases and hemicellulases. However, little is known about how it transports the assorted sugars released from lignocellulose degradation into the cell for catabolism. Among its twenty-three ATP-Binding Cassette (ABC) sugar transporters, the mechanism for uptake of cello-oligosaccharides released from cellulose degradation remains unclear. Here, we identify an ABC transporter locus (Athe_0595 -- 0598), highly conserved in the genus with two extracellular binding proteins, Athe_0597 and Athe_0598. Biophysical analyses, including Differential Scanning Calorimetry (DSC) and Isothermal Titration Calorimetry (ITC), reveal that Athe_0597, binds cello-oligosaccharides of varying lengths (G2-5), while Athe_0598 is specific to cellobiose (G2). Computational modeling of ligand docking supports these findings and sheds light on the subsite configuration of the substrate binding proteins. To assess its physiological importance, we genetically deleted this transporter locus in A. bescii strain HTAB187, which does not grow on cellulose and grows poorly on cellobiose. Comparison of growth with a msmK deletion strain that cannot consume oligosaccharides shows that HTAB187 can grow on non-cello-oligosaccharides (e.g. maltose) or monosaccharides. Taken together, this study integrates biophysical characterization, structural modeling, and genetic perturbation to elucidate how A. bescii transports cello-oligosaccharides release from cellulose, opening doors for its future use in applied bioprocessing contexts. ImportanceAnaerocellum bescii is the most thermophilic cellulolytic bacterium known, and holds potential for bioprocessing lignocellulosic biomass into renewable fuels. Its diverse ATP-Binding Cassette (ABC) sugar transporters make it a valuable model for studying thermophilic sugar uptake. Here, we identify a single ABC transporter with two substrate binding proteins (Athe_0597 and Athe_0598) responsible for cello-oligosaccharide uptake. Genetic deletion of this transporter impaired growth on cellobiose and eliminated growth on cellulose. This is the first genetic manipulation in A. bescii to modulate transport of a specific sugar. We also characterize the substrate specificity of the substrate binding proteins associated with the locus; one binds various cellodextrins (G2-5), while the other specifically binds cellobiose (G2). Computational modeling reveals how each sugar docks within the binding pocket of these proteins. Understanding the mechanism of cello-oligosaccharide uptake by A. bescii expands opportunities for its metabolic engineering and furthers our understanding of thermophilic sugar transport.

microbiology↗

Maltodextrin Transport in the Extremely Thermophilic, Lignocellulose Degrading Bacterium Anaerocellum bescii (f. Caldicellulosiruptor bescii)

Sugar transport into microbial cells is a critical, yet understudied step in the conversion of lignocellulosic biomass to metabolic products. Anaerocellum bescii (formerly Caldicellulosiruptor bescii) is an extremely thermophilic, anaerobic bacterium that readily degrades the cellulose and hemicellulose components of lignocellulosic biomass into a diversity of oligosaccharide substrates. Despite significant understanding of how this microorganism degrades lignocellulose, the mechanisms underlying its highly efficient transport of the resulting oligosaccharides into the cell are comparatively underexplored. Here, we identify and characterize the ATP-Binding Cassette (ABC) transporters in A. bescii governing maltodextrin transport. Utilizing past transcriptomic studies on Anaerocellum and Caldicellulosiruptor species, we identify two maltodextrin transporters in A. bescii and express and purify their substrate-binding proteins (Athe_2310 and Athe_2574) for characterization. Using differential scanning calorimetry and isothermal titration calorimetry, we show that Athe_2310 strongly interacts with shorter maltodextrins such as maltose and trehalose with dissociation constants in the micromolar range, while Athe_2574 binds longer maltodextrins, with dissociation constants in the sub-micro molar range. Using a sequence-structure-function comparison approach combined with molecular modeling we provide context for the specificity of each of these substrate-binding proteins. We propose that A. bescii utilizes orthogonal ABC transporters to uptake malto-oligosaccharides of different lengths to maximize transport efficiency. ImportanceHere, we reveal the biophysical and structural basis for oligosaccharide transport by two maltodextrin ABC transporters in A. bescii. This is the first biophysical characterization of carbohydrate uptake in this organism and establishes a workflow for characterizing other oligosaccharide transporters in A. bescii and similar lignocellulosic thermophiles of interest for lignocellulosic bioprocessing. By deciphering the mechanisms underlying high affinity sugar uptake in A. bescii, we shed light on an underexplored step between extracellular lignocellulose degradation and intracellular conversion of sugars to metabolic products. This understanding will expand opportunities for harnessing sugar transport in thermophiles to reshape lignocellulose bioprocessing as part of a renewable bioeconomy.

biophysics↗