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1.
Nat Commun ; 15(1): 4494, 2024 May 27.
Article in English | MEDLINE | ID: mdl-38802368

ABSTRACT

Efflux pump antiporters confer drug resistance to bacteria by coupling proton import with the expulsion of antibiotics from the cytoplasm. Despite efforts there remains a lack of understanding as to how acid/base chemistry drives drug efflux. Here, we uncover the proton-coupling mechanism of the Staphylococcus aureus efflux pump NorA by elucidating structures in various protonation states of two essential acidic residues using cryo-EM. Protonation of Glu222 and Asp307 within the C-terminal domain stabilized the inward-occluded conformation by forming hydrogen bonds between the acidic residues and a single helix within the N-terminal domain responsible for occluding the substrate binding pocket. Remarkably, deprotonation of both Glu222 and Asp307 is needed to release interdomain tethering interactions, leading to opening of the pocket for antibiotic entry. Hence, the two acidic residues serve as a "belt and suspenders" protection mechanism to prevent simultaneous binding of protons and drug that enforce NorA coupling stoichiometry and confer antibiotic resistance.


Subject(s)
Bacterial Proteins , Cryoelectron Microscopy , Multidrug Resistance-Associated Proteins , Protons , Staphylococcus aureus , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Staphylococcus aureus/metabolism , Multidrug Resistance-Associated Proteins/metabolism , Multidrug Resistance-Associated Proteins/chemistry , Multidrug Resistance-Associated Proteins/genetics , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/metabolism , Anti-Bacterial Agents/chemistry , Models, Molecular , Biological Transport , Binding Sites , Hydrogen Bonding , Protein Conformation
2.
Food Chem ; 452: 139600, 2024 Sep 15.
Article in English | MEDLINE | ID: mdl-38744138

ABSTRACT

A naringinase complex was chemically aminated prior to its immobilization on glyoxyl-agarose to develop a robust biocatalyst for juice debittering. The effects of amination on the optimal pH and temperature, thermal stability, and debittering performance were analyzed. Concentration of amino groups on catalysts surface increased in 36 %. Amination reduced the ß-glucosidase activity of naringinase complex; however, did not affect optimal pH and temperature of the enzyme and it favored immobilization, obtaining α-l-rhamnosidase and ß-d-glucosidase activities of 1.7 and 4.2 times the values obtained when the unmodified enzymes were immobilized. Amination favored the stability of the immobilized biocatalyst, retaining 100 % of both activities after 190 h at 30 °C and pH 3, while its non-aminated counterpart retained 80 and 52 % of α-rhamnosidase and ß-glucosidase activities, respectively. The immobilized catalyst showed a better performance in grapefruit juice debittering, obtaining a naringin conversion of 7 times the value obtained with the non-aminated catalyst.


Subject(s)
Enzymes, Immobilized , Fruit and Vegetable Juices , Glyoxylates , Sepharose , Fruit and Vegetable Juices/analysis , Enzymes, Immobilized/chemistry , Enzymes, Immobilized/metabolism , Amination , Hydrogen-Ion Concentration , Sepharose/chemistry , Glyoxylates/chemistry , Citrus/chemistry , Citrus/enzymology , Enzyme Stability , Biocatalysis , Multienzyme Complexes/chemistry , Multienzyme Complexes/metabolism , Glycoside Hydrolases/chemistry , Glycoside Hydrolases/metabolism , beta-Glucosidase/chemistry , beta-Glucosidase/metabolism , Temperature , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Flavanones/chemistry , Flavanones/metabolism , Catalysis
3.
PeerJ ; 12: e17292, 2024.
Article in English | MEDLINE | ID: mdl-38818453

ABSTRACT

Background & Objectives: American foulbrood (AFB), caused by the highly virulent, spore-forming bacterium Paenibacillus larvae, poses a significant threat to honey bee brood. The widespread use of antibiotics not only fails to effectively combat the disease but also raises concerns regarding honey safety. The current computational study was attempted to identify a novel therapeutic drug target against P. larvae, a causative agent of American foulbrood disease in honey bee. Methods: We investigated effective novel drug targets through a comprehensive in silico pan-proteome and hierarchal subtractive sequence analysis. In total, 14 strains of P. larvae genomes were used to identify core genes. Subsequently, the core proteome was systematically narrowed down to a single protein predicted as the potential drug target. Alphafold software was then employed to predict the 3D structure of the potential drug target. Structural docking was carried out between a library of phytochemicals derived from traditional Chinese flora (n > 36,000) and the potential receptor using Autodock tool 1.5.6. Finally, molecular dynamics (MD) simulation study was conducted using GROMACS to assess the stability of the best-docked ligand. Results: Proteome mining led to the identification of Ketoacyl-ACP synthase III as a highly promising therapeutic target, making it a prime candidate for inhibitor screening. The subsequent virtual screening and MD simulation analyses further affirmed the selection of ZINC95910054 as a potent inhibitor, with the lowest binding energy. This finding presents significant promise in the battle against P. larvae. Conclusions: Computer aided drug design provides a novel approach for managing American foulbrood in honey bee populations, potentially mitigating its detrimental effects on both bee colonies and the honey industry.


Subject(s)
Paenibacillus larvae , Proteome , Animals , Bees/microbiology , Paenibacillus larvae/drug effects , Paenibacillus larvae/genetics , Paenibacillus larvae/metabolism , Proteome/metabolism , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Molecular Docking Simulation , Molecular Dynamics Simulation , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/genetics
4.
PLoS One ; 19(5): e0304331, 2024.
Article in English | MEDLINE | ID: mdl-38820426

ABSTRACT

Quorum sensing can induce density-dependent gene expressions that cause various problems. For quorum-sensing inhibition, fundamental solutions such as gene manipulation are required, and acyl-homoserine lactone synthase (AHL synthase), which synthesizes the universal quorum-sensing signal of gram-negative bacteria, can be used as a target. In this study, researchers synthesized His-tagged AHL synthase and its deletion mutant that lacks the active site and compared their biochemical characteristics. His-YpeI, the 6x His-tagged AHL synthase of Serratia fonticola, and His-ΔYpeI, its deletion mutant, were designed, and their property conservation were examined using in silico projection tools. For in vitro synthesis of enzymes, the His-YpeI CFPS template was synthesized by in vitro gene synthesis, and the His-ΔYpeI CFPS template was obtained by deletion PCR. CFPS was performed and the products were purified with the 6x His-tag. The enzymes' properties were compared using an enzymatic assay. The bioinformatic analysis confirmed the conservation of biochemical properties between 6x His-tagged and untagged enzymes, including helix-turn-helix interactions, hydropathy profiles, and tertiary structure between His-YpeI and YpeI and between His-ΔYpeI and ΔYpeI. His-YpeI and His-ΔYpeI synthesized by CFPS were found to have the expected molecular weights and demonstrated distinct differences in enzyme activity. The analyzed enzymatic constants supported a significant decrease in substrate affinity and reaction rate as a result of YpeI's enzyme active site deletion. This result showed that CFPS could be used for in vitro protein synthesis, and quorum sensing could be inhibited at the enzymatic level due to the enzyme active site's deletion mutation.


Subject(s)
Quorum Sensing , Quorum Sensing/genetics , Acyltransferases/genetics , Acyltransferases/metabolism , Acyltransferases/chemistry , Sequence Deletion , Serratia/enzymology , Serratia/genetics , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Catalytic Domain , Amino Acid Sequence , Ligases
6.
Molecules ; 29(9)2024 Apr 25.
Article in English | MEDLINE | ID: mdl-38731473

ABSTRACT

Chalkophomycin is a novel chalkophore with antibiotic activities isolated from Streptomyces sp. CB00271, while its potential in studying cellular copper homeostasis makes it an important probe and drug lead. The constellation of N-hydroxylpyrrole, 2H-oxazoline, diazeniumdiolate, and methoxypyrrolinone functional groups into one compact molecular architecture capable of coordinating cupric ions draws interest to unprecedented enzymology responsible for chalkophomycin biosynthesis. To elucidate the biosynthetic machinery for chalkophomycin production, the chm biosynthetic gene cluster from S. sp. CB00271 was identified, and its involvement in chalkophomycin biosynthesis was confirmed by gene replacement. The chm cluster was localized to a ~31 kb DNA region, consisting of 19 open reading frames that encode five nonribosomal peptide synthetases (ChmHIJLO), one modular polyketide synthase (ChmP), six tailoring enzymes (ChmFGMNQR), two regulatory proteins (ChmAB), and four resistance proteins (ChmA'CDE). A model for chalkophomycin biosynthesis is proposed based on functional assignments from sequence analysis and structure modelling, and is further supported by analogy to over 100 chm-type gene clusters in public databases. Our studies thus set the stage to fully investigate chalkophomycin biosynthesis and to engineer chalkophomycin analogues through a synthetic biology approach.


Subject(s)
Multigene Family , Peptide Synthases , Polyketide Synthases , Streptomyces , Streptomyces/genetics , Streptomyces/enzymology , Streptomyces/metabolism , Polyketide Synthases/genetics , Polyketide Synthases/metabolism , Polyketide Synthases/chemistry , Peptide Synthases/metabolism , Peptide Synthases/genetics , Peptide Synthases/chemistry , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry
7.
Molecules ; 29(9)2024 Apr 29.
Article in English | MEDLINE | ID: mdl-38731549

ABSTRACT

Targeting translation factor proteins holds promise for developing innovative anti-tuberculosis drugs. During protein translation, many factors cause ribosomes to stall at messenger RNA (mRNA). To maintain protein homeostasis, bacteria have evolved various ribosome rescue mechanisms, including the predominant trans-translation process, to release stalled ribosomes and remove aberrant mRNAs. The rescue systems require the participation of translation elongation factor proteins (EFs) and are essential for bacterial physiology and reproduction. However, they disappear during eukaryotic evolution, which makes the essential proteins and translation elongation factors promising antimicrobial drug targets. Here, we review the structural and molecular mechanisms of the translation elongation factors EF-Tu, EF-Ts, and EF-G, which play essential roles in the normal translation and ribosome rescue mechanisms of Mycobacterium tuberculosis (Mtb). We also briefly describe the structure-based, computer-assisted study of anti-tuberculosis drugs.


Subject(s)
Bacterial Proteins , Mycobacterium tuberculosis , Mycobacterium tuberculosis/metabolism , Mycobacterium tuberculosis/drug effects , Mycobacterium tuberculosis/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Protein Biosynthesis , Peptide Elongation Factors/metabolism , Peptide Elongation Factors/chemistry , Peptide Elongation Factors/genetics , Antitubercular Agents/pharmacology , Antitubercular Agents/chemistry , Ribosomes/metabolism , Models, Molecular , Tuberculosis/drug therapy , Tuberculosis/microbiology , Tuberculosis/metabolism , Protein Conformation
8.
Int J Mycobacteriol ; 13(1): 73-82, 2024 Jan 01.
Article in English | MEDLINE | ID: mdl-38771283

ABSTRACT

BACKGROUND: Tuberculosis (TB) remains a prominent global health challenge, distinguished by substantial occurrences of infection and death. The upsurge of drug-resistant TB strains underscores the urgency to identify novel therapeutic targets and repurpose existing compounds. Rv0295c is a potentially druggable enzyme involved in cell wall biosynthesis and virulence. We evaluated the inhibitory activity of Food and Drug Administration (FDA)-approved compounds against Rv0295c of Mycobacterium tuberculosis, employing molecular docking, ADME evaluation, and dynamics simulations. METHODS: The study screened 1800 FDA-approved compounds and selected the top five compounds with the highest docking scores. Following this, we subjected the initially screened ligands to ADME analysis based on their dock scores. In addition, the compound exhibited the highest binding affinity chosen for molecular dynamics (MD) simulation to investigate the dynamic behavior of the ligand-receptor complex. RESULTS: Dihydroergotamine (CHEMBL1732) exhibited the highest binding affinity (-12.8 kcal/mol) for Rv0295c within this set of compounds. We evaluated the stability and binding modes of the complex over extended simulation trajectories. CONCLUSION: Our in silico analysis demonstrates that FDA-approved drugs can serve as potential Rv0295c inhibitors through repurposing. The combination of molecular docking and MD simulation offers a comprehensive understanding of the interactions between ligands and the protein target, providing valuable guidance for further experimental validation. Identifying Rv0295c inhibitors may contribute to new anti-TB drugs.


Subject(s)
Antitubercular Agents , Molecular Docking Simulation , Molecular Dynamics Simulation , Mycobacterium tuberculosis , United States Food and Drug Administration , Mycobacterium tuberculosis/enzymology , Mycobacterium tuberculosis/drug effects , Antitubercular Agents/pharmacology , Antitubercular Agents/chemistry , United States , Sulfotransferases/metabolism , Sulfotransferases/chemistry , Sulfotransferases/antagonists & inhibitors , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Drug Approval , Humans , Ligands , Tuberculosis/microbiology , Tuberculosis/drug therapy
9.
Sci Rep ; 14(1): 11315, 2024 05 17.
Article in English | MEDLINE | ID: mdl-38760437

ABSTRACT

Decaprenylphosphoryl-ß-D-ribose-2'-epimerase (DprE1), a crucial enzyme in the process of arabinogalactan and lipoarabinomannan biosynthesis, has become the target of choice for anti-TB drug discovery in the recent past. The current study aims to find the potential DprE1 inhibitors through in-silico approaches. Here, we built the pharmacophore and 3D-QSAR model using the reported 40 azaindole derivatives of DprE1 inhibitors. The best pharmacophore hypothesis (ADRRR_1) was employed for the virtual screening of the chEMBL database. To identify prospective hits, molecules with good phase scores (> 2.000) were further evaluated by molecular docking studies for their ability to bind to the DprE1 enzyme (PDB: 4KW5). Based on their binding affinities (< - 9.0 kcal/mole), the best hits were subjected to the calculation of free-binding energies (Prime/MM-GBSA), pharmacokinetic, and druglikeness evaluations. The top 10 hits retrieved from these results were selected to predict their inhibitory activities via the developed 3D-QSAR model with a regression coefficient (R2) value of 0.9608 and predictive coefficient (Q2) value of 0.7313. The induced fit docking (IFD) studies and in-silico prediction of anti-TB sensitivity for these top 10 hits were also implemented. Molecular dynamics simulations (MDS) were performed for the top 5 hit molecules for 200 ns to check the stability of the hits with DprE1. Based on their conformational stability throughout the 200 ns simulation, hit 2 (chEMBL_SDF:357100) was identified as the best hit against DprE1 with an accepted safety profile. The MD results were also in accordance with the docking score, MM-GBSA value, and 3D-QSAR predicted activity. The hit 2 molecule, (N-(3-((2-(((1r,4r)-4-(dimethylamino)cyclohexyl)amino)-9-isopropyl-9H-purin-6-yl)amino)phenyl)acrylamide) could serve as a lead for the discovery of a novel DprE1 inhibiting anti-TB drug.


Subject(s)
Antitubercular Agents , Molecular Docking Simulation , Quantitative Structure-Activity Relationship , Antitubercular Agents/chemistry , Antitubercular Agents/pharmacology , Humans , Mycobacterium tuberculosis/enzymology , Mycobacterium tuberculosis/drug effects , Bacterial Proteins/antagonists & inhibitors , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Enzyme Inhibitors/chemistry , Enzyme Inhibitors/pharmacology , Tuberculosis/drug therapy , Computer Simulation , Molecular Dynamics Simulation , Protein Binding , Drug Discovery/methods , Alcohol Oxidoreductases
10.
Arch Microbiol ; 206(6): 261, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38753095

ABSTRACT

The search for affordable enzymes with exceptional characteristics is fundamental to overcoming industrial and environmental constraints. In this study, a recombinant GH10 xylanase (Xyn10-HB) from the extremely alkaliphilic bacterium Halalkalibacterium halodurans C-125 cultivated at pH 10 was cloned and expressed in E. coli BL21(DE3). Removal of the signal peptide improved the expression, and an overall activity of 8 U/mL was obtained in the cell-free supernatant. The molecular weight of purified Xyn10-HB was estimated to be 42.6 kDa by SDS-PAGE. The enzyme was active across a wide pH range (5-10) with optimal activity recorded at pH 8.5 and 60 °C. It also presented good stability with a half-life of 3 h under these conditions. Substrate specificity studies showed that Xyn10-HB is a cellulase-free enzyme that conventionally hydrolyse birchwood and oat spelts xylans (Apparent Km of 0.46 mg/mL and 0.54 mg/mL, respectively). HPLC analysis showed that both xylans hydrolysis produced xylooligosaccharides (XOS) with a degree of polymerization (DP) ranging from 2 to 9. The conversion yield was 77% after 24 h with xylobiose and xylotriose as the main end-reaction products. When assayed on alkali-extracted wheat straw heteroxylan, the Xyn10-HB produced active XOS with antioxidant activity determined by the DPPH radical scavenging method (IC50 of 0.54 mg/mL after 4 h). Owing to its various characteristics, Xyn10-HB xylanase is a promising candidate for multiple biotechnological applications.


Subject(s)
Endo-1,4-beta Xylanases , Recombinant Proteins , Xylans , Substrate Specificity , Hydrolysis , Xylans/metabolism , Endo-1,4-beta Xylanases/metabolism , Endo-1,4-beta Xylanases/genetics , Endo-1,4-beta Xylanases/chemistry , Recombinant Proteins/metabolism , Recombinant Proteins/genetics , Recombinant Proteins/chemistry , Recombinant Proteins/isolation & purification , Escherichia coli/genetics , Escherichia coli/metabolism , Hydrogen-Ion Concentration , Cloning, Molecular , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Glucuronates/metabolism , Enzyme Stability , Kinetics , Molecular Weight , Oligosaccharides/metabolism , Disaccharides
11.
Open Biol ; 14(5): 240014, 2024 May.
Article in English | MEDLINE | ID: mdl-38745462

ABSTRACT

Most successes in computational protein engineering to date have focused on enhancing one biophysical trait, while multi-trait optimization remains a challenge. Different biophysical properties are often conflicting, as mutations that improve one tend to worsen the others. In this study, we explored the potential of an automated computational design strategy, called CamSol Combination, to optimize solubility and stability of enzymes without affecting their activity. Specifically, we focus on Bacillus licheniformis α-amylase (BLA), a hyper-stable enzyme that finds diverse application in industry and biotechnology. We validate the computational predictions by producing 10 BLA variants, including the wild-type (WT) and three designed models harbouring between 6 and 8 mutations each. Our results show that all three models have substantially improved relative solubility over the WT, unaffected catalytic rate and retained hyper-stability, supporting the algorithm's capacity to optimize enzymes. High stability and solubility embody enzymes with superior resilience to chemical and physical stresses, enhance manufacturability and allow for high-concentration formulations characterized by extended shelf lives. This ability to readily optimize solubility and stability of enzymes will enable the rapid and reliable generation of highly robust and versatile reagents, poised to contribute to advancements in diverse scientific and industrial domains.


Subject(s)
Bacterial Proteins , Enzyme Stability , Protein Engineering , Solubility , alpha-Amylases , alpha-Amylases/chemistry , alpha-Amylases/metabolism , alpha-Amylases/genetics , Protein Engineering/methods , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Mutation , Bacillus licheniformis/enzymology , Bacillus licheniformis/genetics , Algorithms , Models, Molecular
12.
J Agric Food Chem ; 72(19): 11041-11050, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38700846

ABSTRACT

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


Subject(s)
Bacterial Proteins , Glucans , Limosilactobacillus reuteri , Glucans/chemistry , Glucans/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Limosilactobacillus reuteri/enzymology , Limosilactobacillus reuteri/genetics , Limosilactobacillus reuteri/chemistry , Catalytic Domain , Glucosyltransferases/chemistry , Glucosyltransferases/genetics , Glucosyltransferases/metabolism , Protein Engineering , Glycogen Debranching Enzyme System/genetics , Glycogen Debranching Enzyme System/metabolism , Glycogen Debranching Enzyme System/chemistry
13.
J Agric Food Chem ; 72(19): 10995-11001, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38701424

ABSTRACT

The titer of the microbial fermentation products can be increased by enzyme engineering. l-Sorbosone dehydrogenase (SNDH) is a key enzyme in the production of 2-keto-l-gulonic acid (2-KLG), which is the precursor of vitamin C. Enhancing the activity of SNDH may have a positive impact on 2-KLG production. In this study, a computer-aided semirational design of SNDH was conducted. Based on the analysis of SNDH's substrate pocket and multiple sequence alignment, three modification strategies were established: (1) expanding the entrance of SNDH's substrate pocket, (2) engineering the residues within the substrate pocket, and (3) enhancing the electron transfer of SNDH. Finally, mutants S453A, L460V, and E471D were obtained, whose specific activity was increased by 20, 100, and 10%, respectively. In addition, the ability of Gluconobacter oxidans WSH-004 to synthesize 2-KLG was improved by eliminating H2O2. This study provides mutant enzymes and metabolic engineering strategies for the microbial-fermentation-based production of 2-KLG.


Subject(s)
Bacterial Proteins , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Gluconobacter/enzymology , Gluconobacter/genetics , Gluconobacter/metabolism , Sugar Acids/metabolism , Sugar Acids/chemistry , Fermentation , Protein Engineering , Metabolic Engineering , Carbohydrate Dehydrogenases/metabolism , Carbohydrate Dehydrogenases/genetics , Carbohydrate Dehydrogenases/chemistry , Kinetics
14.
Signal Transduct Target Ther ; 9(1): 111, 2024 May 13.
Article in English | MEDLINE | ID: mdl-38735995

ABSTRACT

CRISPR‒Cas7-11 is a Type III-E CRISPR-associated nuclease that functions as a potent RNA editing tool. Tetratrico-peptide repeat fused with Cas/HEF1-associated signal transducer (TPR-CHAT) acts as a regulatory protein that interacts with CRISPR RNA (crRNA)-bound Cas7-11 to form a CRISPR-guided caspase complex (Craspase). However, the precise modulation of Cas7-11's nuclease activity by TPR-CHAT to enhance its utility requires further study. Here, we report cryo-electron microscopy (cryo-EM) structures of Desulfonema ishimotonii (Di) Cas7-11-crRNA, complexed with or without the full length or the N-terminus of TPR-CHAT. These structures unveil the molecular features of the Craspase complex. Structural analysis, combined with in vitro nuclease assay and electrophoretic mobility shift assay, reveals that DiTPR-CHAT negatively regulates the activity of DiCas7-11 by preventing target RNA from binding through the N-terminal 65 amino acids of DiTPR-CHAT (DiTPR-CHATNTD). Our work demonstrates that DiTPR-CHATNTD can function as a small unit of DiCas7-11 regulator, potentially enabling safe applications to prevent overcutting and off-target effects of the CRISPR‒Cas7-11 system.


Subject(s)
CRISPR-Associated Proteins , CRISPR-Cas Systems , Cryoelectron Microscopy , CRISPR-Cas Systems/genetics , CRISPR-Associated Proteins/genetics , CRISPR-Associated Proteins/chemistry , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism
15.
Sci Adv ; 10(19): eadk7283, 2024 May 10.
Article in English | MEDLINE | ID: mdl-38728392

ABSTRACT

Cyanobacterial CO2 concentrating mechanisms (CCMs) sequester a globally consequential proportion of carbon into the biosphere. Proteinaceous microcompartments, called carboxysomes, play a critical role in CCM function, housing two enzymes to enhance CO2 fixation: carbonic anhydrase (CA) and Rubisco. Despite its importance, our current understanding of the carboxysomal CAs found in α-cyanobacteria, CsoSCA, remains limited, particularly regarding the regulation of its activity. Here, we present a structural and biochemical study of CsoSCA from the cyanobacterium Cyanobium sp. PCC7001. Our results show that the Cyanobium CsoSCA is allosterically activated by the Rubisco substrate ribulose-1,5-bisphosphate and forms a hexameric trimer of dimers. Comprehensive phylogenetic and mutational analyses are consistent with this regulation appearing exclusively in cyanobacterial α-carboxysome CAs. These findings clarify the biologically relevant oligomeric state of α-carboxysomal CAs and advance our understanding of the regulation of photosynthesis in this globally dominant lineage.


Subject(s)
Carbonic Anhydrases , Cyanobacteria , Ribulose-Bisphosphate Carboxylase , Ribulose-Bisphosphate Carboxylase/metabolism , Ribulose-Bisphosphate Carboxylase/chemistry , Ribulose-Bisphosphate Carboxylase/genetics , Carbonic Anhydrases/metabolism , Carbonic Anhydrases/genetics , Carbonic Anhydrases/chemistry , Cyanobacteria/metabolism , Cyanobacteria/genetics , Cyanobacteria/enzymology , Allosteric Regulation , Phylogeny , Ribulosephosphates/metabolism , Models, Molecular , Protein Multimerization , Carbon Dioxide/metabolism , Substrate Specificity , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/chemistry
16.
Elife ; 122024 May 02.
Article in English | MEDLINE | ID: mdl-38695350

ABSTRACT

Bacteria utilize various strategies to prevent internal dehydration during hypertonic stress. A common approach to countering the effects of the stress is to import compatible solutes such as glycine betaine, leading to simultaneous passive water fluxes following the osmotic gradient. OpuA from Lactococcus lactis is a type I ABC-importer that uses two substrate-binding domains (SBDs) to capture extracellular glycine betaine and deliver the substrate to the transmembrane domains for subsequent transport. OpuA senses osmotic stress via changes in the internal ionic strength and is furthermore regulated by the 2nd messenger cyclic-di-AMP. We now show, by means of solution-based single-molecule FRET and analysis with multi-parameter photon-by-photon hidden Markov modeling, that the SBDs transiently interact in an ionic strength-dependent manner. The smFRET data are in accordance with the apparent cooperativity in transport and supported by new cryo-EM data of OpuA. We propose that the physical interactions between SBDs and cooperativity in substrate delivery are part of the transport mechanism.


Subject(s)
ATP-Binding Cassette Transporters , Bacterial Proteins , Lactococcus lactis , ATP-Binding Cassette Transporters/metabolism , ATP-Binding Cassette Transporters/chemistry , ATP-Binding Cassette Transporters/genetics , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Betaine/metabolism , Cryoelectron Microscopy , Fluorescence Resonance Energy Transfer , Lactococcus lactis/metabolism , Osmolar Concentration , Osmoregulation , Protein Binding , Protein Domains , Single Molecule Imaging
17.
Biochem Biophys Res Commun ; 716: 150030, 2024 Jul 05.
Article in English | MEDLINE | ID: mdl-38704889

ABSTRACT

Sugar phosphates are potential sources of carbon and phosphate for bacteria. Despite that the process of internalization of Glucose-6-Phosphate (G6P) through plasma membrane remained elusive in several bacteria. VCA0625-27, made of periplasmic ligand binding protein (PLBP) VCA0625, an atypical monomeric permease VCA0626, and a cytosolic ATPase VCA0627, recently emerged as hexose-6-phosphate uptake system of Vibrio cholerae. Here we report high resolution crystal structure of VCA0625 in G6P bound state that largely resembles AfuA of Actinobacillus pleuropneumoniae. MD simulations on VCA0625 in apo and G6P bound states unraveled an 'open to close' and swinging bi-lobal motions, which are diminished upon G6P binding. Mutagenesis followed by biochemical assays on VCA0625 underscored that R34 works as gateway to bind G6P. Although VCA0627 binds ATP, it is ATPase deficient in the absence of VCA0625 and VCA0626, which is a signature phenomenon of type-I ABC importer. Further, modeling, docking and systematic sequence analysis allowed us to envisage the existence of similar atypical type-I G6P importer with fused monomeric permease in 27 other gram-negative bacteria.


Subject(s)
Bacterial Proteins , Glucose-6-Phosphate , Vibrio cholerae , Vibrio cholerae/metabolism , Vibrio cholerae/genetics , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Crystallography, X-Ray , Glucose-6-Phosphate/metabolism , Glucose-6-Phosphate/chemistry , ATP-Binding Cassette Transporters/metabolism , ATP-Binding Cassette Transporters/chemistry , ATP-Binding Cassette Transporters/genetics , Molecular Dynamics Simulation , Protein Conformation , Models, Molecular , Protein Binding , Binding Sites
18.
J Phys Chem Lett ; 15(19): 5202-5207, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38717357

ABSTRACT

Far-red cyanobacteriochromes (CBCRs) are bilin-based photosensory proteins that promise to be novel optical agents in optogenetics and deep tissue imaging. Recent structural studies of a far-red CBCR 2551g3 have revealed a unique all-Z,syn chromophore conformation in the far-red-absorbing Pfr state. Understanding the photoswitching mechanism through bilin photoisomerization is important for developing novel biomedical applications. Here, we employ femtosecond spectroscopy and site-directed mutagenesis to systematically characterize the dynamics of wild-type 2551g3 and four critical mutants in the 15Z Pfr state. We captured local relaxations in several picoseconds and isomerization dynamics in hundreds of picoseconds. Most mutants exhibited faster local relaxation, while their twisting dynamics and photoproducts depend on specific protein-chromophore interactions around the D-ring and C-ring. These results collectively reveal a unique dynamic pattern of excited-state evolution arising from a relatively rigid protein environment, thereby elucidating the molecular mechanism of Pfr-state photoisomerization in far-red CBCRs.


Subject(s)
Bacterial Proteins , Isomerism , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Cyanobacteria/metabolism , Cyanobacteria/chemistry , Mutagenesis, Site-Directed , Photoreceptors, Microbial/chemistry , Photoreceptors, Microbial/metabolism , Bile Pigments/chemistry , Bile Pigments/metabolism
19.
Nat Commun ; 15(1): 4041, 2024 May 13.
Article in English | MEDLINE | ID: mdl-38740794

ABSTRACT

Due to the complexity of the catalytic FeMo cofactor site in nitrogenases that mediates the reduction of molecular nitrogen to ammonium, mechanistic details of this reaction remain under debate. In this study, selenium- and sulfur-incorporated FeMo cofactors of the catalytic MoFe protein component from Azotobacter vinelandii are prepared under turnover conditions and investigated by using different EPR methods. Complex signal patterns are observed in the continuous wave EPR spectra of selenium-incorporated samples, which are analyzed by Tikhonov regularization, a method that has not yet been applied to high spin systems of transition metal cofactors, and by an already established grid-of-error approach. Both methods yield similar probability distributions that reveal the presence of at least four other species with different electronic structures in addition to the ground state E0. Two of these species were preliminary assigned to hydrogenated E2 states. In addition, advanced pulsed-EPR experiments are utilized to verify the incorporation of sulfur and selenium into the FeMo cofactor, and to assign hyperfine couplings of 33S and 77Se that directly couple to the FeMo cluster. With this analysis, we report selenium incorporation under turnover conditions as a straightforward approach to stabilize and analyze early intermediate states of the FeMo cofactor.


Subject(s)
Azotobacter vinelandii , Molybdoferredoxin , Nitrogenase , Selenium , Sulfur , Electron Spin Resonance Spectroscopy/methods , Azotobacter vinelandii/enzymology , Azotobacter vinelandii/metabolism , Nitrogenase/metabolism , Nitrogenase/chemistry , Molybdoferredoxin/metabolism , Molybdoferredoxin/chemistry , Selenium/metabolism , Selenium/chemistry , Sulfur/metabolism , Sulfur/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry
20.
Proc Natl Acad Sci U S A ; 121(20): e2318855121, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38709926

ABSTRACT

TipA, a MerR family transcription factor from Streptomyces lividans, promotes antibiotic resistance by sequestering broad-spectrum thiopeptide-based antibiotics, thus counteracting their inhibitory effect on ribosomes. TipAS, a minimal binding motif which is expressed as an isoform of TipA, harbors a partially disordered N-terminal subdomain that folds upon binding multiple antibiotics. The extent and nature of the underlying molecular heterogeneity in TipAS that shapes its promiscuous folding-function landscape is an open question and is critical for understanding antibiotic-sequestration mechanisms. Here, combining equilibrium and time-resolved experiments, statistical modeling, and simulations, we show that the TipAS native ensemble exhibits a pre-equilibrium between binding-incompetent and binding-competent substates, with the fully folded state appearing only as an excited state under physiological conditions. The binding-competent state characterized by a partially structured N-terminal subdomain loses structure progressively in the physiological range of temperatures, swells on temperature increase, and displays slow conformational exchange across multiple conformations. Binding to the bactericidal antibiotic thiostrepton follows a combination of induced-fit and conformational-selection-like mechanisms, via partial binding and concomitant stabilization of the binding-competent substate. These ensemble features are evolutionarily conserved across orthologs from select bacteria that infect humans, underscoring the functional role of partial disorder in the native ensemble of antibiotic-sequestering proteins belonging to the MerR family.


Subject(s)
Anti-Bacterial Agents , Bacterial Proteins , Protein Folding , Anti-Bacterial Agents/metabolism , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Streptomyces lividans/metabolism , Streptomyces lividans/genetics , Protein Binding , Protein Conformation , Models, Molecular , Transcription Factors/metabolism , Transcription Factors/chemistry
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