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1.
Protein Sci ; 33(6): e5002, 2024 Jun.
Article En | MEDLINE | ID: mdl-38723146

Bacteria that have acquired resistance to most antibiotics, particularly those causing nosocomial infections, create serious problems. Among these, the emergence of vancomycin-resistant enterococci was a tremendous shock, considering that vancomycin is the last resort for controlling methicillin-resistant Staphylococcus aureus. Therefore, there is an urgent need to develop an inhibitor of VanX, a protein involved in vancomycin resistance. Although the crystal structure of VanX has been resolved, its asymmetric unit contains six molecules aligned in a row. We have developed a structural model of VanX as a stable dimer in solution, primarily utilizing nuclear magnetic resonance (NMR) residual dipolar coupling. Despite the 46 kDa molecular mass of the dimer, the analyses, which are typically not as straightforward as those of small proteins around 10 kDa, were successfully conducted. We assigned the main chain using an amino acid-selective unlabeling method. Because we found that the zinc ion-coordinating active sites in the dimer structure were situated in the opposite direction to the dimer interface, we generated an active monomer by replacing an amino acid at the dimer interface. The monomer consists of only 202 amino acids and is expected to be used in future studies to screen and improve inhibitors using NMR.


Bacterial Proteins , Protein Multimerization , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/antagonists & inhibitors , Models, Molecular , Nuclear Magnetic Resonance, Biomolecular , Vancomycin Resistance , Metalloendopeptidases/chemistry , Metalloendopeptidases/antagonists & inhibitors , Metalloendopeptidases/metabolism , Catalytic Domain , Serine-Type D-Ala-D-Ala Carboxypeptidase
2.
Nat Commun ; 15(1): 3975, 2024 May 10.
Article En | MEDLINE | ID: mdl-38729930

Oxidoreductases have evolved tyrosine/tryptophan pathways that channel highly oxidizing holes away from the active site to avoid damage. Here we dissect such a pathway in a bacterial LPMO, member of a widespread family of C-H bond activating enzymes with outstanding industrial potential. We show that a strictly conserved tryptophan is critical for radical formation and hole transference and that holes traverse the protein to reach a tyrosine-histidine pair in the protein's surface. Real-time monitoring of radical formation reveals a clear correlation between the efficiency of hole transference and enzyme performance under oxidative stress. Residues involved in this pathway vary considerably between natural LPMOs, which could reflect adaptation to different ecological niches. Importantly, we show that enzyme activity is increased in a variant with slower radical transference, providing experimental evidence for a previously postulated trade-off between activity and redox robustness.


Bacterial Proteins , Mixed Function Oxygenases , Oxidation-Reduction , Mixed Function Oxygenases/metabolism , Mixed Function Oxygenases/genetics , Mixed Function Oxygenases/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Catalytic Domain , Tryptophan/metabolism , Polysaccharides/metabolism , Mutation , Oxidative Stress , Tyrosine/metabolism , Models, Molecular , Histidine/metabolism , Histidine/genetics
3.
Nat Commun ; 15(1): 3977, 2024 May 10.
Article En | MEDLINE | ID: mdl-38730234

Potent and selective inhibition of the structurally homologous proteases of coagulation poses challenges for drug development. Hematophagous organisms frequently accomplish this by fashioning peptide inhibitors combining exosite and active site binding motifs. Inspired by this biological strategy, we create several EXACT inhibitors targeting thrombin and factor Xa de novo by linking EXosite-binding aptamers with small molecule ACTive site inhibitors. The aptamer component within the EXACT inhibitor (1) synergizes with and enhances the potency of small-molecule active site inhibitors by many hundred-fold (2) can redirect an active site inhibitor's selectivity towards a different protease, and (3) enable efficient reversal of inhibition by an antidote that disrupts bivalent binding. One EXACT inhibitor, HD22-7A-DAB, demonstrates extraordinary anticoagulation activity, exhibiting great potential as a potent, rapid onset anticoagulant to support cardiovascular surgeries. Using this generalizable molecular engineering strategy, selective, potent, and rapidly reversible EXACT inhibitors can be created against many enzymes through simple oligonucleotide conjugation for numerous research and therapeutic applications.


Aptamers, Nucleotide , Catalytic Domain , Hirudins , Thrombin , Humans , Aptamers, Nucleotide/chemistry , Aptamers, Nucleotide/pharmacology , Thrombin/antagonists & inhibitors , Thrombin/metabolism , Thrombin/chemistry , Hirudins/chemistry , Hirudins/pharmacology , Anticoagulants/pharmacology , Anticoagulants/chemistry , Factor Xa/metabolism , Factor Xa/chemistry , Factor Xa Inhibitors/chemistry , Factor Xa Inhibitors/pharmacology , Animals , Binding Sites , Blood Coagulation/drug effects
4.
Int J Mol Sci ; 25(9)2024 Apr 26.
Article En | MEDLINE | ID: mdl-38731943

Protein kinases are essential regulators of cell function and represent one of the largest and most diverse protein families. They are particularly influential in signal transduction and coordinating complex processes like the cell cycle. Out of the 518 human protein kinases identified, 478 are part of a single superfamily sharing catalytic domains that are related in sequence. The dysregulation of protein kinases due to certain mutations has been associated with various diseases, including cancer. Although most of the protein kinase inhibitors identified as type I or type II primarily target the ATP-binding pockets of kinases, the structural and sequential resemblances among these pockets pose a significant challenge for selective inhibition. Therefore, targeting allosteric pockets that are beside highly conserved ATP pockets has emerged as a promising strategy to prevail current limitations, such as poor selectivity and drug resistance. In this article, we compared the binding pockets of various protein kinases for which allosteric (type III) inhibitors have already been developed. Additionally, understanding the structure and shape of existing ligands could aid in identifying key interaction sites within the allosteric pockets of kinases. This comprehensive review aims to facilitate the design of more effective and selective allosteric inhibitors.


Allosteric Site , Protein Kinase Inhibitors , Protein Kinases , Humans , Protein Kinase Inhibitors/pharmacology , Protein Kinase Inhibitors/chemistry , Protein Kinases/metabolism , Protein Kinases/chemistry , Allosteric Regulation , Binding Sites , Protein Binding , Ligands , Adenosine Triphosphate/metabolism , Adenosine Triphosphate/chemistry , Catalytic Domain , Models, Molecular
5.
Nat Commun ; 15(1): 3827, 2024 May 07.
Article En | MEDLINE | ID: mdl-38714735

The main protease (Mpro) of SARS-CoV-2 is critical for viral function and a key drug target. Mpro is only active when reduced; turnover ceases upon oxidation but is restored by re-reduction. This suggests the system has evolved to survive periods in an oxidative environment, but the mechanism of this protection has not been confirmed. Here, we report a crystal structure of oxidized Mpro showing a disulfide bond between the active site cysteine, C145, and a distal cysteine, C117. Previous work proposed this disulfide provides the mechanism of protection from irreversible oxidation. Mpro forms an obligate homodimer, and the C117-C145 structure shows disruption of interactions bridging the dimer interface, implying a correlation between oxidation and dimerization. We confirm dimer stability is weakened in solution upon oxidation. Finally, we observe the protein's crystallization behavior is linked to its redox state. Oxidized Mpro spontaneously forms a distinct, more loosely packed lattice. Seeding with crystals of this lattice yields a structure with an oxidation pattern incorporating one cysteine-lysine-cysteine (SONOS) and two lysine-cysteine (NOS) bridges. These structures further our understanding of the oxidative regulation of Mpro and the crystallization conditions necessary to study this structurally.


Catalytic Domain , Coronavirus 3C Proteases , Cysteine , Disulfides , Oxidation-Reduction , SARS-CoV-2 , Disulfides/chemistry , Disulfides/metabolism , SARS-CoV-2/metabolism , SARS-CoV-2/chemistry , Coronavirus 3C Proteases/metabolism , Coronavirus 3C Proteases/chemistry , Cysteine/chemistry , Cysteine/metabolism , Crystallography, X-Ray , Humans , Models, Molecular , Protein Multimerization , COVID-19/virology
6.
Protein Sci ; 33(6): e5009, 2024 Jun.
Article En | MEDLINE | ID: mdl-38747379

PHPT1 is a histidine phosphatase that modulates signaling in eukaryotes through its catalytic activity. Here, we present an analysis of the structure and dynamics of PHPT1 through a combination of solution NMR, molecular dynamics, and biochemical experiments. We identify a salt bridge formed between the R78 guanidinium moiety and the C-terminal carboxyl group on Y125 that is critical for ligand binding. Disruption of the salt bridge by appending a glycine residue at the C-terminus (G126) leads to a decrease in catalytic activity and binding affinity for the pseudo substrate, para-nitrophenylphosphate (pNPP), as well as the active site inhibitor, phenylphosphonic acid (PPA). We show through NMR chemical shift, 15N relaxation measurements, and analysis of molecular dynamics trajectories, that removal of this salt bridge results in an active site that is altered both structurally and dynamically thereby significantly impacting enzymatic function and confirming the importance of this electrostatic interaction.


Catalytic Domain , Molecular Dynamics Simulation , Substrate Specificity , Nuclear Magnetic Resonance, Biomolecular , Phosphoric Monoester Hydrolases/chemistry , Phosphoric Monoester Hydrolases/metabolism , Humans
7.
Commun Biol ; 7(1): 566, 2024 May 14.
Article En | MEDLINE | ID: mdl-38745065

Quinolone synthase from Aegle marmelos (AmQNS) is a type III polyketide synthase that yields therapeutically effective quinolone and acridone compounds. Addressing the structural and molecular underpinnings of AmQNS and its substrate interaction in terms of its high selectivity and specificity can aid in the development of numerous novel compounds. This paper presents a high-resolution AmQNS crystal structure and explains its mechanistic role in synthetic selectivity. Additionally, we provide a model framework to comprehend structural constraints on ketide insertion and postulate that AmQNS's steric and electrostatic selectivity plays a role in its ability to bind to various core substrates, resulting in its synthetic diversity. AmQNS prefers quinolone synthesis and can accommodate large substrates because of its wide active site entrance. However, our research suggests that acridone is exclusively synthesized in the presence of high malonyl-CoA concentrations. Potential implications of functionally relevant residue mutations were also investigated, which will assist in harnessing the benefits of mutations for targeted polyketide production. The pharmaceutical industry stands to gain from these findings as they expand the pool of potential drug candidates, and these methodologies can also be applied to additional promising enzymes.


Quinolones , Substrate Specificity , Quinolones/chemistry , Quinolones/metabolism , Catalytic Domain , Models, Molecular , Polyketide Synthases/chemistry , Polyketide Synthases/metabolism , Polyketide Synthases/genetics , Crystallography, X-Ray , Protein Conformation
8.
J Agric Food Chem ; 72(19): 11041-11050, 2024 May 15.
Article En | MEDLINE | ID: mdl-38700846

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.


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
9.
PLoS One ; 19(5): e0303173, 2024.
Article En | MEDLINE | ID: mdl-38739587

In this study, new series of N'-(2-(substitutedphenoxy)acetyl)-4-(1H-pyrrol-1-yl)benzohydrazides (3a-j) 4-(2,5-dimethyl-1H-pyrrol-1-yl)-N'-(2-(substitutedphenoxy)acetyl)benzohydrazides (5a-j) were synthesized, characterized and assessed as inhibitors of enoyl ACP reductase and DHFR. Most of the compounds exhibited dual inhibition against the enzymes enoyl ACP reductase and DHFR. Several synthesized substances also demonstrated significant antibacterial and antitubercular properties. A molecular docking analysis was conducted in order to determine the potential mechanism of action of the synthesized compounds. The results indicated that there were binding interactions seen with the active sites of dihydrofolate reductase and enoyl ACP reductase. Additionally, important structural details were identified that play a critical role in sustaining the dual inhibitory activity. These findings were useful for the development of future dual inhibitors. Therefore, this study provided strong evidence that several synthesized molecules could exert their antitubercular properties at the cellular level through multi-target inhibition. By shedding light on the mechanisms through which these compounds exert their inhibitory effects, this research opens up promising avenues for the future development of dual inhibitors with enhanced antibacterial and antitubercular properties. The study's findings underscore the importance of multi-target approaches in drug design, providing a strong foundation for the design and optimization of novel compounds that can effectively target bacterial infections at the cellular level.


Antitubercular Agents , Molecular Docking Simulation , Pyrroles , Tetrahydrofolate Dehydrogenase , Antitubercular Agents/pharmacology , Antitubercular Agents/chemistry , Antitubercular Agents/chemical synthesis , Tetrahydrofolate Dehydrogenase/metabolism , Tetrahydrofolate Dehydrogenase/chemistry , Pyrroles/chemistry , Pyrroles/pharmacology , Enoyl-(Acyl-Carrier-Protein) Reductase (NADH)/antagonists & inhibitors , Enoyl-(Acyl-Carrier-Protein) Reductase (NADH)/metabolism , Enoyl-(Acyl-Carrier-Protein) Reductase (NADH)/chemistry , Mycobacterium tuberculosis/drug effects , Mycobacterium tuberculosis/enzymology , Microbial Sensitivity Tests , Folic Acid Antagonists/pharmacology , Folic Acid Antagonists/chemistry , Folic Acid Antagonists/chemical synthesis , Humans , Structure-Activity Relationship , Catalytic Domain
10.
Nat Commun ; 15(1): 4012, 2024 May 13.
Article En | MEDLINE | ID: mdl-38740774

cGAS activates innate immune responses against cytosolic double-stranded DNA. Here, by determining crystal structures of cGAS at various reaction stages, we report a unifying catalytic mechanism. apo-cGAS assumes an array of inactive conformations and binds NTPs nonproductively. Dimerization-coupled double-stranded DNA-binding then affixes the active site into a rigid lock for productive metal•substrate binding. A web-like network of protein•NTP, intra-NTP, and inter-NTP interactions ensures the stepwise synthesis of 2'-5'/3'-5'-linked cGAMP while discriminating against noncognate NTPs and off-pathway intermediates. One divalent metal is sufficient for productive substrate binding, and capturing the second divalent metal is tightly coupled to nucleotide and linkage specificities, a process which manganese is preferred over magnesium by 100-fold. Additionally, we elucidate how mouse cGAS achieves more stringent NTP and linkage specificities than human cGAS. Together, our results reveal that an adaptable, yet precise lock-and-key-like mechanism underpins cGAS catalysis.


Nucleotides, Cyclic , Nucleotidyltransferases , Nucleotidyltransferases/metabolism , Nucleotidyltransferases/chemistry , Animals , Humans , Mice , Nucleotides, Cyclic/metabolism , Nucleotides, Cyclic/chemistry , DNA/metabolism , DNA/chemistry , Magnesium/metabolism , Magnesium/chemistry , Catalytic Domain , Crystallography, X-Ray , Manganese/chemistry , Manganese/metabolism , Substrate Specificity , Models, Molecular , Protein Binding
11.
Nat Commun ; 15(1): 3897, 2024 May 08.
Article En | MEDLINE | ID: mdl-38719841

Understanding enzyme catalysis as connected to protein motions is a major challenge. Here, based on temperature kinetic studies combined with isotope effect measurements, we obtain energetic description of C-H activation in NAD-dependent UDP-glucuronic acid C4 epimerase. Approach from the ensemble-averaged ground state (GS) to the transition state-like reactive conformation (TSRC) involves, alongside uptake of heat ( Δ H ‡ = 54 kJ mol-1), significant loss in entropy ( - T Δ S ‡ = 20 kJ mol-1; 298 K) and negative activation heat capacity ( Δ C p ‡ = -0.64 kJ mol-1 K-1). Thermodynamic changes suggest the requirement for restricting configurational freedom at the GS to populate the TSRC. Enzyme variants affecting the electrostatic GS preorganization reveal active-site interactions important for precise TSRC sampling and H-transfer. Collectively, our study captures thermodynamic effects associated with TSRC sampling and establishes rigid positioning for C-H activation in an enzyme active site that requires conformational flexibility in fulfillment of its natural epimerase function.


Catalytic Domain , Thermodynamics , Kinetics , Protein Conformation , Carbohydrate Epimerases/chemistry , Carbohydrate Epimerases/metabolism , Carbohydrate Epimerases/genetics , Biocatalysis , Catalysis , Models, Molecular
12.
Carbohydr Polym ; 337: 122141, 2024 Aug 01.
Article En | MEDLINE | ID: mdl-38710568

Production of value-added compounds and sustainable materials from agro-industrial residues is essential for better waste management and building of circular economy. This includes valorization of hemicellulosic fraction of plant biomass, the second most abundant biopolymer from plant cell walls, aiming to produce prebiotic oligosaccharides, widely explored in food and feed industries. In this work, we conducted biochemical and biophysical characterization of a prokaryotic two-domain R. champanellensis xylanase from glycoside hydrolase (GH) family 30 (RcXyn30A), and evaluated its applicability for XOS production from glucuronoxylan in combination with two endo-xylanases from GH10 and GH11 families and a GH11 xylobiohydrolase. RcXyn30A liberates mainly long monoglucuronylated xylooligosaccharides and is inefficient in cleaving unbranched oligosaccharides. Crystallographic structure of RcXyn30A catalytic domain was solved and refined to 1.37 Å resolution. Structural analysis of the catalytic domain releveled that its high affinity for glucuronic acid substituted xylan is due to the coordination of the substrate decoration by several hydrogen bonds and ionic interactions in the subsite -2. Furthermore, the protein has a larger ß5-α5 loop as compared to other GH30 xylanases, which might be crucial for creating an additional aglycone subsite (+3) of the catalytic site. Finally, RcXyn30A activity is synergic to that of GH11 xylobiohydrolase.


Endo-1,4-beta Xylanases , Gastrointestinal Microbiome , Glucuronates , Oligosaccharides , Xylosidases , Glucuronates/metabolism , Glucuronates/chemistry , Oligosaccharides/chemistry , Oligosaccharides/metabolism , Endo-1,4-beta Xylanases/metabolism , Endo-1,4-beta Xylanases/chemistry , Xylosidases/metabolism , Xylosidases/chemistry , Humans , Crystallography, X-Ray , Xylans/chemistry , Xylans/metabolism , Catalytic Domain , Models, Molecular , Substrate Specificity
13.
Protein Sci ; 33(6): e4985, 2024 Jun.
Article En | MEDLINE | ID: mdl-38717278

Inteins are proteins that excise themselves out of host proteins and ligate the flanking polypeptides in an auto-catalytic process called protein splicing. In nature, inteins are either contiguous or split. In the case of split inteins, the two fragments must first form a complex for the splicing to occur. Contiguous inteins have previously been artificially split in two fragments because split inteins allow for distinct applications than contiguous ones. Even naturally split inteins have been split at unnatural split sites to obtain fragments with reduced affinity for one another, which are useful to create conditional inteins or to study protein-protein interactions. So far, split sites in inteins have been heuristically identified. We developed Int&in, a web server freely available for academic research (https://intein.biologie.uni-freiburg.de) that runs a machine learning model using logistic regression to predict active and inactive split sites in inteins with high accuracy. The model was trained on a dataset of 126 split sites generated using the gp41-1, Npu DnaE and CL inteins and validated using 97 split sites extracted from the literature. Despite the limited data size, the model, which uses various protein structural features, as well as sequence conservation information, achieves an accuracy of 0.79 and 0.78 for the training and testing sets, respectively. We envision Int&in will facilitate the engineering of novel split inteins for applications in synthetic and cell biology.


Inteins , Internet , Machine Learning , Protein Splicing , Software , Catalytic Domain
14.
Appl Microbiol Biotechnol ; 108(1): 323, 2024 May 07.
Article En | MEDLINE | ID: mdl-38713233

Ergot alkaloids (EAs) are a diverse group of indole alkaloids known for their complex structures, significant pharmacological effects, and toxicity to plants. The biosynthesis of these compounds begins with chanoclavine-I aldehyde (CC aldehyde, 2), an important intermediate produced by the enzyme EasDaf or its counterpart FgaDH from chanoclavine-I (CC, 1). However, how CC aldehyde 2 is converted to chanoclavine-I acid (CC acid, 3), first isolated from Ipomoea violacea several decades ago, is still unclear. In this study, we provide in vitro biochemical evidence showing that EasDaf not only converts CC 1 to CC aldehyde 2 but also directly transforms CC 1 into CC acid 3 through two sequential oxidations. Molecular docking and site-directed mutagenesis experiments confirmed the crucial role of two amino acids, Y166 and S153, within the active site, which suggests that Y166 acts as a general base for hydride transfer, while S153 facilitates proton transfer, thereby increasing the acidity of the reaction. KEY POINTS: • EAs possess complicated skeletons and are widely used in several clinical diseases • EasDaf belongs to the short-chain dehydrogenases/reductases (SDRs) and converted CC or CC aldehyde to CC acid • The catalytic mechanism of EasDaf for dehydrogenation was analyzed by molecular docking and site mutations.


Molecular Docking Simulation , Mutagenesis, Site-Directed , Ergot Alkaloids/biosynthesis , Ergot Alkaloids/chemistry , Ergot Alkaloids/metabolism , Aldehydes/metabolism , Aldehydes/chemistry , Oxidation-Reduction , Catalytic Domain , Oxidoreductases/metabolism , Oxidoreductases/genetics , Oxidoreductases/chemistry
15.
Nat Commun ; 15(1): 3785, 2024 May 06.
Article En | MEDLINE | ID: mdl-38710674

Mutations in human isocitrate dehydrogenase 1 (IDH1) drive tumor formation in a variety of cancers by replacing its conventional activity with a neomorphic activity that generates an oncometabolite. Little is understood of the mechanistic differences among tumor-driving IDH1 mutants. We previously reported that the R132Q mutant unusually preserves conventional activity while catalyzing robust oncometabolite production, allowing an opportunity to compare these reaction mechanisms within a single active site. Here, we employ static and dynamic structural methods and observe that, compared to R132H, the R132Q active site adopts a conformation primed for catalysis with optimized substrate binding and hydride transfer to drive improved conventional and neomorphic activity over R132H. This active site remodeling reveals a possible mechanism of resistance to selective mutant IDH1 therapeutic inhibitors. This work enhances our understanding of fundamental IDH1 mechanisms while pinpointing regions for improving inhibitor selectivity.


Catalytic Domain , Isocitrate Dehydrogenase , Mutation , Isocitrate Dehydrogenase/genetics , Isocitrate Dehydrogenase/metabolism , Humans , Kinetics , Neoplasms/genetics , Neoplasms/metabolism , Neoplasms/pathology , Drug Resistance, Neoplasm/genetics , Enzyme Inhibitors/pharmacology
16.
Nat Commun ; 15(1): 3775, 2024 May 06.
Article En | MEDLINE | ID: mdl-38710701

SAMHD1 regulates cellular nucleotide homeostasis, controlling dNTP levels by catalysing their hydrolysis into 2'-deoxynucleosides and triphosphate. In differentiated CD4+ macrophage and resting T-cells SAMHD1 activity results in the inhibition of HIV-1 infection through a dNTP blockade. In cancer, SAMHD1 desensitizes cells to nucleoside-analogue chemotherapies. Here we employ time-resolved cryogenic-EM imaging and single-particle analysis to visualise assembly, allostery and catalysis by this multi-subunit enzyme. Our observations reveal how dynamic conformational changes in the SAMHD1 quaternary structure drive the catalytic cycle. We capture five states at high-resolution in a live catalytic reaction, revealing how allosteric activators support assembly of a stable SAMHD1 tetrameric core and how catalysis is driven by the opening and closing of active sites through pairwise coupling of active sites and order-disorder transitions in regulatory domains. This direct visualisation of enzyme catalysis dynamics within an allostery-stabilised platform sets a precedent for mechanistic studies into the regulation of multi-subunit enzymes.


Catalytic Domain , Cryoelectron Microscopy , SAM Domain and HD Domain-Containing Protein 1 , SAM Domain and HD Domain-Containing Protein 1/metabolism , SAM Domain and HD Domain-Containing Protein 1/chemistry , SAM Domain and HD Domain-Containing Protein 1/genetics , Allosteric Regulation , Humans , Protein Structure, Quaternary , Catalysis , Biocatalysis , HIV-1/metabolism , Models, Molecular
17.
Sci Adv ; 10(19): eadj5185, 2024 May 10.
Article En | MEDLINE | ID: mdl-38728403

CK1 kinases participate in many signaling pathways, and their regulation is of meaningful biological consequence. CK1s autophosphorylate their C-terminal noncatalytic tails, and eliminating these tails increases substrate phosphorylation in vitro, suggesting that the autophosphorylated C-termini act as inhibitory pseudosubstrates. To test this prediction, we comprehensively identified the autophosphorylation sites on Schizosaccharomyces pombe Hhp1 and human CK1ε. Phosphoablating mutations increased Hhp1 and CK1ε activity toward substrates. Peptides corresponding to the C-termini interacted with the kinase domains only when phosphorylated, and substrates competitively inhibited binding of the autophosphorylated tails to the substrate binding grooves. Tail autophosphorylation influenced the catalytic efficiency with which CK1s targeted different substrates, and truncating the tail of CK1δ broadened its linear peptide substrate motif, indicating that tails contribute to substrate specificity as well. Considering autophosphorylation of both T220 in the catalytic domain and C-terminal sites, we propose a displacement specificity model to describe how autophosphorylation modulates substrate specificity for the CK1 family.


Schizosaccharomyces pombe Proteins , Schizosaccharomyces , Substrate Specificity , Phosphorylation , Schizosaccharomyces/metabolism , Schizosaccharomyces/genetics , Schizosaccharomyces pombe Proteins/metabolism , Schizosaccharomyces pombe Proteins/chemistry , Schizosaccharomyces pombe Proteins/genetics , Humans , Catalytic Domain , Protein Binding , Peptides/metabolism , Peptides/chemistry , Mutation , Casein Kinase 1 epsilon/metabolism , Casein Kinase 1 epsilon/genetics , Amino Acid Sequence
18.
Molecules ; 29(9)2024 Apr 26.
Article En | MEDLINE | ID: mdl-38731486

Carbonic anhydrases are mononuclear metalloenzymes catalyzing the reversible hydration of carbon dioxide in organisms belonging to all three domains of life. Although the mechanism of the catalytic reaction is similar, different families of carbonic anhydrases do not have a common ancestor nor do they exhibit significant resemblance in the amino acid sequence or the structure and composition of the metal-binding sites. Little is known about the physical principles determining the metal affinity and selectivity of the catalytic centers, and how well the native metal is protected from being dislodged by other metal species from the local environment. Here, we endeavor to shed light on these issues by studying (via a combination of density functional theory calculations and polarizable continuum model computations) the thermodynamic outcome of the competition between the native metal cation and its noncognate competitor in various metal-binding sites. Typical representatives of the competing cations from the cellular environments of the respective classes of carbonic anhydrases are considered. The calculations reveal how the Gibbs energy of the metal competition changes when varying the metal type, structure, composition, and solvent exposure of the active center. Physical principles governing metal competition in different carbonic anhydrase metal-binding sites are delineated.


Carbonic Anhydrases , Catalytic Domain , Metals , Thermodynamics , Carbonic Anhydrases/chemistry , Carbonic Anhydrases/metabolism , Metals/chemistry , Binding Sites , Models, Molecular
19.
Molecules ; 29(9)2024 Apr 28.
Article En | MEDLINE | ID: mdl-38731521

Lactate dehydrogenase A (LDHA) primarily catalyzes the conversion between lactic acid and pyruvate, serving as a key enzyme in the aerobic glycolysis pathway of sugar in tumor cells. LDHA plays a crucial role in the occurrence, development, progression, invasion, metastasis, angiogenesis, and immune escape of tumors. Consequently, LDHA not only serves as a biomarker for tumor diagnosis and prognosis but also represents an ideal target for tumor therapy. Although LDHA inhibitors show great therapeutic potential, their development has proven to be challenging. In the development of LDHA inhibitors, the key active sites of LDHA are emphasized. Nevertheless, there is a relative lack of research on the amino acid residues around the active center of LDHA. Therefore, in this study, we investigated the amino acid residues around the active center of LDHA. Through structure comparison analysis, five key amino acid residues (Ala30, Met41, Lys131, Gln233, and Ala259) were identified. Subsequently, the effects of these five residues on the enzymatic properties of LDHA were investigated using site-directed mutagenesis. The results revealed that the catalytic activities of the five mutants varied to different degrees in both the reaction from lactic acid to pyruvate and pyruvate to lactic acid. Notably, the catalytic activities of LDHAM41G and LDHAK131I were improved, particularly in the case of LDHAK131I. The results of the molecular dynamics analysis of LDHAK131I explained the reasons for this phenomenon. Additionally, the optimum temperature of LDHAM41G and LDHAQ233M increased from 35 °C to 40 °C, whereas in the reverse reaction, the optimum temperature of LDHAM41G and LDHAK131I decreased from 70 °C to 60 °C. These findings indicate that Ala30, Met41, Lys131, Gln233, and Ala259 exert diverse effects on the catalytic activity and optimum temperature of LHDA. Therefore, these amino acid residues, in addition to the key catalytic site of the active center, play a crucial role. Considering these residues in the design and screening of LDHA inhibitors may lead to the development of more effective inhibitors.


Catalytic Domain , Enzyme Inhibitors , Enzyme Inhibitors/chemistry , Enzyme Inhibitors/pharmacology , Humans , Amino Acids/chemistry , Amino Acids/metabolism , L-Lactate Dehydrogenase/antagonists & inhibitors , L-Lactate Dehydrogenase/metabolism , L-Lactate Dehydrogenase/chemistry , Lactate Dehydrogenase 5/metabolism , Lactate Dehydrogenase 5/antagonists & inhibitors , Lactate Dehydrogenase 5/chemistry , Pyruvic Acid/metabolism , Pyruvic Acid/chemistry , Mutagenesis, Site-Directed , Molecular Dynamics Simulation
20.
Int J Mol Sci ; 25(9)2024 Apr 30.
Article En | MEDLINE | ID: mdl-38732102

Cytochrome P450 CYP121A1 is a well-known drug target against Mycobacterium tuberculosis, the human pathogen that causes the deadly disease tuberculosis (TB). CYP121A1 is a unique P450 enzyme because it uses classical and non-classical P450 catalytic processes and has distinct structural features among P450s. However, a detailed investigation of CYP121A1 protein structures in terms of active site cavity dynamics and key amino acids interacting with bound ligands has yet to be undertaken. To address this research knowledge gap, 53 CYP121A1 crystal structures were investigated in this study. Critical amino acids required for CYP121A1's overall activity were identified and highlighted this enzyme's rigid architecture and substrate selectivity. The CYP121A1-fluconazole crystal structure revealed a novel azole drug-P450 binding mode in which azole heme coordination was facilitated by a water molecule. Fragment-based inhibitor approaches revealed that CYP121A1 can be inhibited by molecules that block the substrate channel or by directly interacting with the P450 heme. This study serves as a reference for the precise understanding of CYP121A1 interactions with different ligands and the structure-function analysis of P450 enzymes in general. Our findings provide critical information for the synthesis of more specific CYP121A1 inhibitors and their development as novel anti-TB drugs.


Cytochrome P-450 Enzyme System , Mycobacterium tuberculosis , Mycobacterium tuberculosis/enzymology , Mycobacterium tuberculosis/drug effects , Cytochrome P-450 Enzyme System/metabolism , Cytochrome P-450 Enzyme System/chemistry , Structure-Activity Relationship , Catalytic Domain , Antitubercular Agents/pharmacology , Antitubercular Agents/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/antagonists & inhibitors , Crystallography, X-Ray , Cytochrome P-450 Enzyme Inhibitors/pharmacology , Cytochrome P-450 Enzyme Inhibitors/chemistry , Models, Molecular , Humans , Protein Binding , Substrate Specificity , Ligands , Protein Conformation
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