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1.
Nat Commun ; 15(1): 937, 2024 Jan 31.
Article in English | MEDLINE | ID: mdl-38297033

ABSTRACT

Malaria poses an enormous threat to human health. With ever increasing resistance to currently deployed drugs, breakthrough compounds with novel mechanisms of action are urgently needed. Here, we explore pyrimidine-based sulfonamides as a new low molecular weight inhibitor class with drug-like physical parameters and a synthetically accessible scaffold. We show that the exemplar, OSM-S-106, has potent activity against parasite cultures, low mammalian cell toxicity and low propensity for resistance development. In vitro evolution of resistance using a slow ramp-up approach pointed to the Plasmodium falciparum cytoplasmic asparaginyl-tRNA synthetase (PfAsnRS) as the target, consistent with our finding that OSM-S-106 inhibits protein translation and activates the amino acid starvation response. Targeted mass spectrometry confirms that OSM-S-106 is a pro-inhibitor and that inhibition of PfAsnRS occurs via enzyme-mediated production of an Asn-OSM-S-106 adduct. Human AsnRS is much less susceptible to this reaction hijacking mechanism. X-ray crystallographic studies of human AsnRS in complex with inhibitor adducts and docking of pro-inhibitors into a model of Asn-tRNA-bound PfAsnRS provide insights into the structure-activity relationship and the selectivity mechanism.


Subject(s)
Antimalarials , Aspartate-tRNA Ligase , Animals , Humans , Plasmodium falciparum/genetics , Asparagine/metabolism , Aspartate-tRNA Ligase/genetics , RNA, Transfer, Amino Acyl/metabolism , Antimalarials/pharmacology , Mammals/genetics
2.
Eur J Med Chem ; 261: 115786, 2023 Dec 05.
Article in English | MEDLINE | ID: mdl-37716187

ABSTRACT

Perforin is a pore-forming protein whose normal function enables cytotoxic T and natural killer (NK) cells to kill virus-infected and transformed cells. Conversely, unwanted perforin activity can also result in auto-immune attack, graft rejection and aberrant responses to pathogens. Perforin is critical for the function of the granule exocytosis cell death pathway and is therefore a target for drug development. In this study, by screening a fragment library using NMR and surface plasmon resonance, we identified 4,4-diaminodiphenyl sulfone (dapsone) as a perforin ligand. We also found that dapsone has modest (mM) inhibitory activity of perforin lytic activity in a red blood cell lysis assay in vitro. Sequential modification of this lead fragment, guided by structural knowledge of the ligand binding site and binding pose, and supported by SPR and ligand-detected 19F NMR, enabled the design of nanomolar inhibitors of the cytolytic activity of intact NK cells against various tumour cell targets. Interestingly, the ligands we developed were largely inert with respect to direct perforin-mediated red blood cell lysis but were very potent in the context of perforin's action on delivering granzymes in the immune synapse, the context in which it functions physiologically. Our work indicates that a fragment-based, structure-guided drug discovery strategy can be used to identify novel ligands that bind perforin. Moreover, these molecules have superior physicochemical properties and solubility compared to previous generations of perforin ligands.


Subject(s)
Dapsone , Killer Cells, Natural , Perforin/metabolism , Ligands , Killer Cells, Natural/metabolism , Cell Death , Dapsone/metabolism
3.
Res Sq ; 2023 Jul 27.
Article in English | MEDLINE | ID: mdl-37546892

ABSTRACT

Malaria poses an enormous threat to human health. With ever increasing resistance to currently deployed drugs, breakthrough compounds with novel mechanisms of action are urgently needed. Here, we explore pyrimidine-based sulfonamides as a new low molecular weight inhibitor class with drug-like physical parameters and a synthetically accessible scaffold. We show that the exemplar, OSM-S-106, has potent activity against parasite cultures, low mammalian cell toxicity and low propensity for resistance development. In vitro evolution of resistance using a slow ramp-up approach pointed to the Plasmodium falciparum cytoplasmic asparaginyl tRNA synthetase (PfAsnRS) as the target, consistent with our finding that OSM-S-106 inhibits protein translation and activates the amino acid starvation response. Targeted mass spectrometry confirms that OSM-S-106 is a pro-inhibitor and that inhibition of PfAsnRS occurs via enzyme-mediated production of an Asn-OSM-S-106 adduct. Human AsnRS is much less susceptible to this reaction hijacking mechanism. X-ray crystallographic studies of human AsnRS in complex with inhibitor adducts and docking of pro-inhibitors into a model of Asn-tRNA-bound PfAsnRS provide insights into the structure activity relationship and the selectivity mechanism.

4.
Science ; 376(6597): 1074-1079, 2022 06 03.
Article in English | MEDLINE | ID: mdl-35653481

ABSTRACT

Aminoacyl transfer RNA (tRNA) synthetases (aaRSs) are attractive drug targets, and we present class I and II aaRSs as previously unrecognized targets for adenosine 5'-monophosphate-mimicking nucleoside sulfamates. The target enzyme catalyzes the formation of an inhibitory amino acid-sulfamate conjugate through a reaction-hijacking mechanism. We identified adenosine 5'-sulfamate as a broad-specificity compound that hijacks a range of aaRSs and ML901 as a specific reagent a specific reagent that hijacks a single aaRS in the malaria parasite Plasmodium falciparum, namely tyrosine RS (PfYRS). ML901 exerts whole-life-cycle-killing activity with low nanomolar potency and single-dose efficacy in a mouse model of malaria. X-ray crystallographic studies of plasmodium and human YRSs reveal differential flexibility of a loop over the catalytic site that underpins differential susceptibility to reaction hijacking by ML901.


Subject(s)
Antimalarials , Malaria, Falciparum , Molecular Targeted Therapy , Plasmodium falciparum , Protein Biosynthesis , Protozoan Proteins , Tyrosine-tRNA Ligase , Adenosine/analogs & derivatives , Animals , Antimalarials/chemistry , Antimalarials/pharmacology , Antimalarials/therapeutic use , Crystallography, X-Ray , Humans , Malaria, Falciparum/drug therapy , Malaria, Falciparum/parasitology , Mice , Plasmodium falciparum/drug effects , Plasmodium falciparum/enzymology , Protein Biosynthesis/drug effects , Protein Conformation , Protozoan Proteins/chemistry , Protozoan Proteins/metabolism , Sulfonic Acids/chemistry , Tyrosine-tRNA Ligase/chemistry , Tyrosine-tRNA Ligase/metabolism
5.
Proc Natl Acad Sci U S A ; 118(39)2021 09 28.
Article in English | MEDLINE | ID: mdl-34548400

ABSTRACT

The Plasmodium falciparum proteasome is a potential antimalarial drug target. We have identified a series of amino-amide boronates that are potent and specific inhibitors of the P. falciparum 20S proteasome (Pf20S) ß5 active site and that exhibit fast-acting antimalarial activity. They selectively inhibit the growth of P. falciparum compared with a human cell line and exhibit high potency against field isolates of P. falciparum and Plasmodium vivax They have a low propensity for development of resistance and possess liver stage and transmission-blocking activity. Exemplar compounds, MPI-5 and MPI-13, show potent activity against P. falciparum infections in a SCID mouse model with an oral dosing regimen that is well tolerated. We show that MPI-5 binds more strongly to Pf20S than to human constitutive 20S (Hs20Sc). Comparison of the cryo-electron microscopy (EM) structures of Pf20S and Hs20Sc in complex with MPI-5 and Pf20S in complex with the clinically used anti-cancer agent, bortezomib, reveal differences in binding modes that help to explain the selectivity. Together, this work provides insights into the 20S proteasome in P. falciparum, underpinning the design of potent and selective antimalarial proteasome inhibitors.


Subject(s)
Boron Compounds/pharmacology , Malaria, Falciparum/drug therapy , Plasmodium falciparum/drug effects , Proteasome Endopeptidase Complex/chemistry , Proteasome Inhibitors/pharmacology , Administration, Oral , Animals , Boron Compounds/administration & dosage , Boron Compounds/chemistry , Catalytic Domain , Humans , Malaria, Falciparum/enzymology , Malaria, Falciparum/parasitology , Mice , Mice, Inbred NOD , Mice, SCID , Models, Molecular , Plasmodium falciparum/enzymology , Proteasome Inhibitors/administration & dosage , Proteasome Inhibitors/chemistry
6.
J Mol Biol ; 390(4): 635-45, 2009 Jul 24.
Article in English | MEDLINE | ID: mdl-19427318

ABSTRACT

The scabies mite (Sarcoptes scabiei) is a parasite responsible for major morbidity in disadvantaged communities and immuno-compromised patients worldwide. In addition to the physical discomfort caused by the disease, scabies infestations facilitate infection by Streptococcal species via skin lesions, resulting in a high prevalence of rheumatic fever/heart disease in affected communities. The scabies mite produces 33 proteins that are closely related to those in the dust mite group 3 allergen and belong to the S1-like protease family (chymotrypsin-like). However, all but one of these molecules contain mutations in the conserved active-site catalytic triad that are predicted to render them catalytically inactive. These molecules are thus termed scabies mite inactivated protease paralogues (SMIPPs). The precise function of SMIPPs is unclear; however, it has been suggested that these proteins might function by binding and protecting target substrates from cleavage by host immune proteases, thus preventing the host from mounting an effective immune challenge. In order to begin to understand the structural basis for SMIPP function, we solved the crystal structures of SMIPP-S-I1 and SMIPP-S-D1 at 1.85 A and 2.0 A resolution, respectively. Both structures adopt the characteristic serine protease fold, albeit with large structural variations over much of the molecule. In both structures, mutations in the catalytic triad together with occlusion of the S1 subsite by a conserved Tyr200 residue is predicted to block substrate ingress. Accordingly, we show that both proteases lack catalytic function. Attempts to restore function (via site-directed mutagenesis of catalytic residues as well as Tyr200) were unsuccessful. Taken together, these data suggest that SMIPPs have lost the ability to bind substrates in a classical "canonical" fashion, and instead have evolved alternative functions in the lifecycle of the scabies mite.


Subject(s)
Models, Molecular , Sarcoptes scabiei/enzymology , Serine Endopeptidases/chemistry , Animals , Catalytic Domain , Crystallography, X-Ray , Enzyme Activation , Mutation , Peptide Library , Phylogeny , Protein Conformation , Serine Endopeptidases/genetics
7.
PLoS One ; 4(3): e4727, 2009.
Article in English | MEDLINE | ID: mdl-19266095

ABSTRACT

Chromatin condensation to heterochromatin is a mechanism essential for widespread suppression of gene transcription, and the means by which a chromatin-associated protein, MENT, induces a terminally differentiated state in cells. MENT, a protease inhibitor of the serpin superfamily, is able to undergo conformational change in order to effect enzyme inhibition. Here, we sought to investigate whether conformational change in MENT is 'fine-tuned' in the presence of a bound ligand in an analogous manner to other serpins, such as antithrombin where such movements are reflected by a change in intrinsic tryptophan fluorescence. Using this technique, MENT was found to undergo structural shifts in the presence of DNA packaged into nucleosomes, but not naked DNA. The contribution of the four Trp residues of MENT to the fluorescence change was mapped using deconvolution analysis of variants containing single Trp to Phe mutations. The analysis indicated that the overall emission spectra is dominated by a helix-H tryptophan, but this residue did not dominate the conformational change in the presence of chromatin, suggesting that other Trp residues contained in the A-sheet and RCL regions contribute to the conformational change. Mutagenesis revealed that the conformational change requires the presence of the DNA-binding 'M-loop' and D-helix of MENT, but is independent of the protease specificity determining 'reactive centre loop'. The D-helix mutant of MENT, which is unable to condense chromatin, does not undergo a conformational change, despite being able to bind chromatin, indicating that the conformational change may contribute to chromatin condensation by the serpin.


Subject(s)
Avian Proteins/chemistry , Chromatin Assembly and Disassembly , Chromosomal Proteins, Non-Histone/chemistry , Animals , Avian Proteins/genetics , Avian Proteins/metabolism , Binding Sites , Chickens , Chromosomal Proteins, Non-Histone/genetics , Chromosomal Proteins, Non-Histone/metabolism , DNA/metabolism , Erythrocytes/chemistry , Fluorescence , Mutagenesis, Site-Directed , Nucleosomes/metabolism , Phenylalanine , Protein Conformation , Tryptophan
8.
Proc Natl Acad Sci U S A ; 106(14): 5587-92, 2009 Apr 07.
Article in English | MEDLINE | ID: mdl-19299505

ABSTRACT

Proteases act in important homeostatic pathways and are tightly regulated. Here, we report an unusual structural mechanism of regulation observed by the 2.5-A X-ray crystal structure of the serine protease, granzyme C. Although the active-site triad residues adopt canonical conformations, the oxyanion hole is improperly formed, and access to the primary specificity (S1) pocket is blocked through a reversible rearrangement involving Phe-191. Specifically, a register shift in the 190-strand preceding the active-site serine leads to Phe-191 filling the S1 pocket. Mutation of a unique Glu-Glu motif at positions 192-193 unlocks the enzyme, which displays chymase activity, and proteomic analysis confirms that activity of the wild-type protease can be released through interactions with an appropriate substrate. The 2.5-A structure of the unlocked enzyme reveals unprecedented flexibility in the 190-strand preceding the active-site serine that results in Phe-191 vacating the S1 pocket. Overall, these observations describe a broadly applicable mechanism of protease regulation that cannot be predicted by template-based modeling or bioinformatic approaches alone.


Subject(s)
Granzymes/chemistry , Serine Endopeptidases/metabolism , Amino Acids , Animals , Catalytic Domain , Crystallography, X-Ray , Protein Conformation , Rodentia , Serine Proteinase Inhibitors
9.
Science ; 317(5844): 1548-51, 2007 Sep 14.
Article in English | MEDLINE | ID: mdl-17717151

ABSTRACT

Proteins containing membrane attack complex/perforin (MACPF) domains play important roles in vertebrate immunity, embryonic development, and neural-cell migration. In vertebrates, the ninth component of complement and perforin form oligomeric pores that lyse bacteria and kill virus-infected cells, respectively. However, the mechanism of MACPF function is unknown. We determined the crystal structure of a bacterial MACPF protein, Plu-MACPF from Photorhabdus luminescens, to 2.0 angstrom resolution. The MACPF domain reveals structural similarity with poreforming cholesterol-dependent cytolysins (CDCs) from Gram-positive bacteria. This suggests that lytic MACPF proteins may use a CDC-like mechanism to form pores and disrupt cell membranes. Sequence similarity between bacterial and vertebrate MACPF domains suggests that the fold of the CDCs, a family of proteins important for bacterial pathogenesis, is probably used by vertebrates for defense against infection.


Subject(s)
Bacterial Proteins/chemistry , Photorhabdus/chemistry , Protein Conformation , Protein Folding , Amino Acid Motifs , Amino Acid Sequence , Animals , Bacterial Proteins/metabolism , Complement Membrane Attack Complex/chemistry , Complement Membrane Attack Complex/metabolism , Crystallography, X-Ray , Cytotoxins/chemistry , Membrane Glycoproteins/chemistry , Membrane Glycoproteins/genetics , Membrane Glycoproteins/metabolism , Molecular Sequence Data , Perforin , Pore Forming Cytotoxic Proteins/chemistry , Pore Forming Cytotoxic Proteins/genetics , Pore Forming Cytotoxic Proteins/metabolism , Protein Structure, Secondary , Protein Structure, Tertiary , Vertebrates
10.
EMBO J ; 25(13): 3144-55, 2006 Jul 12.
Article in English | MEDLINE | ID: mdl-16810322

ABSTRACT

Most serpins are associated with protease inhibition, and their ability to form loop-sheet polymers is linked to conformational disease and the human serpinopathies. Here we describe the structural and functional dissection of how a unique serpin, the non-histone architectural protein, MENT (Myeloid and Erythroid Nuclear Termination stage-specific protein), participates in DNA and chromatin condensation. Our data suggest that MENT contains at least two distinct DNA-binding sites, consistent with its simultaneous binding to the two closely juxtaposed linker DNA segments on a nucleosome. Remarkably, our studies suggest that the reactive centre loop, a region of the MENT molecule essential for chromatin bridging in vivo and in vitro, is able to mediate formation of a loop-sheet oligomer. These data provide mechanistic insight into chromatin compaction by a non-histone architectural protein and suggest how the structural plasticity of serpins has adapted to mediate physiological, rather than pathogenic, loop-sheet linkages.


Subject(s)
Chromatin/metabolism , DNA-Binding Proteins/chemistry , Models, Molecular , Serpins/chemistry , Animals , Binding Sites , Cathepsin L , Cathepsins/chemistry , Crystallography, X-Ray , Cysteine Endopeptidases/chemistry , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Humans , Mutation , Nucleosomes/metabolism , Protein Conformation , Serpins/genetics , Serpins/metabolism
11.
J Biol Chem ; 280(23): 22356-64, 2005 Jun 10.
Article in English | MEDLINE | ID: mdl-15760906

ABSTRACT

Maspin is a serpin that acts as a tumor suppressor in a range of human cancers, including tumors of the breast and lung. Maspin is crucial for development, because homozygous loss of the gene is lethal; however, the precise physiological role of the molecule is unclear. To gain insight into the function of human maspin, we have determined its crystal structure in two similar, but non-isomorphous crystal forms, to 2.1- and 2.8-A resolution, respectively. The structure reveals that maspin adopts the native serpin fold in which the reactive center loop is expelled fully from the A beta-sheet, makes minimal contacts with the core of the molecule, and exhibits a high degree of flexibility. A buried salt bridge unique to maspin orthologues causes an unusual bulge in the region around the D and E alpha-helices, an area of the molecule demonstrated in other serpins to be important for cofactor recognition. Strikingly, the structural data reveal that maspin is able to undergo conformational change in and around the G alpha-helix, switching between an open and a closed form. This change dictates the electrostatic character of a putative cofactor binding surface and highlights this region as a likely determinant of maspin function. The high resolution crystal structure of maspin provides a detailed molecular framework to elucidate the mechanism of function of this important tumor suppressor.


Subject(s)
Crystallography, X-Ray/methods , Serpins/chemistry , Animals , Binding Sites , Cathepsin L , Cathepsins/chemistry , Chickens , Circular Dichroism , Cysteine Endopeptidases/chemistry , Extracellular Matrix , Genes, Tumor Suppressor , Homozygote , Humans , Mice , Models, Molecular , Plasmids/metabolism , Protein Binding , Protein Conformation , Protein Structure, Secondary , Rats , Recombinant Proteins/chemistry , Spectrophotometry , Static Electricity , Temperature , Xenopus
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