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1.
J Am Chem Soc ; 142(25): 10899-10904, 2020 06 24.
Artigo em Inglês | MEDLINE | ID: mdl-32479075

RESUMO

Optimization of small-molecule probes or drugs is a synthetically lengthy, challenging, and resource-intensive process. Lack of automation and reliance on skilled medicinal chemists is cumbersome in both academic and industrial settings. Here, we demonstrate a high-throughput hit-to-lead process based on the biocompatible sulfur(VI) fluoride exchange (SuFEx) click chemistry. A high-throughput screening hit benzyl (cyanomethyl)carbamate (Ki = 8 µM) against a bacterial cysteine protease SpeB was modified with a SuFExable iminosulfur oxydifluoride [RN═S(O)F2] motif, rapidly diversified into 460 analogs in overnight reactions, and the products were directly screened to yield drug-like inhibitors with 480-fold higher potency (Ki = 18 nM). We showed that the improved molecule is active in a bacteria-host coculture. Since this SuFEx linkage reaction succeeds on picomole scale for direct screening, we anticipate our methodology can accelerate the development of robust biological probes and drug candidates.


Assuntos
Proteínas de Bactérias/antagonistas & inibidores , Inibidores de Cisteína Proteinase/farmacologia , Exotoxinas/antagonistas & inibidores , Compostos de Enxofre/química , Proteínas de Bactérias/química , Proteínas de Bactérias/metabolismo , Domínio Catalítico , Química Click , Cristalografia por Raios X , Inibidores de Cisteína Proteinase/metabolismo , Inibidores de Cisteína Proteinase/toxicidade , Descoberta de Drogas , Exotoxinas/química , Exotoxinas/metabolismo , Ensaios de Triagem em Larga Escala , Humanos , Células Jurkat , Microssomos Hepáticos/metabolismo , Estudo de Prova de Conceito , Ligação Proteica
2.
Bioorg Med Chem ; 24(20): 4791-4800, 2016 10 15.
Artigo em Inglês | MEDLINE | ID: mdl-27283789

RESUMO

The generation of homogeneously glycosylated proteins is essential for defining glycoform-specific activity and improving protein-based therapeutics. We present a novel glycodendron prosthetic which can be site-selectively appended to recombinant proteins to create 'N-glycosylated' glycoprotein mimics. Using computational modeling, we designed the dendrimer scaffold and protein attachment point to resemble the native N-glycan architecture. Three piperidine-melamine glycodendrimers were synthesized via a chemoenzymatic route and attached to human growth hormone and the Fc region of human IgG. These products represent a new class of engineered biosimilars bearing novel glycodendrimer structures.


Assuntos
Dendrímeros/química , Piperidinas/química , Polissacarídeos/química , Proteínas/química , Dendrímeros/síntese química , Humanos , Estrutura Molecular , Triazinas/química
3.
Cells ; 10(10)2021 09 29.
Artigo em Inglês | MEDLINE | ID: mdl-34685566

RESUMO

Elevated mitochondrial reactive oxygen species (mROS) and an increase in caspase-3 activity are established mechanisms that lead to skeletal muscle atrophy via the upregulation of protein degradation pathways. However, the mechanisms upstream of an increase in mROS and caspase-3 activity in conditions of muscle atrophy have not been identified. Based upon knowledge that an event known as mitochondrial permeability transition (MPT) causes an increase in mROS emission and the activation of caspase-3 via mitochondrial release of cytochrome c, as well as the circumstantial evidence for MPT in some muscle atrophy conditions, we tested MPT as a mechanism of atrophy. Briefly, treating cultured single mouse flexor digitorum brevis (FDB) fibers from adult mice with a chemical inducer of MPT (Bz423) for 24 h caused an increase in mROS and caspase-3 activity that was accompanied by a reduction in muscle fiber diameter that was able to be prevented by inhibitors of MPT, mROS, or caspase-3 (p < 0.05). Similarly, a four-day single fiber culture as a model of disuse caused atrophy that could be prevented by inhibitors of MPT, mROS, or activated caspase-3. As such, our results identify MPT as a novel mechanism of skeletal muscle atrophy that operates through mROS emission and caspase-3 activation.


Assuntos
Caspase 3/metabolismo , Necrose Dirigida por Permeabilidade Transmembrânica da Mitocôndria/fisiologia , Fibras Musculares Esqueléticas/metabolismo , Espécies Reativas de Oxigênio/metabolismo , Animais , Modelos Animais de Doenças , Masculino , Camundongos , Fibras Musculares Esqueléticas/enzimologia
4.
ACS Chem Biol ; 16(9): 1628-1643, 2021 09 17.
Artigo em Inglês | MEDLINE | ID: mdl-34416110

RESUMO

Cathepsin B is a cysteine protease that normally functions within acidic lysosomes for protein degradation, but in numerous human diseases, cathepsin B translocates to the cytosol having neutral pH where the enzyme activates inflammation and cell death. Cathepsin B is active at both the neutral pH 7.2 of the cytosol and the acidic pH 4.6 within lysosomes. We evaluated the hypothesis that cathepsin B may possess pH-dependent cleavage preferences that can be utilized for design of a selective neutral pH inhibitor by (1) analysis of differential cathepsin B cleavage profiles at neutral pH compared to acidic pH using multiplex substrate profiling by mass spectrometry (MSP-MS), (2) design of pH-selective peptide-7-amino-4-methylcoumarin (AMC) substrates, and (3) design and validation of Z-Arg-Lys-acyloxymethyl ketone (AOMK) as a selective neutral pH inhibitor. Cathepsin B displayed preferences for cleaving peptides with Arg in the P2 position at pH 7.2 and Glu in the P2 position at pH 4.6, represented by its primary dipeptidyl carboxypeptidase and modest endopeptidase activity. These properties led to design of the substrate Z-Arg-Lys-AMC having neutral pH selectivity, and its modification with the AOMK warhead to result in the inhibitor Z-Arg-Lys-AOMK. This irreversible inhibitor displays nanomolar potency with 100-fold selectivity for inhibition of cathepsin B at pH 7.2 compared to pH 4.6, shows specificity for cathepsin B over other cysteine cathepsins, and is cell permeable and inhibits intracellular cathepsin B. These findings demonstrate that cathepsin B possesses pH-dependent cleavage properties that can lead to development of a potent, neutral pH inhibitor of this enzyme.


Assuntos
Catepsina B/antagonistas & inibidores , Inibidores de Cisteína Proteinase/química , Citosol/metabolismo , Lisossomos/metabolismo , Peptídeos/química , Sequência de Aminoácidos , Sítios de Ligação , Catepsinas/metabolismo , Permeabilidade da Membrana Celular , Inibidores de Cisteína Proteinase/metabolismo , Endopeptidases/metabolismo , Humanos , Concentração de Íons de Hidrogênio , Cinética , Espectrometria de Massas , Peptídeos/metabolismo , Ligação Proteica , Especificidade por Substrato
5.
ACS Chem Biol ; 14(11): 2463-2470, 2019 11 15.
Artigo em Inglês | MEDLINE | ID: mdl-31334631

RESUMO

Individual roles and overlapping functionalities of 12 human caspases during apoptosis and other cellular processes remain poorly resolved primarily due to a lack of chemical tools. Here we present a new selective caspase-3 inhibitor, termed Ac-ATS010-KE, with rapid and irreversible binding kinetics. Relative to previously designed caspase-3-selective molecules that have tremendously abated inhibitory rates and thus limited use in biological settings, the improved kinetics of Ac-ATS010-KE permits its use in a cell-based capacity. We demonstrate that Ac-ATS010-KE prevents apoptosis with comparable efficacy to the general caspase inhibitor Ac-DEVD-KE and surprisingly does so without side-chain methylation. This observation is in contrast to the well-established peptide modification strategy typically employed for improving cellular permeability. Ac-ATS010-KE protects against extrinsic apoptosis, which demonstrates the utility of a thiophene carboxylate leaving group in biological settings, challenges the requisite neutralization of free carboxylic acids to improve cell permeability, and provides a tool-like compound to interrogate the role of caspase-3 in a variety of cellular processes.


Assuntos
Caspase 3/metabolismo , Inibidores de Caspase/química , Inibidores de Caspase/metabolismo , Oligopeptídeos/química , Sequência de Aminoácidos , Apoptose , Permeabilidade da Membrana Celular , Humanos , Células Jurkat , Cinética , Modelos Moleculares , Oligopeptídeos/metabolismo , Ligação Proteica , Conformação Proteica , Tiofenos/química , Tiofenos/metabolismo
6.
ACS Chem Biol ; 13(9): 2513-2521, 2018 09 21.
Artigo em Inglês | MEDLINE | ID: mdl-30085657

RESUMO

Proteases within the C1B hydrolase family are encoded by many organisms. We subjected a putative C1B-like cysteine protease secreted by the human gut commensal Parabacteroides distasonis to mass spectrometry-based substrate profiling to find preferred peptide substrates. The P. distasonis protease, which we termed Pd_dinase, has a sequential diaminopeptidase activity with strong specificity for N-terminal glycine residues. Using the substrate sequence information, we verified the importance of the P2 glycine residue with a panel of fluorogenic substrates and calculated kcat and KM for the dipeptide glycine-arginine-AMC. A potent and irreversible dipeptide inhibitor with a C-terminal acyloxymethyl ketone warhead, glycine-arginine- AOMK, was then synthesized and demonstrated that the Pd_dinase active site requires a free N-terminal amine for potent and rapid inhibition. We next determined the homohexameric Pd_dinase structure in complex with glycine-arginine- AOMK and uncovered unexpected active site features that govern the strict substrate preferences and differentiate this protease from members of the C1B and broader papain-like C1 protease families. We finally showed that Pd_dinase hydrolyzes several human antimicrobial peptides and therefore posit that this P. distasonis enzyme may be secreted into the extracellular milieu to assist in gut colonization by inactivation of host antimicrobial peptides.


Assuntos
Aminopeptidases/metabolismo , Peptídeos Catiônicos Antimicrobianos/metabolismo , Bacteroides/enzimologia , Microbioma Gastrointestinal , Glicina/metabolismo , Aminopeptidases/química , Peptídeos Catiônicos Antimicrobianos/química , Bacteroides/química , Bacteroides/metabolismo , Glicina/química , Humanos , Modelos Moleculares , Multimerização Proteica , Proteólise , Especificidade por Substrato
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