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1.
J Biol Chem ; 298(7): 102119, 2022 07.
Artigo em Inglês | MEDLINE | ID: mdl-35691342

RESUMO

The metal-dependent M17 aminopeptidases are conserved throughout all kingdoms of life. This large enzyme family is characterized by a conserved binuclear metal center and a distinctive homohexameric arrangement. Recently, we showed that hexamer formation in Plasmodium M17 aminopeptidases was controlled by the metal ion environment, although the functional necessity for hexamer formation is still unclear. To further understand the mechanistic role of the hexameric assembly, here we undertook an investigation of the structure and dynamics of the M17 aminopeptidase from Plasmodium falciparum, PfA-M17. We describe a novel structure of PfA-M17, which shows that the active sites of each trimer are linked by a dynamic loop, and loop movement is coupled with a drastic rearrangement of the binuclear metal center and substrate-binding pocket, rendering the protein inactive. Molecular dynamics simulations and biochemical analyses of PfA-M17 variants demonstrated that this rearrangement is inherent to PfA-M17, and that the transition between the active and inactive states is metal dependent and part of a dynamic regulatory mechanism. Key to the mechanism is a remodeling of the binuclear metal center, which occurs in response to a signal from the neighboring active site and serves to moderate the rate of proteolysis under different environmental conditions. In conclusion, this work identifies a precise mechanism by which oligomerization contributes to PfA-M17 function. Furthermore, it describes a novel role for metal cofactors in the regulation of enzymes, with implications for the wide range of metalloenzymes that operate via a two-metal ion catalytic center, including DNA processing enzymes and metalloproteases.


Assuntos
Aminopeptidases , Plasmodium falciparum/enzimologia , Aminopeptidases/química , Aminopeptidases/metabolismo , Domínio Catalítico , Metais/metabolismo , Plasmodium falciparum/metabolismo
2.
Biochem J ; 478(13): 2697-2713, 2021 07 16.
Artigo em Inglês | MEDLINE | ID: mdl-34133730

RESUMO

During malarial infection, Plasmodium parasites digest human hemoglobin to obtain free amino acids for protein production and maintenance of osmotic pressure. The Plasmodium M1 and M17 aminopeptidases are both postulated to have an essential role in the terminal stages of the hemoglobin digestion process and are validated drug targets for the design of new dual-target anti-malarial compounds. In this study, we profiled the substrate specificity fingerprints and kinetic behaviors of M1 and M17 aminopeptidases from Plasmodium falciparum and Plasmodium vivax, and the mouse model species, Plasmodium berghei. We found that although the Plasmodium M1 aminopeptidases share a largely similar, broad specificity at the P1 position, the P. falciparum M1 displays the greatest diversity in specificity and P. berghei M1 showing a preference for charged P1 residues. In contrast, the Plasmodium M17 aminopeptidases share a highly conserved preference for hydrophobic residues at the P1 position. The aminopeptidases also demonstrated intra-peptide sequence specificity, particularly the M1 aminopeptidases, which showed a definitive preference for peptides with fewer negatively charged intrapeptide residues. Overall, the P. vivax and P. berghei enzymes had a faster substrate turnover rate than the P. falciparum enzymes, which we postulate is due to subtle differences in structural dynamicity. Together, these results build a kinetic profile that allows us to better understand the catalytic nuances of the M1 and M17 aminopeptidases from different Plasmodium species.


Assuntos
Aminopeptidases/metabolismo , Peptídeos/metabolismo , Plasmodium/enzimologia , Proteínas de Protozoários/metabolismo , Aminopeptidases/classificação , Aminopeptidases/genética , Animais , Biocatálise/efeitos dos fármacos , Humanos , Isoenzimas/genética , Isoenzimas/metabolismo , Cinética , Leucina/análogos & derivados , Leucina/farmacologia , Malária/parasitologia , Camundongos , Plasmodium/genética , Plasmodium/fisiologia , Plasmodium berghei/enzimologia , Plasmodium berghei/genética , Plasmodium falciparum/enzimologia , Plasmodium falciparum/genética , Plasmodium vivax/enzimologia , Plasmodium vivax/genética , Inibidores de Proteases/farmacologia , Proteínas de Protozoários/genética , Proteínas Recombinantes/metabolismo , Especificidade da Espécie , Especificidade por Substrato
3.
Mol Microbiol ; 116(2): 397-415, 2021 08.
Artigo em Inglês | MEDLINE | ID: mdl-33756056

RESUMO

Endolysin enzymes from bacteriophage cause bacterial lysis by degrading the peptidoglycan cell wall. The streptococcal C1 phage endolysin PlyC, is the most potent endolysin described to date and can rapidly lyse group A, C, and E streptococci. PlyC is known to bind the Group A streptococcal cell wall, but the specific molecular target or the binding site within PlyC remain uncharacterized. Here we report for the first time, that the polyrhamnose backbone of the Group A streptococcal cell wall is the binding target of PlyC. We have also characterized the putative rhamnose binding groove of PlyC and found four key residues that were critical to either the folding or the cell wall binding action of PlyC. Based on our results, we suggest that the interaction between PlyC and the cell wall may not be a high-affinity interaction as previously proposed, but rather a high avidity one, allowing for PlyC's remarkable lytic activity. Resistance to our current antibiotics is reaching crisis levels and there is an urgent need to develop the antibacterial agents with new modes of action. A detailed understanding of this potent endolysin may facilitate future developments of PlyC as a tool against the rise of antibiotic resistance.


Assuntos
Bacteriófagos/metabolismo , Endopeptidases/metabolismo , Peptidoglicano/metabolismo , Ramnose/metabolismo , Streptococcus pyogenes/virologia , Bacteriófagos/genética , Sítios de Ligação/fisiologia , Membrana Celular/metabolismo , Parede Celular/metabolismo , Endopeptidases/genética , Simulação de Acoplamento Molecular , Ligação Proteica/fisiologia , Streptococcus pyogenes/metabolismo
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