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1.
Nature ; 625(7995): 578-584, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38123677

ABSTRACT

The symptoms of malaria occur during the blood stage of infection, when parasites invade and replicate within human erythrocytes. The PfPCRCR complex1, containing PfRH5 (refs. 2,3), PfCyRPA, PfRIPR, PfCSS and PfPTRAMP, is essential for erythrocyte invasion by the deadliest human malaria parasite, Plasmodium falciparum. Invasion can be prevented by antibodies3-6 or nanobodies1 against each of these conserved proteins, making them the leading blood-stage malaria vaccine candidates. However, little is known about how PfPCRCR functions during invasion. Here we present the structure of the PfRCR complex7,8, containing PfRH5, PfCyRPA and PfRIPR, determined by cryogenic-electron microscopy. We test the hypothesis that PfRH5 opens to insert into the membrane9, instead showing that a rigid, disulfide-locked PfRH5 can mediate efficient erythrocyte invasion. We show, through modelling and an erythrocyte-binding assay, that PfCyRPA-binding antibodies5 neutralize invasion through a steric mechanism. We determine the structure of PfRIPR, showing that it consists of an ordered, multidomain core flexibly linked to an elongated tail. We also show that the elongated tail of PfRIPR, which is the target of growth-neutralizing antibodies6, binds to the PfCSS-PfPTRAMP complex on the parasite membrane. A modular PfRIPR is therefore linked to the merozoite membrane through an elongated tail, and its structured core presents PfCyRPA and PfRH5 to interact with erythrocyte receptors. This provides fresh insight into the molecular mechanism of erythrocyte invasion and opens the way to new approaches in rational vaccine design.


Subject(s)
Erythrocytes , Malaria, Falciparum , Multiprotein Complexes , Parasites , Plasmodium falciparum , Protozoan Proteins , Animals , Humans , Antibodies, Neutralizing/immunology , Antigens, Protozoan/chemistry , Antigens, Protozoan/immunology , Cryoelectron Microscopy , Disulfides/chemistry , Disulfides/metabolism , Erythrocytes/metabolism , Erythrocytes/parasitology , Malaria Vaccines/immunology , Malaria, Falciparum/immunology , Malaria, Falciparum/metabolism , Malaria, Falciparum/parasitology , Malaria, Falciparum/pathology , Merozoites/metabolism , Multiprotein Complexes/chemistry , Multiprotein Complexes/immunology , Multiprotein Complexes/metabolism , Multiprotein Complexes/ultrastructure , Parasites/metabolism , Parasites/pathogenicity , Plasmodium falciparum/metabolism , Plasmodium falciparum/pathogenicity , Protozoan Proteins/chemistry , Protozoan Proteins/immunology , Protozoan Proteins/metabolism , Protozoan Proteins/ultrastructure
2.
Nat Chem Biol ; 16(1): 24-30, 2020 01.
Article in English | MEDLINE | ID: mdl-31686030

ABSTRACT

Lysostaphin is a bacteriolytic enzyme targeting peptidoglycan, the essential component of the bacterial cell envelope. It displays a very potent and specific activity toward staphylococci, including methicillin-resistant Staphylococcus aureus. Lysostaphin causes rapid cell lysis and disrupts biofilms, and is therefore a therapeutic agent of choice to eradicate staphylococcal infections. The C-terminal SH3b domain of lysostaphin recognizes peptidoglycans containing a pentaglycine crossbridge and has been proposed to drive the preferential digestion of staphylococcal cell walls. Here we elucidate the molecular mechanism underpinning recognition of staphylococcal peptidoglycan by the lysostaphin SH3b domain. We show that the pentaglycine crossbridge and the peptide stem are recognized by two independent binding sites located on opposite sides of the SH3b domain, thereby inducing a clustering of SH3b domains. We propose that this unusual binding mechanism allows synergistic and structurally dynamic recognition of S. aureus peptidoglycan and underpins the potent bacteriolytic activity of this enzyme.


Subject(s)
Lysostaphin/chemistry , Peptidoglycan/chemistry , Staphylococcus aureus/chemistry , Bacteriolysis/drug effects , Biofilms , Cell Wall/chemistry , Chromatography, High Pressure Liquid , DNA Mutational Analysis , Glycine/chemistry , Ligands , Magnetic Resonance Spectroscopy , Mutagenesis, Site-Directed , Peptides/chemistry , Protein Binding , Protein Domains , Recombinant Proteins/chemistry , src Homology Domains
3.
mBio ; 7(4)2016 08 02.
Article in English | MEDLINE | ID: mdl-27486192

ABSTRACT

UNLABELLED: Mycobacterium tuberculosis, the etiological agent of tuberculosis (TB), has a unique cell envelope which accounts for its unusual low permeability and contributes to resistance against common antibiotics. The main structural elements of the cell wall consist of a cross-linked network of peptidoglycan (PG) in which some of the muramic acid residues are covalently attached to a complex polysaccharide, arabinogalactan (AG), via a unique α-l-rhamnopyranose-(1→3)-α-d-GlcNAc-(1→P) linker unit. While the molecular genetics associated with PG and AG biosynthetic pathways have been largely delineated, the mechanism by which these two major pathways converge has remained elusive. In Gram-positive organisms, the LytR-CpsA-Psr (LCP) family of proteins are responsible for ligating cell wall teichoic acids to peptidoglycan, through a linker unit that bears a striking resemblance to that found in mycobacterial arabinogalactan. In this study, we have identified Rv3267 as a mycobacterial LCP homolog gene that encodes a phosphotransferase which we have named Lcp1. We demonstrate that lcp1 is an essential gene required for cell viability and show that recombinant Lcp1 is capable of ligating AG to PG in a cell-free radiolabeling assay. IMPORTANCE: Tuberculosis is an infectious disease caused by the bacterial organism Mycobacterium tuberculosis Survival of M. tuberculosis rests critically on the integrity of its unique cell wall; therefore, a better understanding of how the genes and enzymes involved in cell wall assembly work is fundamental for us to develop new drugs to treat this disease. In this study, we have identified Lcp1 as an essential phosphotransferase that ligates together arabinogalactan and peptidoglycan, two crucial cell wall macromolecules found within the mycobacterial cell wall. The discovery of Lcp1 sheds new light on the final stages of mycobacterial cell wall assembly and represents a key biosynthetic step that could be exploited for new anti-TB drug discovery.


Subject(s)
Galactans/metabolism , Mycobacterium tuberculosis/enzymology , Mycobacterium tuberculosis/metabolism , Peptidoglycan/metabolism , Phosphotransferases/metabolism , Genes, Essential , Microbial Viability , Mycobacterium tuberculosis/genetics , Phosphotransferases/genetics
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