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1.
PLoS One ; 19(4): e0296127, 2024.
Article in English | MEDLINE | ID: mdl-38626020

ABSTRACT

Lyme disease is the most prevalent vector-borne infectious disease in Europe and the USA. Borrelia burgdorferi, as the causative agent of Lyme disease, is transmitted to the mammalian host during the tick blood meal. To adapt to the different encountered environments, Borrelia has adjusted the expression pattern of various, mostly outer surface proteins. The function of most B. burgdorferi outer surface proteins remains unknown. We determined the crystal structure of a previously uncharacterized B. burgdorferi outer surface protein BBK01, known to belong to the paralogous gene family 12 (PFam12) as one of its five members. PFam12 members are shown to be upregulated as the tick starts its blood meal. Structural analysis of BBK01 revealed similarity to the coiled coil domain of structural maintenance of chromosomes (SMC) protein family members, while functional studies indicated that all PFam12 members are non-specific DNA-binding proteins. The residues involved in DNA binding were identified and probed by site-directed mutagenesis. The combination of SMC-like proteins being attached to the outer membrane and exposed to the environment or located in the periplasm, as observed in the case of PFam12 members, and displaying the ability to bind DNA, represents a unique feature previously not observed in bacteria.


Subject(s)
Borrelia burgdorferi , Lyme Disease , Ticks , Animals , Borrelia burgdorferi/genetics , Borrelia burgdorferi/metabolism , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Lyme Disease/microbiology , Ticks/genetics , Membrane Proteins/metabolism , DNA/metabolism , Bacterial Outer Membrane Proteins/metabolism , Mammals/genetics
2.
J Chem Inf Model ; 62(13): 3263-3273, 2022 07 11.
Article in English | MEDLINE | ID: mdl-35712895

ABSTRACT

Selectivity is a major issue in the development of drugs targeting pathogen aspartic proteases. Here, we explore the selectivity-determining factors by studying specifically designed malaria aspartic protease (plasmepsin) open-flap inhibitors. Metadynamics simulations are used to uncover the complex binding/unbinding pathways of these inhibitors and describe the critical transition states in atomistic resolution. The simulation results are compared with experimentally determined enzymatic activities. Our findings demonstrate that plasmepsin inhibitor selectivity can be achieved by targeting the flap loop with hydrophobic substituents that enable ligand binding under the flap loop, as such a behavior is not observed for several other aspartic proteases. The ability to estimate the selectivity of compounds before they are synthesized is of considerable importance in drug design; therefore, we expect that our approach will be useful in selective inhibitor designs against not only aspartic proteases but also other enzyme classes.


Subject(s)
Antimalarials , Aspartic Acid Endopeptidases , Plasmodium falciparum , Protease Inhibitors , Antimalarials/chemistry , Aspartic Acid Endopeptidases/antagonists & inhibitors , Aspartic Acid Endopeptidases/chemistry , Computer Simulation , Drug Design , Malaria/drug therapy , Plasmodium falciparum/drug effects , Protease Inhibitors/chemistry , Protease Inhibitors/pharmacology , Protozoan Proteins/chemistry
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