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Biology subjects

Mueller-Dieckmann, C.

Publications and source records attributed to Mueller-Dieckmann, C..

2 recordsLinked to original sources

Mechanism of small molecule inhibition of Plasmodium falciparum myosin A informs antimalarial drug design

Malaria is responsible for more than a half million deaths per year. The Plasmodium parasites responsible continue to develop resistance to all known agents, despite treatment with different antimalarial combinations. The atypical Myosin A motor (PfMyoA) is part of a core macromolecular complex called the glideosome, essential for Plasmodium parasite mobility and therefore an attractive drug target. Here, we characterize the interaction of a small molecule (KNX-002) with PfMyoA. KNX-002 inhibits PfMyoA ATPase activity in vitro and blocks asexual blood stage growth of merozoites, one of three motile Plasmodium life-cycle stages. Combining biochemical assays, X-ray crystallography and molecular dynamics, we demonstrate that KNX-002 targets a novel pocket in PfMyoA, sequestering it in a post-rigor state detached from actin. KNX-002 binding affects Mg2+ coordination near ATP, preventing ATP hydrolysis and thus inhibiting motor activity. This first-in-class small-molecule inhibitor of PfMyoA paves the way for developing a new generation of antimalarial treatments.

molecular biology↗

Reversible supramolecular assembly of the anti-microbial peptide plectasin into helical non-amyloid fibrils

Self-assembly and fibril formation play important roles in protein behavior. Amyloid fibrils formation is well-studied due to its role in neurodegenerative diseases and characterized by refolding of the protein into predominant {beta}-sheet form. However, much less is known about the assembly of proteins into other types of supramolecular structures. Using cryo-electron microscopy at a resolution of 1.97 [A], we show that a triple-mutant of the anti-microbial peptide plectasin assembles reversibly into helical non-amyloid fibrils. Plectasin contains a cysteine-stabilized -helix-{beta}-sheets structure, which remains intact upon fibril formation. Two fibrils form a right-handed superstructure with each fibril consisting of double helical, left-handed structures. The fibril formation is reversible and follows sigmoidal kinetics with a pH-dependent equilibrium between soluble monomer and protein fibril. The anti-microbial activity does not appear compromised by fibril formation. This is the first high-resolution structure of this type of /{beta} protein fibrils.

biophysics↗