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Hung, Y.-F.

Publications and source records attributed to Hung, Y.-F..

2 recordsLinked to original sources

Structure of Toxoplasma gondii glideosome-associated connector suggests a role as an elastic element in actomyosin force generation for gliding motility

Toxoplasma gondii glideosome-associated connector (GAC) is a giant armadillo-repeat protein, essential for parasite motility and conserved across Apicomplexa. It connects actin filaments to the plasma membrane via interactions with phosphatidic acid and membrane-spanning adhesins. It is unclear how GAC contributes to gliding motility and invasion and why such a large connector is needed. We determined the crystal structure of full-length T. gondii GAC at 2.3 [A] resolution and explored its conformational space in solution using small-angle X-ray scattering and cryogenic electron microscopy. The crystal structure reveals a compact conformation but, in solution, GAC adopts both compact and extended forms. The PH domain stabilizes the compact form and may act as a switch triggered by membrane sensing. Based on its spring-like architecture, we suggest a role for GAC as an elastic element in actomyosin force generation during gliding motility and invasion.

biochemistry↗

Characterization of Plasmodium falciparum myosin B in complex with the calmodulin-like domain of its light chain MLC-B

Myosin B (MyoB) is a class 14 myosin expressed in all invasive stages of the malaria parasite, Plasmodium falciparum. It is not associated with the glideosome complex that drives motility and invasion of host cells. During red blood cell invasion, it remains at the apical tip of the merozoite but is no longer observed once invasion is completed. MyoB is not essential for parasite survival but, when it is knocked out, merozoites are delayed in the initial stages of red blood cell invasion, giving rise to a growth defect that correlates with reduced invasion success. Here, we have expressed and purified functional MyoB with the help of parasite-specific chaperones Hsp90 and Unc45, characterized its binding to actin and its known light chain MLC-B using biochemical and biophysical methods, and determined its low-resolution structure in solution using small-angle X-ray scattering. In addition to MLC-B, four other putative regulatory light chains were found to bind to the MyoB IQ2 motif in vitro. The purified recombinant MyoB adopted the overall shape of a myosin, exhibited actin-activated ATPase activity, and moved actin filaments in vitro. The ADP release rate was faster than the ATP turnover number, and thus, does not appear to be rate-limiting. This, together with the observed high affinity to actin and the specific localization of MyoB, may point towards a role in tethering and/or force sensing during early stages of invasion.

biochemistry↗