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Lettermann, L.

Publications and source records attributed to Lettermann, L..

2 recordsLinked to original sources

Connecting adhesion dynamics and trail formation in malaria parasites by imaging the major surface antigens CSP and TRAP

Malaria infections are initiated by mosquito bites, during which Plasmodium sporozoites are injected into the host skin. Sporozoites migrate rapidly to find and enter blood capillaries and ultimately invade hepatocytes. Sporozoite migration and invasion is mediated by the transmembrane protein thrombospondin-related anonymous protein (TRAP), which links the extracellular substrate to the actomyosin complex powering gliding motility, while the abundant, GPI-anchored circumsporozoite protein (CSP) covers most of the parasite membrane and modulates adhesion. Both proteins are secreted onto the parasite surface and deposited in a membranous trail originating at the parasite rear. The surface dynamics of these essential sporozoite proteins and the mechanism of deposition, however, are not understood. Here, using orbital total internal reflection fluorescence microscopy (TIRF), we reveal the dynamics of TRAP adhesion site formation and disassembly as well as CSP and TRAP deposition rates. We find that TRAP assembles into distinct adhesion sites, which then undergo retrograde translocation as the sporozoite moves forward. Around half of the TRAP adhesins, together with CSP, remain associated in small membrane droplets on the substrate after the sporozoite has disengaged from the adhesion site. These droplets seem to originate from nanotubes, that presumably decay under high tension. Strikingly, we observe a change in actin filament accumulation if proteolytic cleavage of TRAP is inhibited, providing the first visual evidence for outside-in signaling in sporozoites. Our study reveals a relation between adhesion dynamics and trail formation in Plasmodium sporozoites that might also be relevant for other cell types.

cell biology↗

Zebrafish embryos are robust to mechanical perturbations

The investigation of morphogenesis during organism development has massively benefited from the interaction between developmental biology and biophysics, which gave new quantitative insights into natures physical working principles. The process of zebrafish epiboly provides a beautiful model system as cells exhibit collective migration, meanwhile requiring symmetry breaking for gastrulation and the subsequent tissue differentiation. These elegantly robust processes are facilitated by both biochemical and mechanical cues. Here we test the hypothesis that the future body axis is robust against mechanical perturbations of tissue flow and tissue stress fields. For this, we trigger tissue flow by photoablation, which leads to an externally enforced symmetry breaking before natural symmetry breaking of gastrulation occurs. Using 3D light sheet microscopy, we obtained nuclei trajectories as a proxy for the migration of individual cells. Analyzing the derived tissue velocity field, we observed that epiboly is highly robust and mostly unaffected by ablation damage. However, the photoablation induced a convergent motion of cells towards an azimuthal angle resembling shield formation. We extensively characterized this convergent motion and checked if this tissue flow is able to reorient natural symmetry breaking during shield formation. While ablations can transiently disrupt or reorient the convergent motion, we cannot confirm any redirection of the location where the future body axis of the animal develops. The observations were also highly dependent on the developmental stage of the embryo, which cast a greater and more permanent impact, suggesting strong control exerted by factors other than mechanical signals. Significance statementMorphogenesis emerges from the interplay between biochemical patterning and mechanical forces, yet the extent to which mechanical cues influence embryo developmental remains unclear. Using zebrafish epiboly as model system, we imposed controlled mechanical perturbations through targeted photoablation and tracking resulting 3D cell movements. We show that although ablations generate transient convergent motions, epiboly is remarkably robust to externally induced tissue flows. Our findings indicate that the future body axis is strongly buffered against mechanical disturbances, highlighting the dominant role of developmental stage and non-mechanical cues in guiding development.

biophysics↗