Spatially Distinct Myosin II Architectures Regulate Protrusion Dynamics and Directional Persistence during Immune Cell Migration
Melis, N.; Chen, D.; Chen, E.; Madsen, T.; Ng, Y.; Subramanian, B. C.; Wang, W.; Parent, C.; Losert, W.; Weigert, R.
Show abstract
Directional persistence is essential for efficient immune cell migration in tissues, yet how cytoskeletal systems stabilize migration in complex three-dimensional environments remains unclear. Using intravital subcellular microscopy and quantitative analysis of membrane dynamics, we identify two spatially distinct architectures of non-muscle myosin II (NMII) that coordinate protrusion dynamics during neutrophil migration. In vivo and in collagen matrices, NMII assembles at the leading edge into lattice-like structures that are structurally and functionally distinct from rear contractile actomyosin bundles. Protrusion-resolved analyses reveal that directional persistence correlates strongly with protrusion lifetime and sustained NMII engagement, with rear NMII load showing the strongest association with protrusion persistence. Strikingly, directional migration is not determined by the abundance of favorable protrusions but by their temporal organization during migration. Pharmacological perturbations that redistribute NMII activity disrupt this temporal organization and alter migration trajectories. Together, these findings reveal that spatially distinct NMII architectures coordinate protrusion dynamics across time to stabilize directional migration in complex environments. HighlightsO_LIMigrating neutrophils assemble spatially distinct myosin II architectures at the leading edge and rear C_LIO_LIProtrusion dynamics and directional persistence are linked to sustained myosin II engagement C_LIO_LIDirectional migration emerges from the temporal organization of protrusion states rather than their abundance C_LI
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- LIMD1 phase separation contributes to cellular mechanics and durotaxis by regulating focal adhesion dynamics in response to force 97%
- Mechanosensitivity of amoeboid cells crawling in 3D 97%
- Direct activation of the Ras-Akt network mediates polarity and organizes protrusions in human neutrophil migration 97%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.