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The PAR complex controls the spatiotemporal dynamics of F-actin and the MTOC in directionally migrating leukocytes
Carolina Lage Crespo1, Claudio Vernieri2, Philipp J Keller3
1Division of Immunology, Transplantation and Infectious Diseases, San Raffaele Scientific Institute, 20132 Milan, Italy.
Abstract:
Inflammatory cells acquire a polarized phenotype to migrate towards sites of infection or injury. A conserved polarity complex comprising PAR-3, PAR-6 and atypical protein kinase C (aPKC) relays extracellular polarizing cues to control cytoskeletal and signaling networks affecting morphological and functional polarization. However, there is no evidence that myeloid cells use PAR signaling to migrate vectorially in three-dimensional (3D) environments in vivo. Using genetically encoded bioprobes and high-resolution live imaging, we reveal the existence of F-actin oscillations in the trailing edge and constant repositioning of the microtubule organizing center (MTOC) to direct leukocyte migration in wounded medaka fish larvae (Oryzias latipes). Genetic manipulation in live myeloid cells demonstrates that the catalytic activity of aPKC and the regulated interaction with PAR-3 and PAR-6 are required for consistent F-actin oscillations, MTOC perinuclear mobility, aPKC repositioning and wound-directed migration upstream of Rho kinase (also known as ROCK or ROK) activation. We propose that the PAR complex coordinately controls cytoskeletal changes affecting both the generation of traction force and the directionality of leukocyte migration to sites of injury.
Insights
Myeloid cells use PAR signaling for directional migration. This involves F-actin oscillations and microtubule organizing center repositioning, crucial for wound healing and immune response.
Area of Science:
- Cell Biology
- Immunology
- Biophysics
Background:
- Inflammatory cells polarize to migrate to infection or injury sites.
- The PAR (PAR-3, PAR-6, aPKC) complex controls cell polarization.
- PAR signaling's role in myeloid cell 3D migration in vivo is unknown.
Purpose of the Study:
- To investigate PAR complex involvement in myeloid cell vectorial migration in 3D.
- To elucidate the mechanisms of leukocyte polarization and migration in vivo.
Main Methods:
- Utilized genetically encoded bioprobes and high-resolution live imaging in wounded medaka fish larvae (Oryzias latipes).
- Performed genetic manipulation in live myeloid cells.
- Analyzed F-actin oscillations, MTOC repositioning, and aPKC activity.
Main Results:
- Revealed F-actin oscillations at the trailing edge and MTOC repositioning during leukocyte migration.
- Demonstrated that aPKC catalytic activity and PAR-3/PAR-6 interactions are essential for these processes.
- Showed PAR complex controls migration upstream of Rho kinase activation.
Conclusions:
- The PAR complex is critical for regulating cytoskeletal dynamics in myeloid cell migration.
- PAR signaling coordinates F-actin oscillations and MTOC mobility for directed migration to injury sites.
- This mechanism is vital for leukocyte recruitment and tissue repair.
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