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Updated: Jan 26, 2026

Nuclear Migration in the Drosophila Oocyte
Published on: May 13, 2021
Nuclear positioning facilitates amoeboid migration along the path of least resistance
Jörg Renkawitz1,2, Aglaja Kopf3, Julian Stopp3
1Institute of Science and Technology Austria (IST Austria), Klosterneuburg, Austria. joerg.renkawitz@med.uni-muenchen.de.
Abstract:
During metazoan development, immune surveillance and cancer dissemination, cells migrate in complex three-dimensional microenvironments1-3. These spaces are crowded by cells and extracellular matrix, generating mazes with differently sized gaps that are typically smaller than the diameter of the migrating cell4,5. Most mesenchymal and epithelial cells and some-but not all-cancer cells actively generate their migratory path using pericellular tissue proteolysis6. By contrast, amoeboid cells such as leukocytes use non-destructive strategies of locomotion7, raising the question how these extremely fast cells navigate through dense tissues. Here we reveal that leukocytes sample their immediate vicinity for large pore sizes, and are thereby able to choose the path of least resistance. This allows them to circumnavigate local obstacles while effectively following global directional cues such as chemotactic gradients. Pore-size discrimination is facilitated by frontward positioning of the nucleus, which enables the cells to use their bulkiest compartment as a mechanical gauge. Once the nucleus and the closely associated microtubule organizing centre pass the largest pore, cytoplasmic protrusions still lingering in smaller pores are retracted. These retractions are coordinated by dynamic microtubules; when microtubules are disrupted, migrating cells lose coherence and frequently fragment into migratory cytoplasmic pieces. As nuclear positioning in front of the microtubule organizing centre is a typical feature of amoeboid migration, our findings link the fundamental organization of cellular polarity to the strategy of locomotion.
Insights
Leukocytes navigate dense tissues by sensing pore sizes, using their nucleus as a mechanical gauge to find the path of least resistance. This strategy is crucial for cell migration and tissue navigation.
Area of Science:
- Cell Biology
- Biophysics
- Immunology
Background:
- Cells migrate through complex 3D microenvironments during development, immune surveillance, and cancer.
- Mesenchymal and epithelial cells use proteolysis, while amoeboid cells like leukocytes use non-destructive locomotion.
- The mechanism by which fast-moving amoeboid cells navigate dense tissues remains unclear.
Purpose of the Study:
- To investigate how leukocytes navigate crowded three-dimensional microenvironments.
- To understand the role of cellular structures in amoeboid cell migration.
- To elucidate the relationship between cell polarity and locomotion strategies.
Main Methods:
- Live-cell imaging of leukocyte migration in 3D matrices.
- Perturbation of microtubule dynamics and nuclear positioning.
- Analysis of cell-environment interactions and pore-size discrimination.
Main Results:
- Leukocytes actively sample surrounding pores, selecting paths with larger openings.
- The nucleus acts as a mechanical gauge, with its passage through a pore triggering retraction of cytoplasmic protrusions.
- Dynamic microtubules coordinate retraction, and their disruption leads to cell fragmentation.
Conclusions:
- Leukocytes employ a "path of least resistance" strategy for efficient tissue navigation.
- Frontward nuclear positioning is critical for pore-size discrimination in amoeboid migration.
- Cellular polarity, specifically nuclear positioning, is intrinsically linked to amoeboid locomotion strategies.
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