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High-resolution Time-lapse Imaging and Automated Analysis of Microtubule Dynamics in Living Human Umbilical Vein Endothelial Cells
Published on: August 13, 2016
Podosome dynamics and location in vascular smooth muscle cells require CLASP-dependent microtubule bending
Xiaodong Zhu1, Nadia Efimova1, Christopher Arnette1
1Department of Cell and Developmental Biology, Vanderbilt University Medical Center, Nashville, TN.
Abstract:
Extracellular matrix (ECM) remodeling during physiological processes is mediated by invasive protrusions called podosomes. Positioning and dynamics of podosomes define the extent of ECM degradation. Microtubules are known to be involved in podosome regulation, but the role of microtubule (MT) network configuration in podosome dynamics and positioning is not well understood. Here, we show that the arrangement of the microtubule network defines the pattern of podosome formation and relocation in vascular smooth muscle cells (VSMCs). We show that microtubule plus-end targeting facilitates de novo formation of podosomes, in addition to podosome remodeling. Moreover, specialized bent microtubules with plus ends reversed towards the cell center promote relocation of podosomes from the cell edge to the cell center, resulting in an evenly distributed podosome pattern. Microtubule bending is induced downstream of protein kinase C (PKC) activation and requires microtubule-stabilizing proteins known as cytoplasmic linker associated proteins (CLASPs) and retrograde actin flow. Similar to microtubule depolymerization, CLASP depletion by siRNA blocks microtubule bending and eliminates centripetal relocation of podosomes. Podosome relocation also coincides with translocation of podosome-stimulating kinesin KIF1C, which is known to move preferentially along CLASP-associated microtubules. These findings indicate that CLASP-dependent microtubule network configuration is critical to the cellular location and distribution of KIF1C-dependent podosomes. © 2016 Wiley Periodicals, Inc.
Insights
Microtubule network configuration guides podosome positioning in vascular smooth muscle cells (VSMCs). Specialized microtubules promote podosome relocation, influencing extracellular matrix remodeling.
Area of Science:
- Cell Biology
- Cytoskeleton Dynamics
- Extracellular Matrix Remodeling
Background:
- Podosomes are crucial for extracellular matrix (ECM) remodeling.
- Microtubule (MT) involvement in podosome regulation is known, but their network configuration's role is unclear.
- Understanding podosome dynamics is key to physiological processes.
Purpose of the Study:
- Investigate the role of microtubule network configuration in podosome dynamics and positioning within vascular smooth muscle cells (VSMCs).
- Elucidate how microtubule arrangement influences podosome formation, relocation, and ECM degradation patterns.
Main Methods:
- Utilized VSMCs to study microtubule-podosome interactions.
- Employed siRNA to deplete cytoplasmic linker associated proteins (CLASPs).
- Analyzed microtubule bending, retrograde actin flow, and kinesin KIF1C translocation.
Main Results:
- Microtubule plus-end targeting facilitates new podosome formation and remodeling.
- Bent microtubules promote podosome relocation towards the cell center, creating an even distribution.
- CLASP depletion and microtubule depolymerization inhibit bending and centripetal podosome relocation.
- Podosome relocation correlates with kinesin KIF1C translocation along CLASP-associated microtubules.
Conclusions:
- The microtubule network's configuration dictates podosome positioning and distribution in VSMCs.
- CLASP-dependent microtubule bending is essential for directed podosome relocation.
- KIF1C-dependent podosome dynamics are critically regulated by microtubule architecture.
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