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Morphological control of merlin-Rac antagonism in proliferation-promoting signaling
Byron G Weiss1,2, Justine M Keth1,2, Kushal Bhatt1,2
1Lyda Hill Department of Bioinformatics, University of Texas Southwestern Medical Center, Dallas, TX 75390, USA.
Abstract:
The extension of lamellipodia, which are thin, fanlike projections at the cell periphery, requires the assembly of branched actin networks under the control of the small GTPase Rac1. In melanoma, a hyperactive P29S Rac1 mutant is associated with resistance to inhibitors that target the kinases BRAF and MAPK and with more aggressive disease because it sequesters and inactivates the tumor suppressor merlin (encoded by NF2) inside abnormally large lamellipodia. Here, we investigated how these merlin-inactivating lamellipodia are maintained using quantitative, live cell imaging of cell morphology and signaling dynamics. We showed that Rac1 and merlin activity were regulated in spatially confined regions or microdomains within the lamellipodium. The role of merlin as a proliferation-limiting tumor suppressor required its ability to inhibit lamellipodial extension and to locally inhibit Rac1 signaling. Conversely, local inactivation of merlin in lamellipodia released these restraints on morphology and signaling, leading to enhanced proliferation. Merlin and Rac1 are thus in a morphologically and dynamically regulated double-negative feedback loop, a signaling motif that can amplify and stabilize modest stimuli of lamellipodia extensions that enable melanoma to sustain mitogenic signaling under growth challenge. This represents an example of how acute oncogenicity is promoted by collaborations between cell morphological programs and biochemical signaling.
Insights
Melanoma cells with hyperactive Rac1 (a small GTPase) inactivate the tumor suppressor merlin, promoting aggressive cancer by enhancing cell projections called lamellipodia.
Area of Science:
- Cell Biology
- Cancer Research
- Molecular Signaling
Background:
- Lamellipodia extension is crucial for cell movement and requires branched actin networks regulated by the small GTPase Rac1.
- In melanoma, a hyperactive P29S Rac1 mutant is linked to treatment resistance and aggressive disease by sequestering the tumor suppressor merlin (NF2) within large lamellipodia.
Purpose of the Study:
- To investigate the mechanisms maintaining merlin-inactivating lamellipodia in melanoma.
- To understand the interplay between Rac1 and merlin in regulating cell morphology and signaling dynamics.
Main Methods:
- Quantitative live cell imaging to monitor cell morphology.
- Analysis of signaling dynamics within lamellipodia.
- Investigated spatial regulation of Rac1 and merlin activity.
Main Results:
- Rac1 and merlin activities are spatially regulated within specific microdomains of the lamellipodium.
- Merlin's tumor suppressor function relies on inhibiting lamellipodial extension and Rac1 signaling locally.
- Local merlin inactivation in lamellipodia releases these inhibitory restraints, enhancing proliferation.
Conclusions:
- Merlin and Rac1 form a double-negative feedback loop, amplifying lamellipodia extension and enabling sustained mitogenic signaling in melanoma.
- This interaction between cell morphology and biochemical signaling promotes oncogenicity in melanoma.
- Understanding this pathway offers insights into melanoma progression and potential therapeutic targets.
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