Publication | Open Access
Nanotopography modulates intracellular excitable systems through cytoskeleton actuation
19
Citations
35
References
2023
Year
Biophysical ModelingEngineeringCellular SensingCytoskeletonBiomedical EngineeringTexture SensingOptogeneticsCellular PhysiologyCen ActivityCytoskeleton ActuationNanonetworkMatrix BiologyBiophysicsNovel Imaging MethodMechanobiologyCell BiomechanicsBiophotonicsCell BiologyIntracellular TransportBiomedical ImagingCell MotilityMedicineExtracellular Matrix
Cellular sensing of most environmental cues involves receptors that affect a signal-transduction excitable network (STEN), which is coupled to a cytoskeletal excitable network (CEN). We show that the mechanism of sensing of nanoridges is fundamentally different. CEN activity occurs preferentially on nanoridges, whereas STEN activity is constrained between nanoridges. In the absence of STEN, waves disappear, but long-lasting F-actin puncta persist along the ridges. When CEN is suppressed, wave propagation is no longer constrained by nanoridges. A computational model reproduces these experimental observations. Our findings indicate that nanotopography is sensed directly by CEN, whereas STEN is only indirectly affected due to a CEN-STEN feedback loop. These results explain why texture sensing is robust and acts cooperatively with multiple other guidance cues in complex, in vivo microenvironments.
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