Shi, Yu - Johns Hopkins University
Dissecting Subcellular Actomyosin Mechanics with Magnetically Actuated Micropost Arrays
The cellular actomyosin cytoskeleton is widely regarded as an archetypal example of an active matter system. However, the extent to which the wide range of observed cellular motility behaviors arise from active-matter physics is not well understood. Characterizing an active matter system requires simultaneous measurement of the fluctuation spectrum of the internal force generators and also the local viscoelasticity in order to separate the distinct effects of the material’s internal stresses from its viscoelastic response to those stresses. By placing cells on top of micropost array detectors (MPADs) with magnetic nickel nanowires embedded in selected posts, we can actuate local regions of the cells by applying AC magnetic fields to dynamically probe the local viscoelasticity, while simultaneously using the posts as “probe particles” to make passive microrheology measurements of the cytoskeletal force fluctuations. Fabrication of microposts array detectors will be briefly introduced. Results of measurements of the frequency-dependent viscoelasticity as well as the distribution of force fluctuations for different subcellular regions of 3T3 fibroblasts will be presented, and the results compared to simple active material models based on known or predicted behavior of molecular motors in viscoelastic networks.