| Literature DB >> 26554581 |
Andrew Wang1, Karthik Vijayraghavan1, Olav Solgaard1, Manish J Butte1.
Abstract
The cytoskeleton controls cellular morphology and mediates the mechanical interactions between a cell and its environment. Atomic force microscopy (AFM) has the unique capability to map cytoskeletal mechanics and structures with nanometer resolution. However, whole-cell cytomechanical imaging with conventional AFM techniques is limited by low imaging speed. Here, we present fast nanomechanical mapping of cells using high-bandwidth AFM (HB-AFM), where >10(6) nanoindentation measurements were acquired in ∼10 min-a task that would take weeks to finish using conventional AFM. High-bandwidth measurements enabled capture of the entire tip-sample interaction for each tap on cells, engendering a new measurement ("force phase") that exceeds the contrast of conventional tapping mode and enabling spectral visualization of >10 harmonics. The abundance of measurements allowed discovery of subtle cytomechanical features, including the stiffness of fibers of the cellular spectrin network in situ. This approach bridges HB-AFM and high-harmonic imaging and opens future opportunities for measuring the dynamic mechanical properties of living cells.Entities:
Keywords: AFM; cells; harmonic; high-bandwidth; multifrequency
Mesh:
Year: 2015 PMID: 26554581 PMCID: PMC4969083 DOI: 10.1021/acsnano.5b03959
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881