• DocumentCode
    268095
  • Title

    Multitool Platform for Morphology and Nanomechanical Characterization of Biological Samples With Coordinated Self-Sensing Probes

  • Author

    Otero, Jose ; González, Liliana ; Cabezas, G. ; Puig-Vidal, M.

  • Author_Institution
    Electron. Dept., Univ. of Barcelona, Barcelona, Spain
  • Volume
    18
  • Issue
    3
  • fYear
    2013
  • fDate
    Jun-13
  • Firstpage
    1152
  • Lastpage
    1160
  • Abstract
    Single-cell studies are extremely important in several fields of research in both molecular and cell biology. Current nanocharacterization techniques based on atomic force microscopy allow researchers to study cells and molecules in unprecedented detail. An important limitation of conventional equipment results from the use of a single probe to measure different parameters of the same sample. To avoid this, here we present a multitool platform based on coordinated self-sensing probes. A first tool, based on quartz tuning fork resonators, is used to image the surface. A second tool, based on a piezoresistive cantilever, is used to measure the nanomechanical properties of the sample. Specific instrumentation circuitry was developed to optimize imaging and force measurement with these probes. Different coordination strategies were studied and a solution was selected that coordinates the nanotools in the microworld and in the nanoworld. Finally, an experiment with biological samples was conducted: the tuning-fork-based tool measured the topography of Escherichia Coli bacterial membranes and the piezoresistive-cantilever-based tool measured their elastic properties.
  • Keywords
    atomic force microscopy; biological techniques; biomechanics; biomembranes; cantilevers; cellular biophysics; elasticity; force measurement; microorganisms; nanobiotechnology; nanomechanics; nanosensors; piezoresistive devices; quartz; resonators; Escherichia coli bacterial membranes; atomic force microscopy; biological samples; cell biology; conventional equipment; coordinated self-sensing probes; elastic properties; force measurement; imaging measurement; molecular biology; morphology; multitool platform; nanocharacterization techniques; nanomechanical characterization; piezoresistive-cantilever-based tool; quartz tuning fork resonators; specific instrumentation circuitry; tuning-fork-based tool measurement; Force; Nanobioscience; Noise; Probes; Surface morphology; Surface topography; Vibrations; Atomic force microscopy (AFM); multitool; nanobiocharacterization; self-sensing probes;
  • fLanguage
    English
  • Journal_Title
    Mechatronics, IEEE/ASME Transactions on
  • Publisher
    ieee
  • ISSN
    1083-4435
  • Type

    jour

  • DOI
    10.1109/TMECH.2012.2197757
  • Filename
    6204343