• DocumentCode
    1163043
  • Title

    An estimate of biofilm properties using an acoustic microscope

  • Author

    Good, Morris S. ; Wend, Christopher F. ; Bond, Leonard J. ; McLean, Jeffrey S. ; Panetta, Paul D. ; Ahmed, Salahuddin ; Crawford, Susan L. ; Daly, Don S.

  • Author_Institution
    Pacific Northwest Nat. Lab., Richland, WA
  • Volume
    53
  • Issue
    9
  • fYear
    2006
  • Firstpage
    1637
  • Lastpage
    1648
  • Abstract
    Noninvasive measurements over a biofilm, a three-dimensional (3-D) community of microorganisms immobilized at a substratum, were made using an acoustic microscope operating at frequencies up to 70 MHz. The microscope scanned a 2.5-mm by 2.5-mm region of a living biofilm having a nominal thickness of 100 mum. Spatial variation of surface heterogeneity, thickness, interior structure, and biomass were estimated. Thickness was estimated as the product of the speed of sound of the medium and the interim between the highest signal peak and that of the substratum plane without biofilm. The thickest portions of biofilm were 145 mum; however, slender structures attributed as streamers extended above, with one obtaining a 274-mum height above the substratum. Three-dimensional iso-contours of amplitude were used to estimate the internal structure of the biofilm. Backscatter amplitude was examined at five zones of increasing height from the substratum to examine biomass distribution. Ultrasound-based estimates of thickness were corroborated with optical microscopy. The experimental acoustic and optical systems, methods used to estimate biofilm properties, and potential applications for the resulting data are discussed
  • Keywords
    acoustic microscopy; biological techniques; microorganisms; optical microscopy; 100 mum; 145 mum; 2.5 mm; 274 mum; acoustic microscope; backscatter amplitude; biofilm properties; biofilm thickness; biomass distribution; interior structure; optical microscopy; sound speed; surface heterogeneity; three-dimensional isocontours; three-dimensional microorganism community; ultrasound-based estimates; Acoustic applications; Amplitude estimation; Backscatter; Biomass; Biomedical optical imaging; Frequency; Microorganisms; Noninvasive treatment; Optical microscopy; Ultrasonic imaging;
  • fLanguage
    English
  • Journal_Title
    Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-3010
  • Type

    jour

  • DOI
    10.1109/TUFFC.2006.1678192
  • Filename
    1678192