Controlled positioning of microbubbles and induced cavitation using a dual-frequency transducer and microfiber adhesion techniques

Ultrason Sonochem. 2018 May:43:114-119. doi: 10.1016/j.ultsonch.2018.01.006. Epub 2018 Jan 5.

Abstract

We report a study on two methods that enable spatial control and induced cavitation on targeted microbubbles (MBs). Cavitation is known to be present in many situations throughout nature. This phenomena has been proven to have the energy to erode alloys, like steel, in propellers and turbines. It is recently theorized that cavitation occurs inside the skull during a traumatic-brain injury (TBI) situation. Controlled cavitation methods could help better understand TBIs and explain how neurons respond at moments of trauma. Both of our approaches involve an ultrasonic transducer and bio-compatible Polycaprolactone (PCL) microfibers. These methods are reproducible as well as affordable, providing more control and efficiency compared to previous techniques found in literature. We specifically model three-dimensional spatial control of individual MBs using a 1.6 MHz transducer. Using a 100 kHz transducer, we also illustrate induced cavitation on an individual MB that is adhered to the surface of a PCL microfiber. The goal of future studies will involve characterization of neuronal response to cavitation and seek to unmask its linkage with TBIs.

Keywords: Cavitation; Microbubbles; Microfibers; Traumatic brain injuries.

MeSH terms

  • Biocompatible Materials / chemistry*
  • Brain Injuries, Traumatic / pathology*
  • Humans
  • Microbubbles*
  • Models, Biological*
  • Neurons / pathology
  • Polyesters / chemistry*
  • Transducers*
  • Ultrasonic Waves*

Substances

  • Biocompatible Materials
  • Polyesters
  • polycaprolactone