Non-invasive low frequency vibration as a potential emergency adjunctive treatment for heart attack and stroke. An in

Fesseha G Yohannes1, Andrew K Hoffmann

  • 1Department of Cardiology, Royal Columbian Hospital, 330 East Columbia St., New Westminster, British Columbia, Canada V3L 3W7. fyohannes.rched@hotmail.com

Insights

Low frequency vibration rapidly cleared blood clots in a simulated arterial system. This non-invasive method shows promise as an adjunctive therapy for arterial thrombosis, potentially improving treatment outcomes.

Area of Science:

  • Biomedical Engineering
  • Cardiovascular Research
  • Medical Physics

Background:

  • Myocardial infarction and stroke are leading causes of death and disability.
  • Current treatments for arterial thrombosis have limitations, including incomplete clot lysis and high bleeding rates.
  • Novel therapies are needed to improve outcomes for patients with arterial thrombosis.

Purpose of the Study:

  • To test the hypothesis that transcutaneous low-frequency vibration can assist in the recanalization of thrombosed arterial systems.
  • To evaluate the efficacy of vibration in clearing blood clots under simulated arterial pressure conditions.

Main Methods:

  • A simulated arterial system was created using a catheterized teddy bear with a New York Steak slab as an attenuating barrier.
  • Blood clots were injected into the catheter to create an occlusion at a stenosis site.
  • The system was pressurized to simulate arterial pressure, and low-frequency vibration (100 Hz, 0.5 mm) was applied to the steak slab over the clot in test groups.

Main Results:

  • Rapid catheter reflow occurred in 15 out of 17 test runs with vibration (median reflow time: 90 seconds).
  • The control group without vibration showed no reflow in 13 out of 13 test runs.
  • The difference in flow system patency between vibration and control groups was statistically significant (P=0.0000009).

Conclusions:

  • Transcutaneous low-frequency vibration effectively assists in clearing blood clots from stenosed flow systems under arterial pressure.
  • This non-invasive vibration technique demonstrates potential as an adjunct to pharmacologic therapy for acute arterial thrombosis.
  • Further investigation in live animal models is warranted to explore the clinical applicability of this vibration-based therapy.
Abstract

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