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January 24, 2026Cellular Physiology and Biochemistry0 citationsOpen Access

Tumor Destructive Mechanical Impulse (TMI) Treatment of Solid Tumors. Part II: Biomechanics, Computational Simulation, Technical Generator and Applicator Design, and Physiological Effect

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ATAxel Erich TheuerNSNicolas SchierbaumHNH. Niessner

Key Points

  • The aim is to assess the feasibility and effectiveness of TMI treatment for solid tumors.
  • Conducted atomic force microscopy for cell mechanics analysis.
  • Performed multiple parametric computational simulations to model shock wave propagation.
  • Designed technical TMI generator and applicator for treatment delivery.
  • Utilized light and electron microscopy to evaluate treatment effects on tumors.
  • Established optimal treatment parameters including energy required and shock wave frequency.
  • Demonstrated design flexibility of applicators for both external and internal treatment.
  • Proved fundamental feasibility and reliability of TMI treatment for clinical application.

Abstract

Background/Aims: To explore the feasibility and effectiveness of Tumor Destructive Mechanical Impulse (TMI) treatment of solid tumors, biomechanical preconditions for subsequent computational simulation of focused shock wave propagation within cells and tissue are investigated. This innovative “soft” approach is different from the FDA-approved high intensity focused ultrasound (HIFU)-based histotripsy, and from electrical Tumor Treating Fields (TTFs). Methods: Atomic force microscopy investigation for cell mechanics, multiple parametric computational simulations for focused shock wave propagation, technical TMI generator and applicator design, light- and electron-microscopic evaluation of treatment effects on tumor cells and tissue. Results: Individual tumor cell evaluation of physical properties as basis for multiple parametric simulations determine the optimal treatment parameters (total energy required, energy flux density, shock wave frequency) and applicator positions; design flexibility of applicator devices for extra- and intracorporeal treatment. Conclusion: The fundamental feasibility, effectiveness and reliability of TMI treatment of solid tumors were proven, providing a reliable theoretical basis for the broadly applicable translation into clinical practice.

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Cite This Study

Theuer et al. (2026) studied this question.

synapsesocial.com/papers/69746187bb9d90c67120b714https://doi.org/10.33594/000000845
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