Ultrasound-Induced Drug Release from Stimuli-Responsive Hydrogels
Abstract
:1. Introduction
2. Acoustics
3. Acoustic Mechanisms
4. Designing Hydrogels for Drug Delivery
5. Tissue Engineering Applications
6. Applications for Cancer Therapy
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
References
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Application | Hydrogel Polymer System | Payload | Ultrasound Parameters | Reference |
---|---|---|---|---|
Bone Regeneration | Alginate Hydrogel | BMP-2 | 2.5 min/h for 5 h Amplitude of 25% 9.6 mW/cm2 | [106] |
Cartilage Repair | Chitosan Hydrogel | BMSCs aided by nanocarriers | 1 MHz 2–3 W/cm2 20–30% duty cycle | [72] |
Bone Regeneration | Alginate Hydrogel | BMP-2 conjugated gold nanoparticles | 2.5 min/h for 5 h Amplitude of 25% 9.6 mW/cm2 | [93] |
Cartilage Repair | Chitosan Hydrogel | Kartogenin on microparticles | 2 and 5 min intervals | [115] |
Skin Repair | Cellulose Hydrogel Film | Mimosa drug | LIFU 23, 43, and 96 kHz 5–30 W | [116] |
Vascularization | Fibrin Hydrogel | bFGF release | 100 Hz, 6.1 MPa 5.4 μs pulse | [117] |
Bone Regeneration | Collagen Hydrogel | Osteoblasts | LIPUS 1 MHz, 1 kHz, 1 Hz Duty cycle: 20%, 50% or 100% 30 and 150 mW/cm2 | [65] |
Application | Hydrogel Polymer System | Payload | Ultrasound Parameters | Reference |
---|---|---|---|---|
Breast Cancer Treatment | Alginate Hydrogel | Mitoxantrone | HIFU 9.6 mW/cm2 5 min pulses/h, /2 h, or /24 h | [135] |
Melanoma and Breast Cancer | PEG Hydrogel | AZO-Mechanophores for MDT | HIFU 550 kHz 115 W/cm2, 1.9 MPa 10 s on and 20 s off | [134] |
Tumor Systems | Nanocomposite Hydrogel | Nanovaccines (ORP nanoparticles) | HIFU 40 kHz 6 W/cm2, 50% duty cycle | [108] |
Cancer Therapy | Hyaluronic Acid Hydrogel | Doxorubicin loaded gold nanoparticles | HIFU 10, 20, 30, or 50 W 30 or 60 min 1.5 MHz 50% Duty cycle 1 Hz pulse frequency | [104] |
Melanoma | Alginate Hydrogel | Mitoxantrone | HIFU 20% or 40% amplitude 1 or 5 min | [103] |
Breast Cancer | Polylysine Nanogel | Epirubicin aided by ICAM-1 | HIFU 15 or 30 min 10 W | [136] |
Tumor Systems | Chitosan Hydrogel | Piezoelectric Tetragonal BaTiO3 | HIFU 1 MHz, 1 W/cm2 50% duty cycle 1, 2, 3, 4, 5, or 10 min | [109] |
Tumor Systems | Silk Fibroin Hydrogel | Vincristine | HIFU 1, 2, or 3 W 14.3, 28.5, or 42.8 W/cm2 20 s or 1 min | [137] |
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Yeingst, T.J.; Arrizabalaga, J.H.; Hayes, D.J. Ultrasound-Induced Drug Release from Stimuli-Responsive Hydrogels. Gels 2022, 8, 554. https://doi.org/10.3390/gels8090554
Yeingst TJ, Arrizabalaga JH, Hayes DJ. Ultrasound-Induced Drug Release from Stimuli-Responsive Hydrogels. Gels. 2022; 8(9):554. https://doi.org/10.3390/gels8090554
Chicago/Turabian StyleYeingst, Tyus J., Julien H. Arrizabalaga, and Daniel J. Hayes. 2022. "Ultrasound-Induced Drug Release from Stimuli-Responsive Hydrogels" Gels 8, no. 9: 554. https://doi.org/10.3390/gels8090554
APA StyleYeingst, T. J., Arrizabalaga, J. H., & Hayes, D. J. (2022). Ultrasound-Induced Drug Release from Stimuli-Responsive Hydrogels. Gels, 8(9), 554. https://doi.org/10.3390/gels8090554