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Dynamic actuation enhances transport and extends therapeutic lifespan in an implantable drug delivery platform

William Whyte, Debkalpa Goswami, Sophie X. Wang, Yiling Fan, Niamh A. Ward, Ruth E. Levey, Rachel Beatty, Scott T. Robinson, Declan Sheppard, Raymond G. O'Connor, David S. Monahan, Lesley Trask, Keegan Mendez, Claudia E. Varela, Markus A. Horvath

Nature Communications · 2022 · ▲ 46 citations

Abstract

Fibrous capsule (FC) formation, secondary to the foreign body response (FBR), impedes molecular transport and is detrimental to the long-term efficacy of implantable drug delivery devices, especially when tunable, temporal control is necessary. We report the development of an implantable mechanotherapeutic drug delivery platform to mitigate and overcome this host immune response using two distinct, yet synergistic soft robotic strategies. Firstly, daily intermittent actuation (cycling at 1 Hz for 5 minutes every 12 hours) preserves long-term, rapid delivery of a model drug (insulin) over 8 weeks of implantation, by mediating local immunomodulation of the cellular FBR and inducing multiphasic temporal FC changes. Secondly, actuation-mediated rapid release of therapy can enhance mass transport and therapeutic effect with tunable, temporal control. In a step towards clinical translation, we utilise a minimally invasive percutaneous approach to implant a scaled-up device in a human cadaveric model. Our soft actuatable platform has potential clinical utility for a variety of indications where transport is affected by fibrosis, such as the management of type 1 diabetes.

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Provenance

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OpenAlex
DOI
10.1038/s41467-022-32147-w
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2026-08-04 MST

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APA
Whyte, W., Goswami, D., Wang, S.X., Fan, Y., Ward, N.A., Levey, R.E., Beatty, R., Robinson, S.T., Sheppard, D., O'Connor, R.G., Monahan, D.S., Trask, L., Mendez, K., Varela, C.E., Horvath, M.A., Wylie, R., O’Dwyer, J., Domingo‐Lopez, D.A., Rothman, A.S., &amp; Duffy, G.P. (2022). Dynamic actuation enhances transport and extends therapeutic lifespan in an implantable drug delivery platform. <em>Nature Communications</em>. https://doi.org/10.1038/s41467-022-32147-w
Vancouver
Whyte W, Goswami D, Wang SX, Fan Y, Ward NA, Levey RE, et al. Dynamic actuation enhances transport and extends therapeutic lifespan in an implantable drug delivery platform. Nature Communications. 2022. doi:10.1038/s41467-022-32147-w.
BibTeX
@article{william2022Dynami, title = {Dynamic actuation enhances transport and extends therapeutic lifespan in an implantable drug delivery platform}, author = {William Whyte and Debkalpa Goswami and Sophie X. Wang and Yiling Fan and Niamh A. Ward and Ruth E. Levey and Rachel Beatty and Scott T. Robinson and Declan Sheppard and Raymond G. O'Connor and David S. Monahan and Lesley Trask and Keegan Mendez and Claudia E. Varela and Markus A. Horvath and Robert Wylie and Joanne O’Dwyer and Daniel A. Domingo‐Lopez and Arielle S. Rothman and Garry P. Duffy and Eimear B. Dolan and Ellen T. Roche}, journal = {Nature Communications}, year = {2022}, doi = {10.1038/s41467-022-32147-w}, }

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