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. 2025 Mar 25;1(2):100022.
doi: 10.1016/j.celbio.2025.100022. Epub 2025 Mar 17.

In vivo photothermal reconfiguration of liquid crystalline elastomer nanocomposites

Affiliations

In vivo photothermal reconfiguration of liquid crystalline elastomer nanocomposites

Nathaniel P Skillin et al. Cell Biomater. .

Abstract

Medical implants with fixed geometry have many clinical applications but are limited by the dynamic nature of human physiology. To overcome this barrier, focus has shifted to stimuli-responsive materials capable of changing their geometry on demand, such as liquid crystalline elastomers (LCEs). Here, we report on the development and biological performance of LCE-gold nanorod (LCE-AuNR) nanocomposites engineered for use in optically reconfigurable medical devices. First, we maximized the strain response and force output of 3D-printed LCE-AuNR within a physiologically relevant temperature window of 37°C-50°C. LCE-AuNR are shown to be cytocompatible and induce a comparable foreign body response to medical grade silicone when implanted subcutaneously in mice. Upon transcutaneous near-infrared irradiation, implanted LCE-AuNR exhibit rapid and reversible photothermal actuation. Furthermore, controlled photothermal actuation in vivo does not result in the pathology of adjacent tissues. This approach opens new horizons for designing dynamic medical implants across a wide range of clinical applications.

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Conflict of interest statement

DECLARATION OF INTERESTS N.P.S., J.M.M., M.C.E., and T.J.W. are inventors on a patent filed by the University of Colorado on this research (application no. 63/670,042).

References

    1. Paley D (2015). PRECICE intramedullary limb lengthening system. Expert Rev. Med. Devices 12, 231–249. 10.1586/17434440.2015.1005604. - DOI - PubMed
    1. Cheung KM-C, Cheung JP-Y, Samartzis D, Mak K-C, Wong Y-W, Cheung W-Y, Akbarnia BA, and Luk KD-K (2012). Magnetically controlled growing rods for severe spinal curvature in young children: a prospective case series. Lancet 379, 1967–1974. 10.1016/S0140-6736(12)60112-3. - DOI - PubMed
    1. Moghadasi K, Mohd Isa MS, Ariffin MA, Mohd jamil MZ, Raja S, Wu B, Yamani M, Bin Muhamad MR, Yusof F, Jamaludin MF, et al. (2022). A review on biomedical implant materials and the effect of friction stir based techniques on their mechanical and tribological properties. J. Mater. Res. Technol 17, 1054–1121. 10.1016/j.jmrt.2022.01.050. - DOI
    1. Lacour SP, Courtine G, and Guck J (2016). Materials and technologies for soft implantable neuroprostheses. Nat. Rev. Mater. 1, 16063. 10.1038/natrevmats.2016.63. - DOI
    1. Li C, Guo C, Fitzpatrick V, Ibrahim A, Zwierstra MJ, Hanna P, Lechtig A, Nazarian A, Lin SJ, and Kaplan DL (2019). Design of biodegradable, implantable devices towards clinical translation. Nat. Rev. Mater. 5, 61–81. 10.1038/s41578-019-0150-z. - DOI

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