Mesoscale Chemical Systems group, MESA+ Institute and Faculty of Science and Technology, University of Twente, P.O. Box 217, 7500 AE Enschede, the Netherlands.
Mesoscale Chemical Systems group, MESA+ Institute and Faculty of Science and Technology, University of Twente, P.O. Box 217, 7500 AE Enschede, the Netherlands.
Adv Drug Deliv Rev. 2022 Mar;182:114109. doi: 10.1016/j.addr.2021.114109. Epub 2022 Jan 6.
Needle-free jet injectors have been proposed as an alternative to injections with hypodermic needles. Currently, a handful of commercial needle-free jet injectors already exist. However, these injectors are designed for specific injections, typically limited to large injection volumes into the deeper layers beneath the skin. There is growing evidence of advantages when delivering small volumes into the superficial skin layers, namely the epidermis and dermis. Injections such as vaccines and insulin would benefit from delivery into these superficial layers. Furthermore, the same technology for small volume needle-free injections can serve (medical) tattooing as well as other personalized medicine treatments. The research dedicated to needle-free jet injectors actuated by laser energy has increased in the last decade. In this case, the absorption of the optical energy by the liquid results in an explosively growing bubble. This bubble displaces the rest of the liquid, resulting in a fast microfluidic jet which can penetrate the skin. This technique allows for precise control over volumes (pL to µL) and penetration depths (µm to mm). Furthermore, these injections can be tuned without changing the device, by varying parameters such as laser power, beam diameter and filling level of the liquid container. Despite the published research on the working principles and capabilities of individual laser-actuated jet injectors, a thorough overview encompassing all of them is lacking. In this perspective, we will discuss the current status of laser-based jet injectors and contrast their advantages and limitations, as well as their potential and challenges.
无针喷射注射器已被提议作为皮下注射针的替代品。目前,已经有少数商业无针喷射注射器存在。然而,这些注射器是为特定的注射设计的,通常仅限于将大体积药物注射到皮肤深层。越来越多的证据表明,将小体积药物注射到浅层皮肤(表皮和真皮)具有优势。疫苗和胰岛素等药物的注射将受益于这些浅层的药物传递。此外,用于小体积无针喷射的相同技术也可以用于(医疗)纹身和其他个性化药物治疗。过去十年中,人们对由激光能量驱动的无针喷射注射器的研究有所增加。在这种情况下,液体吸收光能会导致气泡迅速膨胀。这个气泡会将其余的液体推出去,从而形成快速的微流喷射,可以穿透皮肤。这种技术可以精确控制体积(皮升到微升)和穿透深度(微米到毫米)。此外,通过改变激光功率、光束直径和液体容器的填充水平等参数,无需更换设备即可对这些注射进行调整。尽管已经有关于个别激光驱动喷射注射器的工作原理和性能的已发表研究,但缺乏对它们的全面概述。在这个角度下,我们将讨论基于激光的喷射注射器的现状,并对比它们的优缺点以及它们的潜力和挑战。