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通过纳升体积脉冲微射流实现大分子经皮无针递送。

Needle-free delivery of macromolecules across the skin by nanoliter-volume pulsed microjets.

作者信息

Arora Anubhav, Hakim Itzhak, Baxter Joy, Rathnasingham Ruben, Srinivasan Ravi, Fletcher Daniel A, Mitragotri Samir

机构信息

Biomolecular Science and Engineering, University of California, Santa Barbara, CA 93106, USA.

出版信息

Proc Natl Acad Sci U S A. 2007 Mar 13;104(11):4255-60. doi: 10.1073/pnas.0700182104. Epub 2007 Mar 6.

Abstract

Needle-free liquid jet injectors were invented >50 years ago for the delivery of proteins and vaccines. Despite their long history, needle-free liquid jet injectors are not commonly used as a result of frequent pain and bruising. We hypothesized that pain and bruising originate from the deep penetration of the jets and can potentially be addressed by minimizing the penetration depth of jets into the skin. However, current jet injectors are not designed to maintain shallow dermal penetration depths. Using a new strategy of jet injection, pulsed microjets, we report on delivery of protein drugs into the skin without deep penetration. The high velocity (v >100 m/s) of microjets allows their entry into the skin, whereas the small jet diameters (50-100 mum) and extremely small volumes (2-15 nanoliters) limit the penetration depth ( approximately 200 mum). In vitro experiments confirmed quantitative delivery of molecules into human skin and in vivo experiments with rats confirmed the ability of pulsed microjets to deliver therapeutic doses of insulin across the skin. Pulsed microjet injectors could be used to deliver drugs for local as well as systemic applications without using needles.

摘要

无针液体喷射注射器在50多年前就已发明,用于蛋白质和疫苗的注射。尽管其历史悠久,但由于频繁出现疼痛和瘀伤,无针液体喷射注射器并未得到广泛应用。我们推测,疼痛和瘀伤源于喷射流的深度穿透,通过最小化喷射流进入皮肤的深度可能解决这一问题。然而,目前的喷射注射器并非设计用于保持浅真皮穿透深度。通过一种新的喷射注射策略——脉冲微喷射,我们报告了蛋白质药物在不进行深度穿透的情况下进入皮肤的情况。微喷射的高速(v>100米/秒)使其能够进入皮肤,而小的喷射直径(50-100微米)和极小的体积(2-15纳升)限制了穿透深度(约200微米)。体外实验证实了分子向人皮肤的定量递送,大鼠体内实验证实了脉冲微喷射能够通过皮肤递送治疗剂量的胰岛素。脉冲微喷射注射器可用于局部和全身给药,无需使用针头。

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Nat Rev Immunol. 2005 Dec;5(12):905-16. doi: 10.1038/nri1728.
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Iontophoretic drug delivery.离子电渗药物递送。
Adv Drug Deliv Rev. 2004 Mar 27;56(5):619-58. doi: 10.1016/j.addr.2003.10.026.
6
Transdermal drug delivery with a pressure wave.利用压力波进行透皮给药。
Adv Drug Deliv Rev. 2004 Mar 27;56(5):559-79. doi: 10.1016/j.addr.2003.10.031.
9
Public health. Grand Challenges in Global Health.公共卫生。全球卫生领域的重大挑战。
Science. 2003 Oct 17;302(5644):398-9. doi: 10.1126/science.1091769.

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