Lin Min, Gao Yan, Hornicek Francis, Xu Feng, Lu Tian Jian, Amiji Mansoor, Duan Zhenfeng
Center for Sarcoma and Connective Tissue Oncology, Massachusetts General Hospital, Harvard Medical School, MA 02114, USA; The Key Laboratory of Biomedical Information Engineering, Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi'an 710049, PR China; Bioinspired Engineering and Biomechanics Center (BEBC), Xi'an Jiaotong University, Xi'an 710049, PR China.
Center for Sarcoma and Connective Tissue Oncology, Massachusetts General Hospital, Harvard Medical School, MA 02114, USA.
Adv Colloid Interface Sci. 2015 Dec;226(Pt B):123-37. doi: 10.1016/j.cis.2015.10.003. Epub 2015 Oct 14.
Cancer treatment using conventional drug delivery platforms may lead to fatal damage to normal cells. Among various intelligent delivery platforms, photoresponsive delivery platforms are becoming popular, as light can be easily focused and tuned in terms of power intensity, wavelength, and irradiation time, allowing remote and precise control over therapeutic payload release both spatially and temporally. This unprecedented controlled delivery manner is important to improve therapeutic efficacy while minimizing side effects. However, most of the existing photoactive delivery platforms require UV/visible excitation to initiate their function, which suffers from phototoxicity and low level of tissue penetration limiting their practical applications in biomedicine. With the advanced optical property of converting near infrared (NIR) excitation to localized UV/visible emission, upconversion nanoparticles (UCNPs) have emerged as a promising photoactive delivery platform that provides practical applications for remote spatially and temporally controlled release of therapeutic payload molecules using low phototoxic and high tissue penetration NIR light as the excitation source. This article reviews the state-of-the-art design, synthesis and therapeutic molecular payload encapsulation strategies of UCNP-based photoactive delivery platforms for cancer therapy. Challenges and promises for engineering of advanced delivery platforms are also highlighted.
使用传统药物递送平台进行癌症治疗可能会对正常细胞造成致命损害。在各种智能递送平台中,光响应递送平台正变得越来越受欢迎,因为光可以很容易地在功率强度、波长和照射时间方面进行聚焦和调节,从而能够在空间和时间上对治疗性载荷的释放进行远程精确控制。这种前所未有的可控递送方式对于提高治疗效果同时将副作用降至最低非常重要。然而,现有的大多数光活性递送平台需要紫外/可见光激发来启动其功能,这存在光毒性以及组织穿透深度较低的问题,限制了它们在生物医学中的实际应用。凭借将近红外(NIR)激发转换为局部紫外/可见光发射的先进光学特性,上转换纳米粒子(UCNPs)已成为一种有前途的光活性递送平台,它利用低光毒性和高组织穿透性的近红外光作为激发源,为治疗性载荷分子的远程时空控制释放提供了实际应用。本文综述了基于UCNP的用于癌症治疗的光活性递送平台的最新设计、合成以及治疗性分子载荷封装策略。还强调了先进递送平台工程面临的挑战和前景。