Jiayi Liu, Bowen Sun, Wenkai Li, Han-Joon Kim, Shu Uin Gan, John S Ho, Juwita Norasmara Bte Rahmat, Yong Zhang
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引用次数: 0
摘要
光动力疗法(PDT)治疗深部癌症的局限性在于光敏剂的传输效率低和光的组织穿透力低。聚合物纳米载体被广泛用于光敏剂的输送,但封装光敏剂的自淬会影响光动力疗法的疗效。此外,产生的短寿命活性氧(ROS)很难从纳米载体中扩散出来,从而导致局部放疗疗效低下。因此,一种能被光降解、然后被光敏剂激活的智能纳米载体系统有可能克服这些局限性,提高光动力疗法的疗效。我们合成了一种封装光敏剂(RB-M)的光敏聚合物纳米载体。研究人员开发了一种可植入的无线双波长微型 LED 装置,该装置可依次发射两种波长的光,以编程方式控制负载光敏剂的释放和激活。两个具有匹配谐振频率的发射线圈可以激活连接的 LED,使其独立发射不同波长的光。使用基于代理的数字模拟方法确定了最佳照射时间、剂量和 RB-M 浓度。在正位大鼠肝脏肝细胞癌疾病模型中进行的体外和体内验证实验证实,纳米载体破裂和连续低剂量光照射策略可在减少光敏剂和照射剂量的情况下成功实现光导治疗,这对提高治疗安全性具有重要的临床意义。
Wireless sequential dual light delivery for programmed PDT in vivo.
Using photodynamic therapy (PDT) to treat deep-seated cancers is limited due to inefficient delivery of photosensitizers and low tissue penetration of light. Polymeric nanocarriers are widely used for photosensitizer delivery, while the self-quenching of the encapsulated photosensitizers would impair the PDT efficacy. Furthermore, the generated short-lived reactive oxygen spieces (ROS) can hardly diffuse out of nanocarriers, resulting in low PDT efficacy. Therefore, a smart nanocarrier system which can be degraded by light, followed by photosensitizer activation can potentially overcome these limitations and enhance the PDT efficacy. A light-sensitive polymer nanocarrier encapsulating photosensitizer (RB-M) was synthesized. An implantable wireless dual wavelength microLED device which delivers the two light wavelengths sequentially was developed to programmatically control the release and activation of the loaded photosensitizer. Two transmitter coils with matching resonant frequencies allow activation of the connected LEDs to emit different wavelengths independently. Optimal irradiation time, dose, and RB-M concentration were determined using an agent-based digital simulation method. In vitro and in vivo validation experiments in an orthotopic rat liver hepatocellular carcinoma disease model confirmed that the nanocarrier rupture and sequential low dose light irradiation strategy resulted in successful PDT at reduced photosensitizer and irradiation dose, which is a clinically significant event that enhances treatment safety.
期刊介绍:
Light: Science & Applications is an open-access, fully peer-reviewed publication.It publishes high-quality optics and photonics research globally, covering fundamental research and important issues in engineering and applied sciences related to optics and photonics.