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光触发肽的一氧化氮释放与结构转变以增强肿瘤内滞留及敏化光动力疗法

Light-triggered nitric oxide release and structure transformation of peptide for enhanced intratumoral retention and sensitized photodynamic therapy.

作者信息

Jiang Lingdong, Chen Danyang, Jin Zhaokui, Xia Chao, Xu Qingqing, Fan Mingjian, Dai Yunlu, Liu Jia, Li Yuanpei, He Qianjun

机构信息

Marshall Laboratory of Biomedical Engineering, School of Biomedical Engineering, Health Science Center, Shenzhen University, No. 1066 Xueyuan Avenue, Shenzhen, 518060, Guangdong, China.

Key Laboratory of Optoelectronic Devices and Systems of Ministry of Education and Guangdong Province, College of Optoelectronic Engineering, Shenzhen University, Shenzhen, 518060, Guangdong, China.

出版信息

Bioact Mater. 2021 Oct 28;12:303-313. doi: 10.1016/j.bioactmat.2021.09.035. eCollection 2022 Jun.

Abstract

Tumor-targeted delivery of nanomedicine is of great importance to improve therapeutic efficacy of cancer and minimize systemic side effects. Unfortunately, nowadays the targeting efficiency of nanomedicine toward tumor is still quite limited and far from clinical requirements. In this work, we develop an innovative peptide-based nanoparticle to realize light-triggered nitric oxide (NO) release and structural transformation for enhanced intratumoral retention and simultaneously sensitizing photodynamic therapy (PDT). The designed nanoparticle is self-assembled from a chimeric peptide monomer, TPP-RRRKLVFFK-Ce6, which contains a photosensitive moiety (chlorin e6, Ce6), a β-sheet-forming peptide domain (Lys-Leu-Val-Phe-Phe, KLVFF), an oligoarginine domain (RRR) as NO donor and a triphenylphosphonium (TPP) moiety for targeting mitochondria. When irradiated by light, the constructed nanoparticles undergo rapid structural transformation from nanosphere to nanorod, enabling to achieve a significantly higher intratumoral accumulation by 3.26 times compared to that without light irradiation. More importantly, the conversion of generated NO and reactive oxygen species (ROS) in a light-responsive way to peroxynitrite anions (ONOO) with higher cytotoxicity enables NO to sensitize PDT in cancer treatment. Both and studies demonstrate that NO sensitized PDT based on the well-designed transformable nanoparticles enables to eradicate tumors efficiently. The light-triggered transformable nanoplatform developed in this work provides a new strategy for enhanced intratumoral retention and improved therapeutic outcome.

摘要

纳米药物的肿瘤靶向递送对于提高癌症治疗效果和最小化全身副作用至关重要。不幸的是,目前纳米药物对肿瘤的靶向效率仍然相当有限,远未达到临床要求。在这项工作中,我们开发了一种创新的基于肽的纳米颗粒,以实现光触发的一氧化氮(NO)释放和结构转变,从而增强肿瘤内滞留并同时使光动力疗法(PDT)敏感化。所设计的纳米颗粒由嵌合肽单体TPP-RRRKLVFFK-Ce6自组装而成,其包含一个光敏部分(二氢卟吩e6,Ce6)、一个形成β-折叠的肽结构域(赖氨酸-亮氨酸-缬氨酸-苯丙氨酸-苯丙氨酸,KLVFF)、一个作为NO供体的寡聚精氨酸结构域(RRR)和一个用于靶向线粒体的三苯基膦(TPP)部分。当受到光照时,构建的纳米颗粒经历从纳米球到纳米棒的快速结构转变,与无光照相比,能够实现肿瘤内积累显著提高3.26倍。更重要的是,生成的NO和活性氧(ROS)以光响应方式转化为具有更高细胞毒性的过氧亚硝酸根阴离子(ONOO),使NO在癌症治疗中使PDT敏感化。体内和体外研究均表明,基于精心设计的可转化纳米颗粒进行的NO敏化PDT能够有效根除肿瘤。这项工作中开发的光触发可转化纳米平台为增强肿瘤内滞留和改善治疗效果提供了一种新策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4125/8783071/6127a7c6e4b2/ga1.jpg

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