Department of Chemistry of Natural and Microbial Products, Pharmaceutical and Drug Industries Research Institute, National Research Centre, 33 El- Behooth St., Dokki, Giza 12622, Egypt.
Pharmaceutical Technology Department, Pharmaceutical and Drug Industries Research Institute, National Research Centre, 33 El- Behooth St., Dokki, Giza 12622, Egypt.
Int J Biol Macromol. 2023 Dec 31;253(Pt 8):127460. doi: 10.1016/j.ijbiomac.2023.127460. Epub 2023 Oct 21.
Conventional cancer mono-therapeutic approaches including radiotherapy, surgery, and chemotherapy don't always achieve satisfactory outcomes and are frequently associated with significant limitations. Although chemotherapy is a vital intervention, its effectiveness is frequently inadequate and is associated with metastasis, multidrug resistance, off-target effect, and normal cells toxicity. Phototherapies are employed in cancer therapy, encompassing photo-dynamic and photo-thermal therapies which under favorable NIR laser light irradiation initiate the included photosensitizers and photo-thermal agents to generate ROS or thermal heat respectively for cancer cells destruction. Photo-therapy is considered noninvasive, posing no resistance, but it still suffers from several pitfalls like low penetration depth and excessive heat generation affecting neighboring tissues. Improved selectivity and tumor-homing capacity could be attained through surface modulation of nanoparticles with targeting ligands that bind to receptors, which are exclusively overexpressed on cancerous cells. Developing novel modified targeted nanoparticulate platforms integrating different therapeutic modalities like photo-therapy and chemotherapy is a topic of active research. This review aimed to highlight recent advances in proteins, nucleic acids, and biological cell membranes functionalized nanocarriers for smart combinatorial chemotherapy/photo-therapy. Nanocarriers decorated with precise targeting ligands, like aptamers, antibody, and lactoferrin, to achieve active tumor-targeting or camouflaging using various biological cell membrane coating are designed to achieve homologous tumor-targeting.
传统的癌症单一治疗方法,包括放疗、手术和化疗,并不总是能达到令人满意的效果,并且经常伴随着显著的局限性。虽然化疗是一种重要的干预手段,但它的效果常常不够理想,并且与转移、多药耐药、脱靶效应和正常细胞毒性有关。光疗被应用于癌症治疗,包括光动力和光热疗法,在有利的近红外激光照射下,这些疗法会引发包含的光敏剂和光热剂分别产生 ROS 或热,以破坏癌细胞。光疗被认为是非侵入性的,不会产生耐药性,但它仍然存在几个缺陷,如穿透深度低和产生过多的热量,会影响邻近的组织。通过用靶向配体对纳米粒子进行表面修饰,可以提高其选择性和肿瘤归巢能力,这些靶向配体与癌细胞上过度表达的受体结合。开发将不同治疗模式(如光疗和化疗)整合到新型改性靶向纳米颗粒平台中的方法是一个活跃的研究课题。本综述旨在强调近年来在蛋白质、核酸和生物细胞膜功能化纳米载体方面的进展,用于智能组合化疗/光疗。设计了带有精确靶向配体(如适体、抗体和乳铁蛋白)的纳米载体,通过各种生物细胞膜涂层进行主动肿瘤靶向或伪装,以实现同源性肿瘤靶向。