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用于氧化应激诱导的光动力治疗的新兴杂化生物材料。

Emerging hybrid biomaterials for oxidative stress induced photodynamic therapy.

机构信息

Department of Chemistry, Faculty of Science, The Maharaja Sayajirao University of Baroda, Vadodara, 3960002, India.

Research and Development Centre, Gujarat Narmada Valley Fertilizers and Chemicals Ltd, Bharuch, 392015, India.

出版信息

Photodiagnosis Photodyn Ther. 2021 Jun;34:102259. doi: 10.1016/j.pdpdt.2021.102259. Epub 2021 Mar 15.

Abstract

Cancer therapy has undergone tremendous advancements in the past few years. The drawbacks of most of these therapies have encouraged researchers to obtain further insight into the complex chemical, biochemical and biological processes ongoing in the evolving cancer cells. These studies have led to an advent of reactive oxygen species mediated therapies to target and disrupt the cancer pathology. Photodynamic therapy (PDT) has emerged as a potent candidate for oxidative stress mediated non-invasive technique for rapid diagnosis and treatment of cancer. Towards this, biomacromolecules derived hybrid nanomaterials have contributed largely in the development of various therapeutics and theranostics for efficacious cancer management that can assist PDT. This review summarizes various hybrid biomaterials and advanced techniques that have been explored widely in the past few years for PDT application. The article also mentions some of the important in-vitro and in-vivo developments and observations explored by employing these materials for PDT application. The article also describes the interactions of these materials at the biological interface and the probable mechanism that assist in generation of oxidative stress and subsequent cell death.

摘要

在过去的几年中,癌症治疗取得了巨大的进展。这些疗法的缺点促使研究人员进一步深入了解不断进化的癌细胞中发生的复杂的化学、生化和生物学过程。这些研究导致了活性氧介导的治疗方法的出现,以靶向和破坏癌症病理。光动力疗法(PDT)已成为一种有前途的候选氧化应激介导的非侵入性技术,可用于快速诊断和治疗癌症。为此,源自生物大分子的杂化纳米材料在开发各种治疗药物和治疗药物方面做出了巨大贡献,这些药物可辅助 PDT。本文综述了过去几年中广泛探索用于 PDT 应用的各种杂化生物材料和先进技术。本文还提到了一些重要的体外和体内发展和观察,这些发展和观察是通过使用这些材料进行 PDT 应用来探索的。本文还描述了这些材料在生物界面的相互作用以及可能的机制,这些机制有助于产生氧化应激和随后的细胞死亡。

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