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用于靶向癌症治疗的光活化碳基纳米结构材料的进展

Advances in photoactivated carbon-based nanostructured materials for targeted cancer therapy.

作者信息

Eftekharifar Maryam, Heidari Reza, Mohaghegh Neda, Najafabadi Alireza Hassani, Heidari Hossein

机构信息

School of Biosciences, University of Birmingham, Edgbaston B15 2TT, UK.

Computer Engineering Department, Sharif University of Technology, Tehran, Iran.

出版信息

Adv Drug Deliv Rev. 2025 Jul;222:115604. doi: 10.1016/j.addr.2025.115604. Epub 2025 May 10.

DOI:10.1016/j.addr.2025.115604
PMID:40354939
Abstract

In this review, we explore key innovations in photoactivated therapeutic programming of carbon-based nanomaterials (CBNs), focusing on their diverse nanostructural configurations and their exceptional photothermal, photochemical, and photoacoustic properties. These attributes position CBNs as remarkable phototherapeutic agents, capable of addressing critical challenges in targeted cancer therapy through their precision, multifunctionality, and adaptability to specific therapeutic modalities. We will explore their diverse derivatives, and the role of chemical augmentation and site-specific surface functionalisation, which are pivotal in optimising the targeting and efficacy of phototherapeutic interventions. The biological and physical relevance of this ever-growing library of nanomaterials in targeted phototherapy will be thoroughly explored. Dynamic photo-triggering of the underlying molecular mechanisms of action e.g., energy conversion modalities lie at the heart of these therapeutic innovations. We will further discuss the tunability and programming of these carriers and structure-function alterations at specific therapeutic wavelengths. The application space of phototherapies is thoroughly mapped exploring the three primary approaches of photothermal therapy, photodynamic therapy and photochemical internalisation as well as emerging techniques and promising multimodal approaches that combine two or more of these processes. The specificity of the target tissue site and the approach under study forms another critical focus area of this review, with an emphasis on three types of cancer-breast cancer, lung cancer, and gliomas-that have demonstrated some of the most promising outcomes from photomedicine. We also provide a perspective on in vitro and in vivo validation and preclinical testing of CBNs for phototherapeutic applications. Finally, we reflect on the potential of CBNs to revolutionise targeted cancer therapy through data-driven materials design and integration with computational tools for biophysical performance optimisation. The exciting integration of machine learning into nanoparticle research and phototherapy has potential to fundamentally transform the landscape of nanomedicine. These techniques ranging from supervised learning algorithms such as random forests and support vector machines to more advanced neural networks and deep learning, can enable unprecedented precision in predicting, optimising, and tailoring the properties of nanoparticles for targeted applications. The transformative impact of photoactivated CBNs in advancing cancer treatment, paves the way for their clinical application and widespread adoption in personalised photomedicine. We conclude with a section on the current challenges facing the reproducibility, manufacturing throughput, and biocompatibility of these nanostructured materials including their long-term effects in trials and degradation profiles in biological systems as evaluated in vitro and in vivo.

摘要

在本综述中,我们探讨了碳基纳米材料(CBN)光激活治疗编程的关键创新,重点关注其多样的纳米结构构型以及卓越的光热、光化学和光声特性。这些特性使CBN成为出色的光治疗剂,能够通过其精准性、多功能性以及对特定治疗方式的适应性,应对靶向癌症治疗中的关键挑战。我们将探讨其多样的衍生物,以及化学增强和位点特异性表面功能化的作用,这些对于优化光治疗干预的靶向性和疗效至关重要。将全面探索这个不断增长的纳米材料库在靶向光疗中的生物学和物理相关性。潜在作用分子机制的动态光触发,例如能量转换方式,是这些治疗创新的核心。我们将进一步讨论这些载体的可调性和编程,以及在特定治疗波长下的结构 - 功能改变。全面绘制光疗的应用空间,探索光热疗法、光动力疗法和光化学内化这三种主要方法,以及结合其中两种或更多过程的新兴技术和有前景的多模态方法。目标组织部位的特异性以及所研究的方法构成了本综述的另一个关键重点领域,重点关注三种癌症——乳腺癌、肺癌和神经胶质瘤——这些癌症已展现出光医学的一些最有前景的成果。我们还对用于光治疗应用的CBN的体外和体内验证及临床前测试提供了一个观点。最后,我们思考CBN通过数据驱动的材料设计以及与用于生物物理性能优化的计算工具相结合,对革新靶向癌症治疗的潜力。机器学习令人兴奋地融入纳米颗粒研究和光疗,有可能从根本上改变纳米医学的格局。这些技术从诸如随机森林和支持向量机等监督学习算法到更先进的神经网络和深度学习,能够在预测、优化和定制用于靶向应用的纳米颗粒特性方面实现前所未有的精准度。光激活CBN在推进癌症治疗方面的变革性影响,为其在个性化光医学中的临床应用和广泛采用铺平了道路。我们在结尾部分讨论了这些纳米结构材料在可重复性、制造通量和生物相容性方面目前面临的挑战,包括它们在体外和体内试验中的长期影响以及生物系统中的降解情况。

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