School of Electrical and Electronic Engineering , Nanyang Technological University , Singapore 639798 , Singapore.
CINTRA CNRS/NTU/THALES, UMI 3288 , Research Techno Plaza, 50 Nanyang Drive, Border X Block , Singapore 637553 , Singapore.
Chem Rev. 2019 Aug 28;119(16):9559-9656. doi: 10.1021/acs.chemrev.9b00099. Epub 2019 Jul 9.
Nanocarbons with different dimensions (e.g., 0D fullerenes and carbon nanodots, 1D carbon nanotubes and graphene nanoribbons, 2D graphene and graphene oxides, and 3D nanodiamonds) have attracted enormous interest for applications ranging from electronics, optoelectronics, and photovoltaics to sensing, bioimaging, and therapeutics due to their unique physical and chemical properties. Among them, nanocarbon-based theranostics (i.e., therapeutics and diagnostics) is one of the most intensively studied applications, as these nanocarbon materials serve as excellent biosensors, versatile drug/gene carriers for specific targeting in vivo, effective photothermal nanoagents for cancer therapy, and promising fluorescent nanolabels for cell and tissue imaging. This review provides a systematic overview of the latest theranostic applications of nanocarbon materials with a comprehensive comparison of the characteristics of different nanocarbon materials and their influences on theranostic applications. We first introduce the different carbon allotropes that can be used for theranostic applications with their respective preparation and surface functionalization approaches as well as their physical and chemical properties. Theranostic applications are described separately for both in vitro and in vivo systems by highlighting the protocols and the studied biosystems, followed by the toxicity and biodegradability implications. Finally, this review outlines the design considerations for nanocarbon materials as the key unifying themes that will serve as a foundational first principle for researchers to study, investigate, and generate effective, biocompatible, and nontoxic nanocarbon materials-based models for cancer theranostics applications. Finally, we summarize the review with an outlook on the challenges and novel theranostic protocols using nanocarbon materials for hard-to-treat cancers and other diseases. This review intends to present a comprehensive guideline for researchers in nanotechnology and biomedicine on the selection strategy of nanocarbon materials according to their specific requirements.
不同维度的纳米碳(例如 0D 富勒烯和碳纳米点、1D 碳纳米管和石墨烯纳米带、2D 石墨烯和氧化石墨烯、3D 纳米金刚石)因其独特的物理和化学性质,在电子、光电、光伏以及传感、生物成像和治疗等领域的应用引起了极大的兴趣。其中,基于纳米碳的治疗学(即治疗和诊断)是研究最广泛的应用之一,因为这些纳米碳材料可用作出色的生物传感器、用于体内特定靶向的多功能药物/基因载体、用于癌症治疗的有效光热纳米剂以及用于细胞和组织成像的有前途的荧光纳米标签。本综述提供了对纳米碳材料的最新治疗应用的系统概述,全面比较了不同纳米碳材料的特性及其对治疗应用的影响。我们首先介绍了可用于治疗应用的不同碳同素异形体,以及它们各自的制备和表面功能化方法及其物理和化学性质。通过突出协议和研究的生物系统,分别描述了体外和体内系统的治疗应用,随后介绍了毒性和生物降解性的影响。最后,本综述概述了纳米碳材料的设计考虑因素,这些因素是将作为研究人员研究、调查和生成有效、生物相容和无毒的基于纳米碳材料的癌症治疗应用模型的基础首要原则的关键统一主题。最后,我们总结了该综述,并对使用纳米碳材料治疗难治性癌症和其他疾病的挑战和新的治疗协议进行了展望。本综述旨在为纳米技术和生物医学领域的研究人员提供根据其特定需求选择纳米碳材料的综合指南。
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