1)浙江理工大学化学与化工学院,杭州 310018;2)浙大宁波理工学院生物与化学工程学院,宁波 315100
国家重点研发计划(2022YFD1300301),宁波市重大科技计划(2024Z180)和宁波市公益性科技计划(2023S053)资助项目。
1)School of Chemistry and Chemical Engineering, Zhejiang Sci-Tech University, Hangzhou 310018, China;2)School of Biological and Chemical Engineering, NingboTech University, Ningbo 315100, China
This work was supported by grants from The National Key Research and Development Program of China (2022YFD1300301), Ningbo Major Science and Technology Research Project (2024Z180), and Ningbo Public Welfare Science and Technology Program (2023S053).
量子点(quantum dots,QDs)是一种纳米级半导体晶体,因其独特的光学和电化学特性,在疾病诊疗领域极具潜力。在疾病诊断方面,QDs的高亮度和光稳定性使其在生物成像技术中能实现细胞、组织乃至单个生物分子的高分辨率成像;QDs作为荧光标记物,可用于细胞追踪、生物传感以及癌症、感染性疾病免疫和相关疾病的检测,为早期准确诊断开辟新途径。在疾病治疗方面,QDs可作为多功能纳米载体,用于靶向药物递送,帮助药物实现靶向输送,显示药物传递和释放的踪迹;QDs还可以作为光敏剂或光敏剂的载体,选择性破坏恶性细胞、血管病变和微生物感染,减少对正常组织的损伤。尽管前景广阔,但QDs从研究到临床应用仍面临诸多挑战,如毒性、稳定性和规模化工业化生产等问题。通过表面修饰、封装技术及合成工艺的改进,研究人员正逐步解决这些问题。本文总结了QDs的类型,重点介绍了其在生物成像、生物传感器、病原体检测、药物输送和光动力治疗领域的最新研究进展,讨论了阻碍其临床应用的多重障碍,并探索了克服这些挑战的潜在解决方案。
Quantum dots (QDs), nanoscale semiconductor crystals, have emerged as a revolutionary class of nanomaterials with unique optical and electrochemical properties, making them highly promising for applications in disease diagnosis and treatment. Their tunable emission spectra, long-term photostability, high quantum yield, and excellent charge carrier mobility enable precise control over light emission and efficient charge utilization, which are critical for biomedical applications. This article provides a comprehensive review of recent advancements in the use of quantum dots for disease diagnosis and therapy, highlighting their potential and the challenges involved in clinical translation. Quantum dots can be classified based on their elemental composition and structural configuration. For instance, IB-IIIA-VIA group quantum dots and core-shell structured quantum dots are among the most widely studied types. These classifications are essential for understanding their diverse functionalities and applications. In disease diagnosis, quantum dots have demonstrated remarkable potential due to their high brightness, photostability, and ability to provide precise biomarker detection. They are extensively used in bioimaging technologies, enabling high-resolution imaging of cells, tissues, and even individual biomolecules. As fluorescent markers, quantum dots facilitate cell tracking, biosensing, and the detection of diseases such as cancer, bacterial and viral infections, and immune-related disorders. Their ability to provide real-time, in vivo tracking of cellular processes has opened new avenues for early and accurate disease detection. In the realm of disease treatment, quantum dots serve as versatile nanocarriers for targeted drug delivery. Their nanoscale size and surface modifiability allow them to transport therapeutic agents to specific sites, improving drug bioavailability and reducing off-target effects. Additionally, quantum dots have shown promise as photosensitizers in photodynamic therapy (PDT). When exposed to specific wavelengths of light, quantum dots interact with oxygen molecules to generate reactive oxygen species (ROS), which can selectively destroy malignant cells, vascular lesions, and microbial infections. This targeted approach minimizes damage to healthy tissues, making PDT a promising strategy for treating complex diseases. Despite these advancements, the translation of quantum dots from research to clinical application faces significant challenges. Issues such as toxicity, stability, and scalability in industrial production remain major obstacles. The potential toxicity of quantum dots, particularly to vital organs, has raised concerns about their long-term safety. Researchers are actively exploring strategies to mitigate these risks, including surface modification, coating, and encapsulation techniques, which can enhance biocompatibility and reduce toxicity. Furthermore, improving the stability of quantum dots under physiological conditions is crucial for their effective use in biomedical applications. Advances in surface engineering and the development of novel encapsulation methods have shown promise in addressing these stability concerns. Industrial production of quantum dots also presents challenges, particularly in achieving consistent quality and scalability. Recent innovations in synthesis techniques and manufacturing processes are paving the way for large-scale production, which is essential for their widespread adoption in clinical settings. This article provides an in-depth analysis of the latest research progress in quantum dot applications, including drug delivery, bioimaging, biosensing, photodynamic therapy, and pathogen detection. It also discusses the multiple barriers hindering their clinical use and explores potential solutions to overcome these challenges. The review concludes with a forward-looking perspective on the future directions of quantum dot research, emphasizing the need for further studies on toxicity mitigation, stability enhancement, and scalable production. By addressing these critical issues, quantum dots can realize their full potential as transformative tools in disease diagnosis and treatment, ultimately improving patient outcomes and advancing biomedical science.
沈吉圣,齐莉莉,王进波,柯智健,王齐超.量子点在疾病诊疗中的应用[J].生物化学与生物物理进展,,():
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