Recent Advancements in Graphene Quantum Dot-Based Bioimaging and Drug Delivery Systems

IF 10.7 Q1 MEDICINE, RESEARCH & EXPERIMENTAL
MedComm Pub Date : 2025-09-23 DOI:10.1002/mco2.70320
Sachin Kadian, Shubhangi Shukla, Amit K. Yadav, Brahamdutt Arya, Sushant Sethi, Vishal Chaudhary, Roger Narayan
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Abstract

Due to their unique physicochemical, optical, and electronic properties, traditional quantum dots (QDs) have been used for various optoelectronic applications, including semiconductor lasers, photodetectors, transistors, and solar cells. However, unlike other traditional QDs, graphene quantum dots (GQDs), nanosized graphene sheets that possess edge effects and quantum confinement along with a collective structural feature of graphene, have shown less toxicity and desirable biocompatibility, making them an appropriate part of the carbon family for use in biomedical applications. This review article highlights the recent advances and roles of GQDs in healthcare, with a particular focus on their applications involving bioimaging and drug delivery. Furthermore, we provide an overview of the different synthesis methods for GQDs, including the top-down and bottom-up approaches, and discuss the modifications that enhance their functionality, such as the incorporation of heteroatoms (e.g., nitrogen, sulfur, and phosphorus) to improve their properties. This review further considers the biological, optical, and toxicological attributes of GQDs, followed by recent developments involving the use of GQDs for drug delivery and bioimaging applications. Last, we describe the challenges, future prospects, and potential directions for advancing the real-time bioimaging and drug delivery applications of GQDs, including platforms for therapeutic agent release and medical diagnosis.

Abstract Image

基于石墨烯量子点的生物成像和给药系统的最新进展
由于其独特的物理化学、光学和电子特性,传统量子点(QDs)已被用于各种光电子应用,包括半导体激光器、光电探测器、晶体管和太阳能电池。然而,与其他传统量子点不同,石墨烯量子点(GQDs)是纳米级石墨烯片,具有边缘效应和量子约束以及石墨烯的集体结构特征,具有较小的毒性和理想的生物相容性,使其成为碳家族中用于生物医学应用的合适组成部分。本文综述了GQDs在医疗保健中的最新进展和作用,重点介绍了GQDs在生物成像和给药方面的应用。此外,我们还概述了GQDs的不同合成方法,包括自顶向下和自底向上的方法,并讨论了增强其功能的修饰,如杂原子(如氮、硫和磷)的掺入以改善其性能。这篇综述进一步考虑了GQDs的生物学、光学和毒理学特性,随后介绍了GQDs用于药物传递和生物成像应用的最新进展。最后,我们描述了GQDs实时生物成像和药物传递应用的挑战、未来前景和潜在方向,包括治疗剂释放和医学诊断平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.70
自引率
0.00%
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0
审稿时长
10 weeks
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