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石墨烯量子点和氮掺杂石墨烯量子点作为神经营养剂的生物学评价。

Biological Evaluation of Graphene Quantum Dots and Nitrogen-Doped Graphene Quantum Dots as Neurotrophic Agents.

机构信息

Polymers & Functional Materials Division, CSIR─Indian Institute of Chemical Technology, Hyderabad 500007, India.

Academy of Scientific and Innovative Research (AcSIR), Ghaziabad 201002, India.

出版信息

ACS Appl Bio Mater. 2023 Jun 19;6(6):2237-2247. doi: 10.1021/acsabm.3c00099. Epub 2023 May 11.

Abstract

Over time, developments in nano-biomedical research have led to the creation of a number of systems to cure serious illnesses. Tandem use of nano-theragnostics such as diagnostic and therapeutic approaches tailored to the individual disease treatment is crucial for further development in the field of biomedical advancements. Graphene has garnered attention in the recent times as a potential nanomaterial for tissue engineering and regenerative medicines owing to its biocompatibility among the several other unique properties it possesses. The zero-dimensional graphene quantum dots (GQDs) and their nitrogen-doped variant, nitrogen-doped GQDs (N-GQDs), have good biocompatibility, and optical and physicochemical properties. GQDs have been extensively researched owing to several factors such as their size, surface charge, and interactions with other molecules found in biological media. This work briefly elucidates the potential of electroactive GQDs as well as N-GQDs as neurotrophic agents. In vitro investigations employing the N2A cell line were used to evaluate the effectiveness of GQDs and N-GQDs as neurotrophic agents, wherein basic investigations such as SRB assay and neurite outgrowth assay were performed. The results inferred from immunohistochemistry followed by confocal imaging studies as well as quantitative real-time PCR (qPCR) studies corroborated those obtained from neurite outgrowth assay. We have also conducted a preliminary investigation of the pattern of gene expression for neurotrophic and gliotrophic growth factors using ex vivo neuronal and mixed glial cultures taken from the brains of postnatal day 2 mice pups. Overall, the studies indicated that GQDs and N-GQDs hold prospect as a framework for further development of neuroactive compounds for relevant central nervous system (CNS) purposes.

摘要

随着时间的推移,纳米生物医学研究的发展导致了许多系统的创建,这些系统可以治疗严重的疾病。串联使用纳米治疗学,如针对个体疾病治疗的诊断和治疗方法,对于生物医学进步领域的进一步发展至关重要。由于其生物相容性以及其他一些独特的性质,石墨烯在最近一段时间引起了人们的关注,成为组织工程和再生医学的潜在纳米材料。零维石墨烯量子点(GQDs)及其氮掺杂变体,氮掺杂 GQDs(N-GQDs)具有良好的生物相容性和光学及物理化学性质。由于其尺寸、表面电荷以及与生物介质中其他分子的相互作用等因素,GQDs 得到了广泛的研究。这项工作简要阐明了电活性 GQDs 以及 N-GQDs 作为神经营养剂的潜力。体外研究采用 N2A 细胞系评估 GQDs 和 N-GQDs 作为神经营养剂的效果,其中进行了 SRB 测定和神经突生长测定等基础研究。免疫组织化学结合共聚焦成像研究以及定量实时 PCR(qPCR)研究的结果与神经突生长测定的结果一致。我们还对来自出生后 2 天的小鼠大脑的体外神经元和混合神经胶质培养物进行了神经营养和神经胶质生长因子的基因表达模式的初步研究。总的来说,这些研究表明,GQDs 和 N-GQDs 有望成为进一步开发用于相关中枢神经系统(CNS)目的的神经活性化合物的框架。

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