Department of Chemistry, University of Miami, 1301 Memorial Drive, Coral Gables, FL 33146, United States; C-Dots Nanotec, LLC, United States.
Department of Chemistry, University of Miami, 1301 Memorial Drive, Coral Gables, FL 33146, United States.
J Colloid Interface Sci. 2023 Jan 15;630(Pt A):306-321. doi: 10.1016/j.jcis.2022.10.010. Epub 2022 Oct 8.
Carbon dots (CDs) from glucose were synthesized using two of the most common bottom-up methods, namely, microwave assisted (MW) and hydrothermal carbonization (HT). Synthetic parameters such as reaction time, temperature, and precursor concentration were changed to study the effects of each parameter on CD size, structure, surface functionalities, charge, photoluminescence behavior, quantum yield, cytotoxicity, blood-brain barrier (BBB) crossing ability and bioimaging. A detailed analysis is performed to compare the structure and properties of the CDs synthesized in ten different conditions. We show that the synthesis route drastically changes the structure, properties, and related functions of glucose-derived CDs yielding two different subtypes of CDs. Surprisingly, CDs that was synthesized via HT method showed specific anticancer activity against a neuroblastoma cell line while being non-toxic towards healthy cell lines, indicating significant potential for therapeutic applications. CDs synthesized via MW crosses the BBB in zebrafish and rat models, and accumulates in neurons. CDs synthesized via MW method showed high biocompatibility and a great potential to be used for bioimaging applications in vitro and in vivo targeting neurons. Finally, a formation mechanism of CDs is proposed for both HT and MW synthesis routes.
采用两种最常见的自上而下的方法(微波辅助法(MW)和水热碳化法(HT))合成了来自葡萄糖的碳点(CDs)。改变了反应时间、温度和前体浓度等合成参数,以研究每个参数对 CD 尺寸、结构、表面官能团、电荷、光致发光行为、量子产率、细胞毒性、血脑屏障(BBB)穿透能力和生物成像的影响。对在十种不同条件下合成的 CDs 的结构和性能进行了详细分析。结果表明,合成路线极大地改变了葡萄糖衍生的 CDs 的结构、性质和相关功能,产生了两种不同类型的 CDs。令人惊讶的是,通过 HT 方法合成的 CDs 对神经母细胞瘤细胞系具有特定的抗癌活性,而对健康细胞系无毒性,表明其在治疗应用方面具有很大的潜力。通过 MW 方法合成的 CDs 在斑马鱼和大鼠模型中穿过 BBB,并在神经元中积累。通过 MW 方法合成的 CDs 具有高生物相容性,有望在体外和体内靶向神经元的生物成像应用中使用。最后,提出了 HT 和 MW 两种合成路线的 CDs 形成机制。