Campbell Elizabeth, Hasan Md Tanvir, Gonzalez Rodriguez Roberto, Akkaraju Giridhar R, Naumov Anton V
Department of Biology, Texas Christian University, 2955 S University Drive, Fort Worth, Texas 76129, United States.
ACS Biomater Sci Eng. 2019 Sep 9;5(9):4671-4682. doi: 10.1021/acsbiomaterials.9b00603. Epub 2019 Aug 7.
Despite significant advances of nanomedicine, the issues of biocompatibility, accumulation-derived toxicity, and the lack of sensing and in vivo imaging capabilities hamper the translation of most nanocarriers into clinic. To address this, we utilize nitrogen, boron/nitrogen, and sulfur-doped graphene quantum dots (GQDs) as fully biocompatible multifunctional platforms allowing for multicolor visible/near-IR imaging and cancer-sensing. These GQDs are scalably produced in one-step synthesis from a single biocompatible glucosamine precursor, are water-soluble, show no cytotoxicity at high concentrations of 1 mg/mL, and demonstrate substantial degradation at 36 h in biological environments as verified by TEM imaging. Because of their small sizes, GQDs exhibit efficient internalization maximized at 12 h followed by further degradation/excretion. Their high-yield intrinsic fluorescence in blue/green and near-infrared allows for multicolor in vitro imaging on its own or in combination with other fluorophores, and offers the capabilities for in vivo near-IR fluorescence tracking. Additionally, nitrogen- and sulfur-doped GQDs exhibit pH-dependent fluorescence response that is successfully utilized as a sensing mechanism for acidic extracellular environments of cancer cells. It allows for the deterministic, ratiometric spectral discrimination between cancerous (HeLa and MCF-7 cell) versus healthy (HEK-293 cell) environments with substantial intensity ratios of 1.6 to 8. These results suggest fully biocompatible GQDs developed in this work as multifunctional candidates for in vitro delivery of active agents, multicolor visible/near-IR fluorescence imaging, and pH-sensing of cancerous environments.
尽管纳米医学取得了重大进展,但生物相容性、累积毒性问题以及缺乏传感和体内成像能力阻碍了大多数纳米载体转化为临床应用。为了解决这一问题,我们利用氮、硼/氮和硫掺杂的石墨烯量子点(GQD)作为完全生物相容的多功能平台,实现多色可见光/近红外成像和癌症传感。这些GQD由单一生物相容的葡糖胺前体通过一步合成可扩展地制备,具有水溶性,在1mg/mL的高浓度下无细胞毒性,并且经透射电镜成像验证,在生物环境中36小时内可大量降解。由于其尺寸小,GQD在12小时时表现出高效内化,随后进一步降解/排泄。它们在蓝色/绿色和近红外区域的高产率固有荧光允许单独或与其他荧光团结合进行多色体外成像,并提供体内近红外荧光跟踪能力。此外,氮和硫掺杂的GQD表现出pH依赖性荧光响应,该响应成功用作癌细胞酸性细胞外环境的传感机制。它允许在癌性(HeLa和MCF-7细胞)与健康(HEK-293细胞)环境之间进行确定性的比率光谱区分,强度比高达1.6至8。这些结果表明,本研究中开发的完全生物相容的GQD作为多功能候选物,可用于体外递送活性剂、多色可见光/近红外荧光成像以及癌性环境的pH传感。