Türk S, Altınsoy I, Efe G Çelebi, Ipek M, Özacar M, Bindal C
Sakarya University, Biomedical, Magnetic and Semi Conductive Materials Research Center (BIMAS-RC), Esentepe Campus, 54187, Sakarya, Turkey; Biomaterials, Energy, Photocatalysis, Enzyme Technology, Nano & Advanced Materials, Additive Manufacturing, Environmental Applications and Sustainably Research & Development Group (BIOEℕAMS R&D Group), 54187, Sakarya, Turkey.
Sakarya University, Faculty of Engineering, Department of Metallurgy and Materials Engineering, Esentepe Campus, 54187, Sakarya, Turkey.
Mater Sci Eng C Mater Biol Appl. 2021 Feb;121:111829. doi: 10.1016/j.msec.2020.111829. Epub 2021 Jan 2.
In this work, we offer an easy approach to develop a novel injectable, pH sensitive and in situ smart drug delivery system for use in cancer treatments. The developed hydrogels containing nitrogen doped carbon quantum dots (NCQD), doxorubicin (Dox) and hydroxyapatite (HA) were obtained by in situ self-crosslinking. Characterization of the synthesized nanomaterials, interactions between NCQD/Dox/HA hydrogel structure were carried out by TEM, FESEM, EDS, FTIR, XPS, XRD, Zeta potential, DLS, UV-Vis, SEM, gelation time, injectability and DIST measurements. In addition, antibacterial evaluation which was performed against Staphylococcus aureus realized that HA compound significantly increased the antibacterial activity of the hybrid hydrogel. The anticancer drug release to the tumor cell microenvironment with a pH of 5.5 was found to be higher compared to the release in the normal physiological range of pH 6.5 and 7.4. MTT and live/dead assays were also performed using L929 fibroblastic cell lines to investigate the cytotoxic behavior of NCQDs, and NCQDs/Dox/HA hydrogels. Furthermore, the NCQDs/Dox/HA hydrogel could transport Dox within a MCF-7 cancerous cell at specifically acidic pH. Additionally, imaging of cell line was observed using NCQDs and their use in imaging applications and multicolor features in the living cell system were evaluated. The overall study showed that in situ formed NCQDs/Dox/HA hydrogel represented a novel and multifunctional smart injectable controlled-release drug delivery system with great potential, which may be considered as an attractive minimal invasive smart material for future intelligent delivery of chemotherapeutic drug and disease therapy applications.
在本研究中,我们提供了一种简便的方法来开发一种新型的可注射、pH敏感且原位智能的药物递送系统,用于癌症治疗。通过原位自交联获得了含有氮掺杂碳量子点(NCQD)、阿霉素(Dox)和羟基磷灰石(HA)的水凝胶。通过透射电子显微镜(TEM)、场发射扫描电子显微镜(FESEM)、能谱仪(EDS)、傅里叶变换红外光谱仪(FTIR)、X射线光电子能谱仪(XPS)、X射线衍射仪(XRD)、zeta电位仪、动态光散射仪(DLS)、紫外可见分光光度计(UV-Vis)、扫描电子显微镜(SEM)、凝胶化时间、可注射性和药物释放度测量等手段对合成的纳米材料以及NCQD/Dox/HA水凝胶结构之间的相互作用进行了表征。此外,针对金黄色葡萄球菌进行的抗菌评估表明,HA化合物显著提高了杂化水凝胶的抗菌活性。发现在pH为5.5的肿瘤细胞微环境中的抗癌药物释放量高于在pH为6.5和7.4的正常生理范围内的释放量。还使用L929成纤维细胞系进行了MTT和活/死试验,以研究NCQD以及NCQDs/Dox/HA水凝胶的细胞毒性行为。此外,NCQDs/Dox/HA水凝胶能够在特定的酸性pH条件下将Dox转运至MCF-7癌细胞内。另外,使用NCQD对细胞系进行了成像,并评估了它们在成像应用中的用途以及活细胞系统中的多色特征。总体研究表明,原位形成的NCQDs/Dox/HA水凝胶代表了一种新型的多功能智能可注射控释药物递送系统,具有巨大的潜力,可被视为未来用于化疗药物智能递送和疾病治疗应用的有吸引力的微创智能材料。