School of Public Health, Guangxi Medical University, Nanning, 530000, China.
Key Laboratory of Nano-Bio Interface, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou, 215123, China.
J Nanobiotechnology. 2021 Mar 2;19(1):64. doi: 10.1186/s12951-021-00811-w.
Owing to high genetic diversities of tumor cells and low response rate of standard chemotherapy, patients with triple negative breast cancer (TNBC) have short progression-free survivals and poor outcomes, which need to explore an effective approach to improve therapeutic efficacy.
Novel gadolinium doped carbon dots (Gd@CDs) have been designed and prepared through hydrothermal method with 3,4-dihydroxyhydrocinnamic acid, 2,2'-(ethylenedioxy)bis(ethylamine) and gadolinium chloride. The synthesized nanostructures were characterized. Taking advantage of good biocompatibility of Gd@CDs, a nanoplatform based on Gd@CDs has been developed to co-deliver chemotherapy drug doxorubicin hydrochloride (Dox) and a near-infrared (NIR) photothermal agent, IR825 for magnetic resonance imaging (MRI) guided photothermal chemotherapy for TNBC.
The as-synthesized Dox@IR825@Gd@CDs displayed favorable MRI ability in vivo. Upon NIR laser irradiation, Dox@IR825@Gd@CDs could convert the NIR light to heat and efficiently inhibit tumor growth through photothermal chemotherapy in vitro and in vivo. Additionally, the impact of photothermal chemotherapy on the murine motor coordination was assessed by rotarod test. Dox@IR825@Gd@CDs presented low toxicity and high photothermal chemotherapy efficiency.
A noble theranostic nanoplatform (Dox@IR825@Gd@CDs) was developed that could be tailored to achieve loading of Dox and IR825, intracellular delivery, favorable MRI, excellent combination therapy with photothermal therapy and chemotherapy to enhance therapeutic effect against TNBC cells. This study will provide a promising strategy for the development of Gd-based nanomaterials for MRI and combinational therapy for TNBC.
由于肿瘤细胞的遗传多样性高和标准化疗的反应率低,三阴性乳腺癌(TNBC)患者的无进展生存期短,预后差,因此需要探索一种有效的方法来提高治疗效果。
通过水热法,以 3,4-二羟基肉桂酸、2,2'-(乙二氧基)双(乙胺)和氯化钆设计并制备了新型的掺钆碳点(Gd@CDs)。对合成的纳米结构进行了表征。利用 Gd@CDs 的良好生物相容性,开发了一种基于 Gd@CDs 的纳米平台,用于共递送化疗药物盐酸多柔比星(Dox)和近红外(NIR)光热剂 IR825,用于磁共振成像(MRI)引导的 TNBC 光热化疗。
所合成的 Dox@IR825@Gd@CDs 在体内表现出良好的 MRI 能力。在近红外激光照射下,Dox@IR825@Gd@CDs 可以将近红外光转化为热能,并通过体外和体内的光热化疗有效地抑制肿瘤生长。此外,通过转棒试验评估了光热化疗对小鼠运动协调能力的影响。Dox@IR825@Gd@CDs 表现出低毒性和高光热化疗效率。
开发了一种高贵的治疗学纳米平台(Dox@IR825@Gd@CDs),可以定制该纳米平台来实现装载 Dox 和 IR825、细胞内递送、良好的 MRI、光热治疗和化疗的出色组合治疗,以增强对 TNBC 细胞的治疗效果。本研究将为基于 Gd 的纳米材料的 MRI 和 TNBC 的联合治疗提供有前景的策略。