Li Xiaojie, Takeda Keishi, Yuba Eiji, Harada Atsushi, Kono Kenji
Department of Applied Chemistry, Graduate School of Engineering, Osaka Prefecture University, 1-1 Gakuen-cho, Naka-ku, Sakai, Osaka 599-8531, Japan.
J Mater Chem B. 2014 Jul 14;2(26):4167-4176. doi: 10.1039/c4tb00132j. Epub 2014 Jun 3.
This study was conducted to attempt development of a new type of hybrid dendrimer consisting of a gold nanorod (GNR) core and PEG-modified PAMAM (PEG-PAMAM) dendrons by adding PEG-PAMAM G2-G4 dendrimers with a cystamine core at various timings during the GNR growing reaction. We obtained hybrids of the dendrimers and GNRs exhibiting surface plasmon resonance in the near infrared region. Whereas the PEG-PAMAM G4 dendrimer-GNR hybrid formed an aggregate in an aqueous solution, PEG-PAMAM G2 and G3 dendrimers respectively gave hybrids with average diameters of 24 nm and 31 nm. Especially, the spherical PEG-PAMAM G3 dendrimer-GNR hybrid might be regarded as a GNR-cored PEG-PAMAM dendrimer in which the GNR core was well stabilized by highly hydrated PEG-PAMAM G3 dendrons. The GNR-cored PEG-PAMAM G3 dendrimer exhibited excellent heat-generation capability under near-infrared light irradiation. Incubation with the GNR-cored PEG-PAMAM G3 dendrimer showed no damage to HeLa cells. However, dendrimer-treated cells were killed effectively by near-infrared laser irradiation, indicating excellent photothermal capability of the GNR-cored PEG-PAMAM G3 dendrimer. Furthermore, the GNR-cored PEG-PAMAM G3 dendrimer injected into mice tumor tissues significantly increased the temperature of the tumor when irradiated with near infrared light, resulting in a decreased tumor volume. These results demonstrate that GNR-cored PEG-PAMAM dendrimers might be a new nanomaterial for biomedical applications such as photothermal therapy.
本研究旨在尝试开发一种新型杂化树枝状大分子,其由金纳米棒(GNR)核心和聚乙二醇修饰的聚酰胺-胺(PEG-PAMAM)树枝状分支组成,方法是在GNR生长反应的不同时间添加具有胱胺核心的PEG-PAMAM G2-G4树枝状大分子。我们获得了在近红外区域表现出表面等离子体共振的树枝状大分子与GNR的杂化物。虽然PEG-PAMAM G4树枝状大分子-GNR杂化物在水溶液中形成聚集体,但PEG-PAMAM G2和G3树枝状大分子分别得到平均直径为24 nm和31 nm的杂化物。特别是,球形的PEG-PAMAM G3树枝状大分子-GNR杂化物可被视为以GNR为核心的PEG-PAMAM树枝状大分子,其中GNR核心通过高度水合的PEG-PAMAM G3树枝状分支得到很好的稳定。以GNR为核心的PEG-PAMAM G3树枝状大分子在近红外光照射下表现出优异的发热能力。用以GNR为核心的PEG-PAMAM G3树枝状大分子孵育未显示对HeLa细胞有损伤。然而,经树枝状大分子处理的细胞在近红外激光照射下被有效杀死,这表明以GNR为核心的PEG-PAMAM G3树枝状大分子具有优异的光热能力。此外,注入小鼠肿瘤组织的以GNR为核心的PEG-PAMAM G3树枝状大分子在近红外光照射下显著提高了肿瘤温度,导致肿瘤体积减小。这些结果表明,以GNR为核心的PEG-PAMAM树枝状大分子可能是用于光热疗法等生物医学应用的新型纳米材料。