Universidad Nacional Autónoma de México - Centro de Nanociencias y Nanotecnología, Km. 107 Carretera Tijuana-Ensenada, Ensenada, BC 22860, Mexico.
Posgrado en Nanociencias, Centro de Investigación Científica y de Educación Superior de Ensenada, Carretera Ensenada-Tijuana No. 3918, Zona Playitas, C.P. 22860 Ensenada, BC, Mexico.
J Colloid Interface Sci. 2018 Sep 15;526:220-229. doi: 10.1016/j.jcis.2018.04.100. Epub 2018 Apr 27.
Nanoparticle (NP) and photosensitizer (PS) conjugates capable of X-ray photodynamic therapy (X-PDT) are a research focus due to their potential applications in cancer treatment. Combined with X-PDT, appropriate imaging properties of the nanocomposite will make it suitable for theranostics of deep lying tumors. In this work, we describe the development of magnetic-luminescent GdCeAlO nanoparticles (GAG) coated with mesoporous silica (mSiO) and loaded with rose bengal (RB) to yield a nanocomposite GAG@mSiO@RB capable of X-PDT. GAG nanoparticles were synthesized using the sol-gel method. The synthesized GAG nanoparticles showed a strong visible yellow emission with a quantum yield of ∼32%. Moreover, the broad emission spectra of GAG nanoparticles centered at 585 nm showed a good overlap with the absorption of RB. Upon irradiation with X-rays (55 KV), the GAG@mSiO@RB nanocomposite produced significantly higher singlet oxygen compared with RB alone, as confirmed by the 1,2-diphenylisobenzofuran (DPBF) assay. The developed GAG@mSiO@RB nanocomposite significantly reduced the viability of human breast cancer (MDA-MB-231) cells upon irradiation with blue light (λ = 470 nm). The calculated LC of GAG@mSiO@RB nanocomposites were 26.69, 11.2, and 6.56 µg/mL at a dose of ∼0.16, 0.33 and 0.5 J/cm, respectively. Moreover, the nanocomposite showed paramagnetic properties with high magnetic mass susceptibility which are useful for high contrast T weighted magnetic resonance imaging (MRI). Together with X-PDT, the paramagnetic properties of the proposed GAG@mSiO@RB nanocomposite system are promising for their future application in simultaneous detection and treatment of deep-lying tumors.
基于 X 射线光动力疗法(X-PDT)的纳米粒子(NP)和光敏剂(PS)缀合物因其在癌症治疗中的潜在应用而成为研究热点。与 X-PDT 相结合,纳米复合材料具有适当的成像特性,将使其适用于深部肿瘤的治疗。在这项工作中,我们描述了开发具有磁性发光的 GdCeAlO 纳米粒子(GAG),其表面涂有介孔硅(mSiO)并负载玫瑰红(RB),得到一种能够进行 X-PDT 的纳米复合材料 GAG@mSiO@RB。GAG 纳米粒子是通过溶胶-凝胶法合成的。合成的 GAG 纳米粒子表现出强的可见黄色发射,量子产率约为 32%。此外,GAG 纳米粒子的宽发射光谱以 585nm 为中心,与 RB 的吸收有很好的重叠。在用 X 射线(55KV)照射时,GAG@mSiO@RB 纳米复合材料比单独的 RB 产生了显著更高的单线态氧,这通过 1,2-二苯基异苯并呋喃(DPBF)测定得到证实。在用蓝光(λ=470nm)照射时,所开发的 GAG@mSiO@RB 纳米复合材料显著降低了人乳腺癌(MDA-MB-231)细胞的活力。在剂量约为 0.16、0.33 和 0.5J/cm 时,GAG@mSiO@RB 纳米复合材料的 LC 分别为 26.69、11.2 和 6.56μg/mL。此外,该纳米复合材料具有高磁质量磁化率的顺磁性,这对于高对比度 T 加权磁共振成像(MRI)是有用的。与 X-PDT 一起,所提出的 GAG@mSiO@RB 纳米复合材料系统的顺磁性有望在深部肿瘤的同时检测和治疗中得到应用。