Mesoporous ruthenium nanoparticles for targeted therapy of colorectal cancer, preparation method and application thereof
A nanoparticle, colorectal cancer technology, applied in preparations for in vivo experiments, wave energy or particle radiation treatment materials, medical preparations of non-active ingredients, etc., can solve the problem of metal ruthenium nanoparticles with hollow mesoporous structure To achieve precise targeted accumulation and therapeutic effects, novel structure, and enhanced cell absorption
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Embodiment 1
[0079] Embodiment 1: Preparation of hollow mesoporous ruthenium nanoparticles
[0080] (1) Measure 173 μL of perchloric acid (HClO 4 ), dilute to 10mL with distilled water to prepare a 0.2mol / L perchloric acid storage solution; simultaneously weigh 37.83mg of sodium borohydride (NaBH 4 ), and dilute to 10 mL with distilled water to prepare a 0.1 mol / L sodium borohydride stock solution.
[0081] (2) Preparation of amino-modified colloidal silica particles: Magnetically stir 19.65mL of absolute ethanol, 0.61mL of water, and 1.7mL of ammonia water (aqueous solution containing 25% to 28% of ammonia) for about 20min to form a uniform solution, then slowly Add dropwise a mixed solution of 1.34mL tetraethyl orthosilicate and 6.7mL absolute ethanol, after the dropwise addition, seal the bottle mouth with polyvinyl chloride film, react for 10h, wash with absolute ethanol for 3 times and centrifuge to obtain Monodisperse silica particles with a particle size of 100nm. Add 0.5006g of ...
Embodiment 2
[0085] Example 2: Preparation of functionalized nanocomposites
[0086] (1) Weigh 11 mg of ruthenium complex (RBT, [Ru(bpy) 2 (tip)] 2+ ), with PBS buffer solution to 10mL to prepare the ruthenium complex storage solution; wherein, the ruthenium complexes with fluorescent properties refer to the following documents (Wang C, Yu Q, Yang L, et al.Ruthenium(II) polypyridyl complexes stabilize the bcl-2promoter quadruplex and induce apoptosis of Hela tumor cells[J].Biometals,2013,26(3):387-402.) obtained. Weigh 25 mg of hollow mesoporous ruthenium nanoparticles (prepared in Example 1), and dilute to 10 mL with PBS buffer to prepare a ruthenium nanoparticle storage solution.
[0087] (2) Loading of ruthenium complexes and modification of PEG: Take 2mL of 2.5mg / mL ruthenium nanoparticle storage solution, add it to 1mL of 1.1mg / mL ruthenium complex storage solution, and then sonicate the mixture at 50Hz for 1h After uniform dispersion, stir magnetically at a constant speed of 400rp...
Embodiment 3
[0089] Embodiment 3: Photothermal effect evaluation of nanometer ruthenium, nanocomposite
[0090] Get the hollow mesoporous ruthenium nanoparticles prepared in Example 1 (configured into a 5 μg / mL solution) and the functionalized nanocomposite prepared in Example 2 (configure 1, 5, 10, 20 μg / mL solution), in 300mW cm -2 808nm near-infrared light (NIR) was irradiated for 5 minutes to detect its photothermal effect, and PBS buffer was used as a negative control. During the near-infrared light irradiation process, the temperature of the solution was measured by a thermometer every 1 minute to monitor its temperature change, and an intuitive thermal image was taken by a FLIR E8 infrared thermal imager. Such as image 3 As shown, it can be observed that both the hollow mesoporous ruthenium nanoparticles and the functionalized nanocomposite exhibit excellent photothermal effects, and the temperature can be rapidly increased to 50 °C. In addition, the hollow mesoporous ruthenium ...
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