Pastukhov Andrei I, Belyaev Iaroslav B, Bulmahn Julia C, Zelepukin Ivan V, Popov Anton A, Zavestovskaya Irina N, Klimentov Sergei M, Deyev Sergey M, Prasad Paras N, Kabashin Andrei V
LP3, CNRS, Aix Marseille University, Campus de Luminy, Case 917, 13288, Marseille, France.
Institute of Engineering Physics for Biomedicine (PhysBio), MEPHI, Moscow, Russia, 115409.
Sci Rep. 2022 Jun 1;12(1):9129. doi: 10.1038/s41598-022-13066-8.
Boron-based nano-formulations look very promising for biomedical applications, including photo- and boron neutron capture therapies, but the fabrication of non-toxic water-dispersible boron nanoparticles (NPs), which contain the highest boron atom concentration, is difficult using currently available chemical and plasma synthesis methods. Here, we demonstrate purely aqueous synthesis of clean boron NPs by methods of femtosecond laser ablation from a solid boron target in water, thus free of any toxic organic solvents, and characterize their properties. We show that despite highly oxidizing water ambience, the laser-ablative synthesis process follows an unusual scenario leading to the formation of boron NPs together with boric acid (HBO) as an oxidation by-product coating the nanoparticles, which acts to stabilize the elemental boron NPs dispersion. We then demonstrate the purification of boron NPs from residual boric acid in deionized water, followed by their coating with polyethylene glycol to improve colloidal stability and biocompatibility. It was found that the formed NPs have a spherical shape with averaged size of about 37 nm, and are composed of elemental boron in mostly amorphous phase with the presence of certain crystalline fraction. The synthesized NPs demonstrate low toxicity and exhibit strong absorption in the NIR window of relative tissue transparency, promising their use in photoacoustic imaging and phototherapy, in addition to their promise for neutron capture therapy. This combined potential ability of generating imaging and therapy functionalities makes laser-synthesized B NPs a very promising multifunctional agent for biomedical applications.
基于硼的纳米制剂在生物医学应用方面前景广阔,包括光疗和硼中子俘获疗法,但使用目前可用的化学和等离子体合成方法,难以制备出含硼原子浓度最高的无毒水分散性硼纳米颗粒(NPs)。在此,我们展示了通过飞秒激光在水中从固体硼靶进行烧蚀的方法,在纯水溶液中合成纯净的硼纳米颗粒,从而避免了任何有毒有机溶剂,并对其性质进行了表征。我们发现,尽管水的环境具有强氧化性,但激光烧蚀合成过程遵循一种不同寻常的情况,导致形成硼纳米颗粒以及作为氧化副产物的硼酸(HBO)包覆在纳米颗粒上,这有助于稳定元素硼纳米颗粒的分散体。然后我们展示了在去离子水中从残留硼酸中纯化硼纳米颗粒,随后用聚乙二醇对其进行包覆以提高胶体稳定性和生物相容性。结果发现,形成的纳米颗粒呈球形,平均尺寸约为37纳米,由大部分为非晶相且存在一定结晶部分的元素硼组成。合成的纳米颗粒显示出低毒性,并在相对组织透明的近红外窗口表现出强吸收,这表明它们除了有望用于中子俘获疗法外,还可用于光声成像和光疗。这种产生成像和治疗功能的潜在综合能力使激光合成的硼纳米颗粒成为生物医学应用中非常有前景的多功能试剂。