Nikitin Aleksey A, Prishchepa Anastasiia V, Rytov Ruslan A, Chekhonin Vladimir P, Abakumov Maxim A
Laboratory of Biomedical Nanomaterials, National University of Science and Technology (MISIS), Moscow 119049, Russia.
Department of Medical Nanobiotechnology, Pirogov Russian National Research Medical University, Moscow 117997, Russia.
J Phys Chem Lett. 2023 Oct 12;14(40):9112-9117. doi: 10.1021/acs.jpclett.3c01944. Epub 2023 Oct 4.
The role of the properties of magnetic nanoparticles in the remote magneto-mechanical actuation of biomolecules under the influence of external magnetic fields is still of particular interest. Here, a specially designed strategy based on the mechanical destruction of short oligonucleotide duplexes is used to demonstrate the effect of magnetic nanoparticles with different sizes (5-99 nm) on the magnitude of the magneto-mechanical actuations in a low-frequency alternating magnetic field. The results show that the mechanical destruction of complementary chains of duplexes, caused by the rotational-vibrational movements of nanoparticles upon exposure to a magnetic field, has a nonmonotonic dependence on the nanoparticle core size. The main hypothesis of this phenomenon is associated with a key role of magneto-dipole interactions between individual nanoparticles, which blocks the movements of nanoparticles in dense clusters. This result will allow fine-tuning of the magnetic nanoparticle properties for addressing specific magneto-mechanical tasks.
在外部磁场影响下,磁性纳米颗粒的特性在生物分子的远程磁机械驱动中所起的作用仍然备受关注。在此,基于短寡核苷酸双链体的机械破坏设计了一种特殊策略,用于证明不同尺寸(5 - 99纳米)的磁性纳米颗粒在低频交变磁场中对磁机械驱动幅度的影响。结果表明,双链体互补链的机械破坏是由纳米颗粒在磁场作用下的旋转振动运动引起的,它对纳米颗粒核心尺寸具有非单调依赖性。这种现象的主要假设与单个纳米颗粒之间磁偶极相互作用的关键作用有关,这种相互作用会阻碍纳米颗粒在密集簇中的运动。这一结果将有助于对磁性纳米颗粒的特性进行微调,以解决特定的磁机械任务。