4.8 Article

Helical Klinotactic Locomotion of Two-Link Nanoswimmers with Dual-Function Drug-Loaded Soft Polysaccharide Hinges

期刊

ADVANCED SCIENCE
卷 8, 期 8, 页码 -

出版社

WILEY
DOI: 10.1002/advs.202004458

关键词

drug nanoreservoirs; klinotactic locomotion; layer‐ by‐ layer; soft nanorobotics; template‐ assisted electrodeposition

资金

  1. European Union's Horizon 2020 Research and Innovation programme under the Marie Sklodowska-Curie grant [764977]
  2. European Research Council [771565, 743217, 677020]
  3. Israeli Science Foundation [567/14]
  4. Swiss National Science Foundation [200021_181988]
  5. Swiss National Science Foundation (SNF) [200021_181988] Funding Source: Swiss National Science Foundation (SNF)
  6. European Research Council (ERC) [677020, 771565] Funding Source: European Research Council (ERC)

向作者/读者索取更多资源

Researchers have developed nanorobots inspired by the movement of bacteria and microorganisms, allowing them to swim under rotating magnetic fields and be used for drug delivery. These nanorobots exhibit a variety of dynamic behaviors that can be adjusted by changing the magnetic field frequency and strength.
Inspired by the movement of bacteria and other microorganisms, researchers have developed artificial helical micro- and nanorobots that can perform corkscrew locomotion or helical path swimming under external energy actuation. In this paper, for the first time the locomotion of nonhelical multifunctional nanorobots that can swim in helical klinotactic trajectories, similarly to rod-shaped bacteria, under rotating magnetic fields is investigated. These nanorobots consist of a rigid ferromagnetic nickel head connected to a rhodium tail by a flexible hydrogel-based hollow hinge composed of chemically responsive chitosan and alginate multilayers. This design allows nanoswimmers switching between different dynamic behaviors-from in-plane tumbling to helical klinotactic swimming-by varying the rotating magnetic field frequency and strength. It also adds a rich spectrum of swimming capabilities that can be adjusted by varying the type of applied magnetic fields and/or frequencies. A theoretical model is developed to analyze the propulsion mechanisms and predict the swimming behavior at distinct rotating magnetic frequencies. The model shows good agreement with the experimental results. Additionally, the biomedical capabilities of the nanoswimmers as drug delivery platforms are demonstrated. Unlike previous designs constitute metallic segments, the proposed nanoswimmers can encapsulate drugs into their hollow hinge and successfully release them to cells.

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