Designing Covalent Organic Framework‐Based Light‐Driven Microswimmers toward Therapeutic Applications

Author:

Sridhar Varun1ORCID,Yildiz Erdost1ORCID,Rodríguez‐Camargo Andrés23,Lyu Xianglong1,Yao Liang2,Wrede Paul14,Aghakhani Amirreza1,Akolpoglu Birgul M.14,Podjaski Filip25,Lotsch Bettina V.2367ORCID,Sitti Metin148ORCID

Affiliation:

1. Physical Intelligence Department Max Planck Institute for Intelligent Systems 70569 Stuttgart Germany

2. Nanochemistry Department Max Planck Institute for Solid State Research 70569 Stuttgart Germany

3. Department of Chemistry University of Stuttgart 70569 Stuttgart Germany

4. Institute for Biomedical Engineering ETH Zurich 8092 Zurich Switzerland

5. Department of Chemistry Imperial College London W12 0BZ London UK

6. Cluster of Excellence e‐conversion 85748 Lichtenbergstrasse 4 Garching Germany

7. Department of Chemistry University of Munich (LMU) 81377 Munich Germany

8. School of Medicine and College of Engineering Koç University 34450 Istanbul Turkey

Abstract

AbstractWhile micromachines with tailored functionalities enable therapeutic applications in biological environments, their controlled motion and targeted drug delivery in biological media require sophisticated designs for practical applications. Covalent organic frameworks (COFs), a new generation of crystalline and nanoporous polymers, offer new perspectives for light‐driven microswimmers in heterogeneous biological environments including intraocular fluids, thus setting the stage for biomedical applications such as retinal drug delivery. Two different types of COFs, uniformly spherical TABP‐PDA‐COF sub‐micrometer particles and texturally nanoporous, micrometer‐sized TpAzo‐COF particles are described and compared as light‐driven microrobots. They can be used as highly efficient visible‐light‐driven drug carriers in aqueous ionic and cellular media. Their absorption ranging down to red light enables phototaxis even in deeper and viscous biological media, while the organic nature of COFs ensures their biocompatibility. Their inherently porous structures with ≈2.6  and ≈3.4 nm pores, and large surface areas allow for targeted and efficient drug loading even for insoluble drugs, which can be released on demand. Additionally, indocyanine green (ICG) dye loading in the pores enables photoacoustic imaging, optical coherence tomography, and hyperthermia in operando conditions. This real‐time visualization of the drug‐loaded COF microswimmers enables unique insights into the action of photoactive porous drug carriers for therapeutic applications.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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