Swarming Magnetic Fe 3 O 4 @Polydopamine-Tannic Acid Nanorobots: Integrating Antibiotic-Free Superficial Photothermal and Deep Chemical Strategies for Targeted Bacterial Elimination

Author:

Si Luying1,Zhang Shuming1,Guo Huiru1,Luo Wei12,Feng Yuqin1,Du Xinkang1,Mou Fangzhi1ORCID,Ma Huiru23,Guan Jianguo12ORCID

Affiliation:

1. State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, International School of Materials Science and Engineering, Wuhan University of Technology, Wuhan, China.

2. Wuhan Institute of Photochemistry and Technology, Wuhan, China.

3. School of Chemistry, Chemical Engineering and Life Science, Wuhan University of Technology, Wuhan, China.

Abstract

Micro/nanorobots (MNRs) are envisioned to provide revolutionary changes to therapies for infectious diseases as they can deliver various antibacterial agents or energies to many hard-to-reach infection sites. However, existing MNRs face substantial challenges in addressing complex infections that progress from superficial to deep tissues. Here, we develop swarming magnetic Fe 3 O 4 @polydopamine-tannic acid nanorobots (Fe 3 O 4 @PDA-TA NRs) capable of performing targeted bacteria elimination in complicated bacterial infections by integrating superficial photothermal and deep chemical strategies. The Fe 3 O 4 @PDA-TA nanoparticles (NPs), serving as building blocks of the nanorobots, are fabricated by in situ polymerization of dopamine followed by TA adhesion. When driven by alternating magnetic fields, Fe 3 O 4 @PDA-TA NPs can assemble into large energetic microswarms continuously flowing forward with tunable velocity. Thus, the swarming Fe 3 O 4 @PDA-TA NRs can be navigated to achieve rapid broad coverage of a targeted superficial area from a distance and rapidly eradicate bacteria residing there upon exposure to near-infrared (NIR) light due to their efficient photothermal conversion. Additionally, they can concentrate at deep infection sites by traversing through confined, narrow, and tortuous passages, exerting sustained antibacterial action through their surface TA-induced easy cell adhesion and subsequent membrane destruction. Therefore, the swarming Fe 3 O 4 @PDA-TA NRs show great potential for addressing complex superficial-to-deep infections. This study may inspire the development of future therapeutic microsystems for various diseases with multifunction synergies, task flexibility, and high efficiency.

Funder

National Natural Science Foundation of China

National Key Research and Development Project

Innovation Team in Key Areas of the Innovation Talent Promotion Plan of MOST of China

Publisher

American Association for the Advancement of Science (AAAS)

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