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The oral treatment of colorectal cancer is highly desirable due to its noninvasiveness and potential for localized drug action, yet it remains challenged by gastrointestinal barriers and limited intratumoral penetration. This study presents the first oral biohybrid microrobot system that integrates ultrasound-activated piezoelectric catalysis with bacterial therapy, achieving synergistic tumor targeting, reactive oxygen species generation, and immune activation. By leveraging Enterobacter aerogenes (EA) and BaTiO nanoparticles, this strategy induces immunogenic tumor cell death and metabolic remodeling. It utilizes BaTiO incorporated into EA (EA@BTO) microrobots, which are encapsulated in enteric microcapsules. These microcapsules, encapsulated in enteric microcapsules via photocurable 3D printing, protect during digestion, target tumors, penetrate mucus, and release gases. They thrive in anaerobic, acidic environments, enabling precise, responsive delivery within the intestinal tract. Once the microrobots reach the tumor, the BaTiO nanoparticles catalyze reduction and oxidation reactions upon ultrasound irradiation, leading to the induction of immunogenic tumor cell death. Notably, the consumption of lactic acid by BaTiO and EA alleviates the immunosuppressive microenvironment within the tumor. This promotes the maturation of dendritic cells and the polarization of macrophages toward the M1 phenotype, thereby reducing the proportion of regulatory T cells and enhancing the population of effector T cells.
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http://dx.doi.org/10.1002/adma.202420586 | DOI Listing |
Npj Robot
September 2025
RAM-Robotics and Mechatronics, University of Twente, 7500 AE Enschede, The Netherlands.
Magnetic microrobots have the potential to revolutionize medicine by navigating pathways to deliver precision-targeted therapy. However, a significant challenge arises. There commonly is a trade-off between magnetic responsiveness, detectability using medical imaging systems and cytotoxicity from increased amounts of magnetic content.
View Article and Find Full Text PDFNat Commun
August 2025
NMPA Key Laboratory for Research and Evaluation of Drug Metabolism & Guangdong Provincial Key Laboratory of New Drug Screening, School of Pharmaceutical Sciences, Southern Medical University, Guangzhou, China.
Immense progress in synthetic micro-/nanorobots with diverse functionalities has been made for biomedical applications during the last decade. However, there is still a huge gap for miniature robots to realize efficient therapy from in vitro to in vivo level. Here click chemistry is used to introduce curcumin-loaded hybrid cell membrane nanoparticles to magnetotactic bacteria AMB-1 with magnetic actuation, thus creating biohybrid microrobots CurNPs@2TM-AMB-1 for active and efficient pneumonia therapy in vivo.
View Article and Find Full Text PDFMol Biotechnol
August 2025
Department of Biochemistry, Central University of Punjab, VPO Ghudda, Punjab, 151401, India.
Developing efficient medication delivery systems is a key area of research that will improve the efficacy of cancer treatments. As cancer cells have certain characteristics, it is crucial to precisely deliver chemotherapeutic drugs to the tumor microenvironment without harming healthy tissues. There has been a growing interest in exploiting biological agents to overcome the disadvantages of traditional cancer treatments in targeting and delivering drugs.
View Article and Find Full Text PDFACS Nano
August 2025
Advanced Nanorobots & Multiscale Robotics Laboratory, Faculty of Electrical Engineering and Computer Science, VSB - Technical University of Ostrava, 17. listopadu 2172/15, Ostrava-Poruba 70800, Czech Republic.
Micro- and nanoplastic pollution is pervasive worldwide, infiltrating drinking water and food chains, accumulating in the human body, and posing serious threats to public health and ecosystems. Despite these urgent challenges, effective strategies to curb the widespread presence of micro- and nanoplastics have not yet been sufficiently developed. Here, we present magnetically driven living bacterial microrobots that exhibit a nature-inspired three-dimensional (3D) swarming motion, allowing the dynamic capture and retrieval of aquatic micro- and nanoplastics originating from various commercial products.
View Article and Find Full Text PDFAdv Mater
July 2025
Academy of Medical Engineering and Translational Medicine, Medical College, Tianjin University, Tianjin, 300072, China.
The oral treatment of colorectal cancer is highly desirable due to its noninvasiveness and potential for localized drug action, yet it remains challenged by gastrointestinal barriers and limited intratumoral penetration. This study presents the first oral biohybrid microrobot system that integrates ultrasound-activated piezoelectric catalysis with bacterial therapy, achieving synergistic tumor targeting, reactive oxygen species generation, and immune activation. By leveraging Enterobacter aerogenes (EA) and BaTiO nanoparticles, this strategy induces immunogenic tumor cell death and metabolic remodeling.
View Article and Find Full Text PDF