An Engineered Bacteria-Hybrid Microrobot with the Magnetothermal Bioswitch for Remotely Collective Perception and Imaging-Guided Cancer Treatment.
Haotian ChenYingze LiYanjin WangPeng NingYajing ShenXueyan WeiQishuai FengYali LiuZhenguang LiChang XuSiyu HuangCuijun DengPing WangYu ChengPublished in: ACS nano (2022)
Microrobots driven by multiple propelling forces hold great potential for noninvasively targeted delivery in the physiologic environment. However, the remotely collective perception and precise propelling in a low Reynold's number bioenvironment remain the major challenges of microrobots to achieve desired therapeutic effects <i>in vivo</i>. Here, we reported a biohybrid microrobot that integrated with magnetic, thermal, and hypoxia sensitivities and an internal fluorescent protein as the dual reporter of thermal and positioning signals for targeted cancer treatment. There were three key elements in the microrobotic system, including the magnetic nanoparticle (MNP)-loaded probiotic <i>Escherichia coli</i> Nissle1917 (EcN@MNP) for spatially magnetic and hypoxia perception, a thermal-logic circuit engineered into the bacteria to control the biosynthesis of mCherry as the temperature and positioning reporter, and NDH-2 enzyme encoded in the EcN for enhanced anticancer therapy. According to the fluorescent-protein-based imaging feedback, the microrobot showed good thermal sensitivity and active targeting ability to the tumor area in a collective manner under the magnetic field. The cancer cell apoptosis was efficiently triggered <i>in vitro</i> and <i>in vivo</i> by the hybrid microrobot coupled with the effects of magnetothermal ablation and NDH-2-induced reactive oxygen species (ROS) damage. Our study demonstrates that the biohybrid EcN microrobot is an ideal platform to integrate the physical, biological, and chemical properties for collective perception and propelling in targeted cancer treatment.
Keyphrases
- cancer therapy
- reactive oxygen species
- escherichia coli
- molecularly imprinted
- high resolution
- quantum dots
- crispr cas
- drug delivery
- endothelial cells
- living cells
- protein protein
- physical activity
- oxidative stress
- cell proliferation
- dna damage
- high glucose
- papillary thyroid
- mental health
- binding protein
- amino acid
- squamous cell carcinoma
- stem cells
- small molecule
- label free
- diabetic rats
- squamous cell
- fluorescence imaging
- simultaneous determination
- radiofrequency ablation
- tandem mass spectrometry
- stress induced
- pseudomonas aeruginosa
- replacement therapy