Transformable "Bullet Train"-like Nanomotors for Sequentially Overcoming Tumor Delivery Barriers.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 41408740.
- Also identified by DOI 10.1021/acs.nanolett.5c04897.
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Abstract
Chemotherapeutics encounter poor efficacy and serious adverse effects due to multiple delivery barriers. Inspired by the multipower-unit design and adjustable length of bullet train, we designed a "bullet train"-like transformable nanomotor (f-JSN-u)<sub><i>n</i></sub> to sequentially overcome multiple tumor delivery barriers. Upon administration, these rod-shaped (f-JSN-u)<sub><i>n</i></sub> assemblies achieved long circulation, and the "bullet train"-like motion enhanced their diffusion across tumor vasculatures and selective tumor accumulation. When reaching tumor sites, local NIR irradiation triggered the disassociation of rod-shaped "bullet train" into individual "carriage" with spherical shape and smaller size, enabling deep tumor penetration and enhanced cellular uptake. In the tumor microenvironment, the self-propelled motion further facilitated deeper tumor penetration, where folate-mediated cellular endocytosis and glutathione-triggered drug release ultimately boosted antitumor efficacy. Our study revealed (f-JSN-u)<sub>3</sub> exhibited a 3.4-fold longer plasma half-life and a >3-fold higher distribution in tumor tissues compared to f-JSN-u, accompanied by significantly enhanced tumor penetration and remarkable antitumor efficacy.
Medical subject headings
- Drug Delivery Systems
- Neoplasms
- Antineoplastic Agents
- Doxorubicin
- Nanoparticles