Size-variable self-feedback nanomotors for glioblastoma therapy via mitochondrial mineralization.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 41068089.
- Also identified by DOI 10.1038/s41467-025-64020-x and PMC identifier 12511397.
- Licence recorded as CC BY-NC-ND.
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Abstract
Developing targeted treatment for glioblastoma is crucial but challenging. Herein, we propose a size-variable self-feedback nanomotor system, utilizing the unique high-calcium microenvironment of glioblastoma to prevent its progression through mitochondrial mineralization. It comprises three components: a self-feedback degradable lipid shell (containing nitric oxide-releasing lipid and nitric oxide-responsive degradable lipid), a motion nanomotor core (containing L-arginine derivatives and carboxyl-rich zwitterionic monomers for Ca<sup>2+</sup> recruitment), and curcumin (inhibiting Ca<sup>2+</sup> efflux). Nitric oxide-releasing lipid can be catalyzed by inducible nitric oxide synthase to release nitric oxide, triggering nitric oxide-responsive degradable lipid degradation. Initially, the larger nanomotors (~ 500 nm) penetrate the blood-brain barrier via chemotaxis towards glioblastoma microenvironment. During chemotaxis, the lipid shell gradually degrades, releasing smaller nanomotor core (~50 nm), which can target mitochondria and recruit Ca<sup>2+</sup> to induce mitochondrial mineralization together with curcumin, inhibiting glioblastoma progression. This work may provide a glioblastoma-specific treatment strategy.
Medical subject headings
- Glioblastoma
- Mitochondria
- Brain Neoplasms
- Nanoparticles