Ion-Mediated Regulation of Helical Gold Nanorods With Chirality-Photothermal Properties for Targeted Cancer Therapy.
basic_science · Level V
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- Record sourced from PubMed, PMID 42101082.
- Also identified by DOI 10.1002/adhm.71233.
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Abstract
Chiral plasmonic gold nanomaterials held significant promise for tumor photothermal therapy, with their helical pitch depth playing a critical role in determining both chirality and photothermal performance. However, precise pitch depth control remained a major challenge. Herein, we reported a Br<sup>-</sup>-chiral ligand cooperative strategy to synthesize near-infrared-responsive helical chiral Au nanorods (Au NRs) with finely tunable pitch depths. Systematic investigations revealed distinct ion-regulation mechanisms: Br<sup>-</sup> selectively passivated [100] facets to promote [111] anisotropic growth of; I<sup>-</sup>/Cu<sup>2+</sup> strongly adsorbed onto [111] to suppress helical development, Fe<sup>3+</sup> only altered ligand adsorption without impeding [111] growth. These findings established directional [111] growth as a fundamental for both pitch-depth engineering and chiral structure formation. Optimized chiral Au NRs exhibited a high g-factor of 0.026, a >3-fold stronger localized electromagnetic field, and 16% higher photothermal conversion efficiency with reversibility. In vitro studies show 94% cellular uptake in HepG2 and near-complete cancer ablation under 808 nm irradiation, and high normal cell viability. This work elucidated ion-specific modulation roles, established a "pitch depth-chirality-performance-outcome" correlation, and provided design principles for precision photothermal therapy and chiral sensing.