Selective Laser Ablation of Malignant Solid Tumors Tuned to the Resonant Wavelength of Collagen.
Laser ablation is progressively introducing novel therapeutic approaches for treatment of solid tumors.
APA
Huang X, Zhang D, et al. (2026). Selective Laser Ablation of Malignant Solid Tumors Tuned to the Resonant Wavelength of Collagen.. Journal of biophotonics, 19(3), e70250. https://doi.org/10.1002/jbio.70250
MLA
Huang X, et al.. "Selective Laser Ablation of Malignant Solid Tumors Tuned to the Resonant Wavelength of Collagen.." Journal of biophotonics, vol. 19, no. 3, 2026, pp. e70250.
PMID
41806319
Abstract
Laser ablation is progressively introducing novel therapeutic approaches for treatment of solid tumors. Recently, our previous research demonstrated that mid-infrared femtosecond lasers tuned to the collagen resonance wavelength can selectively ablate solid tumors. However, the mechanisms underlying selectivity, as well as its potential clinical relevance, remain insufficiently understood. In this study, systematic investigations have been conducted on three orthotopic mice models of solid tumors: glioma, pancreatic ductal adenocarcinoma (PDAC), and colorectal cancer, employing a 6.1 μm femtosecond laser resonant with collagen. Selective ablation is observed in glioma and PDAC, but not in colorectal cancer, which is attributed to the markedly increased collagen content, particularly Collagen I, relative to their corresponding normal tissues, a disparity that is not present in colorectal cancer. Further analysis of clinical specimens through multiplex immunofluorescence and gene expression supports the translational potential of this collagen-mediated selective laser ablation mechanism, suggesting its applicability for tumor-targeted therapeutic interventions.
MeSH Terms
Animals; Laser Therapy; Collagen; Mice; Humans; Cell Line, Tumor; Glioma
같은 제1저자의 인용 많은 논문 (5)
- Self-amplifying nanomedicine reprograms redox metabolism to trigger immunogenic ferroptosis in colon cancer: multiomics identifies AMPD3 as a novel regulator.
- Multifunctional assays and molecular simulations reveal the protective mechanisms of QNZ in mitigating PFOA-induced cytotoxicity in Nthy-ori3-1 cells.
- Revealing Inhibition of Gastric Cancer Occurrence and Metastasis by GPX3 Through Single-Cell Transcriptomics and Organoid Multimodal Technologies.
- Targeted metabolism creates possibilities for lung cancer treatment in the precision tumor era.
- A readily interpretable rule involving multiple forms of pairwise molecule comparisons with applications for clinical make-decision of breast cancer management.