Mussel-Inspired Tantalum Nanocomposite Hydrogels for In Situ Oral Cancer Treatment
Нанокомпозитные гидрогели на основе тантала, вдохновлённые мидиями, для лечения рака полости рта in situ
2023-01-17
SCID: 54.1/ngrrw5y7
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oral squamous cell carcinomaphotothermal-assisted radiotherapyradiosensitizationtantalum nanocomposite hydrogelstumor microenvironment-responsive hydrogel
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Abstract (AI)
Oral squamous cell carcinoma (OSCC) is one of the most common oral malignancies. Radiotherapy is the primary noninvasive treatment of OSCC for avoiding surgery-induced facial deformities and impaired oral function. However, the specificity of in situ OSCC limits radiotherapeutic effects because of the hypoxia-induced low radiosensitivity of tumors and the low radiation tolerance of surrounding normal tissues. Here, we design a highly efficient and low-toxic radiosensitization strategy. On the one hand, biocompatible poly(vinyl pyrrolidone)-modified tantalum nanoparticles (Ta@PVP NPs) not only have strong X-ray deposition capability to upregulate oxidative stress but also have photothermal conversion efficiency to improve hypoxia for tumor radiosensitivity. On the other hand, to optimize the spatial distribution of Ta@PVP NPs within tumors, mussel-inspired catechol with bioadhesive properties is grafted on tumor microenvironment-responsive sodium alginate (DAA) to form in situ hydrogels for precision radiotherapy. On this basis, we find that Ta@PVP-DAA hydrogels effectively inhibit OSCC development in mice under photothermal-assisted radiotherapy without facial deformities and damage to surrounding normal tissues. Overall, our work not only promotes the exploration of Ta@PVP NPs as new radiosensitizers for OSCC but also develops a nanocomposite hydrogel system strategy as a promising paradigm for the precision treatment of orthotopic tumors.
Key Findings
1
Mussel-inspired catechol-grafted, tumor-microenvironment-responsive alginate forms bioadhesive in situ hydrogels that improve the spatial distribution of tantalum nanoparticles in tumors.
2
Poly(vinyl pyrrolidone)-modified tantalum nanoparticles combine strong X-ray deposition with photothermal conversion to enhance oxidative stress and alleviate tumor hypoxia.
3
Ta@PVP-DAA hydrogels effectively suppress orthotopic oral squamous cell carcinoma in mice when combined with photothermal-assisted radiotherapy.
4
The nanocomposite hydrogel platform supports precision radiotherapy and establishes tantalum nanoparticles as promising radiosensitizers for oral squamous cell carcinoma.
5
The treatment inhibits tumors without causing facial deformities or damage to surrounding normal tissues, addressing key limitations of conventional oral cancer radiotherapy.
Research Object
Mussel-inspired tantalum nanocomposite hydrogels for in situ treatment of orthotopic oral squamous cell carcinoma (OSCC)
Research Subject
Photothermal-assisted radiotherapy using Ta@PVP-DAA hydrogels, including radiosensitization, tumor inhibition, and protection of surrounding normal tissues
Publication Details
Publication Date
2023-01-17
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