Next Materials· 2026Q1
Nanotechnology-driven strategies for phytochemical-based cancer therapy: Mechanistic and translational perspectives
- 0citations
- Q1SCImago
- 2026year
Short summary
Nanotechnology platforms improve capsaicin's cancer-fighting potential by enhancing solubility, tumor targeting, and efficacy, as shown in preclinical models.
AI-generated from the title and abstract; the full text is not read.
Key points
- Capsaicin exhibits anti-cancer properties by activating TRPV1, causing calcium overload, generating ROS, and inhibiting survival pathways.
- Poor solubility, rapid metabolism, and irritation limit capsaicin's clinical use.
- Nanotechnology platforms (lipid nanocarriers, polymeric nanoparticles) improve capsaicin's stability, circulation time, and tumor delivery.
- Preclinical studies show nano-capsaicin reduces IC50 values and synergizes with chemotherapy.
AI-generated from the title and abstract; the full text is not read.
Abstract
Cancer remains a major global public health burden, necessitating the development of novel, targeted therapeutic strategies. Capsaicin, a bioactive vanilloid from chili peppers (Capsicum annuum), demonstrates multifaceted antineoplastic activity via TRPV1 activation, intracellular calcium overload, reactive oxygen species (ROS) generation, and inhibition of oncogenic survival pathways. However, its clinical utility is severely hindered by poor aqueous solubility, rapid first-pass metabolism, pungency-induced irritation, and off-target sensory toxicity. Nanotechnology-based delivery platforms including lipid nanocarriers, polymeric nanoparticles, and stimuli-responsive hybrids help overcome these biopharmaceutical limitations by improving stability, prolonging circulation half-life, and promoting tumor-targeted delivery. In preclinical models, capsaicin nanoencapsulation has shown reduced IC₅₀ values, extends drug release duration, and synergizes with conventional chemotherapeutics to overcome multidrug resistance. Despite these promising preclinical outcomes, systemic clinical translation is impeded by real-world hurdles, including human tumor EPR heterogeneity, potential systemic cardiovascular reflex toxicities, and cGMP manufacturing scale-up complexities. Future development may benefit from adopting emerging paradigms namely artificial intelligence (AI)-assisted formulation design, microfluidic synthesis, and biomarker-stratified personalized medicine to successfully translate capsaicin nanoplatforms into multimodal cancer regimens.
The authors' abstract, as published at the source. Next Materials, 2026 · DOI ↗
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