Enhanced effectiveness of tocotrienol-based nano-emulsified system for topical delivery against skin carcinomas

Jimmy Pham1, Amy Nayel2, Christina Hoang1

  • 1a Arizona College of Osteopathic Medicine, Midwestern University , Glendale , AZ , USA and.

Drug Delivery
|October 9, 2014
PubMed

Insights

Tocotrienols (T3), potent anticancer compounds, show improved skin delivery and efficacy against skin cancers using a novel nanoemulsion (NE) formulation. This hybrid NE enhances T3 bioavailability and demonstrates superior cytotoxic effects on carcinoma cells compared to controls.

Area of Science:

  • Pharmaceutical Sciences
  • Nanotechnology
  • Dermatology

Background:

  • Tocotrienols (T3) exhibit potent anticancer properties but suffer from poor bioavailability, limiting their therapeutic application.
  • Nanoemulsions (NEs) are promising vehicles for enhancing the delivery of lipophilic drugs like T3.
  • Developing effective topical delivery systems for skin cancer treatment is crucial.

Purpose of the Study:

  • To develop a scalable, low-energy nano-emulsification method for incorporating T3-rich palm oil (Tocomin®).
  • To create a stable cutaneous delivery platform for Tocomin® as an adjunctive therapy for skin carcinomas.
  • To evaluate the physicochemical properties, stability, and anticancer efficacy of the developed Tocomin®-NE formulation.

Main Methods:

  • A hybrid nano-emulsification approach was used to formulate Tocotrienols (T3)-rich palm oil (Tocomin®).
  • Formulations were screened for physicochemical uniformity (droplet size, charge, polydispersity) and subjected to stability testing.
  • In vitro studies assessed T3's radical scavenging capacity, membrane permeation, and cytotoxicity against human cutaneous carcinoma cell models.

Main Results:

  • The optimized Tocomin®-NE formulation exhibited excellent incorporation efficiency (≥90%) and stability.
  • Tocomin®-NE showed significantly enhanced membrane permeation (4-fold higher than control).
  • Tocomin®-hybrid NE demonstrated potent, dose- and time-dependent cytotoxicity against skin carcinoma cells, with at least 5-fold lower IC50 values.

Conclusions:

  • A simple, stable, and scalable hybrid nano-emulsified Tocotrienols (T3) formulation was successfully developed.
  • This nanoemulsion platform enhances T3's topical delivery and anticancer efficacy for skin carcinomas.
  • The formulation holds promise for adjunctive therapy in treating keratinocyte tumors.

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