Advances in Cubosome-Based Transdermal Delivery: Structural Design, Manufacturing, and Engineering Strategies

Abstract Cubosomes are third-generation lipidic nanocarriers characterized by bicontinuous cubic liquid-crystalline nanostructures and exceptionally high internal surface areas. These architectures enable the encapsulation of hydrophilic, hydrophobic, and amphiphilic compounds while providing enhanced stability, cargo protection, and controlled drug release. Their ordered nanostructure, governed by lipid self-assembly and critical packing parameter principles, promotes an effective interaction with the stratum corneum, making cubosomes promising transdermal delivery platforms. This review summarizes the physicochemical principles, fabrication technologies, and engineering strategies underlying cubosome-based transdermal systems. Specific crystallographic mesophases are influenced by lipid composition, stabilizers, guest molecules, and fabrication conditions, which determine the structural integrity and delivery performance. Despite their advantages, conventional cubosomes still exhibit limitations, including high bulk viscosity, burst release, inadequate deep dermal penetration, phase instability, and limited long-term stability. To overcome these challenges, advanced approaches including chemical phase modulation, hybrid integration with microneedles or hydrogels, surface functionalization, and stimuli-responsive systems are discussed. Emerging technologies such as microfluidics, quality by design, process analytical technology, artificial intelligence/machine learning-assisted optimization, and smart personalized transdermal drug delivery systems are also highlighted for next-generation cubosome development. These integrated strategies improve skin permeation, formulation stability, therapeutic efficacy, and manufacturing scalability while supporting the future translational development of cubosome-based nanomedicines for transdermal administration of small molecules and biomacromolecular therapeutics.

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Publication Details

Journal
ACS Omega
Published
2026-09-19
DOI
https://doi.org/10.1021/acsomega.6c07490
Primary Topic
Advancements in Transdermal Drug Delivery
Type
article
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Advances in Cubosome-Based Transdermal Delivery: Structural Design, Manufacturing, and Engineering Strategies

Delly Ramadon, Maxius Gunawan, Romchat Chutoprapat, Celine Valeria Liew et al.
ACS Omega
Advancements in Transdermal Drug Delivery
article

Advances in Cubosome-Based Transdermal Delivery: Structural Design, Manufacturing, and Engineering Strategies

Delly Ramadon, Maxius Gunawan, Romchat Chutoprapat, Celine Valeria Liew, Ahmad Efendi
article en

Abstract

Abstract Cubosomes are third-generation lipidic nanocarriers characterized by bicontinuous cubic liquid-crystalline nanostructures and exceptionally high internal surface areas. These architectures enable the encapsulation of hydrophilic, hydrophobic, and amphiphilic compounds while providing enhanced stability, cargo protection, and controlled drug release. Their ordered nanostructure, governed by lipid self-assembly and critical packing parameter principles, promotes an effective interaction with the stratum corneum, making cubosomes promising transdermal delivery platforms. This review summarizes the physicochemical principles, fabrication technologies, and engineering strategies underlying cubosome-based transdermal systems. Specific crystallographic mesophases are influenced by lipid composition, stabilizers, guest molecules, and fabrication conditions, which determine the structural integrity and delivery performance. Despite their advantages, conventional cubosomes still exhibit limitations, including high bulk viscosity, burst release, inadequate deep dermal penetration, phase instability, and limited long-term stability. To overcome these challenges, advanced approaches including chemical phase modulation, hybrid integration with microneedles or hydrogels, surface functionalization, and stimuli-responsive systems are discussed. Emerging technologies such as microfluidics, quality by design, process analytical technology, artificial intelligence/machine learning-assisted optimization, and smart personalized transdermal drug delivery systems are also highlighted for next-generation cubosome development. These integrated strategies improve skin permeation, formulation stability, therapeutic efficacy, and manufacturing scalability while supporting the future translational development of cubosome-based nanomedicines for transdermal administration of small molecules and biomacromolecular therapeutics.

ACS Omega
Monash University Malaysia (MY), Chulalongkorn University (TH), Flinders University (AU), Flinders Medical Centre (AU), University of Indonesia (ID)
Industry, innovation and infrastructure
Openalex Percentile: Top 12%
Advancements in Transdermal Drug Delivery
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