Skip to content
Review Open access

Layer by Layer Engineered Lipid-Based Nanocarriers for Therapeutic Delivery and Next-Generation Design

Aug 2026 · Pharmaceutics · Vol 18, pp. 1062 · 0 citations · 241 references
Medicine

TL;DR

This review examines recent advances in LbL-engineered LBNs, focusing on how multilayer surface architecture reshapes physicochemical properties, cargo localization and release, biological identity, cellular interactions, and transport across physiological barriers.

Abstract

The biological fate of lipid-based nanocarriers (LBNs) is shaped at the interface. Whereas core architecture governs cargo loading, protection, and baseline release, surface architecture mediates the carrier’s initial interactions with proteins, cells, extracellular matrices, and tissue barriers, thereby influencing colloidal stability, immune recognition, targeting, biodistribution, barrier transport, and release initiation. Layer-by-layer (LbL) engineering provides a modular strategy for programming this interface through sequentially assembled coatings in which functional components are spatially separated yet mechanistically coordinated. By integrating polymers, biomolecules—including peptides and nucleic acids—and stimuli-responsive materials, LbL systems can decouple functions that are difficult to regulate independently within conventional single-layer or compositionally mixed surface architectures. This review examines recent advances in LbL-engineered LBNs (LbL-LBNs), focusing on how multilayer surface architecture reshapes physicochemical properties, cargo localization and release, biological identity, cellular interactions, and transport across physiological barriers. Particular attention is given to the multilayer interface as a dynamic biointerfacial bridge between a cargo-specific core architecture and the surrounding biological environment, including its capacity for stimuli-responsive switching in pathological microenvironments. The discussion further extends to biomimetic hybrid interfaces and establishes a framework for translating hierarchical surface architectures into reproducible, clinically tractable platforms for precision therapeutic delivery.

Read PDF

Similar papers

Review Open access Sep 2026

Designing nature's nanocarriers: advances and challenges in functionalizing bacterial extracellular vesicles.

Bacterial extracellular vesicles (bEVs) are nanoscale, membrane-bound particles naturally secreted by bacteria and are increasingly being explored as therapeutic carriers. Their small size, ability to encapsulate and protect cargo, inherent bioactivity, and compatibility make them attractive candidates for therapeutic...

Varun Kumar, Hannah C. Zierden, Sara Molinari · 0 citations
Review Open access Sep 2026

Chemical and Biological Determinants of PEG-Lipid Shedding From Therapeutic Nanoparticles.

Key factors that link PEG-lipid composition and nanoparticle architecture to desorption kinetics and biological outcomes are identified and provide guidance for the design of PEGylated nanomaterials with improved control over interfacial stability, immune recognition, and functional performance.

Ethan P. Cisneros, Aadya S. Wijesekera, Lisa R. Volpatti · 0 citations
Open access Sep 2026

Structural and Dynamic Properties of Lipid‐Coated Gold Nanoparticles

Lipid‐coated hybrid nanoparticles represent a promising platform for biomedical applications, offering enhanced stability, biocompatibility, and functional tunability. However, the molecular‐level organization of lipids on nanoparticle surfaces remains poorly understood. Here, we employ atomistic molecular dynamics s...

Kalpani A. Mirihana, Rashad Kariuki, Charlotte E. Conn et al. · 0 citations
Review Open access Sep 2026

Breaking Biological Barriers: Engineering Nanocarriers for Efficient Drug and Gene Delivery through Nano-Bio Interfaces and Biophysical Design

A persistent challenge in nanomedicine is achieving functional delivery of therapeutic molecules across physiological barriers. Organs impose distinct transport constraints, including the blood–brain barrier, renal filtration, hepatic sequestration, and pulmonary clearance. Although substantial effort has focused on en...

Zicheng Deng, A. Dunn, Daniel Q. Sun et al. · 0 citations
Review Open access Aug 2026

Precisely Engineering Biomimetic Nanoparticles via Controlled Cell Membrane Coating.

Cell membrane-coated nanoparticles (CMNPs) represent an advanced class of biomimetic nanomaterials that integrate the functional complexity of natural cell membranes with the tunable properties of synthetic nanoparticle cores. By inheriting native membrane proteins, lipids, and glycans, CMNPs exhibit attractive propert...

Jie Lay Lim, Lingqing Zong, Wei Deng et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.