When drug nanocarriers miss their target: extracellular diffusion and cell uptake are not enough to be effective

Vincent Pautu1, Heng Zhao2, Angelika Mielcarek2

  • 1Institut Galien Paris-Saclay, UMR 8612, CNRS, Université Paris-Saclay, Faculté de Pharmacie, 5 rue Jean-Baptiste Clément, F-92296 Châtenay-Malabry cedex, France. simona.mura@universite-paris-saclay.fr.

Biomaterials Science
|July 28, 2021
PubMed

Insights

Iron carboxylate nanoscale metal-organic frameworks (nanoMOFs) show promise for drug delivery but fail in a 3D lung tumor model. Doxorubicin sequestration limits therapeutic efficacy, highlighting the need for optimized nanoMOF design.

Area of Science:

  • Nanotechnology
  • Materials Science
  • Oncology

Background:

  • Biocompatible nanoscale metal-organic frameworks (nanoMOFs) are effective drug carriers.
  • Preclinical cancer models lack human tumor heterogeneity and microenvironment relevance.
  • This hinders clinical translation of nanomedicines.

Purpose of the Study:

  • To develop a 3D lung tumor model for evaluating nanoMOF drug delivery.
  • To investigate the penetration and efficacy of doxorubicin-loaded nanoMOFs in this model.

Main Methods:

  • Fabrication of iron carboxylate nanoMOFs, bare and PEGylated.
  • Loading nanoMOFs with doxorubicin (DOX).
  • Evaluation of nanoMOF penetration and DOX release in a 3D lung tumor model.

Main Results:

  • NanoMOFs efficiently penetrated the 3D tumor model and showed intracellular uptake.
  • Doxorubicin was sequestered in lysosomes, failing to reach the nucleus.
  • Therapeutic ineffectiveness was observed despite nanoMOF penetration.

Conclusions:

  • The 3D lung tumor model revealed limitations in nanoMOF drug delivery systems.
  • Lysosomal sequestration of doxorubicin prevents therapeutic efficacy.
  • Further optimization of nanoMOFs is crucial for successful cancer therapy.

Related Concept Videos

Drug Distribution: Tissue Binding01:21

Drug Distribution: Tissue Binding

Upon entering the systemic circulation, drugs can distribute into the interstitial and intracellular fluid of various tissue cells. This distribution is facilitated by the binding of drugs to different cellular components within tissues, which may lead to drug accumulation in specific areas. Drugs bound to tissue components serve as reservoirs that release free drugs back into the system, prolonging the drug's overall action. However, this accumulation can also result in local toxicity.
For...
Targets for Drug Action: Overview01:26

Targets for Drug Action: Overview

Drugs target macromolecules to modify ongoing cellular processes. Primary drug targets include receptors, ion channels, transporters, and enzymes.
Receptors are either membrane-spanning or intracellular proteins, which upon binding a ligand, get activated and transmit the signal downstream to elicit a response. Drugs bind receptors, either mimicking the action of endogenous ligands or blocking the receptor activity to bring about a modified response. Nearly 35% of approved drugs target the G...
Cellular Membranes and Drug Transport01:24

Cellular Membranes and Drug Transport

Drugs must traverse multiple biological barriers, such as multi-layered skin, single-layered intestinal epithelium, and the plasma membrane, to reach their target sites within the body. The plasma membrane, a highly structured composite of phospholipids, carbohydrates, and proteins, is the cell's protective boundary, facilitating selective substance exchange.
Phospholipids arrange themselves into a bilayer, with hydrophilic heads oriented outward and hydrophobic tails facing inward.
Mechanisms of Drug Absorption: Paracellular, Transcellular, and Vesicular Transport01:23

Mechanisms of Drug Absorption: Paracellular, Transcellular, and Vesicular Transport

Drugs need to permeate cell membranes to reach their target sites after administration. Orally administered drugs must transcend intestinal epithelial membrane barriers to infiltrate the systemic circulation. Drugs with a molecular weight of less than 500 Daltons diffuse through gaps between neighboring cells, called paracellular pathways.
However, most drugs use the transcellular route, traversing directly through the cell membranes via two mechanisms: passive and active transport. Passive...
Modified-Release Drug Delivery Systems: Site-Targeted01:24

Modified-Release Drug Delivery Systems: Site-Targeted

Site-targeted drug delivery systems enhance therapeutic efficacy while minimizing systemic toxicity and treatment costs. Unlike conventional methods, these systems ensure precise drug delivery, improving bioavailability and reducing side effects. Targeted drug delivery is classified into three levels. First-order targeting directs drugs to the capillary beds of specific organs or tissues. Second-order targets specific cell types, such as tumor cells, using receptor-mediated interactions.
Site-Targeted Drug Delivery Systems: Polymeric Carriers01:24

Site-Targeted Drug Delivery Systems: Polymeric Carriers

Polymeric carriers enhance targeted drug delivery by increasing efficacy while minimizing off-target effects. These carriers comprise a biodegradable polymeric backbone integrated with functional elements that enable targeting, improve physicochemical properties, and regulate drug release.Targeting MechanismsThe targeting ability of polymeric carriers is mediated by a homing device, which is a molecular recognition component designed to selectively bind to specific tissues or cells. Monoclonal...