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Updated: Dec 24, 2025

Preparation of Exosomes for siRNA Delivery to Cancer Cells
Published on: December 5, 2018
Exosome-inspired targeting of cancer cells with enhanced affinity
A Hosseini1, Sh Soleimani, H Pezeshgi Modarres
1Center of Excellence in Biomaterials, Department of Biomedical Engineering, Amirkabir University of Technology, Tehran, Iran.
Abstract:
One of the major challenges in the area of novel drug delivery systems (NDDSs) is finding distinguished ligands for specific receptors represented by many cancer cells in order to enhance their cancer homing efficacy. Exosomes, the so-called natural nanocarriers or "Trojan horses," are secreted by the majority of cancer cells. These carriers exchange biomolecular information (e.g. proteins, siRNA, enzymes) between cancer cells and their stromal compartments in order to adjust a variety of cellular behaviours, including metastasis, apoptosis in T cells and angiogenesis. By exhibiting exosomal smart functions and biomimetic traits, exosome-mimicking nanocarriers will be one step ahead of the conventional targeted DDSs for the efficient delivery of antitumor drugs. In the present study, we tried to describe an engineering route to make some surface-functionalized nanoparticles that can mimic the targeting mechanism recruited by tumor-derived exosomes. The ligand-receptor interactions were investigated by molecular dynamics (MD) simulations. In addition, the selected ligand was experimentally studied to verify its improved targeting efficacy. The present study describes a novel targeting method that forces the mucin-domain-containing molecule-4 (TIM4)-embellished nanoparticles (NPs) to swarm towards the cancerous cells. These NPs can interact with the phosphatidylserine (PS) receptor on the surface of several kinds of cancer cells, such as U-87 MG (glioblastoma cell line). The molecular affinity between TIM4 as a homing device and PS, the target receptor, was investigated using MD simulations and surface plasmon resonance (SPR). According to the calculated free energies and the cellular uptake of TIM4-functionalized NPs, it seems that the TIM4/PS complex releases enough free energy to induce endocytosis. Our results emphasize on the potential of the proposed ligand as a good candidate for many targeted drug delivery applications. In this report, we present our proof-of-concept results in order to spotlight the importance of using computer-based simulating methods at the molecular level for the next-generation nanomedicine.
Insights
Researchers engineered nanoparticles mimicking exosomes to target cancer cells. These TIM4-functionalized nanoparticles effectively bind to phosphatidylserine receptors on cancer cells, showing promise for novel drug delivery systems.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Molecular Biology
Background:
- Novel drug delivery systems (NDDSs) face challenges in targeting cancer cells specifically.
- Exosomes, natural nanocarriers, offer insights into cancer cell communication and homing mechanisms.
- Exosome-mimicking nanocarriers present a promising strategy for enhanced drug delivery.
Purpose of the Study:
- To engineer surface-functionalized nanoparticles that mimic tumor-derived exosome targeting.
- To investigate the ligand-receptor interactions for cancer cell targeting using molecular dynamics simulations.
- To validate the targeting efficacy of engineered nanoparticles experimentally.
Main Methods:
- Development of mucin-domain-containing molecule-4 (TIM4)-functionalized nanoparticles (NPs).
- Molecular dynamics (MD) simulations to investigate TIM4-phosphatidylserine (PS) receptor interactions.
- Surface plasmon resonance (SPR) and cellular uptake studies to verify targeting efficacy.
Main Results:
- TIM4-functionalized NPs demonstrated effective targeting of cancer cells expressing PS receptors, such as U-87 MG.
- MD simulations and SPR confirmed the molecular affinity between TIM4 and PS.
- The TIM4/PS interaction was found to release sufficient free energy to induce endocytosis.
Conclusions:
- TIM4-functionalized nanoparticles represent a novel and effective strategy for targeted cancer drug delivery.
- The study highlights the potential of TIM4 as a homing device for cancer-specific nanomedicine.
- Computer-based molecular simulations are crucial for advancing next-generation nanomedicine design.
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