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Updated: Jun 14, 2026

Polymalic Acid-based Nano Biopolymers for Targeting of Multiple Tumor Markers: An Opportunity for Personalized Medicine?
Published on: June 13, 2014
Strengthening Antisense Oligonucleotide-Mediated Anti-Tumor Immunity via Metal-Organic Framework Nanoparticles
Abstract:
Overexpression of checkpoint proteins, such as programmed death ligand one (PD-L1), prevents immune recognition and enables cancer growth. Current monoclonal antibodies that block PD-L1 tend to be fragile, unable to penetrate tumors, and target cancer at later stages, thus leading to inconsistent patient outcomes. Antisense oligonucleotides (ASOs) provide an alternative to decrease PD-L1 expression, but require frequent high dosing due to fast degradation, rapid clearance, and poor cell uptake. To overcome these issues, we harnessed biocompatible metal-organic framework (MOF) nanoparticles, porous nanomaterials comprising metal nodes and organic linkers, to deliver ASOs. Encapsulating ASOs into MOFs enhances their stability and protection during intracellular delivery, leading to reduced PD-L1 expression and downstream immune recognition. Herein, we synthesized three distinct PD-L1-specific ASOs and loaded them individually into zirconium-based nano-sized NU-1000 MOFs, averaging ∼80% encapsulation efficiency. Release of encapsulated ASOs was sustained up to 7 days ex cellulo . MOF encapsulation increased ASO potency and reduced PD-L1 expression ∼ 3-fold and 2-fold in triple negative breast cancer EMT6 and melanoma B16-F10 cells, respectively. We evaluated the impact of MOF-delivered ASOs on PD-L1-expressing immune cells, where we observed ca. 12-fold increases in dendritic cell co-stimulatory marker expression, and amplified T cell activation and proliferation compared to untreated cells (4-fold and 10-fold, respectively). Notably, these changes drove a 3-fold increase in tumor caspase-3 expression, a key mediator for apoptosis. This research highlights how MOFs can be harnessed to bypass ASO limitations without requiring sequence modifications, and offers a broadly applicable platform for improved oligonucleotide delivery for various genes of interest.
Insights
Metal-organic framework (MOF) nanoparticles effectively deliver antisense oligonucleotides (ASOs) to reduce PD-L1 expression, enhancing anti-tumor immunity and T cell activation for improved cancer treatment.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Immunology
- Cancer Biology
Background:
- Overexpression of programmed death ligand one (PD-L1) hinders anti-tumor immunity.
- Current PD-L1 blockade therapies (monoclonal antibodies) have limitations including poor tumor penetration and efficacy.
- Antisense oligonucleotides (ASOs) offer an alternative but suffer from instability and poor cellular uptake.
Purpose of the Study:
- To develop a novel delivery system for antisense oligonucleotides (ASOs) targeting PD-L1.
- To overcome the limitations of ASOs using biocompatible metal-organic framework (MOF) nanoparticles.
- To evaluate the efficacy of MOF-encapsulated ASOs in enhancing anti-tumor immune responses.
Main Methods:
- Synthesis of three PD-L1-specific ASOs.
- Encapsulation of ASOs into zirconium-based NU-1000 MOF nanoparticles with high efficiency (~80%).
- Assessment of ASO release kinetics, PD-L1 expression, immune cell activation, and tumor apoptosis markers.
Main Results:
- Sustained ASO release from MOFs for up to 7 days.
- MOF encapsulation significantly enhanced ASO potency, reducing PD-L1 expression in cancer cells (3-fold in EMT6, 2-fold in B16-F10).
- MOF-delivered ASOs markedly increased dendritic cell co-stimulatory markers (12-fold) and T cell activation/proliferation (4-10 fold), leading to increased tumor apoptosis (3-fold).
Conclusions:
- Metal-organic framework (MOF) nanoparticles provide a robust platform for delivering antisense oligonucleotides (ASOs).
- MOF encapsulation enhances ASO stability, cellular uptake, and therapeutic efficacy against PD-L1.
- This approach offers a broadly applicable strategy for improving oligonucleotide delivery and cancer immunotherapy.

