Related Experiment Video
Updated: Jun 12, 2026

A Nonviral Approach to Generate Transient Chimeric Antigen Receptor T Cells Using mRNA for Cancer Immunotherapy
Published on: February 21, 2025
Bioinspired oxidized mRNA lipid nanoparticles for ex vivo engineering of chimeric antigen receptor macrophages
Alvin J Mukalel1, Tina Tylek2, Hannah C Geisler1
1Department of Bioengineering University of Pennsylvania Philadelphia Pennsylvania USA.
Abstract:
Solid tumors remain difficult to treat via conventional and novel therapeutic strategies. Immunotherapies such as chimeric antigen receptor T (CAR-T) cell therapy have been remarkably effective in treating hematological cancers, but their efficacy is limited in solid tumors. Recently, CAR macrophages (CAR-Ms) have emerged as a promising solid tumor immunotherapy, primarily for their intrinsic tumor infiltration and effector functions. However, CAR-Ms are engineered using viral transduction, which is associated with aberrant immunogenicity and toxicity. To overcome these challenges, we developed a bioinspired oxidized lipid nanoparticle (LNP) platform for mRNA-based engineering of human CAR-Ms. A library of 24 ionizable lipids was synthesized, formulated into LNPs, and screened for delivery to human macrophages. The top LNP was subsequently optimized using an orthogonal design of experiments and the physicochemical properties, such as size and mRNA encapsulation, were tuned via optimization of microfluidic mixing parameters, yielding an LNP formulation that significantly outperformed a gold standard C12-200 LNP. Utilizing small molecule and antibody inhibitors, we demonstrate that uptake of optimized LNPs into macrophages is driven by apolipoprotein E independent macropinocytosis, which is further supported by potent extrahepatic spleen tropism upon intravenous administration to mice. Lastly, we demonstrate the translatability of this LNP platform and utilize it to engineer functional primary human HER2-CAR-Ms ex vivo with potent antigen-specific tumor cell killing, validated in an ex vivo co-culture with ovarian cancer cells. This bioinspired oxidized LNP platform demonstrates potential for engineering a range of human CAR-M immunotherapies to treat various types of solid tumors.
Insights
Researchers developed a novel lipid nanoparticle (LNP) platform for engineering chimeric antigen receptor macrophages (CAR-Ms). This mRNA-based approach overcomes viral transduction limitations, offering a promising immunotherapy for solid tumors.
Area of Science:
- Biotechnology
- Immunotherapy
- Nanomedicine
Background:
- Solid tumors are challenging to treat with current immunotherapies.
- Chimeric antigen receptor T (CAR-T) cell therapy is effective for blood cancers but limited for solid tumors.
- Chimeric antigen receptor macrophages (CAR-Ms) show potential for solid tumors but viral engineering has safety concerns.
Purpose of the Study:
- To develop a non-viral platform for engineering CAR-Ms.
- To create a bioinspired oxidized lipid nanoparticle (LNP) system for mRNA delivery to macrophages.
- To engineer functional CAR-Ms for solid tumor immunotherapy.
Main Methods:
- Synthesized and screened 24 ionizable lipids for LNP formulation and macrophage delivery.
- Optimized LNP physicochemical properties using design of experiments and microfluidics.
- Engineered primary human HER2-CAR-Ms ex vivo using the optimized LNP platform.
Main Results:
- Developed an optimized LNP formulation superior to a gold standard.
- Demonstrated apolipoprotein E-independent macropinocytosis uptake mechanism.
- Engineered functional HER2-CAR-Ms with potent tumor cell killing capabilities in ovarian cancer models.
Conclusions:
- The bioinspired oxidized LNP platform enables efficient mRNA-based engineering of CAR-Ms.
- This non-viral approach mitigates immunogenicity and toxicity associated with viral methods.
- The platform holds potential for developing novel CAR-M immunotherapies against various solid tumors.