mRNA Delivery by Lipoamino Fatty Acid–Peptide Polyplexes in Different Lung Cell Models and Lungs
Abstract
1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Methods
2.2.1. Synthesis of Carriers
2.2.2. Formation of Non-Coated and PEGylated LAF-XP Polyplexes
2.2.3. Hyaluronic Acid (HA) Coating of LAF Xenopeptide Polyplexes
2.2.4. Size and Zeta Potential
2.2.5. Agarose Gel Shift Assay
2.2.6. ATTO643 Labeling
2.2.7. Fluorescence Cross Correlation
2.2.8. Cell Culture
2.2.9. Luciferase Expression Assay
2.2.10. Air–Liquid Interface
2.2.11. Flow Cytometry
2.2.12. In Vivo Intratracheal Administration
2.2.13. Animal Housing
2.2.14. Particle Formation for In Vivo Experiments
2.2.15. Intratracheal Instillation
2.2.16. Necropsy and Ex Vivo Bioluminescence Imaging
2.2.17. Luciferase Detection in Lung Homogenates
2.2.18. Statistical Analysis
3. Results and Discussion
3.1. Carrier Selection and Polyplex Formation
3.2. PEGylation
3.3. Hyaluronic Acid Coating
3.4. Transfection of Lung Epithelial Cells Under Submerged Conditions
3.5. Transfection Under Air–Liquid Interface Conditions
3.6. Transfection Efficiency with and Without Serum
3.7. Cellular Association and Uptake
3.8. In Vivo Intratracheal Administration
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| 12Bu | 4-(didodecylamino)butyric acid |
| 12Oc | 8-(didodecylamino)octanoic acid |
| ACF | autocorrelation function |
| ALI | air–liquid interface |
| chGtp | 3-(cyclohexyl)glutaroyl tetraethylene pentamine |
| CCF | cross-correlation function |
| Cy5+ | Cy5-positive |
| DMEM | Dulbecco’s Modified Eagle’s Medium |
| EGFP | enhanced green fluorescent protein |
| EGFP+ | EGFP-positive |
| FBS | fetal bovine serum |
| FCCS | fluorescence cross-correlation spectroscopy |
| FCS | fluorescence correlation spectroscopy |
| FLuc | firefly luciferase |
| HA | hyaluronic acid |
| HBG | HEPES buffered glucose |
| Htp | hexahydrophthaloyl tetraethylene pentamine |
| LAF | lipoamino fatty acid |
| Lipo MMAX | Lipofectamine MessengerMAX Reagent |
| LNP | lipid nanoparticle |
| MEM | Minimum Essential Medium Eagle |
| MFI | mean fluorescence intensity |
| mRNA | messenger ribonucleic acid |
| OAA | oligoamino acid |
| PBS | phosphate-buffered saline |
| PEG | poly(ethylene glycol) |
| PEG-DMG | 1,2-dimyristoyl-rac-glycero-3-methoxypolyethylene glycol-2000 |
| PEI | polyethylenimine |
| SAXS | small-angle X-ray scattering |
| Stp | succinoyl tetraethylene pentamine |
| TEER | transepithelial electrical resistance |
| XP | xenopeptide |
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Thalmayr, S.; Müller, J.; Polewka, V.; Gialdini, I.; Nguyen, A.; Dohmen, C.; Lamb, D.C.; Merkel, O.M.; Wagner, E. mRNA Delivery by Lipoamino Fatty Acid–Peptide Polyplexes in Different Lung Cell Models and Lungs. Polymers 2026, 18, 1368. https://doi.org/10.3390/polym18111368
Thalmayr S, Müller J, Polewka V, Gialdini I, Nguyen A, Dohmen C, Lamb DC, Merkel OM, Wagner E. mRNA Delivery by Lipoamino Fatty Acid–Peptide Polyplexes in Different Lung Cell Models and Lungs. Polymers. 2026; 18(11):1368. https://doi.org/10.3390/polym18111368
Chicago/Turabian StyleThalmayr, Sophie, Joschka Müller, Vivien Polewka, Irene Gialdini, Anny Nguyen, Christian Dohmen, Don C. Lamb, Olivia M. Merkel, and Ernst Wagner. 2026. "mRNA Delivery by Lipoamino Fatty Acid–Peptide Polyplexes in Different Lung Cell Models and Lungs" Polymers 18, no. 11: 1368. https://doi.org/10.3390/polym18111368
APA StyleThalmayr, S., Müller, J., Polewka, V., Gialdini, I., Nguyen, A., Dohmen, C., Lamb, D. C., Merkel, O. M., & Wagner, E. (2026). mRNA Delivery by Lipoamino Fatty Acid–Peptide Polyplexes in Different Lung Cell Models and Lungs. Polymers, 18(11), 1368. https://doi.org/10.3390/polym18111368

