Submitted:
28 May 2025
Posted:
29 May 2025
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Abstract
Keywords:
1. Introduction
2. Results
2.1. Surface Activity of NPPS-PE Mixtures
2.2. Molecular Organization of NPPS and PE in Interfacial Films
2.3. Surface Tension and Surfactant Behavior of NPPS-PE Under Compression-Expansion Dynamics
2.4. Surfactant Deficiency in Rats
2.5. NPPS-PE Prevents Cell Proliferation, Induces Apoptosis, and Reduces Collagen I Expression in NHLF


2.6. Reduced Col1A1 Expression in NHLF Treated with NPPS-PE
2.7. NPPS-PE Attenuates the Effect of Bleomycin During the Inflammatory Stage in Mice
3. Discussion
4. Materials and Methods
4.1. Preparation, Characterization, and Biophysical Evaluation of NPPS-PE
4.2. Evaluation of NPPS-PE Monolayer Properties Using the Langmuir Film Balance
4.3. Observation of Rhodamine-DOPE-Labeled NPPS-PE Films by Epifluorescence Microscopy
4.4. Surface Tension Measurement with a Captive Bubble Surfactometer
4.5. Isolation and Maintenance of Normal Human Lung Fibroblasts
4.6. Cell Proliferation Assay
4.7. Evaluation of Apoptosis in NHLF Treated with NPPS-PE by Flow Cytometry
4.8. Determination of COL1A1 Expression by RT-qPCR
4.9. Determination of the Effect of NPPS-PE in C57BL/6 Mice Treated with Bleomycin
4.10. Pulmonary Surfactant Deficiency Model in Animal Models of Surfactant Deficiency Treated with NPPS-PE
4.11. Statistical analysis
5. Conclusions
6. Patents
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| PE | 1,2-dipalmitoyl-rac-glycero-3-phosphatidylethanolamine |
| CP | Crystal phase |
| IPF | Idiopathic pulmonary fibrosis |
| LE | Expanded liquid |
| NHLF | Normal human fibroblasts |
| NPPS-PE | Natural porcine surfactant enriched with PE |
| PF | Pulmonary fibrosis |
| PI | Propidium iodide |
| TGF-β | Transforming growth factor-beta |
References
- Garmendia, J.; Cebollero-Rivas, P. Environmental Exposures, the Oral–Lung Axis and Respiratory Health: The Airway Microbiome Goes on Stage for the Personalized Management of Human Lung Function. Microbial Biotechnology 2024, 17, e14506. [Google Scholar] [CrossRef] [PubMed]
- Wang, J.; Li, K.; Hao, D.; Li, X.; Zhu, Y.; Yu, H.; Chen, H. Pulmonary Fibrosis: Pathogenesis and Therapeutic Strategies. MedComm 2024, 5, e744. [Google Scholar] [CrossRef] [PubMed]
- Dong, Y.; He, L.; Zhu, Z.; Yang, F.; Ma, Q.; Zhang, Y.; Zhang, X.; Liu, X. The Mechanism of Gut-Lung Axis in Pulmonary Fibrosis. Front. Cell. Infect. Microbiol. 2024, 14. [Google Scholar] [CrossRef] [PubMed]
- Savin, I.A.; Zenkova, M.A.; Sen’kova, A.V. Pulmonary Fibrosis as a Result of Acute Lung Inflammation: Molecular Mechanisms, Relevant In Vivo Models, Prognostic and Therapeutic Approaches. International Journal of Molecular Sciences 2022, 23, 14959. [Google Scholar] [CrossRef]
- Althobiani, M.A.; Russell, A.-M.; Jacob, J.; Ranjan, Y.; Folarin, A.A.; Hurst, J.R.; Porter, J.C. Interstitial Lung Disease: A Review of Classification, Etiology, Epidemiology, Clinical Diagnosis, Pharmacological and Non-Pharmacological Treatment. Front. Med. 2024, 11. [Google Scholar] [CrossRef]
- Hernandez-Gonzalez, F.; Pietrocola, F.; Cameli, P.; Bargagli, E.; Prieto-González, S.; Cruz, T.; Mendoza, N.; Rojas, M.; Serrano, M.; Agustí, A.; et al. Exploring the Interplay between Cellular Senescence, Immunity, and Fibrosing Interstitial Lung Diseases: Challenges and Opportunities. International Journal of Molecular Sciences 2024, 25, 7554. [Google Scholar] [CrossRef]
- Cañadas, O.; Olmeda, B.; Alonso, A.; Pérez-Gil, J. Lipid–Protein and Protein–Protein Interactions in the Pulmonary Surfactant System and Their Role in Lung Homeostasis. Int J Mol Sci 2020, 21, 3708. [Google Scholar] [CrossRef]
- Possmayer, F.; Zuo, Y.Y.; Veldhuizen, R.A.W.; Petersen, N.O. Pulmonary Surfactant: A Mighty Thin Film. Chem. Rev. 2023, 123, 13209–13290. [Google Scholar] [CrossRef]
- Calkovska, A.; Uhliarova, B.; Joskova, M.; Franova, S.; Kolomaznik, M.; Calkovsky, V.; Smolarova, S. Pulmonary Surfactant in the Airway Physiology: A Direct Relaxing Effect on the Smooth Muscle. Respiratory Physiology & Neurobiology 2015, 209, 95–105. [Google Scholar] [CrossRef]
- Perez-Gil, J.; Weaver, T.E. Pulmonary Surfactant Pathophysiology: Current Models and Open Questions. Physiology 2010, 25, 132–141. [Google Scholar] [CrossRef]
- Bernhard, W. Lung Surfactant: Function and Composition in the Context of Development and Respiratory Physiology. Annals of Anatomy - Anatomischer Anzeiger 2016, 208, 146–150. [Google Scholar] [CrossRef] [PubMed]
- Akella, A.; Deshpande, S.B. Pulmonary Surfactants and Their Role in Pathophysiology of Lung Disorders. Indian J Exp Biol 2013, 51, 5–22. [Google Scholar] [PubMed]
- Gower, W.A.; Nogee, L.M. Surfactant Dysfunction. Paediatric respiratory reviews 2011, 12, 223. [Google Scholar] [CrossRef] [PubMed]
- Guzmán-Silva, A.; Lara, L.G.V. de; Torres-Jácome, J.; Vargaz-Guadarrama, A.; Flores-Flores, M.; Said, E.P.; Lagunas-Martínez, A.; Mendoza-Milla, C.; Tanzi, F.; Moccia, F.; et al. Lung Beractant Increases Free Cytosolic Levels of Ca2+ in Human Lung Fibroblasts. PLOS ONE 2015, 10, e0134564. [Google Scholar] [CrossRef]
- Vazquez-de-Lara, L.G.; Becerril, C.; Montaño, M.; Ramos, C.; Maldonado, V.; Meléndez, J.; Phelps, D.S.; Pardo, A.; Selman, M. Surfactant Components Modulate Fibroblast Apoptosis and Type I Collagen and Collagenase-1 Expression. American Journal of Physiology-Lung Cellular and Molecular Physiology 2000, 279, L950–L957. [Google Scholar] [CrossRef]
- Vazquez-de-Lara, L.G.; Tlatelpa-Romero, B.; Romero, Y.; Fernández-Tamayo, N.; Vazquez-de-Lara, F.; M. Justo-Janeiro, J.; Garcia-Carrasco, M.; de-la-Rosa Paredes, R.; Cisneros-Lira, J.G.; Mendoza-Milla, C.; et al. Phosphatidylethanolamine Induces an Antifibrotic Phenotype in Normal Human Lung Fibroblasts and Ameliorates Bleomycin-Induced Lung Fibrosis in Mice. Int J Mol Sci 2018, 19, 2758. [CrossRef]
- Tlatelpa-Romero, B.; Contreras-Cruz, D.A.; Guerrero-Luna, G.; Hernández-Linares, M.G.; Ruiz-Salgado, S.; Mendoza-Milla, C.; Romero, Y.; de-la-Rosa Paredes, R.; Oyarzábal, L.F.; Mendoza-Sámano, D.A.; et al. Organic Synthesis of 1,2-Dipalmitoyl-Rac-Glycero-3-Phosphatidylethanolamine and Its Effect on the Induction of Apoptosis in Normal Human Lung Fibroblasts. Chem Phys Lipids 2023, 257, 105349. [Google Scholar] [CrossRef]
- Desai, R.K.; Yildiz Atar, H.; Lakshminrusimha, S.; Ryan, R.M. Use of Surfactant beyond Respiratory Distress Syndrome, What Is the Evidence? J Perinatol 2024, 44, 478–487. [Google Scholar] [CrossRef]
- Taylor, G.; Jackson, W.; Hornik, C.P.; Koss, A.; Mantena, S.; Homsley, K.; Gattis, B.; Kudumu-Clavell, M.; Clark, R.; Smith, P.B.; et al. Surfactant Administration in Preterm Infants: Drug Development Opportunities. The Journal of Pediatrics 2019, 208, 163–168. [Google Scholar] [CrossRef]
- Raj, J.U.; Bland, R.D.; Bhattacharya, J.; Rabinovitch, M.; Matthay, M.A. Life-Saving Effect of Pulmonary Surfactant in Premature Babies. Available online: https://www.jci.org/articles/view/179948/pdf (accessed on 9 January 2025).
- Aradhya, A.S.; Ghalige, S.S.; Madarkar, B.; Pruthvishree, H.V.; Venkatagiri, P.; Urs, P.; Ngangom, D.; Rangaiah, S.; Kumar, V.; Harini, C.; et al. Comparison of Porcine versus Bovine Surfactant in Preterm Respiratory Distress Syndrome: Evidence from Real-World Data. A Multicentre Collaboration from Karnataka. Pediatric Pulmonology 2024, 59, 1979–1986. [Google Scholar] [CrossRef]
- Boshoff Coyles, L.; Joolay, Y.; Tooke, L. Bovine or Porcine: Does the Type of Surfactant Matter? Journal of Tropical Pediatrics 2020, 66, 534–541. [Google Scholar] [CrossRef] [PubMed]
- Tridente, A.; De Martino, L.; De Luca, D. Porcine vs Bovine Surfactant Therapy for Preterm Neonates with RDS: Systematic Review with Biological Plausibility and Pragmatic Meta-Analysis of Respiratory Outcomes. Respir Res 2019, 20, 28. [Google Scholar] [CrossRef] [PubMed]
- Cañadas, O.; García-García, A.; Prieto, M.A.; Pérez-Gil, J. Polyhydroxyalkanoate Nanoparticles for Pulmonary Drug Delivery: Interaction with Lung Surfactant. Nanomaterials (Basel) 2021, 11, 1482. [Google Scholar] [CrossRef] [PubMed]
- Pérez-Gil, J. A Recipe for a Good Clinical Pulmonary Surfactant. Biomed J 2022, 45, 615–628. [Google Scholar] [CrossRef]
- De La Serna, J.B.; Orädd, G.; Bagatolli, L.A.; Simonsen, A.C.; Marsh, D.; Lindblom, G.; Perez-Gil, J. Segregated Phases in Pulmonary Surfactant Membranes Do Not Show Coexistence of Lipid Populations with Differentiated Dynamic Properties. Biophysical Journal 2009, 97, 1381–1389. [Google Scholar] [CrossRef]
- Autilio, C.; Pérez-Gil, J. Understanding the Principle Biophysics Concepts of Pulmonary Surfactant in Health and Disease. Arch Dis Child Fetal Neonatal Ed 2018, fetalneonatal-2018-315413. [CrossRef]
- Li, G.; Xu, X.; Zuo, Y.Y. Biophysical Function of Pulmonary Surfactant in Liquid Ventilation. Biophysical Journal 2023, 122, 3099–3107. [Google Scholar] [CrossRef]
- Alonso, C.; Alig, T.; Yoon, J.; Bringezu, F.; Warriner, H.; Zasadzinski, J.A. More Than a Monolayer: Relating Lung Surfactant Structure and Mechanics to Composition. Biophysical Journal 2004, 87, 4188–4202. [Google Scholar] [CrossRef]
- Autilio, C.; Echaide, M.; Cruz, A.; García-Mouton, C.; Hidalgo, A.; Da Silva, E.; De Luca, D.; Sørli, J.B.; Pérez-Gil, J. Molecular and Biophysical Mechanisms behind the Enhancement of Lung Surfactant Function during Controlled Therapeutic Hypothermia. Sci Rep 2021, 11, 728. [Google Scholar] [CrossRef]
- Berggren, P.; Lachmann, B.; Curstedt, T.; Grossmann, G.; Robertson, B. Gas Exchange and Lung Morphology after Surfactant Replacement in Experimental Adult Respiratory Distress Syndrome Induced by Repeated Lung Lavage. Acta Anaesthesiol Scand 1986, 30, 321–328. [Google Scholar] [CrossRef]
- Vázquez de Lara Cisneros, L.G.; Iturbide-Flores, V. Aislamiento de Sustancia Tensioactiva de Pulmones de Cerdo. Análisis Químico y Evaluación in Vitro e in Vivo de La Actividad de Superficie. Boletin Medico Hospital Infantil de Mexico 1998, 55, 10. [Google Scholar]
- Yang, M.-Y.; Lin, Y.-J.; Han, M.-M.; Bi, Y.-Y.; He, X.-Y.; Xing, L.; Jeong, J.-H.; Zhou, T.-J.; Jiang, H.-L. Pathological Collagen Targeting and Penetrating Liposomes for Idiopathic Pulmonary Fibrosis Therapy. Journal of Controlled Release 2022, 351, 623–637. [Google Scholar] [CrossRef]
- De Lara, L.V.; Becerril, C.; Montaño, M.; Ramos, C.; Maldonado, V.; Meléndez, J.; Phelps, D.S.; Pardo, A.; Selman, M. Surfactant Components Modulate Fibroblast Apoptosis and Type I Collagen and Collagenase-1 Expression. American Journal of Physiology-Lung Cellular and Molecular Physiology 2000, 279, L950–L957. [Google Scholar] [CrossRef] [PubMed]
- Naqvi, M.; Hannah, J.; Lawrence, A.; Myall, K.; West, A.; Chaudhuri, N. Antifibrotic Therapy in Progressive Pulmonary Fibrosis: A Review of Recent Advances. Expert Review of Respiratory Medicine 2024, 18, 397–407. [Google Scholar] [CrossRef] [PubMed]
- Pardo, A.; Selman, M. The Interplay of the Genetic Architecture, Aging, and Environmental Factors in the Pathogenesis of Idiopathic Pulmonary Fibrosis. Am J Respir Cell Mol Biol 2021, 64, 163–172. [Google Scholar] [CrossRef] [PubMed]
- Liu, T.; De Los Santos, F.G.; Phan, S.H. The Bleomycin Model of Pulmonary Fibrosis. In Fibrosis: Methods and Protocols; Rittié, L., Ed.; Springer: New York, NY, 2017; pp. 27–42 ISBN 978-1-4939-7113-8.
- Gul, A.; Yang, F.; Xie, C.; Du, W.; Mohammadtursun, N.; Wang, B.; Le, J.; Dong, J. Pulmonary Fibrosis Model of Mice Induced by Different Administration Methods of Bleomycin. BMC Pulm Med 2023, 23, 91. [Google Scholar] [CrossRef]
- Piñeiro-Hermida, S.; Autilio, C.; Martínez, P.; Bosch, F.; Pérez-Gil, J.; Blasco, M.A. Telomerase Treatment Prevents Lung Profibrotic Pathologies Associated with Physiological Aging. J Cell Biol 2020, 219, e202002120. [Google Scholar] [CrossRef]
- Olsson, B.; Bondesson, E.; Borgström, L.; Edsbäcker, S.; Eirefelt, S.; Ekelund, K.; Gustavsson, L.; Hegelund-Myrbäck, T. Pulmonary Drug Metabolism, Clearance, and Absorption. In Controlled Pulmonary Drug Delivery; Smyth, H.D.C., Hickey, A.J., Eds.; Springer: New York, NY, 2011; ISBN 978-1-4419-9745-6. [Google Scholar]
- Xu, Y.; Cañadas, O.; Alonso, A.; Franzyk, H.; Thakur, A.; Pérez-Gil, J.; Foged, C. Effect of Lipid-Polymer Hybrid Nanoparticles on the Biophysical Function and Lateral Structure of Pulmonary Surfactant: Mechanistic in Vitro Studies. Journal of Colloid and Interface Science 2024, 654, 1111–1123. [Google Scholar] [CrossRef]
- Wang, L.; Cruz, A.; Flach, C.R.; Pérez-Gil, J.; Mendelsohn, R. Langmuir−Blodgett Films Formed by Continuously Varying Surface Pressure. Characterization by IR Spectroscopy and Epifluorescence Microscopy. Langmuir 2007, 23, 4950–4958. [Google Scholar] [CrossRef]







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