Submitted:
04 February 2026
Posted:
05 February 2026
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Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. Cell Culture
2.2. Viruses and Infection
2.3. Ceramide Extraction
2.4. Ceramide Detection
2.5. Statistical Analysis
3. Results
3.1. Influenza A Virus Infection Alters Cellular Ceramides, with a Preferential Increase in Long-Chain Ceramides
3.2. Human Lung Epithelial A549 Cells Have Two Main Ceramide Species, C16- and C24-Ceramide, that Undergo a Shift During IAV Infection
3.3. Influenza A Virus Infection Under Various Conditions Results in Consistent Changes to Cellular Ceramides with a Preferred Increase in Long-Chain Ceramides
3.4. Influenza A Virus Infection Alters Cellular Ceramides in Human Primary Tracheal Epithelial Cells, Resulting in Greater Increase of Long-Chain Ceramides
4. Discussion
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Naquin, A; O’Halloran, A; Ujamaa, D; et al. Laboratory-Confirmed Influenza-Associated Hospitalizations Among Children and Adults — Influenza Hospitalization Surveillance Network, United States, 2010–2023. MMWR Surveill Summ. 2024, 73(6), 1–18. [Google Scholar] [CrossRef] [PubMed]
- Bonomini, A; Mercorelli, B; Loregian, A. Antiviral strategies against influenza virus: an update on approved and innovative therapeutic approaches. Cell Mol Life Sci. 2025, 82(1), 75. [Google Scholar] [CrossRef] [PubMed]
- Di Pietra, G; Munegato, D; Poletto, C; et al. Surveillance of influenza viruses circulating from 2017/2018 to 2023/2024 seasons in Veneto Region, North-East Italy. Virol J. 2025, 22(1), 114. [Google Scholar] [CrossRef]
- Rabionet, M; Engel, R; Sandhoff, R. Chapter 1 - Structure and function of mammalian sphingolipids in health and disease. In Cellular Lipid in Health and Disease; Ntambi, JM, Ed.; Academic Press, 2023; pp. 1–65. [Google Scholar] [CrossRef]
- Kraft, ML. Sphingolipid Organization in the Plasma Membrane and the Mechanisms That Influence It. Front Cell Dev Biol. 2017, 4, 154. [Google Scholar] [CrossRef] [PubMed]
- Pritzl, CJ; Seo, YJ; Xia, C; Vijayan, M; Stokes, ZD; Hahm, B. A ceramide analogue stimulates dendritic cells to promote T cell responses upon virus infections. J Immunol. 2015, 194(9), 4339–4349. [Google Scholar] [CrossRef]
- Soudani, N; Hage-Sleiman, R; Karam, W; Dbaibo, G; Zaraket, H. Ceramide Suppresses Influenza A Virus Replication In Vitro. J Virol. 2019, 93(7), e00053-19. [Google Scholar] [CrossRef]
- Kawabata, K; Sato, Y; Kubo, T; Tokumura, A; Nishi, H; Morimoto, K. Phospholipid analysis of two influenza A virus-infected cell lines differing in their viral replication kinetics. Arch Virol. 2023, 168(5), 132. [Google Scholar] [CrossRef]
- Gowda, D; Ohno, M; B. Gowda, SG; et al. Defining the kinetic effects of infection with influenza virus A/PR8/34 (H1N1) on sphingosine-1-phosphate signaling in mice by targeted LC/MS. Sci Rep. 2021, 11, 20161. [Google Scholar] [CrossRef]
- Ohno, M; Gowda, SGB; Sekiya, T; et al. The elucidation of plasma lipidome profiles during severe influenza in a mouse model. Sci Rep. 2023, 13(1), 14210. [Google Scholar] [CrossRef]
- Wolf, JJ; Xia, C; Studstill, CJ; et al. Influenza A virus NS1 induces degradation of sphingosine 1-phosphate lyase to obstruct the host innate immune response. Virology 2021, 558, 67–75. [Google Scholar] [CrossRef]
- Studstill, CJ; Pritzl, CJ; Seo, YJ; et al. Sphingosine kinase 2 restricts T cell immunopathology but permits viral persistence. J Clin Invest. 130(12), 6523–6538. [CrossRef] [PubMed]
- Vijayan, M; Xia, C; Song, YE; et al. Sphingosine 1-phosphate lyase enhances the activation of IKKε to promote type I interferon-mediated innate immune response to influenza A virus infection. J Immunol. 2017, 199(2), 677–687. [Google Scholar] [CrossRef] [PubMed]
- Xia, C; Seo, YJ; Studstill, CJ; Vijayan, M; Wolf, JJ; Hahm, B. Transient inhibition of sphingosine kinases confers protection to influenza A virus infected mice. Antiviral Res. 2018, 158, 171–177. [Google Scholar] [CrossRef]
- Jung, KI; Xia, C; McKenna, S; et al. Ceramide synthase 4 interferes with replication of influenza virus but is downregulated by infection. J Virol. 99(12), e01563-25. [CrossRef]
- McKenna, S; Jung, KI; Wolf, JJ; Seo, YJ; Hahm, B. Multiple sphingolipid-metabolizing enzymes modulate influenza virus replication. Virology 2025, 603, 110367. [Google Scholar] [CrossRef]
- Seo, YJ; Pritzl, CJ; Vijayan, M; et al. Sphingosine Kinase 1 Serves as a Pro-Viral Factor by Regulating Viral RNA Synthesis and Nuclear Export of Viral Ribonucleoprotein Complex upon Influenza Virus Infection. PLoS One 2013, 8(8), e75005. [Google Scholar] [CrossRef]
- Marsolais, D; Hahm, B; Walsh, KB; et al. A critical role for the sphingosine analog AAL-R in dampening the cytokine response during influenza virus infection. Proc Natl Acad Sci U S A 2009, 106(5), 1560–1565. [Google Scholar] [CrossRef]
- Oldstone, MBA; Teijaro, JR; Walsh, KB; Rosen, H. Dissecting Influenza Virus Pathogenesis Uncovers a Novel Chemical Approach to Combat the Infection. Virology 2013, 435(1), 92–101. [Google Scholar] [CrossRef]
- Drews, K; Calgi, MP; Harrison, WC; et al. Glucosylceramidase Maintains Influenza Virus Infection by Regulating Endocytosis. J Virol. 2019, 93(12), e00017-19. [Google Scholar] [CrossRef]
- Xia, C; Wolf, JJ; Sun, C; et al. PARP1 Enhances Influenza A Virus Propagation by Facilitating Degradation of Host Type I Interferon Receptor. J Virol. 2020, 94(7), e01572-19. [Google Scholar] [CrossRef] [PubMed]
- Dickinson, JD; Sweeter, JM; Warren, KJ; et al. Autophagy regulates DUOX1 localization and superoxide production in airway epithelial cells during chronic IL-13 stimulation. Redox Biol. 2017, 14, 272–284. [Google Scholar] [CrossRef]
- Xia, C; Wolf, JJ; Vijayan, M; Studstill, CJ; Ma, W; Hahm, B. Casein Kinase 1α Mediates the Degradation of Receptors for Type I and Type II Interferons Caused by Hemagglutinin of Influenza A Virus. J Virol. 2018, 92(7), e00006-18. [Google Scholar] [CrossRef]
- Eisfeld, AJ; Neumann, G; Kawaoka, Y. Influenza A virus isolation, culture and identification. Nat Protoc. 2014, 9(11), 2663–2681. [Google Scholar] [CrossRef] [PubMed]
- Neumann, G; Watanabe, T; Ito, H; et al. Generation of influenza A viruses entirely from cloned cDNAs. Proceedings of the National Academy of Sciences 1999, 96(16), 9345–9350. [Google Scholar] [CrossRef] [PubMed]
- Shaner, RL; Allegood, JC; Park, H; et al. Quantitative analysis of sphingolipids for lipidomics using triple quadrupole and quadrupole linear ion trap mass spectrometers. J Lipid Res. 2009, 50(8), 1692–1707. [Google Scholar] [CrossRef] [PubMed]
- Petrache, I; Kamocki, K; Poirier, C; et al. Ceramide Synthases Expression and Role of Ceramide Synthase-2 in the Lung: Insight from Human Lung Cells and Mouse Models. PLoS One 2013, 8(5), e62968. [Google Scholar] [CrossRef]
- Homaidan, FR; El-Sabban, ME; Chakroun, I; El-Sibai, M; Dbaibo, GS. IL-1 stimulates ceramide accumulation without inducing apoptosis in intestinal epithelial cells. Mediators Inflamm. 2002, 11(1), 39–45. [Google Scholar] [CrossRef]
- Hernández-Corbacho, MJ; Canals, D; Adada, MM; et al. Tumor Necrosis Factor-α (TNFα)-induced Ceramide Generation via Ceramide Synthases Regulates Loss of Focal Adhesion Kinase (FAK) and Programmed Cell Death. J Biol Chem. 2015, 290(42), 25356–25373. [Google Scholar] [CrossRef]
- Venkataraman, K; Riebeling, C; Bodennec, J; et al. Upstream of Growth and Differentiation Factor 1 (uog1), a Mammalian Homolog of the Yeast Longevity Assurance Gene 1 (LAG1), RegulatesN-Stearoyl-sphinganine (C18-(Dihydro)ceramide) Synthesis in a Fumonisin B1-independent Manner in Mammalian Cells*. Journal of Biological Chemistry 2002, 277(38), 35642–35649. [Google Scholar] [CrossRef]
- Laviad, EL; Albee, L; Pankova-Kholmyansky, I; et al. Characterization of Ceramide Synthase 2: TISSUE DISTRIBUTION, SUBSTRATE SPECIFICITY, AND INHIBITION BY SPHINGOSINE 1-PHOSPHATE*. Journal of Biological Chemistry 2008, 283(9), 5677–5684. [Google Scholar] [CrossRef]
- Mizutani, Y; Kihara, A; Igarashi, Y. LASS3 (longevity assurance homologue 3) is a mainly testis-specific (dihydro)ceramide synthase with relatively broad substrate specificity. Biochem J. 2006, 398 Pt 3, 531–538. [Google Scholar] [CrossRef]
- Riebeling, C; Allegood, JC; Wang, E; Merrill, AH; Futerman, AH. Two Mammalian Longevity Assurance Gene (LAG1) Family Members, trh1 and trh4, Regulate Dihydroceramide Synthesis Using Different Fatty Acyl-CoA Donors*. Journal of Biological Chemistry 2003, 278(44), 43452–43459. [Google Scholar] [CrossRef]
- Mizutani, Y; Kihara, A; Igarashi, Y. Mammalian Lass6 and its related family members regulate synthesis of specific ceramides. Biochem J. 2005, 390 Pt 1, 263–271. [Google Scholar] [CrossRef]
- Sun, W; Jin, J; Xu, R; et al. Substrate Specificity, Membrane Topology, and Activity Regulation of Human Alkaline Ceramidase 2 (ACER2). J Biol Chem. 2010, 285(12), 8995–9007. [Google Scholar] [CrossRef]
- Momoi, T; Ben-Yoseph, Y; Nadler, HL. Substrate-specificities of acid and alkaline ceramidases in fibroblasts from patients with Farber disease and controls. Biochem J. 1982, 205(2), 419–425. [Google Scholar] [CrossRef]
- Okazaki, T; Bielawska, A; Domae, N; Bell, RM; Hannun, YA. Characteristics and partial purification of a novel cytosolic, magnesium-independent, neutral sphingomyelinase activated in the early signal transduction of 1 alpha,25-dihydroxyvitamin D3-induced HL-60 cell differentiation. Journal of Biological Chemistry 1994, 269(6), 4070–4077. [Google Scholar] [CrossRef] [PubMed]
- Tirodkar, TS; Lu, P; Bai, A; et al. Expression of Ceramide Synthase 6 Transcriptionally Activates Acid Ceramidase in a c-Jun N-terminal Kinase (JNK)-dependent Manner. J Biol Chem. 2015, 290(21), 13157–13167. [Google Scholar] [CrossRef] [PubMed]
- Hu, Z; Abdelrahman, H; Elwy, A; et al. Acid ceramidase regulates CD8+ T-cell exhaustion via type I interferon-mediated upregulation of PD-L1. Front Immunol 2025, 16. [Google Scholar] [CrossRef]
- Tsuboi, K; Tai, T; Yamashita, R; et al. Involvement of acid ceramidase in the degradation of bioactive N-acylethanolamines. Biochimica et Biophysica Acta (BBA) - Molecular and Cell Biology of Lipids 2021, 1866(9), 158972. [Google Scholar] [CrossRef] [PubMed]
- Bernardo, K; Hurwitz, R; Zenk, T; et al. Purification, Characterization, and Biosynthesis of Human Acid Ceramidase*. Journal of Biological Chemistry 1995, 270(19), 11098–11102. [Google Scholar] [CrossRef]
- Sallusto, F; Nicolò, C; De Maria, R; Corinti, S; Testi, R. Ceramide Inhibits Antigen Uptake and Presentation by Dendritic Cells. J Exp Med. 1996, 184(6), 2411–2416. [Google Scholar] [CrossRef] [PubMed]
- de Araujo Junior, RF; Eich, C; Jorquera, C; et al. Ceramide and palmitic acid inhibit macrophage-mediated epithelial–mesenchymal transition in colorectal cancer. Mol Cell Biochem. 2020, 468(1), 153–168. [Google Scholar] [CrossRef] [PubMed]
- Kim, MY; Linardic, C; Obeid, L; Hannun, Y. Identification of sphingomyelin turnover as an effector mechanism for the action of tumor necrosis factor alpha and gamma-interferon. Specific role in cell differentiation. Journal of Biological Chemistry 1991, 266(1), 484–489. [Google Scholar] [CrossRef] [PubMed]
- Seumois, G; Fillet, M; Gillet, L; et al. De novo C16- and C24-ceramide generation contributes to spontaneous neutrophil apoptosis. J Leukoc Biol. 2007, 81(6), 1477–1486. [Google Scholar] [CrossRef]
- Furuke, K. Redox-sensitive events in Fas-induced apoptosis in human NK cells include ceramide generation and protein tyrosine dephosphorylation. International Immunology 1998, 10(9), 1261–1272. [Google Scholar] [CrossRef]







| Compound | Quantifying Transition | Cone Voltage | Collision Energy |
| C12* | 482.50 → 81.80 | 20 V | 48 eV |
| C14 | 510.50 → 264.25 | 18 V | 24 eV |
| C16 | 538.50 → 264.25 | 26 V | 26 eV |
| C16-d7* | 545.50 → 271.25 | 16 V | 26 eV |
| C18 | 566.50 → 264.25 | 20 V | 26 eV |
| C20 | 594.57 → 264.25 | 8 V | 34 eV |
| C22 | 622.60 → 264.25 | 8 V | 30 eV |
| C24 | 650.64 → 264.25 | 20 V | 32 eV |
| C24-d7* | 657.67 → 271.25 | 10 V | 28 eV |
| C25* | 664.65 →264.25 | 28 V | 34 eV |
| C26 | 678.67 →264.25 | 32 V | 30 eV |
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