Open Access
Issue
BIO Web Conf.
Volume 240, 2026
The 2026 International Conference on Biomedicine, Neuroscience and Biostatistics (ICBNB 2026)
Article Number 01021
Number of page(s) 4
Section Biomedicine, Neuroscience and Biostatistics
DOI https://doi.org/10.1051/bioconf/202624001021
Published online 24 June 2026
  • C, Pelaia. et al. Lung under attack by COVID-19-induced cytokine storm: pathogenic mechanisms and therapeutic implications. Ther Adv Respir Dis. Jun;14:1753466620933508. (2020) [Google Scholar]
  • AM, de Waal. et al. Lung epithelial cells interact with immune cells and bacteria to shape the microenvironment in tuberculosis. Thorax. Apr 1;77(4):408–16.(2022) [Google Scholar]
  • FQ, Li. et al. Monocyte-derived alveolar macrophages autonomously determine severe outcome of respiratory viral infection. Sci Immunol. Jul 1;7(73):eabj5761. (2022) [Google Scholar]
  • P, Pöpperl. et al. Alveolar macrophages in viral respiratory infections: Sentinels and saboteurs of lung defense. Int J Mol Sci. Jan 5;26(1):407. (2025) [Google Scholar]
  • SW, Xu. et al. Endothelial dysfunction in COVID-19: an overview of evidence, biomarkers, mechanisms and potential therapies. Acta Pharmacol Sin. Apr;44(4):695–709. (2023) [Google Scholar]
  • L, Kühl et al. Human lung organoids—a novel experimental and precision medicine approach. Cells. Aug 15;12(16):2067. (2023) [Google Scholar]
  • N, Huot. et al. SARS-CoV-2 viral persistence in lung alveolar macrophages is controlled by IFN-γ and NK cells. Nat Immunol. Dec;24(12):2068–79. (2023) [CrossRef] [PubMed] [Google Scholar]
  • J, Major. et al. Endothelial AHR activity prevents lung barrier disruption in viral infection. Nature. Sep 28;621(7980):813–20. (2023) [Google Scholar]
  • G, Zhao. et al. Vascular endothelial-derived SPARCL1 exacerbates viral pneumonia through pro-inflammatory macrophage activation. Nat Commun. May 18;15(1):4235. (2024) [Google Scholar]
  • M, Porotto. et al. Authentic modeling of human respiratory virus infection in human pluripotent stem cell-derived lung organoids. MBio. Jun 25;10(3):10–128. (2019) [Google Scholar]
  • MK, Ivana. et al. A distal lung organoid model to study interstitial lung disease, viral infection and human lung development. Nat Protoc. Jul;18(7):2283–312. (2023) [Google Scholar]
  • L, Dave A. et al. Microphysiological models of lung epithelium‐alveolar macrophage co‐cultures to study chronic lung disease. Adv Biol (Weinh). Aug;8(8):2300165. (2024) [Google Scholar]
  • Y, Sophronia. et al. Give them vasculature and immune cells: how to fill the gap of organoids. Cells Tissues Organs. Dec 6;212(5):369–82. (2023) [Google Scholar]
  • Q, Clément. et al. A microfluidic platform integrating functional vascularized organoids-on-chip. Nat Commun. Feb 16;15(1):1452. (2024) [Google Scholar]
  • HZ, Yin. et al. Advances in the model structure of in vitro vascularized organ-on-a-chip. Cyborg Bionic Syst. Apr 25;5:0107.(2024) [Google Scholar]

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