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Elucidating the interaction between stretch and stiffness using an agent-based spring network model of progressive pulmonary fibrosis.

Authors :
Hall, Joseph K.
Bates, Jason H. T.
Krishnan, Ramaswamy
Jae Hun Kim
Yuqing Deng
Lutchen, Kenneth R.
Suki, Béla
Source :
Frontiers in Network Physiology; 2024, p1-14, 14p
Publication Year :
2024

Abstract

Pulmonary fibrosis is a deadly disease that involves the dysregulation of fibroblasts and myofibroblasts, which are mechanosensitive. Previous computational models have succeeded in modeling stiffness-mediated fibroblasts behaviors; however, these models have neglected to consider stretch-mediated behaviors, especially stretch-sensitive channels and the stretch-mediated release of latent TGF-β. Here, we develop and explore an agent-based model and spring network model hybrid that is capable of recapitulating both stiffness and stretch. Using the model, we evaluate the role of mechanical signaling in homeostasis and disease progression during self-healing and fibrosis, respectively. We develop the model such that there is a fibrotic threshold near which the network tends towards instability and fibrosis or below which the network tends to heal. The healing response is due to the stretch signal, whereas the fibrotic response occurs when the stiffness signal overpowers the stretch signal, creating a positive feedback loop. We also find that by changing the proportional weights of the stretch and stiffness signals, we observe heterogeneity in pathological network structure similar to that seen in human IPF tissue. The system also shows emergent behavior and bifurcations: whether the network will heal or turn fibrotic depends on the initial network organization of the damage, clearly demonstrating structure's pivotal role in healing or fibrosis of the overall network. In summary, these results strongly suggest that the mechanical signaling present in the lungs combined with network effects contribute to both homeostasis and disease progression. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
26740109
Database :
Complementary Index
Journal :
Frontiers in Network Physiology
Publication Type :
Academic Journal
Accession number :
177695468
Full Text :
https://doi.org/10.3389/fnetp.2024.1396383