TY - JOUR
T1 - Autocrine IL-6 drives cell and extracellular matrix anisotropy in scar fibroblasts
AU - Kenny, Fiona
AU - Marcotti, Stefania
AU - Belo De Freitas, Deandra
AU - Drudi, Elena
AU - Leech, Vivienne
AU - Bell, Rachel
AU - Easton, Jennifer
AU - Díaz-de-la-Loza, María-del-Carmen
AU - Fleck, Roland
AU - Allison, Leanne
AU - Philippeos, Christina
AU - Manhart, Angelika
AU - Shaw, Tanya
AU - Stramer, Brian
N1 - Funding Information:
We thank P. Oakes for guidance with development of the AFT algorithm to measure image feature alignment, and R. Knight and C. Hubens for help with second harmonic generation imaging. We would also like to thank C. Ballestrem and P. Oakes for advice and comments on the manuscript. Thanks also to Mark Soldin, Barry Powell, Raj Mallipeddi, Roy Ng, and Alistair Mackenzie Ross for help with acquiring clinical samples, along with the anonymous donors for their contributions to the tissue collection. This project has been funded by the Wellcome Trust (BS/FK) (grant no. 107859/Z/15/Z), the European Research Council (ERC) under the European Union's Horizon 2020 research and innovation program (BS/SM/MD) (grant agreement no. 681808), the Medical Research Council (TS/JE) (MR/K019732/1), the Biotechnology and Biological Sciences Research Council (grant no. BB/M009513/1) and the British Skin Foundation (TS/RB)(6043-s). For the purpose of open access, the author has applied a CC BY public copyright licence to any Author Accepted Manuscript version arising from this submission.
Publisher Copyright:
© 2023
PY - 2023/11
Y1 - 2023/11
N2 - Fibrosis is associated with dramatic changes in extracellular matrix (ECM) architecture of unknown etiology. Here we exploit keloid scars as a paradigm to understand fibrotic ECM organization. We reveal that keloid patient fibroblasts uniquely produce a globally aligned ECM network in 2-D culture as observed in scar tissue. ECM anisotropy develops after rapid initiation of a fibroblast supracellular actin network, suggesting that cell alignment initiates ECM patterning. Keloid fibroblasts produce elevated levels of IL-6, and autocrine IL-6 production is both necessary and sufficient to induce cell and ECM alignment, as evidenced by ligand stimulation of normal dermal fibroblasts and treatment of keloid fibroblasts with the function blocking IL-6 receptor monoclonal antibody, tocilizumab. Downstream of IL-6, supracellular organization of keloid fibroblasts is controlled by activation of cell-cell adhesion. Adhesion formation inhibits contact-induced cellular overlap leading to nematic organization of cells and an alignment of focal adhesions. Keloid fibroblasts placed on isotropic ECM align the pre-existing matrix, suggesting that focal adhesion alignment leads to active anisotropic remodeling. These results show that IL-6-induced fibroblast cooperativity can control the development of a nematic ECM, highlighting both IL-6 signaling and cell-cell adhesions as potential therapeutic targets to inhibit this common feature of fibrosis.
AB - Fibrosis is associated with dramatic changes in extracellular matrix (ECM) architecture of unknown etiology. Here we exploit keloid scars as a paradigm to understand fibrotic ECM organization. We reveal that keloid patient fibroblasts uniquely produce a globally aligned ECM network in 2-D culture as observed in scar tissue. ECM anisotropy develops after rapid initiation of a fibroblast supracellular actin network, suggesting that cell alignment initiates ECM patterning. Keloid fibroblasts produce elevated levels of IL-6, and autocrine IL-6 production is both necessary and sufficient to induce cell and ECM alignment, as evidenced by ligand stimulation of normal dermal fibroblasts and treatment of keloid fibroblasts with the function blocking IL-6 receptor monoclonal antibody, tocilizumab. Downstream of IL-6, supracellular organization of keloid fibroblasts is controlled by activation of cell-cell adhesion. Adhesion formation inhibits contact-induced cellular overlap leading to nematic organization of cells and an alignment of focal adhesions. Keloid fibroblasts placed on isotropic ECM align the pre-existing matrix, suggesting that focal adhesion alignment leads to active anisotropic remodeling. These results show that IL-6-induced fibroblast cooperativity can control the development of a nematic ECM, highlighting both IL-6 signaling and cell-cell adhesions as potential therapeutic targets to inhibit this common feature of fibrosis.
KW - Keloid
KW - Fibrosis
KW - Fibroblast
KW - Scar
KW - Extracellular Matrix
KW - IL-6 (interleukin 6)
UR - http://www.scopus.com/inward/record.url?scp=85171745219&partnerID=8YFLogxK
U2 - 10.1016/j.matbio.2023.08.004
DO - 10.1016/j.matbio.2023.08.004
M3 - Article
SN - 0945-053X
VL - 123
SP - 1
EP - 16
JO - Matrix Biology
JF - Matrix Biology
ER -