4.7 Article

Paracrine signalling during ZEB1-mediated epithelial-mesenchymal transition augments local myofibroblast differentiation in lung fibrosis

Journal

CELL DEATH AND DIFFERENTIATION
Volume 26, Issue 5, Pages 943-957

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/s41418-018-0175-7

Keywords

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Funding

  1. Academy of Medical Sciences/the Wellcome Trust Springboard Award [SBF002/1038]
  2. Wessex Medical Trust
  3. AAIR Charity
  4. China Scholarship Council
  5. Medical Research Foundation [MRF-091-0003-RG-CONFO]
  6. Gerald Kerkut Charitable Trust
  7. University of Southampton Central VC Scholarship Scheme
  8. Wellcome Trust [100638/Z/12/Z]
  9. British Lung Foundation [BLF-RG14-14]
  10. Ministry of Science and Technology of China National Key Research and Development Projects [2016YFC0904701]
  11. National Natural Science Foundation of China [81772827]
  12. BBSRC [BM/M012387/1]
  13. Wessex Clinical Research Network
  14. National Institute of Health Research, UK
  15. Wellcome Trust [100638/Z/12/Z] Funding Source: Wellcome Trust
  16. BBSRC [BB/M012387/1] Funding Source: UKRI
  17. MRC [MR/P024351/1] Funding Source: UKRI

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The contribution of epithelial-mesenchymal transition (EMT) to human lung fibrogenesis is controversial. Here we provide evidence that ZEB1-mediated EMT in human alveolar epithelial type II (ATII) cells contributes to the development of lung fibrosis by paracrine signalling to underlying fibroblasts. Activation of EGFR-RAS-ERK signalling in ATII cells induced EMT via ZEB1. ATII cells had extremely low extracellular matrix gene expression even after induction of EMT, however conditioned media from ATII cells undergoing RAS-induced EMT augmented TGF beta-induced profibrogenic responses in lung fibroblasts. This epithelial-mesenchymal crosstalk was controlled by ZEB1 via the expression of tissue plasminogen activator (tPA). In human fibrotic lung tissue, nuclear ZEB1 expression was detected in alveolar epithelium adjacent to sites of extracellular matrix (ECM) deposition, suggesting that ZEB1-mediated paracrine signalling has the potential to contribute to early fibrotic changes in the lung interstitium. Targeting this novel ZEB1 regulatory axis may be a viable strategy for the treatment of pulmonary fibrosis.

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