Pseudohypoxic HIF pathway activation dysregulates collagen structure-function in human lung fibrosis

Author:

Brereton Christopher J12ORCID,Yao Liudi3,Davies Elizabeth R123ORCID,Zhou Yilu34,Vukmirovic Milica56,Bell Joseph A12,Wang Siyuan3,Ridley Robert A12,Dean Lareb SN12ORCID,Andriotis Orestis G7,Conforti Franco12,Brewitz Lennart8,Mohammed Soran9ORCID,Wallis Timothy12,Tavassoli Ali9,Ewing Rob M34,Alzetani Aiman210,Marshall Benjamin G210ORCID,Fletcher Sophie V210,Thurner Philipp J7,Fabre Aurelie11,Kaminski Naftali5ORCID,Richeldi Luca212,Bhaskar Atul13,Schofield Christopher J8ORCID,Loxham Matthew124ORCID,Davies Donna E124ORCID,Wang Yihua234ORCID,Jones Mark G124ORCID

Affiliation:

1. Clinical and Experimental Sciences, Faculty of Medicine, University of Southampton

2. NIHR Southampton Biomedical Research Centre, University Hospital Southampton

3. Biological Sciences, Faculty of Environmental and Life Sciences, University of Southampton

4. Institute for Life Sciences, University of Southampton

5. Section of Pulmonary, Critical Care and Sleep Medicine, Department of Medicine, Yale University School of Medicine

6. Leslie Dan Faculty of Pharmacy, University of Toronto

7. Institute of Lightweight Design and Structural Biomechanics, TU Wien

8. Department of Chemistry and the Ineos Oxford Institute for Antimicrobial Research, Chemistry Research Laboratory

9. School of Chemistry, University of Southampton

10. University Hospital Southampton

11. Department of Histopathology, St. Vincent's University Hospital & UCD School of Medicine, University College Dublin

12. Unità Operativa Complessa di Pneumologia, Università Cattolica del Sacro Cuore, Fondazione Policlinico A. Gemelli IRCCS

13. Faculty of Engineering and Physical Sciences, University of Southampton

Abstract

Extracellular matrix (ECM) stiffening with downstream activation of mechanosensitive pathways is strongly implicated in fibrosis. We previously reported that altered collagen nanoarchitecture is a key determinant of pathogenetic ECM structure-function in human fibrosis (Jones et al., 2018). Here, through human tissue, bioinformatic and ex vivo studies we provide evidence that hypoxia-inducible factor (HIF) pathway activation is a critical pathway for this process regardless of the oxygen status (pseudohypoxia). Whilst TGFβ increased the rate of fibrillar collagen synthesis, HIF pathway activation was required to dysregulate post-translational modification of fibrillar collagen, promoting pyridinoline cross-linking, altering collagen nanostructure, and increasing tissue stiffness. In vitro, knockdown of Factor Inhibiting HIF (FIH), which modulates HIF activity, or oxidative stress caused pseudohypoxic HIF activation in the normal fibroblasts. By contrast, endogenous FIH activity was reduced in fibroblasts from patients with lung fibrosis in association with significantly increased normoxic HIF pathway activation. In human lung fibrosis tissue, HIF-mediated signalling was increased at sites of active fibrogenesis whilst subpopulations of human lung fibrosis mesenchymal cells had increases in both HIF and oxidative stress scores. Our data demonstrate that oxidative stress can drive pseudohypoxic HIF pathway activation which is a critical regulator of pathogenetic collagen structure-function in fibrosis.

Funder

Wellcome Trust

Medical Research Council

Academy of Medical Sciences

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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