An atypical pulmonary fibrosis is associated with co-inheritance of mutations in the calcium binding protein genes S100A3 and S100A13

Author:

Al-Mutairy Eid A.,Imtiaz Faiga Ahmad,Khalid Mohammed,Al Qattan Somaya,Saleh Soad,Mahmoud Linah Mahmood,Al-Saif Maher Mohammed,Al-Haj Latifa,Al-Enazi Azizah,AlJebreen Abdullah M.,Mohammed Shamayel Faheem,Mobeireek Abdullah Fahad,Alkattan Khalid,Chisti Muzamil AminORCID,Luzina Irina G.,Al-Owain Mohammed,Weheba Ihab,Abdelsayed Abeer Mohamed,Ramzan Khushnooda,Janssen Luke J.,Conca Walter,Alaiya Ayodele,Collison Kate S.,Meyer Brian F.,Atamas Sergei P.,Khabar Khalid S.,Hasday Jeffrey D.,Al-Mohanna FutwanORCID

Abstract

BackgroundPulmonary fibrosis is one of the leading indications for lung transplantation. The disease, which is of unknown aetiology, can be progressive, resulting in distortion of the extracellular matrix (ECM), inflammation, fibrosis and eventual death.Methods13 patients born to consanguineous parents from two unrelated families presenting with interstitial lung disease were clinically investigated. Nine patients developed respiratory failure and subsequently died. Molecular genetic investigations were performed on patients' whole blood or archived tissues, and cell biological investigations were performed on patient-derived fibroblasts.ResultsThe combination of a unique pattern of early-onset lung fibrosis (at 12–15 years old) with distinctive radiological findings, including 1) traction bronchiectasis, 2) intralobular septal thickening, 3) shrinkage of the secondary pulmonary lobules mainly around the bronchovascular bundles and 4) early type 2 respiratory failure (elevated blood carbon dioxide levels), represents a novel clinical subtype of familial pulmonary fibrosis. Molecular genetic investigation of families revealed a hypomorphic variant in S100A3 and a novel truncating mutation in S100A13, both segregating with the disease in an autosomal recessive manner. Family members that were either heterozygous carriers or wild-type normal for both variants were unaffected. Analysis of patient-derived fibroblasts demonstrated significantly reduced S100A3 and S100A13 expression. Further analysis demonstrated aberrant intracellular calcium homeostasis, mitochondrial dysregulation and differential expression of ECM components.ConclusionOur data demonstrate that digenic inheritance of mutations in S100A3 and S100A13 underlie the pathophysiology of pulmonary fibrosis associated with a significant reduction of both proteins, which suggests a calcium-dependent therapeutic approach for management of the disease.

Publisher

European Respiratory Society (ERS)

Subject

Pulmonary and Respiratory Medicine

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