Multi-omics analysis of diabetic pig lungs reveals molecular derangements underlying pulmonary complications of diabetes mellitus

Author:

Shashikadze Bachuki1,Flenkenthaler Florian12,Kemter Elisabeth234,Franzmeier Sophie5,Stöckl Jan B.1,Haid Mark6,Riols Fabien6,Rothe Michael7,Pichl Lisa5,Renner Simone234,Blutke Andreas5,Wolf Eckhard1234ORCID,Fröhlich Thomas1ORCID

Affiliation:

1. Gene Center, LMU Munich 1 Laboratory for Functional Genome Analysis (LAFUGA) , , 81377 Munich , Germany

2. German Center for Diabetes Research (DZD) 2 , 85764 Neuherberg , Germany

3. Gene Center and Department of Veterinary Sciences, LMU Munich 3 Chair for Molecular Animal Breeding and Biotechnology , , 81377 Munich , Germany

4. Center for Innovative Medical Models (CiMM), LMU Munich 4 , 85764 Oberschleißheim , Germany

5. Institute for Veterinary Pathology, Center for Clinical Veterinary Medicine, LMU Munich 5 , 80539 , Germany

6. Metabolomics and Proteomics Core (MPC), Helmholtz Munich 6 , 85764 Neuherberg , Germany

7. Lipidomix GmbH 7 , 13125 Berlin , Germany

Abstract

ABSTRACT Growing evidence shows that the lung is an organ prone to injury by diabetes mellitus. However, the molecular mechanisms of these pulmonary complications have not yet been characterized comprehensively. To systematically study the effects of insulin deficiency and hyperglycaemia on the lung, we combined proteomics and lipidomics with quantitative histomorphological analyses to compare lung tissue samples from a clinically relevant pig model for mutant INS gene-induced diabetes of youth (MIDY) with samples from wild-type littermate controls. Among others, the level of pulmonary surfactant-associated protein A (SFTPA1), a biomarker of lung injury, was moderately elevated. Furthermore, key proteins related to humoral immune response and extracellular matrix organization were significantly altered in abundance. Importantly, a lipoxygenase pathway was dysregulated as indicated by 2.5-fold reduction of polyunsaturated fatty acid lipoxygenase ALOX15 levels, associated with corresponding changes in the levels of lipids influenced by this enzyme. Our multi-omics study points to an involvement of reduced ALOX15 levels and an associated lack of eicosanoid switching as mechanisms contributing to a proinflammatory milieu in the lungs of subjects with diabetes mellitus.

Funder

German Center for Diabetes Research

Horizon 2020 Framework Programme

Publisher

The Company of Biologists

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