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Deep plasma and tissue proteome profiling of knockout mice reveals pathways associated with Svep1 deficiency
Colleen B Maxwell1,2, Nikita Bhakta1,2, Matthew J Denniff1
1Department of Cardiovascular Sciences and NIHR Leicester Cardiovascular Biomedical Research Unit, Glenfield Hospital, Leicester LE3 9QP, UK.
Abstract:
Despite strong causal associations with cardiovascular and metabolic disorders including coronary artery disease, hypertension, and type 2 diabetes, as well as a range of other diseases, the exact function of the protein SVEP1 remains largely unknown. Animal models have been employed to investigate how SVEP1 contributes to disease, with a focus on murine models exploring its role in development, cardiometabolic disease and platelet biology. In this study, we aimed to comprehensively phenotype the proteome of Svep1 +/- mice compared to wild-type (WT) littermates using liquid chromatography-tandem mass spectrometry (LC-MS/MS) bottom-up proteomics in plasma, heart, aorta, lung, and kidney to identify dysregulated pathways and biological functions associated with Svep1 deficiency. Our findings reveal that Svep1 deficiency leads to significant proteomic alterations across the mouse, with the highest number of dysregulated proteins observed in plasma and kidney. Key dysregulated proteins in plasma include upregulation of ADGRV1, CDH1, and MYH6, and downregulation of MTIF2 and AKAP13 which, alongside other proteins dysregulated across tissues, indicate disruption in cell adhesion, extracellular matrix organisation, platelet degranulation, and Rho GTPase pathways. Novel findings include significant enrichment of complement cascades in plasma, suggesting dysregulation of innate immune responses and hemostasis due to Svep1 deficiency. Pathways related to chylomicron assembly and lipid metabolism were also enriched. Additionally, we developed a high-throughput quantitative targeted LC-MS/MS assay to measure endogenous levels of murine SVEP1. SVEP1 was detectable in lung homogenate and showed a significant reduction in SVEP1 levels in Svep1 +/- vs. WT, but was not identified in plasma, heart, aorta, or kidney, likely due to expression levels below the assay's detection limit. Overall, this deep phenotyping study provides insight into the systemic impact of Svep1 deficiency.
Insights
The protein SVEP1 influences cardiovascular and metabolic health. Its deficiency causes widespread proteomic changes in mice, impacting cell adhesion, immunity, and lipid metabolism.
Area of Science:
- Proteomics
- Cardiovascular Biology
- Metabolic Disorders
Background:
- The function of SVEP1 protein is largely unknown despite its association with cardiovascular and metabolic diseases.
- Previous studies utilized murine models to investigate SVEP1's role in development, cardiometabolic disease, and platelet biology.
Purpose of the Study:
- To comprehensively phenotype the proteome of Svep1+/- mice compared to wild-type (WT) littermates.
- To identify dysregulated pathways and biological functions associated with Svep1 deficiency using LC-MS/MS proteomics.
Main Methods:
- Liquid chromatography-tandem mass spectrometry (LC-MS/MS) bottom-up proteomics was performed on plasma, heart, aorta, lung, and kidney.
- A high-throughput quantitative targeted LC-MS/MS assay was developed to measure endogenous murine SVEP1 levels.
Main Results:
- Svep1 deficiency led to significant proteomic alterations, particularly in plasma and kidney.
- Key dysregulated pathways included cell adhesion, extracellular matrix organization, platelet degranulation, Rho GTPase signaling, complement cascades, and lipid metabolism.
- SVEP1 was detectable in lung homogenate, with reduced levels in Svep1+/- mice, but not detected in other tested tissues.
Conclusions:
- Svep1 deficiency profoundly impacts systemic biology, affecting multiple pathways crucial for health.
- The study provides novel insights into the role of SVEP1 in innate immune responses and hemostasis.
- Deep phenotyping reveals the broad consequences of Svep1 deficiency, warranting further investigation into its disease associations.

