FLT4 causes developmental disorders of the cardiovascular and lymphovascular systems via pleiotropic molecular mechanisms

Author:

Monaghan Richard M1ORCID,Naylor Richard W2ORCID,Flatman Daisy34,Kasher Paul R34ORCID,Williams Simon G1ORCID,Keavney Bernard D15ORCID

Affiliation:

1. Division of Cardiovascular Sciences, School of Medical Sciences, Faculty of Biology, Medicine, and Health, Manchester Academic Health Science Centre, University of Manchester , 5th Floor, AV Hill Building, Oxford Road, Manchester, M13 9NT , UK

2. Wellcome Centre for Cell Matrix Research, Division of Cell Matrix Biology and Regenerative Medicine, School of Biological Sciences, Faculty of Biology, Medicine, and Health, Manchester Academic Health Science Centre, University of Manchester, Oxford Road , Manchester, M13 9PN , UK

3. Division of Neuroscience and Experimental Psychology, School of Biological Sciences, University of Manchester , Oxford Road, Manchester, M13 9PT , UK

4. Geoffrey Jefferson Brain Research Centre, Manchester Academic Health Science Centre, Northern Care Alliance NHS Foundation Trust, University of Manchester , Oxford Road, Manchester, M13 9PT , UK

5. Manchester Heart Institute, Manchester University NHS Foundation Trust , Oxford Road, M13 9WL , UK

Abstract

Abstract Aims Rare, deleterious genetic variants in FLT4 are associated with Tetralogy of Fallot (TOF), the most common cyanotic congenital heart disease. The distinct genetic variants in FLT4 are also an established cause of Milroy disease, the most prevalent form of primary hereditary lymphoedema. The phenotypic features of these two conditions are non-overlapping, implying pleiotropic cellular mechanisms during development. Methods and results In this study, we show that FLT4 variants identified in patients with TOF, when expressed in primary human endothelial cells, cause aggregation of FLT4 protein in the perinuclear endoplasmic reticulum, activating proteostatic and metabolic signalling, whereas lymphoedema-associated FLT4 variants and wild-type (WT) FLT4 do not. FLT4 TOF variants display characteristic gene expression profiles in key developmental signalling pathways, revealing a role for FLT4 in cardiogenesis distinct from its role in lymphatic development. Inhibition of proteostatic signalling abrogates these effects, identifying potential avenues for therapeutic intervention. Depletion of flt4 in zebrafish caused cardiac phenotypes of reduced heart size and altered heart looping. These phenotypes were rescued with coinjection of WT human FLT4 mRNA, but incompletely or not at all by mRNA harbouring FLT4 TOF variants. Conclusion Taken together, we identify a pathogenic mechanism for FLT4 variants predisposing to TOF that is distinct from the known dominant negative mechanism of Milroy-causative variants. FLT4 variants give rise to conditions of the two circulatory subdivisions of the vascular system via distinct developmental pleiotropic molecular mechanisms.

Funder

British Heart Foundation

NIHR Manchester Biomedical Research Centre

Kidney Research UK Intermediate Fellowship

Medical Research Council

Publisher

Oxford University Press (OUP)

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