6533b7d3fe1ef96bd12600cc

RESEARCH PRODUCT

Meox2/Tcf15 Heterodimers Program the Heart Capillary Endothelium for Cardiac Fatty Acid Uptake

Xabier L. ArangurenBaki TopalGiulia CoppielloJosé Manuel García-verdugoJohannes Van LoonSandra SchoorsPeter CarmelietJan GoffinAernout LuttunMelissa SwinnenPaul HerijgersMaría Salomé Sirerol-piquerSara VandenwijngaertIne VandersmissenMaría CollantesFelipe ProsperStefan JanssensIván Peñuelas

subject

CD36 AntigensHeterozygoteEndotheliumCD36Cardiac Output LowAdipose tissueLipoproteins VLDLBiologyFatty Acid-Binding ProteinsMicePhysiology (medical)Protein Interaction MappingBasic Helix-Loop-Helix Transcription FactorsmedicineAnimalsHumansRNA Small InterferingTranscription factorCells CulturedHomeodomain Proteinschemistry.chemical_classificationLipoprotein lipaseMyocardiumFatty AcidsEndothelial CellsFatty acidSkeletal muscleMetabolismCoronary VesselsCell biologyMice Inbred C57BLLipoprotein LipaseGlucosemedicine.anatomical_structureAdipose TissuechemistryBiochemistryTissue Array Analysisbiology.proteinTranscriptomeCardiology and Cardiovascular Medicine

description

Background— Microvascular endothelium in different organs is specialized to fulfill the particular needs of parenchymal cells. However, specific information about heart capillary endothelial cells (ECs) is lacking. Methods and Results— Using microarray profiling on freshly isolated ECs from heart, brain, and liver, we revealed a genetic signature for microvascular heart ECs and identified Meox2/Tcf15 heterodimers as novel transcriptional determinants. This signature was largely shared with skeletal muscle and adipose tissue endothelium and was enriched in genes encoding fatty acid (FA) transport–related proteins. Using gain- and loss-of-function approaches, we showed that Meox2/Tcf15 mediate FA uptake in heart ECs, in part, by driving endothelial CD36 and lipoprotein lipase expression and facilitate FA transport across heart ECs. Combined Meox2 and Tcf15 haplodeficiency impaired FA uptake in heart ECs and reduced FA transfer to cardiomyocytes. In the long term, this combined haplodeficiency resulted in impaired cardiac contractility. Conclusions— Our findings highlight a regulatory role for ECs in FA transfer to the heart parenchyma and unveil 2 of its intrinsic regulators. Our insights could be used to develop new strategies based on endothelial Meox2/Tcf15 targeting to modulate FA transfer to the heart and remedy cardiac dysfunction resulting from altered energy substrate usage.

https://doi.org/10.1161/circulationaha.114.013721