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An early endothelial cell–specific requirement for Glut1 is revealed in Glut1 deficiency syndrome model mice
Maoxue Tang, Sarah H. Park, Sabrina Petri, Hang Yu, Carlos B. Rueda, E. Dale Abel, Carla Y. Kim, Elizabeth M.C. Hillman, Fanghua Li, Yeojin Lee, Lei Ding, Smitha Jagadish, Wayne N. Frankel, Darryl C. De Vivo, Umrao R. Monani
Maoxue Tang, Sarah H. Park, Sabrina Petri, Hang Yu, Carlos B. Rueda, E. Dale Abel, Carla Y. Kim, Elizabeth M.C. Hillman, Fanghua Li, Yeojin Lee, Lei Ding, Smitha Jagadish, Wayne N. Frankel, Darryl C. De Vivo, Umrao R. Monani
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Research Article Neuroscience

An early endothelial cell–specific requirement for Glut1 is revealed in Glut1 deficiency syndrome model mice

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Abstract

Paucity of the glucose transporter-1 (Glut1) protein resulting from haploinsufficiency of the SLC2A1 gene arrests cerebral angiogenesis and disrupts brain function to cause Glut1 deficiency syndrome (Glut1 DS). Restoring Glut1 to Glut1 DS model mice prevents disease, but the precise cellular sites of action of the transporter, its temporal requirements, and the mechanisms linking scarcity of the protein to brain cell dysfunction remain poorly understood. Here, we show that Glut1 functions in a cell-autonomous manner in the cerebral microvasculature to affect endothelial tip cells and, thus, brain angiogenesis. Moreover, brain endothelial cell–specific Glut1 depletion not only triggers a severe neuroinflammatory response in the Glut1 DS brain, but also reduces levels of brain-derived neurotrophic factor (BDNF) and causes overt disease. Reduced BDNF correlated with fewer neurons in the Glut1 DS brain. Controlled depletion of the protein demonstrated that brain pathology and disease severity was greatest when Glut1 scarcity was induced neonatally, during brain angiogenesis. Reducing Glut1 at later stages had mild or little effect. Our results suggest that targeting brain endothelial cells during early development is important to ensure proper brain angiogenesis, prevent neuroinflammation, maintain BDNF levels, and preserve neuron numbers. This requirement will be essential for any disease-modifying therapeutic strategy for Glut1 DS.

Authors

Maoxue Tang, Sarah H. Park, Sabrina Petri, Hang Yu, Carlos B. Rueda, E. Dale Abel, Carla Y. Kim, Elizabeth M.C. Hillman, Fanghua Li, Yeojin Lee, Lei Ding, Smitha Jagadish, Wayne N. Frankel, Darryl C. De Vivo, Umrao R. Monani

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Figure 6

Glut1 haploinsufficiency results in fewer brain neurons and reduced levels of BDNF.

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Glut1 haploinsufficiency results in fewer brain neurons and reduced leve...
(A) Enumeration of NeuN+ cells in the ventral posteriomedial (VPM) nucleus of the thalamus of mutants either systemically heterozygous (Glut1Δ/+) or EC-specific haploinsufficient (Tie2-Cre;Glut1fl/+) for the Glut1 allele; **P < 0.01, ***P < 0.001, t tests, n ≥ 3 regions from each of n = 3 mice of each genotype examined. (B) Representative thalamic sections from Glut1Δ/+ mutant and control mice dual-stained for GFAP and NeuN to highlight the marked astrocytosis and reduced neurons under conditions of reduced Glut1. (C) Quantified results of PCR for BDNF transcripts in brain tissue of mutants either systemically heterozygous (Glut1Δ/+) or EC-specific haploinsufficient (Tie2-Cre;Glut1fl/+) for the Glut1 allele. **P < 0.01, ***P < 0.001, t tests, n = 4 mice of each genotype examined. (D) Thalamic sections from mutant and control mice dual-stained for GFAP and BDNF illustrate the greater extent of the astrocytosis and relative paucity of BDNF+ cells in the former.

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