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Hoelscher, V. M.

Publications and source records attributed to Hoelscher, V. M..

2 recordsLinked to original sources

The Chromatin Remodeler Protein CHD4 Cooperates With NKX2.2 to Regulate Pancreatic Beta Cell Integrity

NKX2.2 is a transcription factor that regulates pancreatic islet beta ({beta}) cell identity and function; however, cofactor proteins that modulate the functional activity of NKX2.2 in {beta} cells are relatively unexplored. An unbiased proteomics screen identified chromodomain helicase DNA-binding protein 4 (CHD4) as an NKX2.2 interacting partner. CHD4 is a nucleosome remodeler that directs the appropriate differentiation, maturation and function of many cell types. To characterize the roles of CHD4 in {beta} cells, we generated Chd4 {beta}KO mice. Deletion of Chd4 substantially impaired the function of {beta} cells. The Chd4 {beta}KO mice became diabetic due to the disruption of islet integrity, calcium signaling and downregulation of essential {beta} cell regulatory genes. We also discovered CHD4 is required to bind at and repress non-beta cell genes, including Kcnj5, the gene that encodes the GIRK4 potassium channel in {beta} cells. Aberrant upregulation of GIRK4 causes impaired glucose-stimulated insulin secretion. These studies demonstrate that CHD4 is an essential transcriptional cofactor of NKX2.2 that is required for the proper maturation and function of pancreatic {beta} cells. Article HighlightsO_LINKX2.2 interacts with the Nucleosome Remodeling and Deacetylase (NuRD) complex through its interaction with CHD4. C_LIO_LIDeletion of CHD4 from developing pancreatic {beta} cells in mice causes diabetes due to a loss of islet integrity, disrupted calcium signaling and impaired insulin secretion. C_LIO_LIBeta cells lacking CHD4 inappropriately upregulate the GIRK4 potassium channel; inhibition of GIRK4 rescues the insulin secretion defect. C_LI

developmental biology↗

Fetal cannabidiol (CBD) exposure alters thermal pain sensitivity, cognition, and prefrontal cortex excitability

Thousands of people suffer from nausea with pregnancy each year. Nausea can be alleviated with cannabidiol (CBD), a primary component of cannabis that is widely available. However, is it unknown how fetal CBD exposure affects embryonic development and postnatal outcomes. CBD binds and activates receptors that are important for fetal development and are expressed in the fetal brain, including serotonin receptors (5HT1A), voltage-gated potassium (Kv)7 receptors, and the transient potential vanilloid 1 receptor (TRPV1). Excessive activation of each of these receptors during fetal development can disrupt neurodevelopment. Here, we test the hypothesis that intrauterine CBD exposure alters offspring neurodevelopment and postnatal behavior. We show that fetal CBD exposure sensitizes male offspring to thermal pain in a TRPV1 dependent manner. We show that fetal CBD exposure decreases cognitive function in female CBD-exposed offspring. We demonstrate that fetal CBD exposure increases the minimum current required to elicit action potentials and decreases the number of action potentials in female offspring layer 2/3 prefrontal cortex (PFC) pyramidal neurons. Fetal CBD exposure reduces the amplitude of glutamate uncaging-evoked excitatory post-synaptic currents. Combined, these data show that fetal CBD exposure disrupts neurodevelopment and postnatal behavior in a sex-dependent manner. One Sentence SummaryCannabidiol (CBD) consumption during pregnancy alters offspring behavior and neuronal excitability in a sex dependent manner in mice.

animal behavior and cognition↗