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Functional Interrogation of Adult Hypothalamic Neurogenesis with Focal Radiological Inhibition
Published on: November 14, 2013
Developmental changes in embryonic hypothalamic neurons during prenatal fat exposure
Kinning Poon1, Jessica R Barson, Shawn E Fagan
1The Rockefeller University, Laboratory of Behavioral Neurobiology, New York, NY 10065, USA.
Insights
Prenatal high-fat diet exposure alters embryonic hypothalamic neurons. This may lead to offspring overeating and weight gain, impacting neurodevelopment and appetite regulation.
Area of Science:
- Neuroscience
- Developmental Biology
- Nutritional Science
Background:
- Maternal high-fat diet (HFD) during pregnancy is linked to offspring overeating and weight gain.
- Prenatal HFD exposure is known to affect postnatal neurogenesis and hypothalamic neuropeptide expression.
Purpose of the Study:
- To investigate if prenatal HFD exposure alters hypothalamic neuropeptide expression in embryos.
- To determine if these changes are specific to neurons using an in vitro model.
Main Methods:
- Utilized an in vitro model mimicking in vivo prenatal HFD exposure effects.
- Compared isolated hypothalamic neurons and whole hypothalamus from embryonic day 19 (E19) embryos.
- Analyzed mRNA expression of enkephalin (ENK) and neuropeptide Y (NPY) via quantitative PCR.
- Used immunofluorescence cytochemistry to assess ENK and NPY expressing cells and their distribution.
Main Results:
- Prenatal HFD exposure increased mRNA expression of enkephalin (ENK) and neuropeptide Y (NPY) in embryonic hypothalamus and isolated neurons.
- The number of cells expressing ENK and NPY increased in HFD-exposed embryos.
- Prenatal HFD shifted the neuronal population from low to high peptide levels for ENK and NPY.
Conclusions:
- Neuronal cultures serve as a viable in vitro model for studying diet-induced developmental effects.
- Prenatal HFD exposure alters the population of embryonic hypothalamic neurons expressing ENK and NPY.
- These early neuronal changes may underlie later offspring overeating and weight gain observed in HFD-exposed offspring.
Abstract:
Maternal consumption of a fat-rich diet during pregnancy, which causes later overeating and weight gain in offspring, has been shown to stimulate neurogenesis and increase hypothalamic expression of orexigenic neuropeptides in these postnatal offspring. The studies here, using an in vitro model that mimics in vivo characteristics after prenatal high-fat diet (HFD) exposure, investigate whether these same peptide changes occur in embryos and if they are specific to neurons. Isolated hypothalamic neurons were compared with whole hypothalamus from embryonic day 19 (E19) embryos that were prenatally exposed to HFD and were both found to show similar increases in mRNA expression of enkephalin (ENK) and neuropeptide Y (NPY) compared with that of chow-exposed embryos, with no change in melanin-concentrating hormone, orexin, or galanin. Further examination using immunofluorescence cytochemistry revealed an increase in the number of cells expressing ENK and NPY. By plotting the fluorescence intensity of each cell as a probability density function, three different populations of neurons with low, medium, or high levels of ENK or NPY were found in both HFD and chow groups. The prenatal HFD shifted the density of neurons from the population containing low peptide levels to the population containing high peptide levels. This study indicates that neuronal culture is a useful in vitro system for studying diet effects on neuronal development and shows that prenatal HFD exposure alters the population of hypothalamic neurons containing ENK and NPY in the embryo. These changes may contribute to the increase in HFD intake and body weight observed in offspring.
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