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Published on: December 7, 2017
Repeated hypoglycemia remodels neural inputs and disrupts mitochondrial function to blunt glucose-inhibited GHRH
Mitchell Bayne1, Alexandra Alvarsson1, Kavya Devarakonda1
1Diabetes, Obesity and Metabolism Institute.
Abstract:
Hypoglycemia is a frequent complication of diabetes, limiting therapy and increasing morbidity and mortality. With recurrent hypoglycemia, the counterregulatory response (CRR) to decreased blood glucose is blunted, resulting in hypoglycemia-associated autonomic failure (HAAF). The mechanisms leading to these blunted effects are only poorly understood. Here, we report, with ISH, IHC, and the tissue-clearing capability of iDISCO+, that growth hormone releasing hormone (GHRH) neurons represent a unique population of arcuate nucleus neurons activated by glucose deprivation in vivo. Repeated glucose deprivation reduces GHRH neuron activation and remodels excitatory and inhibitory inputs to GHRH neurons. We show that low glucose sensing is coupled to GHRH neuron depolarization, decreased ATP production, and mitochondrial fusion. Repeated hypoglycemia attenuates these responses during low glucose. By maintaining mitochondrial length with the small molecule mitochondrial division inhibitor-1, we preserved hypoglycemia sensitivity in vitro and in vivo. Our findings present possible mechanisms for the blunting of the CRR, significantly broaden our understanding of the structure of GHRH neurons, and reveal that mitochondrial dynamics play an important role in HAAF. We conclude that interventions targeting mitochondrial fission in GHRH neurons may offer a new pathway to prevent HAAF in patients with diabetes.
Insights
Recurrent hypoglycemia impairs the body's glucose counterregulatory response (CRR) by affecting growth hormone releasing hormone (GHRH) neurons. Targeting mitochondrial dynamics in GHRH neurons may prevent hypoglycemia-associated autonomic failure (HAAF).
Area of Science:
- Neuroscience
- Endocrinology
- Metabolism
Background:
- Hypoglycemia is a common diabetes complication.
- Recurrent hypoglycemia leads to hypoglycemia-associated autonomic failure (HAAF) due to a blunted counterregulatory response (CRR).
- Mechanisms underlying HAAF are poorly understood.
Purpose of the Study:
- Investigate the role of growth hormone releasing hormone (GHRH) neurons in glucose deprivation.
- Elucidate the mechanisms of blunted CRR in HAAF.
- Explore therapeutic targets for HAAF.
Main Methods:
- In situ hybridization (ISH), immunohistochemistry (IHC), and iDISCO+ tissue clearing.
- In vivo and in vitro glucose deprivation models.
- Mitochondrial dynamics assessment and manipulation using mitochondrial division inhibitor-1.
Main Results:
- GHRH neurons in the arcuate nucleus are activated by glucose deprivation.
- Repeated glucose deprivation reduces GHRH neuron activation and alters synaptic inputs.
- Low glucose sensing involves GHRH neuron depolarization, decreased ATP, and mitochondrial fusion.
- Mitochondrial dynamics are crucial for maintaining hypoglycemia sensitivity.
Conclusions:
- Mitochondrial dynamics in GHRH neurons play a key role in HAAF.
- Targeting mitochondrial fission in GHRH neurons may offer a novel therapeutic strategy for HAAF prevention in diabetic patients.
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