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Published on: February 25, 2016
Nitric oxide mediates selective degeneration of hypothalamic orexin neurons through dysfunction of protein disulfide
Kanae Obukuro1, Mizuki Nobunaga, Moeko Takigawa
1Department of Chemico-Pharmacological Sciences and Department of Analytical and Biophysical Chemistry, Graduate School of Pharmaceutical Sciences, Kumamoto University, Kumamoto 862-0973, Japan.
Abstract:
We addressed the role of nitric oxide (NO) in orexin neuron degeneration that has been observed under various pathological conditions. Administration of an NO donor NOC18 (50 nmol) into the third ventricle of mice resulted in a significant decrease of orexin-immunoreactive (-IR) neurons, in contrast to a modest change in melanin-concentrating hormone-IR neurons. In addition, NOC18 promoted formation of orexin-A-IR aggregates within orexin neurons. An endoplasmic reticulum stress inducer tunicamycin replicated the effect of NOC18 with regard to decrease of orexin-IR neurons and formation of aggregates. We also found that NOC18 caused an increase in S-nitrosation of protein disulfide isomerase (PDI) and a decrease in PDI activity in hypothalamic tissues. Moreover, PDI inhibitors, such as cystamine and securinine, caused a selective decrease of orexin neurons and promoted formation of orexin-A-IR aggregates. Aggregate formation in orexin-IR neurons was also induced by local injection of small interfering RNA targeting PDI. Interestingly, sleep deprivation for 7 consecutive days induced a selective decrease of orexin-IR neurons, which was preceded by aggregate formation in orexin-IR neurons and an increase in S-nitrosated PDI in the hypothalamus. Activity of neuronal NO synthase (nNOS)-positive neurons in the lateral hypothalamus as assessed by c-Fos expression was elevated in response to sleep deprivation. Finally, sleep deprivation-induced decrease of orexin-IR neurons, formation of aggregates, and S-nitrosation of PDI were not observed in nNOS knock-out mice. These results indicate that nNOS-derived NO may mediate specific pathological events in orexin neurons, including neuropeptide misfolding via S-nitrosation and inactivation of PDI.
Insights
Nitric oxide (NO) causes orexin neuron loss and protein misfolding by inactivating protein disulfide isomerase (PDI). This mechanism is implicated in sleep deprivation-induced neurodegeneration.
Area of Science:
- Neuroscience
- Pathology
- Molecular Biology
Background:
- Orexin neuron degeneration is observed in various pathological conditions.
- The role of nitric oxide (NO) in this degeneration is not fully understood.
Purpose of the Study:
- To investigate the role of NO in orexin neuron degeneration.
- To elucidate the molecular mechanisms underlying NO-induced orexin neuron pathology.
Main Methods:
- Administration of NO donor (NOC18) and endoplasmic reticulum stress inducer (tunicamycin) in mice.
- Assessment of orexin and melanin-concentrating hormone neuron integrity.
- Analysis of protein disulfide isomerase (PDI) S-nitrosation and activity.
- Inhibition of PDI using chemical inhibitors and small interfering RNA (siRNA).
- Sleep deprivation model in mice and nNOS knockout mice.
Main Results:
- NO donor induced selective decrease of orexin neurons and aggregate formation.
- Tunicamycin mimicked NO effects, suggesting ER stress involvement.
- NO donor increased PDI S-nitrosation and decreased PDI activity.
- PDI inhibition mimicked NO effects on orexin neurons.
- Sleep deprivation led to orexin neuron loss, aggregate formation, and increased PDI S-nitrosation, which was dependent on nNOS.
Conclusions:
- nNOS-derived NO mediates pathological events in orexin neurons.
- NO induces neuropeptide misfolding and aggregation via PDI S-nitrosation and inactivation.
- This pathway is crucial in sleep deprivation-induced orexin neuron degeneration.
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