Hippocampal-Specific Insulin Resistance Elicits Synaptic Effects on Glutamate Neurotransmission

IF 4.2 3区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Jennifer M. Erichsen, Jennifer L. Woodruff, Claudia A. Grillo, Gerardo G. Piroli, Jim R. Fadel, Lawrence P. Reagan
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引用次数: 0

Abstract

Impaired insulin signaling in brain regions such as the hippocampus is thought to contribute to the cognitive deficits associated with conditions such as mild cognitive impairment and Alzheimer's disease. We have previously demonstrated a number of adverse effects in rats with hippocampal-specific insulin resistance, including hippocampal structural defects, impairments in hippocampal-dependent learning and memory, neuroplasticity deficits, behavioral despair, and anxiety-like behaviors. Additionally, we showed that hippocampal-specific insulin resistance decreased the serine phosphorylation of GluA1 and expression of GluN2B. These effects on postsynaptic glutamate receptors were particularly fascinating, due to the proposed theory of the glutamatergic system as a facilitator of hippocampal synaptic transmission. However, the synaptic effects of hippocampal-specific insulin resistance with regard to glutamate neurotransmission had yet to be elucidated. To address this question, we examined hippocampal glutamate neurochemistry and expression of glutamatergic synaptic proteins in rats with hippocampal-specific insulin resistance. We also examined the ability of intranasal insulin to impact glutamatergic synapses. We found decreased synaptic concentrations of glutamate in the hippocampus, likely a result of reduced hippocampal vGluT2 expression. Additionally, hippocampal glutamate efflux was significantly increased in rats with hippocampal-specific insulin resistance in response to a high (12 U), but not a low (0.072 U), dose of intranasal insulin. Our findings indicate that hippocampal-specific insulin resistance elicits synaptic plasticity deficits in glutamatergic synapses, which may be overcome by intranasal insulin administration.

海马特异性胰岛素抵抗引发谷氨酸神经传递的突触效应
人们认为,海马体等大脑区域的胰岛素信号受损会导致与轻度认知障碍和阿尔茨海默病等疾病相关的认知缺陷。我们之前已经证明了一些海马特异性胰岛素抵抗大鼠的不良反应,包括海马结构缺陷、海马依赖性学习和记忆障碍、神经可塑性缺陷、行为绝望和焦虑样行为。此外,我们发现海马特异性胰岛素抵抗降低了GluA1的丝氨酸磷酸化和GluN2B的表达。这些对突触后谷氨酸受体的影响特别令人着迷,因为提出了谷氨酸能系统作为海马突触传递促进者的理论。然而,海马特异性胰岛素抵抗在谷氨酸神经传递中的突触作用尚未阐明。为了解决这个问题,我们检查了海马特异性胰岛素抵抗大鼠的海马谷氨酸神经化学和谷氨酸能突触蛋白的表达。我们还研究了鼻内胰岛素影响谷氨酸突触的能力。我们发现海马中谷氨酸突触浓度下降,可能是海马vGluT2表达减少的结果。此外,在高剂量(12 U)而非低剂量(0.072 U)鼻内胰岛素的情况下,海马特异性胰岛素抵抗大鼠的海马谷氨酸外排显著增加。我们的研究结果表明,海马特异性胰岛素抵抗引起谷氨酸能突触的突触可塑性缺陷,这可能通过鼻内注射胰岛素来克服。
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来源期刊
Journal of Neurochemistry
Journal of Neurochemistry 医学-神经科学
CiteScore
9.30
自引率
2.10%
发文量
181
审稿时长
2.2 months
期刊介绍: Journal of Neurochemistry focuses on molecular, cellular and biochemical aspects of the nervous system, the pathogenesis of neurological disorders and the development of disease specific biomarkers. It is devoted to the prompt publication of original findings of the highest scientific priority and value that provide novel mechanistic insights, represent a clear advance over previous studies and have the potential to generate exciting future research.
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