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Modification of ion channels and calcium homeostasis of basal forebrain neurons during aging.

机译:衰老过程中基底前脑神经元离子通道和钙稳态的改变。

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In this paper we review the last several years of work from our lab with attention to changes in the properties of basal forebrain neurons during aging. These neurons play a central role in behavioral functions, such as: attention, arousal, cognition and autonomic activity, and these functions can be adversely affected during aging. Therefore, it is fundamental to define the cellular mechanisms of aging in order to understand the basal forebrain and to correct deficits associated with aging. We have examined changes in the physiological properties of basal forebrain neurons during aging with whole-cell and single-channel patch-clamp, as well as, microfluorimetric measurements of intracellular calcium concentrations. These studies contribute to the understanding of integration within the basal forebrain and to the identification of age-related changes within central mammalian neurons. Although extensive functional/behavioral decline is often assumed to occur during aging, our data support an interpretation of compensatory increases in function for excitatory amino acid receptors, GABA(A) receptors, voltage-gated calcium currents and calcium homeostatic mechanisms. We believe that these changes occur to compensate for decrements accruing with age, such as decreased synaptic contacts, ion imbalances or neuronal loss. The basal forebrain must retain functionality into late aging if senescence is to be productive. Thus, it is critical to recognize the potential cellular and subcellular targets for therapeutic interventions intended to correct age-related behavioral deficits.
机译:在本文中,我们回顾了实验室最近几年的工作,并关注了衰老过程中基底前脑神经元特性的变化。这些神经元在行为功能中起着核心作用,例如:注意力,唤醒,认知和自主神经活动,这些功能在衰老过程中会受到不利影响。因此,定义衰老的细胞机制以了解基础前脑并纠正与衰老相关的缺陷至关重要。我们已经检查了全细胞和单通道膜片钳在衰老过程中基底前脑神经元生理特性的变化,以及细胞内钙浓度的微荧光测量。这些研究有助于了解基础前脑内的整合,并有助于识别哺乳动物中枢神经元内与年龄相关的变化。尽管通常假定衰老过程中会发生广泛的功能/行为下降,但我们的数据支持对兴奋性氨基酸受体,GABA(A)受体,电压门控钙电流和钙稳态机制的功能性补偿性增加的解释。我们相信,这些变化的出现是为了补偿随着年龄增长而产生的减少,例如突触接触减少,离子失衡或神经元丢失。如果要提高衰老能力,基底前脑必须保持功能直至晚衰。因此,识别潜在的细胞和亚细胞靶标对于纠正年龄相关的行为缺陷的治疗干预至关重要。

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