Anodal direct current stimulation of the auditory cortex at the onset of presbycusis delays cortical aging.

IF 2.7 3区 医学 Q1 ANATOMY & MORPHOLOGY
I S Fernández Del Campo, A J de la Fuente, I Díaz, I Plaza, M A Merchán
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引用次数: 0

Abstract

Presbycusis or age-related hearing loss (ARHL) affects millions of people worldwide, increasing their risk of cognitive decline and poor quality of life. However, ARHL remains an irreversible condition due to our inability to induce inner-ear hair cell regeneration. Nevertheless, multisession epidural stimulation of the auditory cortex (AC) at the onset of ARHL prevents hearing threshold elevation in naturally aging Wistar rats. Accordingly, we hypothesized that anodal direct current (DC) stimulation of the AC may also compensate for age-related maladaptive, activity-dependent changes. Here, we examined immunocytochemical markers in the AC, including early genes (c-fos and Arc), AMPA receptors (GluR2/3), parvalbumin (PV), and GAD67, along with auditory-evoked potentials (CAEPs) recorded in both auditory and visual (VC) cortices. When comparing 6 and 18.13-month-old rats without AC simulation, we observed loss of c-fos and Arc-positive neurons and decreased GluR2/3 expression, confirming altered AC neuronal network plasticity and activation. In addition, we noted changes in PV and decreased GAD67 immunoreactivity suggesting disrupted inhibition and significantly increased wave amplitudes in CAEPs, altered AC latencies, and decreased VC responses. By contrast, electrically stimulated rats showed no significant variations in early gene markers, GluR2/3, PV, or GAD67 with age, and the amplitudes and latencies of CAEPs recorded in their AC and VC resembled those of young rat. These findings indicate that anodal DC stimulation at the onset of ARHL delays AC aging by minimizing the loss of inhibition and preventing increases in cortical excitability in Wistar rats.

老年性耳聋发病时听觉皮层的阳极直流电刺激可延缓皮层老化。
老年性耳聋或年龄相关性听力损失(ARHL)影响着全世界数百万人,增加了他们认知能力下降和生活质量下降的风险。然而,由于我们无法诱导内耳毛细胞再生,ARHL仍然是一种不可逆转的疾病。然而,在ARHL发病时对听觉皮层(AC)进行多次硬膜外刺激可以防止自然衰老Wistar大鼠的听力阈值升高。因此,我们假设AC的阳极直流电刺激也可能补偿与年龄相关的适应性不良和活动依赖性变化。在这里,我们检测了AC中的免疫细胞化学标记,包括早期基因(c-fos和Arc)、AMPA受体(GluR2/3)、小白蛋白(PV)和GAD67,以及听觉和视觉(VC)皮层中记录的听觉诱发电位(CAEPs)。当比较6月龄和18.13月龄大鼠时,我们观察到c-fos和arc阳性神经元的缺失,GluR2/3的表达降低,证实了AC神经元网络的可塑性和激活的改变。此外,我们注意到PV的变化和GAD67免疫反应性的降低表明caep的抑制被破坏,波幅显著增加,AC潜伏期改变,VC反应降低。相比之下,电刺激大鼠的早期基因标记GluR2/3、PV或GAD67没有随年龄的显著变化,其AC和VC记录的CAEPs的振幅和潜伏期与年轻大鼠相似。这些发现表明,在ARHL发病时,阳极DC刺激通过最小化抑制丧失和防止Wistar大鼠皮层兴奋性增加来延缓AC衰老。
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来源期刊
Brain Structure & Function
Brain Structure & Function 医学-解剖学与形态学
CiteScore
6.00
自引率
6.50%
发文量
168
审稿时长
8 months
期刊介绍: Brain Structure & Function publishes research that provides insight into brain structure−function relationships. Studies published here integrate data spanning from molecular, cellular, developmental, and systems architecture to the neuroanatomy of behavior and cognitive functions. Manuscripts with focus on the spinal cord or the peripheral nervous system are not accepted for publication. Manuscripts with focus on diseases, animal models of diseases, or disease-related mechanisms are only considered for publication, if the findings provide novel insight into the organization and mechanisms of normal brain structure and function.
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