Evaluating Cholinergic Receptor Expression in Guinea Pig Primary Auditory and Rostral Belt Cortices After Noise Damage Using [3H]Scopolamine and [18F]Flubatine Autoradiography.

IF 2.2 4区 医学 Q3 BIOCHEMICAL RESEARCH METHODS Molecular Imaging Pub Date : 2019-01-01 DOI:10.1177/1536012119848927
Taylor J Forrest, Timothy J Desmond, Mohamad Issa, Peter J H Scott, Gregory J Basura
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Abstract

Noise-induced hearing loss leads to anatomic and physiologic changes in primary auditory cortex (A1) and the adjacent dorsal rostral belt (RB). Since acetylcholine is known to modulate plasticity in other cortical areas, changes in A1 and RB following noise damage may be due to changes in cholinergic receptor expression. We used [3H]scopolamine and [18F]flubatine binding to measure muscarinic acetylcholine receptor (mAChR) and nicotinic acetylcholine receptor (nAChR) expression, respectively, in guinea pig A1 and RB 3 weeks following unilateral, left ear noise exposure, and a temporary threshold shift in hearing. [3H]Scopolamine binding decreased in right A1 and RB (contralateral to noise) compared to sham controls across all cortical layers. [18F]Flubatine binding showed a nonsignificant upward trend in right A1 following noise but only significantly increased in right RB and 2 layers of left RB (ipsilateral to noise). This selective response may ultimately influence cortical plasticity and function. The mechanism(s) by which cholinergic receptors are altered following noise exposure remain unknown. However, these data demonstrate noise exposure may differentially influence mAChRs that typically populate interneurons in A1 and RB more than nAChRs that are traditionally located on thalamocortical projections and provide motivation for cholinergic imaging in clinical patient populations of temporary or permanent hearing loss.

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用[3H]东莨菪碱和[18F]氟巴汀放射自显影技术评价噪声损伤后豚鼠初级听觉和吻侧带皮层胆碱能受体的表达。
噪声性听力损失导致初级听觉皮层(A1)和邻近背吻带(RB)的解剖和生理变化。由于已知乙酰胆碱可调节其他皮质区域的可塑性,噪声损伤后A1和RB的变化可能是由于胆碱能受体表达的变化。我们使用[3H]东莨菪碱和[18F]氟巴汀结合分别测量豚鼠A1和RB在单侧左耳噪声暴露和听力暂时阈值移位3周后,毒毒碱乙酰胆碱受体(mAChR)和烟碱乙酰胆碱受体(nAChR)的表达。[3H]与假对照相比,东莨菪碱在右侧A1和RB(对噪声的对侧)的结合在所有皮质层上都有所减少。[18F]噪声后氟巴汀结合在右侧A1呈不显著上升趋势,但仅在右侧RB和左侧RB 2层(与噪声同侧)显著增加。这种选择性反应可能最终影响皮质的可塑性和功能。胆碱能受体在噪声暴露后发生改变的机制尚不清楚。然而,这些数据表明,噪声暴露可能不同地影响通常位于A1和RB中间神经元的machr,而传统上位于丘脑皮质投射的nachr,并为暂时性或永久性听力损失的临床患者群体提供胆碱能成像的动机。
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来源期刊
Molecular Imaging
Molecular Imaging Biochemistry, Genetics and Molecular Biology-Biotechnology
自引率
3.60%
发文量
21
期刊介绍: Molecular Imaging is a peer-reviewed, open access journal highlighting the breadth of molecular imaging research from basic science to preclinical studies to human applications. This serves both the scientific and clinical communities by disseminating novel results and concepts relevant to the biological study of normal and disease processes in both basic and translational studies ranging from mice to humans.
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