Delta opioid receptors affect acoustic features of song during vocal learning in zebra finches.

IF 2.4 4区 医学 Q3 NEUROSCIENCES
Utkarsha A Singh, Soumya Iyengar
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引用次数: 0

Abstract

Delta-opioid receptors (δ-ORs) are known to be involved in associative learning and modulating motivational states. We wanted to study if they were also involved in naturally-occurring reinforcement learning behaviors such as vocal learning, using the zebra finch model system. Zebra finches learn to vocalize early in development and song learning in males is affected by factors such as the social environment and internal reward, both of which are modulated by endogenous opioids. Pairs of juvenile male siblings (35-day-old) were systemically administered a δ-OR-selective antagonist naltrindole or vehicle (controls) for a period of 10 days. The acoustic structure of songs differed across treated and control groups at adulthood (120 days). Naltrindole-treated birds had a significantly lower pitch, mean frequency, and frequency modulation than controls, whereas there was no difference in the number of songs in naltrindole-treated and control siblings. Since the opioid and dopaminergic systems interact, we decided to study whether blocking δ-ORs during the sensitive period led to changes in dopaminoceptive neurons in Area X, a song control nucleus in the basal ganglia. Interestingly, compared with controls, naltrindole-treated birds had higher numbers of DARPP-32-positive medium spiny neurons and potentially excitatory synapses in Area X. We show that manipulating δ-OR signaling during the learning phase resulted in alterations in the acoustic features of song and had long term effects on dopaminergic targets within the basal ganglia in adulthood. Our results suggest that endogenous opioids regulate the development of cognitive processes and the underlying neural circuitry during the sensitive period for learning.

三角洲阿片受体影响斑马草雀声乐学习过程中歌曲的声学特征。
δ-阿片受体(δ-ORs)参与了联想学习和调节动机状态。我们想研究它们是否也参与了自然发生的强化学习行为,比如声音学习,使用斑胸草雀模型系统。斑胸草雀在发育早期就学会了发声,雄性斑胸草雀的鸣叫学习受到社会环境和内部奖励等因素的影响,这两者都是由内源性阿片类物质调节的。对35日龄的雄性幼崽兄弟姐妹进行10天的系统注射δ- or选择性拮抗剂纳曲多或对照剂。成年后(120天),治疗组和对照组的歌曲声学结构有所不同。纳特林多治疗的鸟的音调、平均频率和频率调制明显低于对照组,而纳特林多治疗的鸟和对照组的兄弟姐妹在歌曲数量上没有差异。由于阿片系统和多巴胺能系统相互作用,我们决定研究在敏感期阻断δ-ORs是否会导致基底神经节中的歌曲控制核X区多巴胺感觉神经元的变化。有趣的是,与对照组相比,纳特林多治疗的鸟类在x区有更多的darpp -32阳性中棘神经元和潜在的兴奋性突触。我们发现,在学习阶段操纵δ-OR信号导致歌曲声学特征的改变,并对成年后基底神经节内的多巴胺能靶点产生长期影响。我们的研究结果表明,内源性阿片类物质在学习敏感期调节认知过程的发展和潜在的神经回路。
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来源期刊
BMC Neuroscience
BMC Neuroscience 医学-神经科学
CiteScore
3.90
自引率
0.00%
发文量
64
审稿时长
16 months
期刊介绍: BMC Neuroscience is an open access, peer-reviewed journal that considers articles on all aspects of neuroscience, welcoming studies that provide insight into the molecular, cellular, developmental, genetic and genomic, systems, network, cognitive and behavioral aspects of nervous system function in both health and disease. Both experimental and theoretical studies are within scope, as are studies that describe methodological approaches to monitoring or manipulating nervous system function.
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