State-dependent connectivity in auditory-reward networks predicts peak pleasure experiences to music.

IF 9.8 1区 生物学 Q1 Agricultural and Biological Sciences
PLoS Biology Pub Date : 2024-08-12 eCollection Date: 2024-08-01 DOI:10.1371/journal.pbio.3002732
Kazuma Mori, Robert Zatorre
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引用次数: 0

Abstract

Music can evoke pleasurable and rewarding experiences. Past studies that examined task-related brain activity revealed individual differences in musical reward sensitivity traits and linked them to interactions between the auditory and reward systems. However, state-dependent fluctuations in spontaneous neural activity in relation to music-driven rewarding experiences have not been studied. Here, we used functional MRI to examine whether the coupling of auditory-reward networks during a silent period immediately before music listening can predict the degree of musical rewarding experience of human participants (N = 49). We used machine learning models and showed that the functional connectivity between auditory and reward networks, but not others, could robustly predict subjective, physiological, and neurobiological aspects of the strong musical reward of chills. Specifically, the right auditory cortex-striatum/orbitofrontal connections predicted the reported duration of chills and the activation level of nucleus accumbens and insula, whereas the auditory-amygdala connection was associated with psychophysiological arousal. Furthermore, the predictive model derived from the first sample of individuals was generalized in an independent dataset using different music samples. The generalization was successful only for state-like, pre-listening functional connectivity but not for stable, intrinsic functional connectivity. The current study reveals the critical role of sensory-reward connectivity in pre-task brain state in modulating subsequent rewarding experience.

听觉-奖赏网络中与状态相关的连通性可预测音乐带来的高峰愉悦体验。
音乐能唤起愉悦和奖励体验。过去对与任务相关的大脑活动进行的研究揭示了音乐奖赏敏感性特征的个体差异,并将其与听觉系统和奖赏系统之间的相互作用联系起来。然而,与音乐驱动的奖赏体验相关的自发神经活动的状态依赖性波动尚未得到研究。在此,我们使用功能性核磁共振成像来研究听觉-奖赏网络在聆听音乐前的静默期的耦合是否能预测人类参与者(49 人)的音乐奖赏体验程度。我们使用机器学习模型表明,听觉网络和奖赏网络之间的功能连接(而非其他网络)可以稳健地预测强烈音乐奖赏的主观、生理和神经生物学方面。具体来说,右侧听觉皮层-脑干/大脑前额叶的连接可预测所报告的寒战持续时间以及脑核和脑岛的激活水平,而听觉-杏仁核的连接则与心理生理唤醒有关。此外,在使用不同音乐样本的独立数据集中,对第一个样本得出的预测模型进行了归纳。这种泛化只对状态类、听前功能连接成功,而对稳定的内在功能连接却不成功。目前的研究揭示了任务前大脑状态中的感觉-奖赏连通性在调节后续奖赏体验中的关键作用。
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来源期刊
PLoS Biology
PLoS Biology BIOCHEMISTRY & MOLECULAR BIOLOGY-BIOLOGY
CiteScore
15.40
自引率
2.00%
发文量
359
审稿时长
3-8 weeks
期刊介绍: PLOS Biology is the flagship journal of the Public Library of Science (PLOS) and focuses on publishing groundbreaking and relevant research in all areas of biological science. The journal features works at various scales, ranging from molecules to ecosystems, and also encourages interdisciplinary studies. PLOS Biology publishes articles that demonstrate exceptional significance, originality, and relevance, with a high standard of scientific rigor in methodology, reporting, and conclusions. The journal aims to advance science and serve the research community by transforming research communication to align with the research process. It offers evolving article types and policies that empower authors to share the complete story behind their scientific findings with a diverse global audience of researchers, educators, policymakers, patient advocacy groups, and the general public. PLOS Biology, along with other PLOS journals, is widely indexed by major services such as Crossref, Dimensions, DOAJ, Google Scholar, PubMed, PubMed Central, Scopus, and Web of Science. Additionally, PLOS Biology is indexed by various other services including AGRICOLA, Biological Abstracts, BIOSYS Previews, CABI CAB Abstracts, CABI Global Health, CAPES, CAS, CNKI, Embase, Journal Guide, MEDLINE, and Zoological Record, ensuring that the research content is easily accessible and discoverable by a wide range of audiences.
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