Auditory cortex neurons that encode negative prediction errors respond to omissions of sounds in a predictable sequence.

IF 9.8 1区 生物学 Q1 Agricultural and Biological Sciences
Amit Yaron, Tomoyo Shiramatsu-Isoguchi, Felix B Kern, Kenichi Ohki, Hirokazu Takahashi, Zenas C Chao
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引用次数: 0

Abstract

Predictive coding posits the brain predicts incoming sensory information and signals a positive prediction error when the actual input exceeds what was predicted, and a negative prediction error when it falls short of the prediction. It is theorized that specific neurons encode the negative prediction error, distinct from those for the positive prediction error, and are linked to responses to omitted expected inputs. However, what information is actually encoded by omission responses remains unclear. This information is essential to confirm their role as negative prediction errors. Here, we record single-unit activity in the rat auditory cortex during an omission paradigm where tone probabilities are manipulated to vary the prediction content. We identify neurons that robustly respond to omissions, with responses that increase with evidence accumulation and directly correlate with tone predictability-key characteristics suggesting their role as negative prediction-error neurons. Interestingly, these neurons showed selective omission responses but broad tone responses, revealing an asymmetry in error signaling. To capture this asymmetry, we propose a circuit model composed of laterally interconnected prediction-error neurons that qualitatively reproduce the observed asymmetry. Furthermore, we demonstrate that these lateral connections enhance the precision and efficiency of prediction encoding across receptive fields, and that their validity is supported by the free energy principle.

对负面预测错误进行编码的听觉皮层神经元,会按照可预测的顺序对声音的遗漏做出反应。
预测编码假设大脑预测传入的感官信息,并在实际输入超出预测时发出积极的预测误差,在低于预测时发出消极的预测误差。从理论上讲,特定的神经元编码负面预测误差,不同于那些积极的预测误差,并与省略预期输入的响应相关联。然而,遗漏反应实际上编码了什么信息尚不清楚。这些信息对于确认它们作为负面预测误差的作用至关重要。在这里,我们记录了遗漏范式下大鼠听觉皮层的单单元活动,其中音调概率被操纵以改变预测内容。我们确定了对遗漏有强烈反应的神经元,这些神经元的反应随着证据的积累而增加,并与音调可预测性直接相关,这一关键特征表明它们是负预测误差神经元。有趣的是,这些神经元表现出选择性遗漏反应,但表现出广泛的音调反应,揭示了错误信号的不对称性。为了捕捉这种不对称性,我们提出了一个由横向互连的预测误差神经元组成的电路模型,该模型定性地再现了观察到的不对称性。此外,我们证明了这些横向连接提高了跨感受野预测编码的精度和效率,并且它们的有效性得到了自由能原理的支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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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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