Frontiers | Comprehensive ethological analysis of fear expression in rats using DeepLabCut and SimBA machine learning model

IF 2.6 3区 医学 Q2 BEHAVIORAL SCIENCES Frontiers in Behavioral Neuroscience Pub Date : 2024-07-15 DOI:10.3389/fnbeh.2024.1440601
Kanat Chanthongdee, Yerko Fuentealba, Thor Wahlestedt, Lou Foulhac, Tetiana Kardash, Andrea Coppola, Markus Heilig, Estelle Barbier
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Abstract

IntroductionDefensive responses to threat-associated cues are commonly evaluated using conditioned freezing or suppression of operant responding. However, rats display a broad range of behaviors and shift their defensive behaviors based on immediacy of threats and context. This study aimed to systematically quantify the defensive behaviors that are triggered in response to threat-associated cues and assess whether they can accurately be identified using DeepLabCut in conjunction with SimBA.MethodsWe evaluated behavioral responses to fear using the auditory fear conditioning paradigm. Observable behaviors triggered by threat-associated cues were manually scored using Ethovision XT. Subsequently, we investigated the effects of diazepam (0, 0.3, or 1 mg/kg), administered intraperitoneally before fear memory testing, to assess its anxiolytic impact on these behaviors. We then developed a DeepLabCut + SimBA workflow for ethological analysis employing a series of machine learning models. The accuracy of behavior classifications generated by this pipeline was evaluated by comparing its output scores to the manually annotated scores.ResultsOur findings show that, besides conditioned suppression and freezing, rats exhibit heightened risk assessment behaviors, including sniffing, rearing, free-air whisking, and head scanning. We observed that diazepam dose-dependently mitigates these risk-assessment behaviors in both sexes, suggesting a good predictive validity of our readouts. With adequate amount of training data (approximately > 30,000 frames containing such behavior), DeepLabCut + SimBA workflow yields high accuracy with a reasonable transferability to classify well-represented behaviors in a different experimental condition. We also found that maintaining the same condition between training and evaluation data sets is recommended while developing DeepLabCut + SimBA workflow to achieve the highest accuracy.DiscussionOur findings suggest that an ethological analysis can be used to assess fear learning. With the application of DeepLabCut and SimBA, this approach provides an alternative method to decode ongoing defensive behaviors in both male and female rats for further investigation of fear-related neurobiological underpinnings.
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前沿 | 利用 DeepLabCut 和 SimBA 机器学习模型对大鼠的恐惧表达进行综合伦理学分析
引言 对威胁相关线索的防御反应通常使用条件冻结或操作反应抑制进行评估。然而,大鼠表现出的行为范围很广,并且会根据威胁的即时性和情境改变其防御行为。本研究旨在系统地量化大鼠对威胁相关线索触发的防御行为,并评估是否可以使用 DeepLabCut 和 SimBA 对这些行为进行准确识别。使用 Ethovision XT 对威胁相关线索引发的可观察行为进行人工评分。随后,我们研究了在恐惧记忆测试前腹腔注射地西泮(0、0.3 或 1 毫克/千克)的效果,以评估其对这些行为的抗焦虑影响。然后,我们开发了一个 DeepLabCut + SimBA 工作流程,利用一系列机器学习模型进行伦理分析。结果我们的研究结果表明,除了条件性抑制和冷冻外,大鼠还表现出更强的风险评估行为,包括嗅闻、饲养、自由空气拂动和头部扫描。我们观察到地西泮剂量依赖性地减轻了雌雄大鼠的这些风险评估行为,这表明我们的读数具有良好的预测有效性。有了足够数量的训练数据(包含此类行为的帧数约大于 30,000 帧),DeepLabCut + SimBA 工作流程就能产生较高的准确性,并能在不同的实验条件下对代表性较强的行为进行合理的转移分类。我们还发现,在开发 DeepLabCut + SimBA 工作流程时,建议在训练数据集和评估数据集之间保持相同的条件,以达到最高的准确率。通过应用 DeepLabCut 和 SimBA,这种方法为解码雌雄大鼠的持续防御行为提供了另一种方法,以便进一步研究与恐惧相关的神经生物学基础。
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来源期刊
Frontiers in Behavioral Neuroscience
Frontiers in Behavioral Neuroscience BEHAVIORAL SCIENCES-NEUROSCIENCES
CiteScore
4.70
自引率
3.30%
发文量
506
审稿时长
6-12 weeks
期刊介绍: Frontiers in Behavioral Neuroscience is a leading journal in its field, publishing rigorously peer-reviewed research that advances our understanding of the neural mechanisms underlying behavior. Field Chief Editor Nuno Sousa at the Instituto de Pesquisa em Ciências da Vida e da Saúde (ICVS) is supported by an outstanding Editorial Board of international experts. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to researchers, academics, clinicians and the public worldwide. This journal publishes major insights into the neural mechanisms of animal and human behavior, and welcomes articles studying the interplay between behavior and its neurobiological basis at all levels: from molecular biology and genetics, to morphological, biochemical, neurochemical, electrophysiological, neuroendocrine, pharmacological, and neuroimaging studies.
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