A midbrain-to-ventral-striatum dopaminergic pathway orchestrates odor-guided insect predation in mice

IF 9.1 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Wenqiang Wang, Yanbiao Zhong, Ruiyi Tan, Maoyuan Wang, Jia Liu, Ding Wang, Haiping Wang, Yue Li, Guanqing Li, Jian Yang, Peng Wang, Jialiang Wu, Jianxu Zhang, Chen-Zhu Wang, Haishui Shi, Minghong Ma, Yiqun Yu, Yun-Feng Zhang
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Abstract

Foraging and food consumption are fundamental for the survival of animals. In natural environments, wild rodents feed on insects, including moth larvae, and odor-guided evaluation of potential food resources is a critical step in initiating feeding behavior. However, the mechanisms by which rodents seek and feed on insect prey remain poorly understood. Herein, we employed a laboratory-based predator–prey interaction system using mice and cotton bollworm larvae to investigate the neural mechanisms underlying food-seeking and feeding behaviors at both cellular and neural circuit levels. We demonstrate that mice exhibit a strong preference for consuming fed larvae, and this preference is dependent on the main olfactory system. Gas chromatography-mass spectrometry analysis revealed significant differences in the chemical profiles of fed and unfed larvae, with fed larvae containing a higher level of linoleic acid (LA) and a lower level of (Z)-9-tricosene [(Z)-9-TE]. Behavioral assays showed that mice, as well as Brand’s voles and brown rats, are attracted to LA but avoid (Z)-9-TE in a two-choice odor preference test. Furthermore, we identified that the dopaminergic pathway from the ventral tegmental area (VTA) to the medial olfactory tubercle (mOT) plays a central role in mediating this preference. Chemogenetic inhibition of this pathway abolished the preference for LA over (Z)-9-TE, while chemogenetic activation reversed this effect. Additionally, fiber photometry recordings and pharmacology revealed that mOT D1 and D2 spiny projection neurons preferentially mediate attraction to LA and avoidance of (Z)-9-TE, respectively. These findings uncover a neurobiological system in rodents that supports insect predation based upon chemosignals.
小鼠中脑-腹侧纹状体多巴胺能通路协调气味引导的昆虫捕食
觅食和食物消耗是动物生存的基础。在自然环境中,野生啮齿动物以昆虫为食,包括蛾子幼虫,气味引导的潜在食物资源评估是启动摄食行为的关键步骤。然而,啮齿动物寻找昆虫猎物并以其为食的机制仍然知之甚少。在此,我们采用基于实验室的捕食者-猎物相互作用系统,以小鼠和棉铃虫幼虫为研究对象,在细胞和神经回路水平上研究了寻找食物和摄食行为的神经机制。我们证明,小鼠表现出强烈的偏好消费喂养的幼虫,这种偏好是依赖于主要的嗅觉系统。气相色谱-质谱分析显示,喂食和未喂食幼虫的化学特征存在显著差异,喂食幼虫的亚油酸(LA)含量较高,而(Z)-9-三醇[(Z)-9-TE]含量较低。行为分析表明,在双选择气味偏好测试中,小鼠,以及布兰德田鼠和褐鼠,被LA吸引,但避免(Z)-9-TE。此外,我们发现从腹侧被盖区(VTA)到内侧嗅结节(mOT)的多巴胺能通路在调节这种偏好中起着核心作用。这一途径的化学发生抑制消除了LA对(Z)-9-TE的偏好,而化学发生激活则逆转了这一作用。此外,纤维光度记录和药理学显示,mOT D1和D2棘投射神经元分别优先介导对LA的吸引和对(Z)-9-TE的回避。这些发现揭示了啮齿动物的神经生物学系统,该系统支持基于化学信号的昆虫捕食。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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