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1
One-step optogenetics with multifunctional flexible polymer fibers.基于多功能柔性聚合物纤维的一步式光遗传学
Nat Neurosci. 2017 Apr;20(4):612-619. doi: 10.1038/nn.4510. Epub 2017 Feb 20.
2
Developmental broadening of inhibitory sensory maps.抑制性感觉图谱的发育性拓宽
Nat Neurosci. 2017 Feb;20(2):189-199. doi: 10.1038/nn.4467. Epub 2016 Dec 26.
3
Task Learning Promotes Plasticity of Interneuron Connectivity Maps in the Olfactory Bulb.任务学习促进嗅球中中间神经元连接图谱的可塑性。
J Neurosci. 2016 Aug 24;36(34):8856-71. doi: 10.1523/JNEUROSCI.0794-16.2016.
4
Visualization of cortical, subcortical and deep brain neural circuit dynamics during naturalistic mammalian behavior with head-mounted microscopes and chronically implanted lenses.使用头戴式显微镜和长期植入透镜对自然状态下哺乳动物行为期间的皮质、皮质下和深部脑神经网络动态进行可视化。
Nat Protoc. 2016 Mar;11(3):566-97. doi: 10.1038/nprot.2016.021. Epub 2016 Feb 25.
5
Testing for odor discrimination and habituation in mice.对小鼠进行气味辨别和习惯化测试。
J Vis Exp. 2015 May 5(99):e52615. doi: 10.3791/52615.
6
Methods to measure olfactory behavior in mice.测量小鼠嗅觉行为的方法。
Curr Protoc Toxicol. 2015 Feb 2;63:11.18.1-11.18.21. doi: 10.1002/0471140856.tx1118s63.
7
Continuous postnatal neurogenesis contributes to formation of the olfactory bulb neural circuits and flexible olfactory associative learning.持续的产后神经发生有助于嗅球神经回路的形成和灵活的嗅觉联想学习。
J Neurosci. 2014 Apr 23;34(17):5788-99. doi: 10.1523/JNEUROSCI.0674-14.2014.
8
Laterality and symmetry in rat olfactory behavior and in physiology of olfactory input.大鼠嗅觉行为和嗅觉传入生理学中的偏侧性和对称性。
J Neurosci. 2013 Mar 27;33(13):5750-60. doi: 10.1523/JNEUROSCI.1781-12.2013.
9
Activity-induced remodeling of olfactory bulb microcircuits revealed by monosynaptic tracing.活动诱导的嗅球微循环重塑通过单突触示踪揭示。
PLoS One. 2011;6(12):e29423. doi: 10.1371/journal.pone.0029423. Epub 2011 Dec 28.
10
The distinct temporal origins of olfactory bulb interneuron subtypes.嗅球中间神经元亚型的不同时间起源。
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一种用于小鼠嗅觉学习和辨别能力的客观且可重复的测试

An Objective and Reproducible Test of Olfactory Learning and Discrimination in Mice.

作者信息

Liu Gary, Patel Jay M, Tepe Burak, McClard Cynthia K, Swanson Jessica, Quast Kathleen B, Arenkiel Benjamin R

机构信息

Program in Developmental Biology, Baylor College of Medicine; Medical Scientist Training Program, Baylor College of Medicine;

Medical Scientist Training Program, Baylor College of Medicine; Department of Neuroscience, Baylor College of Medicine.

出版信息

J Vis Exp. 2018 Mar 22(133):57142. doi: 10.3791/57142.

DOI:10.3791/57142
PMID:29630042
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5933237/
Abstract

Olfaction is the predominant sensory modality in mice and influences many important behaviors, including foraging, predator detection, mating, and parenting. Importantly, mice can be trained to associate novel odors with specific behavioral responses to provide insight into olfactory circuit function. This protocol details the procedure for training mice on a Go/No-Go operant learning task. In this approach, mice are trained on hundreds of automated trials daily for 2-4 weeks and can then be tested on novel Go/No-Go odor pairs to assess olfactory discrimination, or be used for studies on how odor learning alters the structure or function of the olfactory circuit. Additionally, the mouse olfactory bulb (OB) features ongoing integration of adult-born neurons. Interestingly, olfactory learning increases both the survival and synaptic connections of these adult-born neurons. Therefore, this protocol can be combined with other biochemical, electrophysiological, and imaging techniques to study learning and activity-dependent factors that mediate neuronal survival and plasticity.

摘要

嗅觉是小鼠主要的感觉方式,影响许多重要行为,包括觅食、捕食者检测、交配和育儿。重要的是,可以训练小鼠将新气味与特定行为反应联系起来,以深入了解嗅觉回路功能。本方案详细介绍了在Go/No-Go操作性学习任务中训练小鼠的程序。在这种方法中,小鼠每天接受数百次自动化试验,持续2至4周,然后可以在新的Go/No-Go气味对上进行测试,以评估嗅觉辨别能力,或者用于研究气味学习如何改变嗅觉回路的结构或功能。此外,小鼠嗅球(OB)具有成年新生神经元持续整合的特点。有趣的是,嗅觉学习增加了这些成年新生神经元的存活率和突触连接。因此,本方案可以与其他生化、电生理和成像技术相结合,以研究介导神经元存活和可塑性的学习和活动依赖性因素。