Showing posts with label innate. Show all posts
Showing posts with label innate. Show all posts

2018/02/14

2018/2/14 木村

Multiple systems for emotion-based action selection in the amygdala




Htr2a-Expressing Cells in the Central Amygdala Control the Hierarchy between Innate and Learned Fear

Tomoko Isosaka, Tomohiko Matsuo, Takashi Yamaguchi, Kazuo Funabiki, Shigetada Nakanishi, Reiko Kobayakawa, Ko Kobayakawa
Cell. 2015 Nov 19;163(5):1153-1164. doi: 10.1016/j.cell.2015.10.047.

Highlights
  • A hierarchical relationship exists between innate- and learned-fear responses 
  • Innate but not learned-fear stimuli suppress the activity of CeA Htr2a+ cells 
  • CeA Htr2a+ cell inhibition up/downregulates innate/learned freezing, respectively 
  • CeA Htr2a+ cells act as a hierarchy generator prioritizing innate over learned fear


A competitive inhibitory circuit for selection of active and passive fear responses

Jonathan P. Fadok, Sabine Krabbe, Milica Markovic, Julien Courtin, Chun Xu, Lema Massi, Paolo Botta, Kristine Bylund, Christian Müller, Aleksandar Kovacevic, Philip Tovote & Andreas Lüthi
Nature. 2017 Feb 2;542(7639):96-100. doi: 10.1038/nature21047.

Abstract
When faced with threat, the survival of an organism is contingent upon the selection of appropriate active or passive behavioural responses. Freezing is an evolutionarily conserved passive fear response that has been used extensively to study the neuronal mechanisms of fear and fear conditioning in rodents. However, rodents also exhibit active responses such as flight under natural conditions. The central amygdala (CEA) is a forebrain structure vital for the acquisition and expression of conditioned fear responses, and the role of specific neuronal sub-populations of the CEA in freezing behaviour is well-established. Whether the CEA is also involved in flight behaviour, and how neuronal circuits for active and passive fear behaviour interact within the CEA, are not yet understood. Here, using in vivo optogenetics and extracellular recordings of identified cell types in a behavioural model in which mice switch between conditioned freezing and flight, we show that active and passive fear responses are mediated by distinct and mutually inhibitory CEA neurons. Cells expressing corticotropin-releasing factor (CRF+) mediate conditioned flight, and activation of somatostatin-positive (SOM+) neurons initiates passive freezing behaviour. Moreover, we find that the balance between conditioned flight and freezing behaviour is regulated by means of local inhibitory connections between CRF+ and SOM+ neurons, indicating that the selection of appropriate behavioural responses to threat is based on competitive interactions between two defined populations of inhibitory neurons, a circuit motif allowing for rapid and flexible action selection.
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2013/12/13

2013/12/13 渡邊

Prefrontal entrainment of amygdala activity signals safety in learned fear and innate anxiety
Ekaterina Likhtik, Joseph M Stujenske, Mihir A Topiwala, Alexander Z
Harris & Joshua A Gordon
Nature Neuroscience Published online 17 November 2013

BLA-mPFCのコネクションはFear extinctionに重要であることが知られており、また最近ではBLA-mPFCのLocal field potentialのTheta oscillationの同期の関与が注目されております。
この論文ではFear discrimination (あるCueまたは状況が危険か危険ではないか)という弁別にもこのBLA-mPFCのTheta oscilattionが関与していることを報告しています。
また、単にTheta bandの同期があるということのみではなく、OscillationがmPFCとBLAでどちらが優位か(先導しているか)という点で様々な解析を行っております。結果としましては、安全なCueが提示された場合には同期のリズムがmPFC⇒BLAとなり、つまりmPFC優位になります。一方で危険なCueに対してはBLAの神経発火が上昇し、Theta oscillation同期はBLAとmPFCどちらかが先行することはなくなります。
外界から喚起される情動がどのようにコントロールされ、また反対にコントロールから解放されて強い情動を喚起するのか、示唆を与えてくれる内容です。

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