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Cocaine and Caffeine Effects on the Conditioned Place Preference Test: Concomitant Changes on Early Genes within the Mouse Prefrontal Cortex and Nucleus Accumbens.

コカインとカフェインの条件付け場所嗜好性試験における効果:マウス前頭前皮質と側坐核における初期遺伝子の随伴変化 (機械翻訳の邦題)

Frontiers in behavioral neuroscience2017Muñiz JA, Prieto JP, González B, et al.
研究デザインその他の原著論文
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記録の確認項目

研究デザイン
その他の原著論文
対象
未確定
出版年
2017
出典
doi.org
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表示あり
出版状態
有効な記録
状態確認日
2026/08/17
収集日
2026/08/03
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確認期限内
確認段階
自動処理
記録状態
公開

日本語要約(機械生成)

カフェインはコカインなどの違法薬物に混入されることが多く、コカインの効果を増強することが知られているが、報酬関連学習への影響は不明である。本研究では、マウスを用いてカフェイン(5 mg/kg)とコカイン(10 mg/kg)の単独または併用投与が条件付け場所嗜好性(CPP)試験に及ぼす影響と、側坐核(NAc)および内側前頭前皮質(mPFC)における初期遺伝子(IEGs)およびドーパミン・アデノシン受容体サブユニットのmRNA発現を調べた。その結果、併用群ではCPPの嗜好性の顕著な変化と自発運動量の増加が観察された。遺伝子発現解析では、CPP試験後に併用群のNAcでDrd1a、cFos、FosB、mPFCでcFos、Egr1、Npas4の特異的な発現上昇が認められたが、これらの変化はホームケージでの投与では見られなかった。単回条件付けセッションでは、カフェイン単独および併用群でNAcのDrd1a増加とcFos減少、mPFCのDrd1aとDrd2増加が見られ、cFosとNpas4の増加は併用群のmPFCでのみ観察された。これらの結果は、カフェインがコカインの報酬関連記憶を増強し、CPP記憶の符号化と検索に関連するIEGsの発現変化を伴うことを示唆しており、カフェインがコカイン依存の維持に関与する可能性が示された。

この要約は公開抄録のみを根拠にAIが機械的に生成したものです。正確な内容は原文を確認してください。

抄録

Caffeine is the world's most popular psychostimulant and is frequently used as an active adulterant in many illicit drugs including cocaine. Previous studies have shown that caffeine can potentiate the stimulant effects of cocaine and cocaine-induced drug seeking behavior. However, little is known about the effects of this drug combination on reward-related learning, a key process in the maintenance of addiction and vulnerability to relapse. The goal of the present study was thus to determine caffeine and cocaine combined effects on the Conditioned Place Preference (CPP) test and to determine potential differential mRNA expression in the Nucleus Accumbens (NAc) and medial prefrontal cortex (mPFC) of immediate-early genes (IEGs) as well as dopamine and adenosine receptor subunits. Mice were treated with caffeine (5 mg/kg, CAF), cocaine (10 mg/kg, COC), or their combination (caffeine 5 mg/kg + cocaine 10 mg/kg, CAF-COC) and trained in the CPP test or treated with repeated injections inside the home cage. NAc and mPFC tissues were dissected immediately after the CPP test, after a single conditioning session or following psychostimulant injection in the home cage for mRNA expression analysis. CAF-COC induced a marked change of preference to the drug conditioned side of the CPP and a significant increase in locomotion compared to COC. Gene expression analysis after CPP test revealed specific up-regulation in the CAF-COC group of Drd1a, cFos, and FosB in the NAc, and cFos, Egr1, and Npas4 in the mPFC. Importantly, none of these changes were observed when animals received same treatments in their home cage. With a single conditioning session, we found similar effects in both CAF and CAF-COC groups: increased Drd1a and decreased cFos in the NAc, and increased expression of Drd1a and Drd2, in the mPFC. Interestingly, we found that cFos and Npas4 gene expression were increased only in the mPFC of the CAF-COC. Our study provides evidence that caffeine acting as an adulterant could potentiate reward-associated memories elicited by cocaine. This is associated with specific changes in IEGs expression that were observed almost exclusively in mice that received the combination of both psychostimulants in the context of CPP memory encoding and retrieval. Our results highlight the potential relevance of caffeine in the maintenance of cocaine addiction which might be mediated by modifying neural plasticity mechanisms that strengthen learning of the association between drug and environment.

DOI 10.3389/fnbeh.2017.00200

PMID 29093669

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