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000163515 0247_ $$2doi$$a10.1016/j.concog.2019.01.005
000163515 0247_ $$2pmid$$apmid:30763808
000163515 0247_ $$2ISSN$$a1053-8100
000163515 0247_ $$2ISSN$$a1090-2376
000163515 037__ $$aDZNE-2022-00275
000163515 041__ $$aEnglish
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000163515 1001_ $$0P:(DE-2719)9000615$$aKizilirmak, Jasmin$$b0$$eFirst author
000163515 245__ $$aLearning of novel semantic relationships via sudden comprehension is associated with a hippocampus-independent network.
000163515 260__ $$aOrlando, Fla.$$bAcademic Press$$c2019
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000163515 520__ $$aSudden comprehension-or insight-during problem-solving can enhance learning, but the underlying neural processes are largely unknown. We investigated neural correlates of learning from sudden comprehension using functional magnetic resonance imaging and a verbal problem-solving task. Solutions and 'solutions' to solvable and unsolvable verbal problems, respectively, were presented to induce sudden comprehension or continued incomprehension. We found activations of the hippocampus, medial prefrontal cortex (mPFC), amygdala, and striatum during sudden comprehension. Notably, however, mPFC and temporo-parietal neocortical structures rather than the hippocampus were associated with later learning of suddenly comprehended solutions. Moreover, difficult compared to easy sudden comprehension elicited midbrain activations and was associated with successful learning, pointing to learning via intrinsic reward. Sudden comprehension of novel semantic associations may constitute a special case of long-term memory formation primarily mediated by the mPFC, expanding our knowledge of its role in prior-knowledge-dependent memory.
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000163515 650_7 $$2Other$$aEncoding
000163515 650_7 $$2Other$$aHippocampus
000163515 650_7 $$2Other$$aInsight
000163515 650_7 $$2Other$$aLearning
000163515 650_7 $$2Other$$aLong-term memory
000163515 650_7 $$2Other$$aProblem solving
000163515 650_7 $$2Other$$aSemantic memory
000163515 650_7 $$2Other$$aSudden comprehension
000163515 650_7 $$2Other$$afMRI
000163515 650_7 $$2Other$$amPFC
000163515 650_2 $$2MeSH$$aAdult
000163515 650_2 $$2MeSH$$aAssociation
000163515 650_2 $$2MeSH$$aComprehension: physiology
000163515 650_2 $$2MeSH$$aFemale
000163515 650_2 $$2MeSH$$aHippocampus: diagnostic imaging
000163515 650_2 $$2MeSH$$aHippocampus: physiology
000163515 650_2 $$2MeSH$$aHumans
000163515 650_2 $$2MeSH$$aMagnetic Resonance Imaging
000163515 650_2 $$2MeSH$$aMale
000163515 650_2 $$2MeSH$$aMemory, Long-Term: physiology
000163515 650_2 $$2MeSH$$aPrefrontal Cortex: diagnostic imaging
000163515 650_2 $$2MeSH$$aPrefrontal Cortex: physiology
000163515 650_2 $$2MeSH$$aProblem Solving: physiology
000163515 650_2 $$2MeSH$$aSemantics
000163515 650_2 $$2MeSH$$aYoung Adult
000163515 7001_ $$0P:(DE-2719)2814326$$aSchott, Björn H$$b1
000163515 7001_ $$0P:(DE-HGF)0$$aThuerich, Hannes$$b2
000163515 7001_ $$0P:(DE-HGF)0$$aSweeney-Reed, Catherine M$$b3
000163515 7001_ $$0P:(DE-HGF)0$$aRichter, Anni$$b4
000163515 7001_ $$0P:(DE-HGF)0$$aFolta-Schoofs, Kristian$$b5
000163515 7001_ $$0P:(DE-HGF)0$$aRichardson-Klavehn, Alan$$b6$$eLast author
000163515 773__ $$0PERI:(DE-600)1462916-1$$a10.1016/j.concog.2019.01.005$$gVol. 69, p. 113 - 132$$p113 - 132$$tConsciousness and cognition$$v69$$x1053-8100$$y2019
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