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Results: 1 to 20 of 95

Related Citations for PubMed (Select 25140130)

1.

Dopamine modulation of learning and memory in the prefrontal cortex: insights from studies in primates, rodents, and birds.

Puig MV, Rose J, Schmidt R, Freund N.

Front Neural Circuits. 2014 Aug 5;8:93. doi: 10.3389/fncir.2014.00093. eCollection 2014.

2.

Under the curve: critical issues for elucidating D1 receptor function in working memory.

Williams GV, Castner SA.

Neuroscience. 2006 Apr 28;139(1):263-76. Epub 2005 Nov 28. Review.

PMID:
16310964
3.

Towards an executive without a homunculus: computational models of the prefrontal cortex/basal ganglia system.

Hazy TE, Frank MJ, O'reilly RC.

Philos Trans R Soc Lond B Biol Sci. 2007 Sep 29;362(1485):1601-13.

4.

Animal models of working memory: insights for targeting cognitive dysfunction in schizophrenia.

Castner SA, Goldman-Rakic PS, Williams GV.

Psychopharmacology (Berl). 2004 Jun;174(1):111-25. Epub 2004 Jan 20. Review.

PMID:
15205882
5.

Evidence for the importance of dopamine for prefrontal cortex functions early in life.

Diamond A.

Philos Trans R Soc Lond B Biol Sci. 1996 Oct 29;351(1346):1483-93; discussion 1494. Review.

PMID:
8941960
6.

Chemistry of the mind: neurochemical modulation of prefrontal cortical function.

Robbins TW.

J Comp Neurol. 2005 Dec 5;493(1):140-6. Review.

PMID:
16254988
7.

Age-related spatial working memory impairment is caused by prefrontal cortical dopaminergic dysfunction in rats.

Mizoguchi K, Shoji H, Tanaka Y, Maruyama W, Tabira T.

Neuroscience. 2009 Sep 15;162(4):1192-201. doi: 10.1016/j.neuroscience.2009.05.023. Epub 2009 May 20.

PMID:
19463906
8.

A dopaminergic gene cluster in the prefrontal cortex predicts performance indicative of general intelligence in genetically heterogeneous mice.

Kolata S, Light K, Wass CD, Colas-Zelin D, Roy D, Matzel LD.

PLoS One. 2010 Nov 17;5(11):e14036. doi: 10.1371/journal.pone.0014036.

9.

Glutamatergic and dopaminergic afferents to the prefrontal cortex regulate spatial working memory in rats.

Romanides AJ, Duffy P, Kalivas PW.

Neuroscience. 1999;92(1):97-106.

PMID:
10392833
10.

Dopaminergic control of working memory and its relevance to schizophrenia: a circuit dynamics perspective.

Tanaka S.

Neuroscience. 2006 Apr 28;139(1):153-71. Epub 2005 Dec 1. Review.

PMID:
16324800
11.
12.

Regional and cellular fractionation of working memory.

Goldman-Rakic PS.

Proc Natl Acad Sci U S A. 1996 Nov 26;93(24):13473-80. Review.

13.

Increased dopamine turnover in the prefrontal cortex impairs spatial working memory performance in rats and monkeys.

Murphy BL, Arnsten AF, Goldman-Rakic PS, Roth RH.

Proc Natl Acad Sci U S A. 1996 Feb 6;93(3):1325-9.

14.

An analysis of rat prefrontal cortex in mediating executive function.

Kesner RP, Churchwell JC.

Neurobiol Learn Mem. 2011 Oct;96(3):417-31. doi: 10.1016/j.nlm.2011.07.002. Epub 2011 Aug 9. Review.

PMID:
21855643
15.

Banishing the homunculus: making working memory work.

Hazy TE, Frank MJ, O'Reilly RC.

Neuroscience. 2006 Apr 28;139(1):105-18. Epub 2005 Dec 15. Review.

PMID:
16343792
16.

A computational approach to prefrontal cortex, cognitive control and schizophrenia: recent developments and current challenges.

Cohen JD, Braver TS, O'Reilly RC.

Philos Trans R Soc Lond B Biol Sci. 1996 Oct 29;351(1346):1515-27. Review.

PMID:
8941963
17.

Dopaminergic control of long-term depression/long-term potentiation threshold in prefrontal cortex.

Sheynikhovich D, Otani S, Arleo A.

J Neurosci. 2013 Aug 21;33(34):13914-26. doi: 10.1523/JNEUROSCI.0466-13.2013.

18.
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