Literature DB >> 10394470

Elementary phenotypes in the neurobiological and genetic study of schizophrenia.

L E Adler1, R Freedman, R G Ross, A Olincy, M C Waldo.   

Abstract

This review describes the strategy of using elementary phenotypes for neurobiological and genetic linkage studies of schizophrenia. The review concentrates on practical aspects of selecting the phenotype and then understanding the confounds in its measurement and interpretation. Examples from the authors' studies of deficits in P50 inhibition and smooth pursuit eye movement dysfunction are presented. These two phenotypes share considerable similarity in their neurobiology, including a similar response to nicotine. They also appear to co-segregate with the genetic risk for schizophrenia as autosomal co-dominant phenotypes. Although most schizophrenic patients inherit these abnormalities unilinealy, i.e., from one parent, apparent bilineal inheritance produces a more severe illness, observed clinically as childhood-onset schizophrenia. The initial study showing linkage of the P50 deficit to the chromosome 15q14 locus of the alpha 7-nicotinic acetylcholine receptor is an example of the potential usefulness of these phenotypes for combined genetic and neurobiological study of schizophrenia.

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Year:  1999        PMID: 10394470     DOI: 10.1016/s0006-3223(99)00085-2

Source DB:  PubMed          Journal:  Biol Psychiatry        ISSN: 0006-3223            Impact factor:   13.382


  24 in total

1.  Early-stage visual processing deficits in schizophrenia.

Authors:  Pamela D Butler; Daniel C Javitt
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2.  Protection from premature habituation requires functional mushroom bodies in Drosophila.

Authors:  Summer F Acevedo; Emmanuil I Froudarakis; Alexandros Kanellopoulos; Efthimios M C Skoulakis
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3.  Does performance on the standard antisaccade task meet the co-familiality criterion for an endophenotype?

Authors:  Deborah L Levy; Elizabeth A Bowman; Larry Abel; Olga Krastoshevsky; Verena Krause; Nancy R Mendell
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4.  The neural networks underlying auditory sensory gating.

Authors:  A R Mayer; F M Hanlon; A R Franco; T M Teshiba; R J Thoma; V P Clark; J M Canive
Journal:  Neuroimage       Date:  2008-08-29       Impact factor: 6.556

Review 5.  Atypical scanpaths in schizophrenia: evidence of a trait- or state-dependent phenomenon?

Authors:  Sara A Beedie; Philip J Benson; David M St Clair
Journal:  J Psychiatry Neurosci       Date:  2011-05       Impact factor: 6.186

6.  P50 auditory sensory gating in first onset schizophrenics and normal healthy adults.

Authors:  Hongxing Wang; Mingdao Zhang; Xingshi Chen; Feiying Lou; Jianhua Liang; Chong Chen; Tiantao Shi; Qiulin Lu
Journal:  Front Med China       Date:  2007-10

7.  Maximizing the effect of an α7 nicotinic receptor PAM in a mouse model of schizophrenia-like sensory inhibition deficits.

Authors:  Karen E Stevens; Lijun Zheng; Kirsten L Floyd; Jerry A Stitzel
Journal:  Brain Res       Date:  2015-03-02       Impact factor: 3.252

8.  The smoking cessation drug varenicline improves deficient P20-N40 inhibition in DBA/2 mice.

Authors:  Kristin M Wildeboer-Andrud; Karen E Stevens
Journal:  Pharmacol Biochem Behav       Date:  2011-07-07       Impact factor: 3.533

9.  Early-stage visual processing and cortical amplification deficits in schizophrenia.

Authors:  Pamela D Butler; Vance Zemon; Isaac Schechter; Alice M Saperstein; Matthew J Hoptman; Kelvin O Lim; Nadine Revheim; Gail Silipo; Daniel C Javitt
Journal:  Arch Gen Psychiatry       Date:  2005-05

10.  Sensory gating endophenotype based on its neural oscillatory pattern and heritability estimate.

Authors:  L Elliot Hong; Ann Summerfelt; Braxton D Mitchell; Robert P McMahon; Ikwunga Wonodi; Robert W Buchanan; Gunvant K Thaker
Journal:  Arch Gen Psychiatry       Date:  2008-09
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