Literature DB >> 2387350

Neuropeptide gene expression in brain is differentially regulated by midbrain dopamine neurons.

N Lindefors1, S Brené, M Herrera-Marschitz, H Persson.   

Abstract

In situ hybridization was used to study the expression of prepro-neuropeptide Y (NPY), preprosomatostatin (SOM), preprotachykinin (PPT) and preprocholecystokinin (CCK) mRNA in caudate-putamen and frontoparietal cortex of rat brain with unilateral lesion of midbrain dopamine neurons. Neurons expressing NPY and SOM mRNA showed a similar distribution and the expression of both NPY and SOM appears to be regulated by dopamine in a similar fashion. Following a dopamine deafferentation, the numerical density of both NPY and SOM mRNA producing neurons almost doubled in the lesioned caudate-putamen with no change in the average grain density over positive neurons. Hence, in the intact caudate-putamen dopamine appears to suppress expression of these two neuropeptide genes leading to an activation of both NPY and SOM mRNA expression in many non- or low-expressing neurons when the level of dopamine is decreased. In the fronto-parietal cortex, on the other hand, dopamine appears to stimulate NPY and SOM gene expression. Thus, in the absence of dopamine about half of the NPY positive neurons disappeared. However, for SOM the number of positive neurons did not change, but rather most positive neurons appeared to have down-regulated their SOM mRNA expression. No evidence was found for a change in CCK mRNA expression by the dopamine deafferentation, while PPT mRNA expression decreased in the deafferented caudate-putamen. Consequently, dopamine exerts dissimilar effects on the expression of different neuropeptide genes, that in turn do not respond in the same way in different brain regions.

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Year:  1990        PMID: 2387350     DOI: 10.1007/bf00227990

Source DB:  PubMed          Journal:  Exp Brain Res        ISSN: 0014-4819            Impact factor:   1.972


  73 in total

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2.  Regional distribution of substance P in the brain of the rat.

Authors:  M J Brownstein; E A Mroz; J S Kizer; M Palkovits; S E Leeman
Journal:  Brain Res       Date:  1976-11-05       Impact factor: 3.252

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4.  Distribution of substance P-like immunoreactivity in the central nervous system of the rat--I. Cell bodies and nerve terminals.

Authors:  A Ljungdahl; T Hökfelt; G Nilsson
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Authors:  T Hökfelt; L Skirboll; J F Rehfeld; M Goldstein; K Markey; O Dann
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Authors:  N Lindefors; E Brodin; E Theodorsson-Norheim; U Ungerstedt
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Authors:  S H Hendry; E G Jones; P C Emson
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9.  Origin of the cholecystokinin-containing fibers in the rat caudatoputamen.

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6.  Expression of dopamine D2 receptor and choline acetyltransferase mRNA in the dopamine deafferented rat caudate-putamen.

Authors:  S Brené; N Lindefors; M Herrera-Marschitz; H Persson
Journal:  Exp Brain Res       Date:  1990       Impact factor: 1.972

7.  Neuropeptide Y perfused in the preoptic area of rats shifts extracellular efflux of dopamine, norepinephrine, and serotonin during hypothermia and feeding.

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