TY - JOUR
T1 - Heterotypic sprouting of serotonergic forebrain fibers in the brindled mottled mutant mouse
AU - Martin, Parthena
AU - Ohno, Masaki
AU - Southerland, Stan B.
AU - Mailman, Richard B.
AU - Suzuki, Kinuko
N1 - Funding Information:
Acknowledgements. The authowrsi sht o thanDk r. Jean Lauder for providingth e 5-HT antibodTyh.i si nvestigatiowna s supporteidn part by U.S.P.H.S. GraEnSts0 1104N, S24453a nd Center Grant HD03310P. reliminary data frtohmis s tudyw erep resented tahte twenty-firastn nual meetionfg th e Society for Neuroscience, November 10-15,1 991N, ew Orleans, Louisianaan,d thetw enty-second annualm eeting otfh e Society for Neuroscience, October 26-30, 1992A, naheimC, alifornia.
PY - 1994/2/18
Y1 - 1994/2/18
N2 - The brindled mottled mouse has a mutation on the X-chromosome which causes alterations in copper metabolism. One role for copper is as a cofactor for dopamine-β-hydroxylase (DBH), the enzyme that converts dopamine to norepinephrine (NE). This may explain the fact that the hemizygous males have low concentrations of NE, as well as high concentrations of 5-hydroxyindoleacetic acid (5-HIAA) in the brainstem and forebrain. The present study quantified serotonin (5-HT) immunoreactive fibers in the cerebral cortex and striatum of hemizygous males and control littermates on postnatal (P) days 7, 10, 12 and 14. The density of 5-HT immunoreactive fibers was measured using a digitized imaging system in conjunction with darkfield microscopy. Measurements of 5-HT innervation showed an age-dependent increase in density of 5-HT immunoreactive fibers in all layers of the cerebral cortex, with fiber density in brindled mice approximately 70% greater than controls by P14. High performance liquid chromatography confirmed the increased concentrations of 5-HT and 5-HIAA, and the low concentration of NE, in several regions. We believe that these results are an example of heterotypic sprouting of 5-HT neurons, similar to that observed in neonatal rats given 6-hydroxydopamine (6-OHDA). If so, these data provide the first description of 5-HT heterotypic sprouting in mice, and the first description of 5-HT heterotypic sprouting resulting from a natural disease state, rather than an experimentally induced lesion.
AB - The brindled mottled mouse has a mutation on the X-chromosome which causes alterations in copper metabolism. One role for copper is as a cofactor for dopamine-β-hydroxylase (DBH), the enzyme that converts dopamine to norepinephrine (NE). This may explain the fact that the hemizygous males have low concentrations of NE, as well as high concentrations of 5-hydroxyindoleacetic acid (5-HIAA) in the brainstem and forebrain. The present study quantified serotonin (5-HT) immunoreactive fibers in the cerebral cortex and striatum of hemizygous males and control littermates on postnatal (P) days 7, 10, 12 and 14. The density of 5-HT immunoreactive fibers was measured using a digitized imaging system in conjunction with darkfield microscopy. Measurements of 5-HT innervation showed an age-dependent increase in density of 5-HT immunoreactive fibers in all layers of the cerebral cortex, with fiber density in brindled mice approximately 70% greater than controls by P14. High performance liquid chromatography confirmed the increased concentrations of 5-HT and 5-HIAA, and the low concentration of NE, in several regions. We believe that these results are an example of heterotypic sprouting of 5-HT neurons, similar to that observed in neonatal rats given 6-hydroxydopamine (6-OHDA). If so, these data provide the first description of 5-HT heterotypic sprouting in mice, and the first description of 5-HT heterotypic sprouting resulting from a natural disease state, rather than an experimentally induced lesion.
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U2 - 10.1016/0165-3806(94)90198-8
DO - 10.1016/0165-3806(94)90198-8
M3 - Article
C2 - 8174230
AN - SCOPUS:0028120997
SN - 0165-3806
VL - 77
SP - 215
EP - 225
JO - Developmental Brain Research
JF - Developmental Brain Research
IS - 2
ER -