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spelling paper:paper_07423098_v24_n1_p22_Finocchiaro2023-06-08T15:44:43Z Intracellular melatonin distribution in cultured cell lines 3T3 mouse fibroblasts Actin Bromodeoxyuridine Immunofluorescence Melatonin Serotonin actin broxuridine melatonin serotonin tubulin animal cell article cattle cell cycle cell strain 3t3 cellular distribution controlled study dna synthesis dog granulosa cell hela cell human human cell kidney cell monocyte mouse neuroblastoma cell nonhuman rat spleen cell teratocarcinoma Animals Bromodeoxyuridine Cattle Cell Culture Techniques Cell Cycle Cell Line Cell Nucleus Cytoskeletal Proteins Cytosol DNA DNA Replication Dogs Female Fluorescent Antibody Technique, Indirect Humans Melatonin Mice Rats Subcellular Fractions A specific antibody combined with a fluorescein-labeled immunoglobulin was used to investigate the topographic distribution of melatonin in a variety of cells of different origins. Positive identification of both nuclear and cytosolic melatonin was confirmed in all the tested cells: Swiss 3T3 mouse fibroblasts, BCG1 bovine granulosa, NB41A3 mouse neuroblastoma, F9 mouse teratocarcinoma, MDCK normal canine kidney derived and human HeLa cell lines, as well as in human peripheral blood mononuclear leukocytes and rat splenic cells. In 3T3 mouse fibroblasts melatonin immunofluorescence partially colocalized with actin and serotonin immunostaining, but not with tubulin or actin stress fibers. Several distinct patterns of subcellular melatonin distribution, different from the bromodeoxyuridine-labeled replication profiles, have been discerned throughout the cell cycle of synchronized 3T3 cells. In addition, synchronized 3T3 mouse fibroblasts cultured in the presence of 10-3 M melatonin progressed more slowly through the cell cycle than control cells. These results suggest that melatonin may interact directly with nuclear and cytoskeletal structures probably affecting different cell functions such as cell cycle control, subcellular organization, and genome stability. 1998 https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_07423098_v24_n1_p22_Finocchiaro http://hdl.handle.net/20.500.12110/paper_07423098_v24_n1_p22_Finocchiaro
institution Universidad de Buenos Aires
institution_str I-28
repository_str R-134
collection Biblioteca Digital - Facultad de Ciencias Exactas y Naturales (UBA)
topic 3T3 mouse fibroblasts
Actin
Bromodeoxyuridine
Immunofluorescence
Melatonin
Serotonin
actin
broxuridine
melatonin
serotonin
tubulin
animal cell
article
cattle
cell cycle
cell strain 3t3
cellular distribution
controlled study
dna synthesis
dog
granulosa cell
hela cell
human
human cell
kidney cell
monocyte
mouse
neuroblastoma cell
nonhuman
rat
spleen cell
teratocarcinoma
Animals
Bromodeoxyuridine
Cattle
Cell Culture Techniques
Cell Cycle
Cell Line
Cell Nucleus
Cytoskeletal Proteins
Cytosol
DNA
DNA Replication
Dogs
Female
Fluorescent Antibody Technique, Indirect
Humans
Melatonin
Mice
Rats
Subcellular Fractions
spellingShingle 3T3 mouse fibroblasts
Actin
Bromodeoxyuridine
Immunofluorescence
Melatonin
Serotonin
actin
broxuridine
melatonin
serotonin
tubulin
animal cell
article
cattle
cell cycle
cell strain 3t3
cellular distribution
controlled study
dna synthesis
dog
granulosa cell
hela cell
human
human cell
kidney cell
monocyte
mouse
neuroblastoma cell
nonhuman
rat
spleen cell
teratocarcinoma
Animals
Bromodeoxyuridine
Cattle
Cell Culture Techniques
Cell Cycle
Cell Line
Cell Nucleus
Cytoskeletal Proteins
Cytosol
DNA
DNA Replication
Dogs
Female
Fluorescent Antibody Technique, Indirect
Humans
Melatonin
Mice
Rats
Subcellular Fractions
Intracellular melatonin distribution in cultured cell lines
topic_facet 3T3 mouse fibroblasts
Actin
Bromodeoxyuridine
Immunofluorescence
Melatonin
Serotonin
actin
broxuridine
melatonin
serotonin
tubulin
animal cell
article
cattle
cell cycle
cell strain 3t3
cellular distribution
controlled study
dna synthesis
dog
granulosa cell
hela cell
human
human cell
kidney cell
monocyte
mouse
neuroblastoma cell
nonhuman
rat
spleen cell
teratocarcinoma
Animals
Bromodeoxyuridine
Cattle
Cell Culture Techniques
Cell Cycle
Cell Line
Cell Nucleus
Cytoskeletal Proteins
Cytosol
DNA
DNA Replication
Dogs
Female
Fluorescent Antibody Technique, Indirect
Humans
Melatonin
Mice
Rats
Subcellular Fractions
description A specific antibody combined with a fluorescein-labeled immunoglobulin was used to investigate the topographic distribution of melatonin in a variety of cells of different origins. Positive identification of both nuclear and cytosolic melatonin was confirmed in all the tested cells: Swiss 3T3 mouse fibroblasts, BCG1 bovine granulosa, NB41A3 mouse neuroblastoma, F9 mouse teratocarcinoma, MDCK normal canine kidney derived and human HeLa cell lines, as well as in human peripheral blood mononuclear leukocytes and rat splenic cells. In 3T3 mouse fibroblasts melatonin immunofluorescence partially colocalized with actin and serotonin immunostaining, but not with tubulin or actin stress fibers. Several distinct patterns of subcellular melatonin distribution, different from the bromodeoxyuridine-labeled replication profiles, have been discerned throughout the cell cycle of synchronized 3T3 cells. In addition, synchronized 3T3 mouse fibroblasts cultured in the presence of 10-3 M melatonin progressed more slowly through the cell cycle than control cells. These results suggest that melatonin may interact directly with nuclear and cytoskeletal structures probably affecting different cell functions such as cell cycle control, subcellular organization, and genome stability.
title Intracellular melatonin distribution in cultured cell lines
title_short Intracellular melatonin distribution in cultured cell lines
title_full Intracellular melatonin distribution in cultured cell lines
title_fullStr Intracellular melatonin distribution in cultured cell lines
title_full_unstemmed Intracellular melatonin distribution in cultured cell lines
title_sort intracellular melatonin distribution in cultured cell lines
publishDate 1998
url https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_07423098_v24_n1_p22_Finocchiaro
http://hdl.handle.net/20.500.12110/paper_07423098_v24_n1_p22_Finocchiaro
_version_ 1768546588972548096