PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
2009 | 65 | 06 |

Tytuł artykułu

Immunoreaktywnosc kalretyniny w istocie szarej srodkowej srodmozgowia u szynszyli

Warianty tytułu

EN
Immunoreactivity of calretinin in the periaqueductal gray matter of the midbrain of chinchillas

Języki publikacji

PL

Abstrakty

EN
The purpose of this study was to trace the immunoreactivity of the calcium binding protein calretinin in the periaqueductal gray matter of the midbrain of chinchillas. For this study the midbrains of five sexually mature male chinchillas were used. The immunoreactivity of this protein in this species has never been investigated up till now. The localization of its activity was examined by carrying out peroxidase-antiperoxidase (PAP) reaction using a mouse specific monoclonal antibody against calretinin. An intensive immunostaining for calretitin was observed in all the neurons in the dorsal and dorso-lateral periaqueductal gray matter. The results of the studies obtained suggest a similarity in the distribution of calretitin as seen in the neurons of periaqueductal gray matter of rats. This indicates that calretinin is involved in the regulation of intracellular calcium ion concentration. In this manner it can influence the proper functions of the neurons of the periaqueductal gray matter of the midbrain of the chinchilla.

Wydawca

-

Rocznik

Tom

65

Numer

06

Opis fizyczny

s.419-421,fot.,bibliogr.

Twórcy

  • Uniwersytet Przyrodniczy w Lublinie, ul.Akademicka 12, 20-033 Lublin
autor
autor

Bibliografia

  • 1.Baimbridge K. G., Celio M. R., Rogers J. H.: Calcium binding proteins in the nervous system. Trends Neurosci. 1992, 15, 303-308.
  • 2.Barbaresi P.: GABA-immunorective neurons in the cat periqueductal gray matter: a light and electron microscopic study. J. Neurocytol. 2006, 34, 471-487.
  • 3.Barbaresi P., Gazzanelli G., Malatesta M.: Glutamate-positive neurons and terminals in the cat periaqueductal gray matter (PAG): a light and electron microscopic immunocytochemical study. J. Comp. Neurol. 1990, 383, 381-396.
  • 4.Behbehani M. M.: Functional characterisation of the midbrain periaqueductal gray. Prog. Neurobiol. 1995, 46, 575-605.
  • 5.Billing-Marczak K., Kuznicki J.: Calretinin-sensor or buffer - function still unclear. Pol. J. Pharmacol. 1999, 51, 173-178.
  • 6.Buma P., Veening J., Hafmans T., Joosten H., Nieuwenhuys R.: Ultrastructure of the priaqueductal gray matter of the rat; an electronmicroscopical an horseradish peroxidase study. J. Comp. Neurol. 1992, 319, 519-535.
  • 7.Całka J., Juranek J., Wąsowicz K., Kaleczyc J., Łakomy M.: Distribution and morphology of ChAT- and VACht-immunoreactive neurons in the tuberal hypothalamus of the pig. Medycyna Wet. 2007, 63, 377-496.
  • 8.Całka J., Załęcki M., Wąsowicz K., Łakomy M.: Distribution and morphology of the NOS-immunoreactive neurons in the thoracolumbar and sacral spinal cord of the pig. Medycyna Wet. 2006, 62, 1089-1208.
  • 9.Carabrez A. P., Teixeira K. V., Graff F. G.: Modulation of defensive behavior by periaqueductal NMDA/glycine-B receptor. Neurosci. Behav. Rev. 2001, 25, 697-709.
  • 10.Diáz-Regueira S., Anadón R.: Calretinin expression in specific neuronal systems in the brain of an advanced teleost the grey mullet (Chelon labrosus). J. Comp. Neurol. 2000, 426, 81-105.
  • 11.German D. C., Ng M. C., Liang C. L., McMahon A., Iacopino A. M.: Calbindin D28k in nerve cell nuclei. Neuroscience 1997, 81, 735-743.
  • 12.Gomoli E., Ribeiro-Barbosa E. R., Nagrano N., Goto M., Canteras N. S.: Functional mapping of the prosencephalic systems involved in organizing predatory behavior in the rat. Neuroscience 2005, 130, 1055-1067.
  • 13.Gritti I., Manns I. D., Mainville L., Jones B. E.: Parvalbumin, calbindin, or calretinin in cortically projecting and GABAergic, cholinergic, or glutamatergic basal forebrain neurons of the rat. J. Comp. Neurol. 2003, 458, 11-31.
  • 14.Hamilton B. L.: Cytoarchitectural subdivisions of the periaqueductal gray matter in the cat. J. Comp. Neurol. 1973, 973, 149, 1-23.
  • 15.Klejbor I., Ludkiewicz B., Domaradzka-Pytel B., Spodnik J. H., Dziewi¹tkowski J., Moryś J.: Influence of the "open field" exposure on calbindin D28k, kalretinin, and parvalbumin containing cells in the rat midbrain - developmental study. J. Physiol. Pharmacol. 2006, 57, 149-164.
  • 16.Kreitsinger R. H., Nockolds C. E.: Carp muscle calcium binging protein. II. Structure determination and general description. J. Biol. Chem. 1973, 248, 3313-3326.
  • 17.Resibois A., Rogers J. H.: Calretinin in rat brain: an immunohistochemical study. Neuroscience 1992, 46, 101-134.
  • 18.Rogers J. H., Resibois A.: Calretinin and calbindin D28k in rat brain: Patterns of partial co-localization. Neuroscience 1992, 51, 843-865.
  • 19.Sakuma Y., Pfaff D. W.: Facilitation of female reproductive behavior from mesencephalic central gray in the rat. Am. J. Physiol. 1979, 237, 278-284.
  • 20.Schwaller B., Meyer M., Schiffman S.: New functions for "old" proteins: the role of the calicum binding proteins calbindin D-28k, calretinin and parvalbumin, in cerebellar physiology. Studies with knockout mice. Cerebellum 2002, 1, 241-258.
  • 21.Seto-Oshima A.: Calcium binding proteins in the central nervous system. Acta Histochem. Cytochem. 1994, 27, 93-106.
  • 22.Sternberger L. A.: Immunocytochemistry, John Wiley and Sons, New York 1986.
  • 23.Sukikara M. H., Mota-Ortiz S. R., Baldo M. V., Felicjo L. F., Canteras N. S.: A role for the periaqueductal gray in switching adaptive behavioral responses. J. Neurosci. 2006, 26, 2583-2589.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

bwmeta1.element.agro-article-f0c0694d-39da-4ac9-8049-1d2d84ae2caf
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.