THE APPLICATION OF IN-VITRO ISOLATION, CRYOPRESERVATION AND PATCH-CLAMP MICROELECTRODE RECORDING METHODS TO ADULT-RAT THYMIC NURSE CELLS

被引:3
作者
DOWNING, JEG
VITANOVA, L
VILLA, P
机构
[1] ACAD MED SOFIA,DEPT PHYSIOL,BU-1431 SOFIA,BULGARIA
[2] UNIV ALCALA DE HENARES,DEPT PHYSIOL & PHARMACOL,E-28871 MADRID,SPAIN
关键词
THYMIC NURSE CELL; ACUTE ISOLATION; CRYOPRESERVATION; PATCH CLAMP; ANIMAL CONSERVATION; (ADULT RAT);
D O I
10.1016/0022-1759(95)00174-9
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Characterisation of the ionic mechanisms possessed by immune cells has begun to reveal a range of transmembrane ion channel properties which may have immunological significance. Since thymic epithelial cells appear to influence selection of the T cell repertoire, understanding their membrane physiology may be of importance. A method is therefore outlined for the targeting of patch-clamp electrophysiological measurements to acutely isolated, fresh and cryopreserved adult rat thymic nurse cells. These cells represent a discrete and predominantly cortical population of epithelium. Cells were separated by enzymatic and mechanical dispersal of thymus, enriched by sedimentation and identified on the basis of their characteristic lympho-epithelial, multi-cellular morphologies. Phase-bright cells retaining this anatomical form survived freezing and the voltage-gated conductances in such cells are described. The merits of this approach include the preparation and storage of mature differentiated phenotypes of immune cells for in vitro studies. Their preservation permits temporal separation of experiments, correlative experimentation on identical samples, optimises cell preparation in terms of cost and labour, and reduces animal and tissue requirements.
引用
收藏
页码:103 / 110
页数:8
相关论文
共 13 条
[1]  
Downing, Interleukin-2 blocks voltage-activated potassium currents of isolated rat thymic epithelial (nurse) cells, J. Physiol. Abstr., 467, (1993)
[2]  
Felten, Felten, Bellinger, Carlson, Ackerman, Madden, Olschowski, Livnat, Noradrenergic sympathetic neural interactions with the immune system: Structure and function, Immunol. Rev., 100, pp. 225-267, (1987)
[3]  
Gallin, Ion channels in leukocytes, Physiol. Rev., 71, pp. 775-811, (1991)
[4]  
Hara, Ichinose, Sawada, Maeno, The activation of Ca<sup>2+</sup>-dependent conductance by adrenaline in mouse peritoneal macrophages, Eur. J. Physiol., 419, pp. 371-379, (1991)
[5]  
Hille, Ionic channels of excitable membranes, (1992)
[6]  
Kyewski, Thymic nurse cells: Possible sites of T-cell selection, Immunol. Today, 7, pp. 374-379, (1986)
[7]  
Stevens, Downing, Two types of voltage dependent potassium currents in isolated thymic epithelial (nurse) cells of the rat, J. Physiol., 473, (1993)
[8]  
Stevens, Downing, Calcium- and voltage-dependence of membrane currents of isolated BALB/c mouse thymic nurse cells, J. Physiol., 482, (1995)
[9]  
Sucher, Cheng, Lipton, Cryopreservation of postnatal rat retinal ganglion cells: Persistence of voltage- and ligand-gated ionic currents, Neuroscience, 43, pp. 135-150, (1991)
[10]  
Suzuki, Kaneko, Identification of bipolar cell sub-types by protein kinase C-like immunoreactivity in the goldfish retina, Vis. Neurosci., 5, pp. 223-230, (1990)