TARGET-DERIVED MOLECULES THAT INFLUENCE THE DEVELOPMENT OF NEURONS IN THE AVIAN CILIARY GANGLION

被引:38
作者
NISHI, R
机构
[1] Department of Cell Biology and Anatomy, Oregon Health Sciences University, Portland, Oregon
来源
JOURNAL OF NEUROBIOLOGY | 1994年 / 25卷 / 06期
关键词
CILIARY NEUROTROPHIC FACTOR; GROWTH-PROMOTING ACTIVITY; CHOLINE ACETYLTRANSFERASE-STIMULATING ACTIVITY; ALPHA BUNGAROTOXIN;
D O I
10.1002/neu.480250604
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The developing avian ciliary ganglion has been a particularly amenable system for the identification, isolation, and characterization of putative target-derived molecules that mediate retrograde interactions. To date a number of biochemically distinct activities that regulate neuronal survival, transmitter phenotype, and chemosensitivity of ciliary ganglion neurons have been identified. Of these, only two survival-promoting molecules have been purified to homogeneity: ciliary neurotrophic factor and a related molecule, growth-promoting activity. A somatostatin-inducing activity found in cultured choroid cells is very likely to be chick activin A. Other molecules that regulate acetylcholine and acetylcholine receptor expression comigrate on a gel filtration column at a molecular weight of 50-60 kD, but they have yet to be isolated. Once molecules that mimic retrograde influences are identified, a number of criteria must be met before their physiological significance can be established. These criteria are (1) availability of the molecule from the target at the appropriate time in development; (2) ability of the neurons to respond to the molecule at the appropriate time in development; (3) demonstration that blocking the activity or availability of the molecule is able to block the target-derived developmental change expressed in the neurons. Of the molecules that are thought to retrogradely influence ciliary neuron development, only growth-promoting activity is known to meet criteria 1 and 2, and experiments are currently underway to test whether inhibition of growth-promoting activity in vivo will exacerbate normal cell death. (C) 1994 John Wiley and Sons, Inc.
引用
收藏
页码:612 / 619
页数:8
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