Microarray analysis of developmental plasticity in monkey primary visual cortex

被引:37
作者
Lachance, PED [1 ]
Chaudhuri, A [1 ]
机构
[1] McGill Univ, Dept Psychol, Montreal, PQ H3A 1B1, Canada
关键词
gene expression; microarray; monkey; monocular deprivation; neuroplasticity; visual cortex;
D O I
10.1046/j.1471-4159.2003.02274.x
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
We performed microarray gene expression analyses on the visual cortex of Old-World monkeys (Cercopithicus aethiops) in an effort to identify transcripts associated with developmental maturation and activity-driven changes during the visual critical period. Samples derived from normal animals and those subjected to monocular enucleation (ME) were hybridized to human Affymetrix HG-U95Av(2) oligonucleotide microarrays (N = 12) and the results were independently validated by real-time quantitative RT-PCR. To identify genes exhibiting significant expression differences among our samples, the microarray hybridization data were processed with two software packages that use different analytical models (Affymetrix MicroArray Suite 5.0, dChip 1.2). We identified 108 transcripts within diverse functional categories that differed in their visual cortical expression at the height of the critical period when compared to adults. The expression levels of four transcripts were also globally modulated following ME during the critical period. These transcripts are particularly sensitive to ME during the critical period but are not significantly modulated in ME adults. Three of the ME-driven genes (NGFI-B, egr3, NARP) are known immediate-early genes (IEG) while the other (DUSP6) is a phosphatase that can regulate IEG expression. The putative biological significance of the ME-driven and developmentally regulated genes is discussed with respect to the critical period for activity-dependent visual cortical neuroplasticity.
引用
收藏
页码:1455 / 1469
页数:15
相关论文
共 88 条
[1]   Oral cancer in vivo gene expression profiling assisted by laser capture microdissection and microarray analysis [J].
Alevizos, I ;
Mahadevappa, M ;
Zhang, X ;
Ohyama, H ;
Kohno, Y ;
Posner, M ;
Gallagher, GT ;
Varvares, M ;
Cohen, D ;
Kim, D ;
Kent, R ;
Donoff, RB ;
Todd, R ;
Yung, CM ;
Warrington, JA ;
Wong, DTW .
ONCOGENE, 2001, 20 (43) :6196-6204
[2]   SMI-32 IMMUNOREACTIVITY IN HUMAN STRIATE CORTEX DURING POSTNATAL-DEVELOPMENT [J].
ANG, LC ;
MUNOZ, DG ;
SHUL, D ;
GEORGE, DH .
DEVELOPMENTAL BRAIN RESEARCH, 1991, 61 (01) :103-109
[3]  
Bear MF, 1999, J NEUROBIOL, V41, P83, DOI 10.1002/(SICI)1097-4695(199910)41:1<83::AID-NEU11>3.0.CO
[4]  
2-Z
[5]  
BEAR MF, 1990, J NEUROSCI, V10, P909
[6]   Molecular basis of plasticity in the visual cortex [J].
Berardi, N ;
Pizzorusso, T ;
Ratto, GM ;
Maffei, L .
TRENDS IN NEUROSCIENCES, 2003, 26 (07) :369-378
[7]   DEVELOPMENTAL EXPRESSION OF CALMODULIN MESSENGER-RNA AND PROTEIN IN REGIONS OF THE POSTNATAL RAT-BRAIN [J].
BERRY, F ;
BROWN, IR .
JOURNAL OF NEUROSCIENCE RESEARCH, 1995, 42 (05) :613-622
[8]  
BHAT RV, 1994, J NEUROSCI, V14, P3059
[9]   PHYSIOLOGICAL-EFFECTS OF MONOCULAR DEPRIVATION AND THEIR REVERSAL IN MONKEYS VISUAL-CORTEX [J].
BLAKEMORE, C ;
GAREY, LJ ;
VITALDURAND, F .
JOURNAL OF PHYSIOLOGY-LONDON, 1978, 283 (OCT) :223-+
[10]   Role of AMPA receptor endocytosis in synaptic plasticity [J].
Carroll, RC ;
Beattie, EC ;
von Zastrow, M ;
Malenka, RC .
NATURE REVIEWS NEUROSCIENCE, 2001, 2 (05) :315-324