期刊文献+

Perineuronal nets increase inhibitory GABAergic currents during the critical period in rats

Perineuronal nets increase inhibitory GABAergic currents during the critical period in rats
下载PDF
导出
摘要 AIM: To investigate inhibitory γ-aminobutyric acid (GABA) ergic postsynaptic currents (IPSCs) and postsynaptic currents (PSCs) in layer IV of the rat visual cortex during the critical period and when plasticity was extended through dissolution of the perineuronal nets (PNNs). METHODS: We employed 24 normal Long-Evans rats to study GABA A-PSC characteristics of neurons within layer IV of the visual cortex during development. The animals were divided into six groups of four rats according to ages at recording: PW3 (P21 -23d), PW4 (P28 -30d), PW5 (P35-37d), PW6 (P42-44d), PW7 (P49-51d), and PW8 (56-58d). An additional 24 chondroitin sulfate proteoglycan (CSPG) degradation rats (also Long-Evans) were generated by making a pattern of injections of chondroitinase ABC (chABC) into the visual cortex 1 week prior to recording at PW3, PW4, PW5, PW6, PW7, and PW8. Immunohistochemistry was used to identify the effect of chABC injection on CSPGs. PSCs were detected with whole-cell patch recordings, and GABA A receptor-mediated IPSCs were pharmacologically isolated. RESULTS: IPSC peak current showed a strong rise in the age-matched control group, peaked at PW5 and were maintained at a roughly constant value thereafter. Although there was a small increase in peak current for the chABC group with age, the peak currents continued to decrease with the delayed highest value at PW6, resulting in significantly different week-by-week com-parison with normal development. IPSC decay time continued to increase until PW7 in the control group, while those in the chABC group were maintained at astable level after an initial increase at PW4. Compared with normal rats, the decay times recorded in the chABC rats were always shorter, which differed significantly at each age. We did not observe any differences in IPSC properties between the age-matched control and penicillinase (P-ase) group. However, the change in IPSCs after chABC treatment was not reflected in the total PSCs or in basic membrane properties in layer IV of the rat visual cortex. CONCLUSION: Our results demonstrate that rather than rapidly increasing during the critical period for neuronal plasticity, IPSCs in layer IV of rat visual cortex are maintained at an immature level when PNNs are removed by chABC. This suggests that GABA receptor maturation involves the conformation of the CSPGs in PNNs. AIM: To investigate inhibitory γ-aminobutyric acid (GABA) ergic postsynaptic currents (IPSCs) and postsynaptic currents (PSCs) in layer IV of the rat visual cortex during the critical period and when plasticity was extended through dissolution of the perineuronal nets (PNNs). METHODS: We employed 24 normal Long-Evans rats to study GABA A-PSC characteristics of neurons within layer IV of the visual cortex during development. The animals were divided into six groups of four rats according to ages at recording: PW3 (P21 -23d), PW4 (P28 -30d), PW5 (P35-37d), PW6 (P42-44d), PW7 (P49-51d), and PW8 (56-58d). An additional 24 chondroitin sulfate proteoglycan (CSPG) degradation rats (also Long-Evans) were generated by making a pattern of injections of chondroitinase ABC (chABC) into the visual cortex 1 week prior to recording at PW3, PW4, PW5, PW6, PW7, and PW8. Immunohistochemistry was used to identify the effect of chABC injection on CSPGs. PSCs were detected with whole-cell patch recordings, and GABA A receptor-mediated IPSCs were pharmacologically isolated. RESULTS: IPSC peak current showed a strong rise in the age-matched control group, peaked at PW5 and were maintained at a roughly constant value thereafter. Although there was a small increase in peak current for the chABC group with age, the peak currents continued to decrease with the delayed highest value at PW6, resulting in significantly different week-by-week com-parison with normal development. IPSC decay time continued to increase until PW7 in the control group, while those in the chABC group were maintained at astable level after an initial increase at PW4. Compared with normal rats, the decay times recorded in the chABC rats were always shorter, which differed significantly at each age. We did not observe any differences in IPSC properties between the age-matched control and penicillinase (P-ase) group. However, the change in IPSCs after chABC treatment was not reflected in the total PSCs or in basic membrane properties in layer IV of the rat visual cortex. CONCLUSION: Our results demonstrate that rather than rapidly increasing during the critical period for neuronal plasticity, IPSCs in layer IV of rat visual cortex are maintained at an immature level when PNNs are removed by chABC. This suggests that GABA receptor maturation involves the conformation of the CSPGs in PNNs.
出处 《International Journal of Ophthalmology(English edition)》 SCIE CAS 2013年第2期120-125,共6页 国际眼科杂志(英文版)
基金 National Natural Sciences Foundation of China (No. 81070749)
关键词 gamma-aminobutyric acid receptor PLASTICITY visual cortex development postsynaptic currents chondroitinase ABC chondroitin sulfate proteoglycans whole-cell patch recording gamma-aminobutyric acid receptor plasticity visual cortex development postsynaptic currents chondroitinase ABC chondroitin sulfate proteoglycans whole-cell patch recording
  • 相关文献

参考文献29

  • 1Ganguly,K,Schinder,AF,Wong,ST,Poo,M.GABA itself promotes the developmental switch of neuronal GABAergic responses from excitation to inhibition. Cell . 2001
  • 2G Bruckner,K Brauer,W Hartig,JR Wolff,MJ Rickmann,A Derouiche,B Delpech,N Girard,WH Oertel,A Reichenbach.Perineuronal nets provide a polyanionic, glia-associated form of microenvironment around certain neurons in many parts of the rat brain. Glia . 1993
  • 3G Bruckner,J Grosche,S Schmidt,W Hartig,RU Margolis,B Delpech,CI Seidenbecher,R Czaniera,M Schachner.Postnatal development of perineuronal nets in wild-type mice and in a mutant deficient in tenascin-R. Journal of Comparative Neurology . 2000
  • 4Hockfield S,Kalb RG,Zaremba S, et al.Expression of neural proteoglycans correlates with the acquisition of mature neuronal properties in the mammalian brain. Cold Spring Harbor Symposia on Quantitative Biology . 1990
  • 5Hensch TK.Critical period plasticity in local cortical circuits. Nature Reviews Neuroscience . 2005
  • 6He, H. Y,Hodos, W. et al."Visual deprivation reactivates rapid ocular dominance plasticity in adult visual cortex.". The Journal of Neuroscience . 2006
  • 7Huang Z J,Kirkwood A,Pizzorusso T,et al.BDNF regulates the maturation of inhibition and the critical period of plasticity in mouse visual cortex. J Cell . 1999
  • 8Fagiolini M,Pizzorusso T,Berardi N,et al.Functional postnatal development of the rat primary visual cortex and the role of visual experience: dark rearing and monocular deprivation. Vision Research . 1994
  • 9Wiesel TN,Hubel DH.Comparison of the effects of unilateral and bilateral eye closure on cortical unit responses in kittens. Journal de Neuroradiologie . 1965
  • 10Liu Y B,Lio P A,Pasternak J F,et al.Developmental changes in membrane properties and postsynaptic currents of granule cells in rat dentate gyrus. Journal of Neurophysiology . 1996

共引文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部