Structural reorganization of the dentate gyrus following entorhinal denervation: species differences between rat and mouse

被引:32
作者
Deller, Thomas [1 ]
Del Turco, Domenico [1 ]
Rappert, Angelika [1 ]
Bechmann, Ingo [1 ]
机构
[1] Goethe Univ Frankfurt, Inst Clin Neuroanat, D-60590 Frankfurt, Germany
来源
DENTATE GYRUS: A COMPHREHENSIVE GUIDE TO STRUCTURE, FUNCTION, AND CLINICAL IMPLICATIONS | 2007年 / 163卷
关键词
entorhinal cortex lesion; perforant pathway transection; sprouting; transneuronal degeneration; glia; inflammation; regeneration;
D O I
10.1016/S0079-6123(07)63027-1
中图分类号
Q189 [神经科学];
学科分类号
071006 [神经生物学];
摘要
Deafferentation of the dentate gyrus by unilateral entorhinal cortex lesion or unilateral perforant pathway transection is a classical model to study the response of the central nervous system (CNS) to denervation. This model has been extensively characterized in the rat to clarify mechanisms underlying denervation-induced gliosis, transneuronal degeneration of denervated neurons, and collateral sprouting of surviving axons. As a result, candidate molecules have been identified which could regulate these changes, but a causal link between these molecules and the postlesional changes has not yet been demonstrated. To this end, mutant mice are currently studied by many groups. A tacit assumption is that data from the rat can be generalized to the mouse, and fundamental species differences in hippocampal architecture and the fiber systems involved in sprouting are often ignored. In this review, we will (1) provide an overview of some of the basics and technical aspects of the entorhinal denervation model, (2) identify anatomical species differences between rats and mice and will point out their relevance for the axonal reorganization process, (3) describe glial and local inflammatory changes, (4) consider transneuronal changes of denervated dentate neurons and the potential role of reactive glia in this context, and (5) summarize the differences in the reorganization of the dentate gyrus between the two species. Finally, we will discuss the use of the entorhinal denervation model in mutant mice.
引用
收藏
页码:501 / 528
页数:28
相关论文
共 256 条
[1]
Viewing chemokines as a third major system of communication in the brain [J].
Adler, MW ;
Geller, EB ;
Chen, XH ;
Rogers, TJ .
AAPS JOURNAL, 2005, 7 (04) :E865-E870
[2]
OVEREXPRESSION OF THE NEURAL GROWTH-ASSOCIATED PROTEIN GAP-43 INDUCES NERVE SPROUTING IN THE ADULT NERVOUS-SYSTEM OF TRANSGENIC MICE [J].
AIGNER, L ;
ARBER, S ;
KAPFHAMMER, JP ;
LAUX, T ;
SCHNEIDER, C ;
BOTTERI, F ;
BRENNER, HR ;
CARONI, P .
CELL, 1995, 83 (02) :269-278
[3]
Alt C, 2002, EUR J IMMUNOL, V32, P2133, DOI 10.1002/1521-4141(200208)32:8<2133::AID-IMMU2133>3.0.CO
[4]
2-W
[5]
Amaral David G., 1995, P443
[6]
THE 3-DIMENSIONAL ORGANIZATION OF THE HIPPOCAMPAL-FORMATION - A REVIEW OF ANATOMICAL DATA [J].
AMARAL, DG ;
WITTER, MP .
NEUROSCIENCE, 1989, 31 (03) :571-591
[7]
Chemokines and glial cells: A complex network in the central nervous system [J].
Ambrosini, E ;
Aloisi, F .
NEUROCHEMICAL RESEARCH, 2004, 29 (05) :1017-1038
[8]
Molecular mechanisms of calcium-dependent neurodegeneration in excitotoxicity [J].
Arundine, M ;
Tymianski, M .
CELL CALCIUM, 2003, 34 (4-5) :325-337
[9]
Chemokines in the CNS: plurifunctional mediators in diverse states [J].
Asensio, VC ;
Campbell, IL .
TRENDS IN NEUROSCIENCES, 1999, 22 (11) :504-512
[10]
AUBERT I, 1994, J NEUROSCI, V14, P2476