The microglial networks of the brain and their role in neuronal network plasticity after lesion

被引:112
作者
Cullheim, Staffan [1 ]
Thams, Sebastian [1 ]
机构
[1] Karolinska Inst, Dept Neurosci, SE-17177 Stockholm, Sweden
基金
瑞典研究理事会;
关键词
synapse elimination; axotomy; MHC class I; microglia; regeneration; degenerative disease;
D O I
10.1016/j.brainresrev.2007.03.012
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Microglia are the resident inflammatory cells of the central nervous system (CNS) extending a network of processes in the CNS parenchyma. Following axon lesion to neurons, most extensively studied in motoneurons, there is a typical retrograde response at the cell body level, including the removal or 'stripping' of synapses from the perikaryon and dendrites of affected cells. Microglia have been attributed a main and active role in this process, although also an involvement of activated astrocytes has been suggested. The signaling pathways for this 'synaptic stripping' have so far been unknown, but recently some classical immune recognition molecules, the MHC class I molecules, have been shown to have a strong influence on the strength and pattern of the synapse elimination response. Since there is an expression of MHC class I in both neurons and glia, in particular microglia, as well as MHC class I related receptors in axons and microglia, there are good reasons to believe that classical immune recognition signaling between neurons and glia underlies part of the,stripping' response. A role for microglia in an interplay with synapses based on this type of signaling is further exemplified by the fact that, in the absence of some MHC class I related receptors normally found on microglia during development, profound effects on synaptic function and biochemistry have been demonstrated. Such effects may be linked to the development of various disorders of the CNS, such as degenerative disease. (c) 2007 Published by Elsevier B.V.
引用
收藏
页码:89 / 96
页数:8
相关论文
共 82 条
[1]   Chemokines and their receptors in neurobiology: perspectives in physiology and homeostasis [J].
Bacon, KB ;
Harrison, JK .
JOURNAL OF NEUROIMMUNOLOGY, 2000, 104 (01) :92-97
[2]   NK cell activation: Distinct stimulatory pathways counterbalancing inhibitory signals [J].
Bakker, ABH ;
Wu, J ;
Phillips, JH ;
Lanier, LL .
HUMAN IMMUNOLOGY, 2000, 61 (01) :18-27
[3]  
Barron K.D., 1989, NEURONAL RESPONSES A
[4]   You say ITAM and I say ITIM, let's call the whole thing off: the ambiguity of immunoreceptor signalling [J].
Barrow, Alexander David ;
Trowsdale, John .
EUROPEAN JOURNAL OF IMMUNOLOGY, 2006, 36 (07) :1646-1653
[5]   A new class of membrane-bound chemokine with a CX(3)C motif [J].
Bazan, JF ;
Bacon, KB ;
Hardiman, G ;
Wang, W ;
Soo, K ;
Rossi, D ;
Greaves, DR ;
Zlotnik, A ;
Schall, TJ .
NATURE, 1997, 385 (6617) :640-644
[6]   Nasu-Hakola disease (polycystic lipomembranous osteodysplasia with sclerosing leukoencephalopathy - PLOSL): A dementia associated with bone cystic lesions. From clinical to genetic and molecular aspects [J].
Bianchin, MM ;
Capella, HM ;
Chaves, DL ;
Steindel, M ;
Grisard, EC ;
Ganev, GG ;
da Silva, JP ;
Neto, ES ;
Poffo, MA ;
Walz, R ;
Carlotti, CG ;
Sakamoto, AC .
CELLULAR AND MOLECULAR NEUROBIOLOGY, 2004, 24 (01) :1-24
[7]   DISPLACEMENT OF SYNAPTIC TERMINALS FROM REGENERATING MOTONEURONS BY MICROGLIAL CELLS [J].
BLINZING.K ;
KREUTZBE.G .
ZEITSCHRIFT FUR ZELLFORSCHUNG UND MIKROSKOPISCHE ANATOMIE, 1968, 85 (02) :145-&
[8]   Immune signalling in neural development, synaptic plasticity and disease [J].
Boulanger, LM ;
Shatz, CJ .
NATURE REVIEWS NEUROSCIENCE, 2004, 5 (07) :521-531
[9]   Neuronal plasticity and cellular immunity: shared molecular mechanisms [J].
Boulanger, LM ;
Huh, GS ;
Shatz, CJ .
CURRENT OPINION IN NEUROBIOLOGY, 2001, 11 (05) :568-578
[10]   Changes in synaptology of adult cat spinal α-motoneurons after axotomy [J].
Brännström, T ;
Kellerth, JO .
EXPERIMENTAL BRAIN RESEARCH, 1998, 118 (01) :1-13