The discovery of central monoamine neurons gave volume transmission to the wired brain

被引:222
作者
Fuxe, Kjell [1 ]
Dahlstrom, Annica B. [2 ]
Jonsson, Gosta [3 ]
Marcellino, Daniel [1 ]
Guescini, Michele [4 ]
Dam, Mauro [5 ]
Manger, Paul [6 ]
Agnati, Luigi [7 ,8 ]
机构
[1] Karolinska Inst, Dept Neurosci, S-17177 Stockholm, Sweden
[2] Univ Gothenburg, Fac Med, Dept Anat & Cell Biol, S-40530 Gothenburg, Sweden
[3] Karolinska Inst, KIAB, S-17177 Stockholm, Sweden
[4] Univ Urbino, Dept Biomol Sci, I-61029 Urbino, Italy
[5] Univ Padua, Dept Neurosci, I-35100 Padua, Italy
[6] Univ Witwatersrand, Sch Anat Sci, Fac Hlth Sci, ZA-2193 Johannesburg, South Africa
[7] Univ Modena, Dept Biomed Sci, I-41100 Modena, Italy
[8] IRCCS San Camillo, Lido Venezia, Italy
关键词
Monoamine mapping; Brain evolution; Volume transmission; Wiring transmission; Extracellular space; Transmitter-receptor mismatches in dopamine communication; Neurosteroids; Oxytocin receptors; Volume transmission channels; Tunneling nanotubes; Mitochondrial transfer; Technicolour of the connectome; CENTRAL-NERVOUS-SYSTEM; PROLACTIN-LIKE IMMUNOREACTIVITY; HISTOCHEMICAL FLUORESCENCE METHOD; RECEPTOR-RECEPTOR INTERACTIONS; DUAL-PROBE MICRODIALYSIS; NITRIC-OXIDE SYNTHASE; RAT CEREBRAL-CORTEX; SEROTONERGIC NEURONS; CELLULAR-LOCALIZATION; TYROSINE-HYDROXYLASE;
D O I
10.1016/j.pneurobio.2009.10.012
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The dawn of chemical neuroanatomy in the CNS came with the discovery and mapping of the central dopamine, noradrenaline and 5-hydroxytryptamine neurons by means of transmitter histochemistry using the Falck-Hillarp formaldehyde fluorescence technique in the early 1960s. Our mapping of the central monoamine neurons was continued and further established with tyrosine hydroxylase, dopa decarboxylase and dopamine-beta-hydroxylase immunohistochemistry in collaboration with Menek Goldstein and Tomas Hokfelt. During recent years an evolutionary constraint in the nuclear parcellation of the DA, NA and 5-HT neurons was demonstrated in the order Rodentia and other mammals. The abundant existence of global monoamine varicose nerve terminal networks synthesizing, storing and releasing monoamines in various parts of the CNS, including the release of DA by tubero-infundibular DA neurons as a prolactin inhibitory factor from the external layer of the median eminence into the portal vessels and the appearance of extraneuronal DA fluorescence after, e.g., treatment with amphetamine in nialamide pretreated rats (Falck-Hillarp technique) were also remarkable observations. These observations and others like the discovery of transmitter-receptor mismatches opened up the possibility that monoamines were modulating the wired brain, built up mainly by glutamate and GABA neurons, through diffusion and flow in the extracellular fluid of the extracellular space and in the CSF. This transmission also involved long-distance channels along myelinated fibers and blood vessels and was called volume transmission (VT). The extracellular space (ECS), filled with a 3D matrix, plays a fundamental role in this communication. Energy gradients for signal migration in the ECS are produced via concentration, temperature and pressure gradients, the latter two allowing a flow of the ECF and CSF carrying the VT signals. The differential properties of the wiring transmission (WT) and VT circuits and communication channels will be discussed as well as the role of neurosteroids and oxytocin receptors in volume transmission leading to a new understanding of the integrative actions of neuronal-glial networks. The role of tunneling nanotubes with mitochondrial transfer in CNS inter alia as part of neuron-glia interactions will also be introduced representing a novel type of wiring transmission. The impact of the technicolour approach to the connectome for the future characterization of the wired networks of the brain is emphasized. (C) 2009 Elsevier Ltd. All rights reserved.
引用
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页码:82 / 100
页数:19
相关论文
共 206 条
[1]  
AGNATI L, MED HYPOTHESIS UNPUB
[2]   Volume transmission and wiring transmission from cellular to molecular networks: history and perspectives [J].
Agnati, L. F. ;
Leo, G. ;
Zanardi, A. ;
Genedani, S. ;
Rivera, A. ;
Fuxe, K. ;
Guidolin, D. .
ACTA PHYSIOLOGICA, 2006, 187 (1-2) :329-344
[3]   Implications of the 'Energide' concept for communication and information handling in the central nervous system [J].
Agnati, L. F. ;
Fuxe, K. ;
Baluska, F. ;
Guidolin, D. .
JOURNAL OF NEURAL TRANSMISSION, 2009, 116 (08) :1037-1052
[4]   A boolean network modelling of receptor mosaics relevance of topology and cooperativity [J].
Agnati, L. F. ;
Guidolin, D. ;
Leo, G. ;
Fuxe, K. .
JOURNAL OF NEURAL TRANSMISSION, 2007, 114 (01) :77-92
[5]  
Agnati L F, 1984, Acta Physiol Scand Suppl, V532, P45
[6]   PRINCIPLES FOR THE MORPHOLOGICAL CHARACTERIZATION OF TRANSMITTER-IDENTIFIED NERVE-CELL GROUPS [J].
AGNATI, LF ;
FUXE, K ;
ZINI, I ;
BENFENATI, F ;
HOKFELT, T ;
DEMEY, J .
JOURNAL OF NEUROSCIENCE METHODS, 1982, 6 (1-2) :157-167
[7]   METHOD TO DETERMINE DOPAMINE LEVELS AND TURNOVER RATE IN DISCRETE DOPAMINE NERVE-TERMINAL SYSTEMS BY QUANTITATIVE USE OF DOPAMINE FLUORESCENCE OBTAINED BY FALCK-HILLARP METHODOLOGY [J].
AGNATI, LF ;
ANDERSSON, K ;
WIESEL, F ;
FUXE, K .
JOURNAL OF NEUROSCIENCE METHODS, 1979, 1 (04) :365-373
[8]   METHOD TO MEASURE DISTRIBUTION PATTERN OF SPECIFIC NERVE-TERMINALS IN SAMPLED REGIONS - STUDIES ON TYROSINE-HYDROXYLASE LHRH, TRH AND GIH IMMUNOFLUORESCENCE [J].
AGNATI, LF ;
FUXE, K ;
HOKFELT, T ;
GOLDSTEIN, M ;
JEFFCOATE, SL .
JOURNAL OF HISTOCHEMISTRY & CYTOCHEMISTRY, 1977, 25 (11) :1222-1236
[9]   Molecular mechanisms and therapeutical implications of intramembrane receptor/receptor interactions among heptahelical receptors with examples from the striatopallidal GABA neurons [J].
Agnati, LF ;
Ferré, S ;
Lluis, C ;
Franco, R ;
Fuxe, K .
PHARMACOLOGICAL REVIEWS, 2003, 55 (03) :509-550
[10]  
AGNATI LF, 1992, AM SCI, V80, P362