How do genes regulate simple behaviours? Understanding how different neurons in the vertebrate spinal cord are genetically specified

被引:56
作者
Lewis, KE [1 ]
机构
[1] Univ Cambridge, Dept Anat, Cambridge CB2 3DY, England
关键词
interneuron; spinal cord; transcription factor; zebrafish; Shh; BMP;
D O I
10.1098/rstb.2005.1778
中图分类号
Q [生物科学];
学科分类号
07 [理学]; 0710 [生物学]; 09 [农学];
摘要
Understanding how the vertebrate central nervous system develops and functions is a major goal of a large body of biological research. This research is driven both by intellectual curiosity about this amazing organ that coordinates our conscious and unconscious bodily processes, perceptions and actions and by the practical desire to develop effective treatments for people with spinal cord injuries or neurological diseases. In recent years, we have learnt an impressive amount about how the nerve cells that communicate with muscles, motoneurons, are made in a developing embryo and this knowledge has enabled researchers to grow motoneurons from stem cells. Building on the success of these studies, researchers have now started to unravel how most of the other nerve cells in the spinal cord are made and function. This review will describe what we currently know about spinal cord nerve cell development, concentrating on the largest category of nerve cells, which are called interneurons. I will then discuss how we can build and expand upon this knowledge base to elucidate the complete genetic programme that determines how different spinal cord nerve cells are made and connected up into neural circuits with particular functions.
引用
收藏
页码:45 / 66
页数:22
相关论文
共 135 条
[1]
Barth KA, 1999, DEVELOPMENT, V126, P4977
[2]
Temporal separation in the specification of primary and secondary motoneurons in zebrafish [J].
Beattie, CE ;
Hatta, K ;
Halpern, ME ;
Liu, HB ;
Eisen, JS ;
Kimmel, CB .
DEVELOPMENTAL BIOLOGY, 1997, 187 (02) :171-182
[3]
Acetylcholinesterase is required for neuronal and muscular development in the zebrafish embryo [J].
Behra, M ;
Cousin, X ;
Bertrand, C ;
Vonesch, JL ;
Biellmann, D ;
Chatonnet, A ;
Strähle, U .
NATURE NEUROSCIENCE, 2002, 5 (02) :111-118
[4]
Ben-Arie N, 2000, DEVELOPMENT, V127, P1039
[5]
Proprioceptor pathway development is dependent on MATH1 [J].
Bermingham, NA ;
Hassan, BA ;
Wang, VY ;
Fernandez, M ;
Banfi, S ;
Bellen, HJ ;
Fritzsch, B ;
Zoghbi, HY .
NEURON, 2001, 30 (02) :411-422
[6]
AXONAL TRAJECTORIES AND DISTRIBUTION OF GABAERGIC SPINAL NEURONS IN WILDTYPE AND MUTANT ZEBRAFISH LACKING FLOOR PLATE CELLS [J].
BERNHARDT, RR ;
PATEL, CK ;
WILSON, SW ;
KUWADA, JY .
JOURNAL OF COMPARATIVE NEUROLOGY, 1992, 326 (02) :263-272
[7]
IDENTIFICATION OF SPINAL NEURONS IN THE EMBRYONIC AND LARVAL ZEBRAFISH [J].
BERNHARDT, RR ;
CHITNIS, AB ;
LINDAMER, L ;
KUWADA, JY .
JOURNAL OF COMPARATIVE NEUROLOGY, 1990, 302 (03) :603-616
[8]
Specification of neuronal fates in the ventral neural tube [J].
Briscoe, J ;
Ericson, J .
CURRENT OPINION IN NEUROBIOLOGY, 2001, 11 (01) :43-49
[9]
Homeobox gene Nkx2.2 and specification of neuronal identity by graded Sonic hedgehog signalling [J].
Briscoe, J ;
Sussel, L ;
Serup, P ;
Hartigan-O'Connor, D ;
Jessell, TM ;
Rubenstein, JLR ;
Ericson, J .
NATURE, 1999, 398 (6728) :622-627
[10]
A homeodomain protein code specifies progenitor cell identity and neuronal fate in the ventral neural tube [J].
Briscoe, J ;
Pierani, A ;
Jessell, TM ;
Ericson, J .
CELL, 2000, 101 (04) :435-445