THE GROWTH OF SEGMENTAL NERVES FROM THE SPINAL CORD TO THE HIND LIMB-BUD IN THE AXOLOTL

1982 ◽  
Vol 60 (2) ◽  
pp. 133-146 ◽  
Author(s):  
JM Freeman ◽  
MR Bennett
Keyword(s):  
2014 ◽  
Vol 2014 ◽  
pp. 1-10 ◽  
Author(s):  
Shaohui Zong ◽  
Gaofeng Zeng ◽  
Ye Fang ◽  
Jinzhen Peng ◽  
Yong Tao ◽  
...  

Study Design.In this study, we investigated the role of IL-17 via activation of STAT3 in the pathophysiology of SCI.Objective.The purpose of the experiments is to study the expression of IL-17 and related cytokines via STAT3 signaling pathways, which is caused by the acute inflammatory response following SCI in different periods via establishing an acute SCI model in rat.Methods.Basso, Beattie, and Bresnahan hind limb locomotor rating scale was used to assess the rat hind limb motor function. Immunohistochemistry was used to determine the expression levels of IL-17 and p-STAT3 in spinal cord tissues. Western blotting analysis was used to determine the protein expression of p-STAT3 in spinal cord tissue. RT-PCR was used to analyze the mRNA expression of IL-17 and IL-23p19 in the spleen tissue. ELISA was used to determine the peripheral blood serum levels of IL-6, IL-21, and IL-23.Results.Compared to the sham-operated group, the expression levels of IL-17, p-STAT3, IL-6, IL-21, and IL-23 were significantly increased and peaked at 24 h after SCI. The increased levels of cytokines were correlated with the SCI disease stages.Conclusion.IL-17 may play an important role in promoting spinal cord neuroinflammation after SCI via activation of STAT3.


Development ◽  
1996 ◽  
Vol 122 (5) ◽  
pp. 1449-1466 ◽  
Author(s):  
C.E. Nelson ◽  
B.A. Morgan ◽  
A.C. Burke ◽  
E. Laufer ◽  
E. DiMambro ◽  
...  

The vertebrate Hox genes have been shown to be important for patterning the primary and secondary axes of the developing vertebrate embryo. The function of these genes along the primary axis of the embryo has been generally interpreted in the context of positional specification and homeotic transformation of axial structures. The way in which these genes are expressed and function during the development of the secondary axes, particularly the limb, is less clear. In order to provide a reference for understanding the role of the Hox genes in limb patterning, we isolated clones of 23 Hox genes expressed during limb development, characterized their expression patterns and analyzed their regulation by the signalling centers which pattern the limb. The expression patterns of the Abd-B-related Hoxa and Hoxd genes have previously been partially characterized; however, our study reveals that these genes are expressed in patterns more dynamic and complex than generally appreciated, only transiently approximating simple, concentric, nested domains. Detailed analysis of these patterns suggests that the expression of each of the Hoxa and Hoxd genes is regulated in up to three independent phases. Each of these phases appears to be associated with the specification and patterning of one of the proximodistal segments of the limb (upper arm, lower arm and hand). Interestingly, in the last of these phases, the expression of the Hoxd genes violates the general rule of spatial and temporal colinearity of Hox gene expression with gene order along the chromosome. In contrast to the Abd-B-related Hoxa and Hoxd genes, which are expressed in both the fore and hind limbs, different sets of Hoxc genes are expressed in the two limbs. There is a correlation between the relative position of these genes along the chromosome and the axial level of the limb bud in which they are expressed. The more 3′ genes are expressed in the fore limb bud while the 5′ genes are expressed in the hind limb bud; intermediate genes are transcribed in both limbs. However, there is no clear correlation between the relative position of the genes along the chromosome and their expression domains within the limb. With the exception of Hoxc-11, which is transcribed in a posterior portion of the hind limb, Hoxc gene expression is restricted to the anterior/proximal portion of the limb bud. Importantly, comparison of the distributions of Hoxc-6 RNA and protein products reveals posttranscriptional regulation of this gene, suggesting that caution must be exercised in interpreting the functional significance of the RNA distribution of any of the vertebrate Hox genes. To understand the genesis of the complex patterns of Hox gene expression in the limb bud, we examined the propagation of Hox gene expression relative to cell proliferation. We find that shifts in Hox gene expression cannot be attributed to passive expansion due to cell proliferation. Rather, phase-specific Hox gene expression patterns appear to result from a context-dependent response of the limb mesoderm to Sonic hedgehog. Sonic hedgehog (the patterning signal from the Zone of Polarizing Activity) is known to be able to activate Hoxd gene expression in the limb. Although we find that Sonic hedgehog is capable of initiating and polarizing Hoxd gene expression during both of the latter two phases of Hox gene expression, the specific patterns induced are not determined by the signal, but depend upon the temporal context of the mesoderm receiving the signal. Misexpression of Sonic hedgehog also reveals that Hoxb-9, which is normally excluded from the posterior mesenchyme of the leg, is negatively regulated by Sonic hedgehog and that Hoxc-11, which is expressed in the posterior portion of the leg, is not affected by Sonic hedgehog and hence is not required to pattern the skeletal elements of the lower leg.


Development ◽  
1973 ◽  
Vol 29 (1) ◽  
pp. 221-237
Author(s):  
J. Geraudie ◽  
Y. François

The first stages of genesis of the pelvic fin Anlage in the Trout (Salmo fario and S. gairdneri). I. Anatomical study The Anlage of the pelvic fins appears in Salmo 2 weeks after the fecundation day, at the level of the somites 23–26. The mesoderm has a double origin and seems to differ in this regard from the hind limb of most of the amniotes. The ‘initial mesenchyme’ comes from the local proliferation of the somatopleura. It will give essentially the skeletal components of dermal origin (actinotrichia and lepidotrichia). The ‘secondary mesenchyme’ is obtained by the dispersion of four ventral somitic processes that have reached and entered the initial mesenchyme blastema. The secondary mesenchyme will probably give the muscles and also the endoskeleton of the fin. The origin of the girdle is not clear. When the setting of the initial mesenchyme begins the epithelium that covers the embryo is already differentiated in an epiderm with numerous mucous cells resting on a visible basement membrane. At the apex of the pelvic bud, a localized and transitory thickening of the epiderm is produced by the increase in the height of the basal stratum. We call this structure by the name of ‘pseudo apical cap’ to stress the fact that it must be distinguished from the ‘apical cap’ described for the limb bud of amniotes. So, the morphogenesis of the pelvic fins of Salmo shows some important particularities in the epiderm as well as in the mesoderm.


Development ◽  
1982 ◽  
Vol 72 (1) ◽  
pp. 269-286
Author(s):  
N. G. Laing

Counts were made of the number of motoneurons innervating the hind limbs of 10-day normal and paralysed chick embryos whose right hind limb buds had been subjected to varying degrees of amputation prior to innervation. The number of motoneurons on the intact sides of the paralysed embryos was found to be similar to the number present in normal embryos prior to the major period of motoneuron death. Since it has previously been shown that paralysis does not increase the number of motoneurons generated, this means that normal motoneuron death was largely prevented in the paralysed embryos. There were differences in the distributions of motoneurons in the rostrocaudal axis of the spinal cord between normal and paralysed embryos. Therefore, cell death does not eliminate a uniform fraction of motoneurons throughout the rostrocaudal extent of the chick embryo lumbar lateral motor column. It is also argued that there are differences in the relative contribution of the various lumbosacral levels to different parts of the limb, e.g. the shank, before and after the period of cell death. In both normal and paralysed embryos there was a linear relationship between the volume of limb muscle which developed after amputation and the number of motoneurons surviving in the spinal cord. There was no evidence of a ‘compression’ of motoneurons into the remaining muscle either after amputation alone or after amputation combined with paralysis. Motoneurons are therefore rigidly specified for certain parts of the limb. The relationship between motoneuron number and muscle volume on the amputated side differed from that of the intact side. For a similar increase in muscle volume there was a smaller increase in motoneuron number on the intact sides. This suggested a parallel to the paradoxically small increase in motoneuron number that occurs on the addition of a supernumerary limb.


2006 ◽  
Vol 401 (1-2) ◽  
pp. 25-29 ◽  
Author(s):  
Isabelle de Hemptinne ◽  
Cédric Boucherie ◽  
Roland Pochet ◽  
Kadiombo Bantubungi ◽  
Serge N. Schiffmann ◽  
...  

2008 ◽  
Vol 586 (10) ◽  
pp. 2593-2610 ◽  
Author(s):  
Pilar Negredo ◽  
José-Luis L. Rivero ◽  
Beatriz González ◽  
Almudena Ramón-Cueto ◽  
Rafael Manso

Development ◽  
1973 ◽  
Vol 30 (3) ◽  
pp. 673-679
Author(s):  
P. V. Thorogood

Myotubes are present in the developing hind limb of the embryonic chick at 5 days. An immunofluorescence technique was used to detect actomyosin within the myotubes. The earliest detectable appearance of this muscle protein was at six days of development, at sites located peripherally beneath the flattened dorsal and ventral surface of the limb. These dorsal and ventral loci are interpreted as representing the primordial extensor and flexor muscles. At the ultrastructural level the cytoplasm of the myotubes contains fibrillar components which are apparently aggregating to form myofibrils. A rudimentary banding pattern can be distinguished.


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