CHANGES IN CGRP-IMMUNOREACTIVE NERVE-FIBERS DURING EXPERIMENTAL TOOTH MOVEMENT IN RATS

被引:64
作者
KVINNSLAND, I
KVINNSLAND, S
机构
[1] Department of Cariology and Endodontics, Institute of Anatomy, University of Bergen
关键词
D O I
10.1093/ejo/12.3.320
中图分类号
R78 [口腔科学];
学科分类号
1003 ;
摘要
Immunohistochemical localization of calcitonin gene-related peptide (CGRP) was used to investigate changes in nerves experssing CGRP in periodontium and pulp during experimental mesial movement of the first maxillary molar in rats. The orthodontic appliance consisted of a coil spring connecting the first maxillary molar on one side to the central incisors. After 5 days with a continuous force of 30-50 g the animals were perfused after an overdose of anaesthetic. Serial sections from the experimental and control jaws were exposed to the avidinbiotin-peroxidase technique for demonstration of CGRP-immunoreactive (IR) nerve fibres. The induced tooth movement caused reproducible changes in the relative number of CGRP-IR nerves as well as morphological alterations within parts of the nerve supply of the experimental teeth and related tissue structures. The majority of the experimental teeth showed increased number of CGRP-IR nerves in the coronal pulp and periapical tissues. The results indicate that peptidergic nerve fibres immunoreactive for CGRP takes an active part in tissue responses in pulp and supporting tissues during experimental tooth movement. © 1990 European Orthodontic Society.
引用
收藏
页码:320 / 329
页数:10
相关论文
共 20 条
[11]  
Kimberly C.R., Byers M.R., Inflammation of rat molar pulp and periodontium causes increased calcitonin gene- related peptide and axonal sprouting, Anatomical Record, 222, pp. 289-300, (1988)
[12]  
Kvinnsland S., Heyeraas K.J., Ofjord E.S., Effect of experimental tooth movement on periodontal and pulpal blood flow. Blood flow related to fluorescent microspheres, European Journal of Orthodontics, 11, pp. 200-205, (1989)
[13]  
Legreves P., Nyberg F., Terenius L., Hokfelt T., Calcitonin gene-related peptide is a potent inhibitor of substance P degradation, European Journal of Pharmacology, 115, pp. 309-311, (1985)
[14]  
Lotz M., Vaughan J.H., Carson D.A., Effects of neuropeptides on production of inflammatory cytokines by human monocytes, Science, 241, pp. 1218-1220, (1988)
[15]  
Olgart L.M., Gazelius B., Sundstrom F., Intradental nerve activity and jaw-opening reflex in response to mechanical deformation of cat teeth, Acta Physiologica Scandinavica, 133, pp. 399-406, (1988)
[16]  
Olgart L.M., Functions of Peptigerdic nerves, Dynamic Aspects of the Dental Pulp, (1988)
[17]  
Othake M., Response of nerve fibres in the periodontium during experimental tooth movement, Nippon Kyosei Shika Gakkai Zasshi, 41, pp. 71-91, (1982)
[18]  
Rosza A.J., Guss R.B., Beuerman R.N., Neural remodelling following experimental surgery of the rabbit cornea, Investigative Opthalmology—Visual Science, 24, pp. 1033-1051, (1983)
[19]  
Silverman J.D., Kruger L., An interpretation of dental innervation based upon the pattern of calcitonin gene- related peptide (CGRP) immunoreactive thin sensory axons, Somatosensory Research, 5, pp. 157-175, (1987)
[20]  
Taylor P.E., Byers M.R., Redd P.E., Sprouting of CGRP nerve fibres in response to dentin injury in rat molars, Brain Research, 2, pp. 371-376, (1988)