Scientia Agricultura Sinica ›› 2011, Vol. 44 ›› Issue (15): 3264-3271.doi: 10.3864/j.issn.0578-1752.2011.15.022

• VETERINARY SCIENCE • Previous Articles     Next Articles

Study on the Coexistence of GnRH, OT, SYN and S-100 Protein in the Same Luteal Cell of the Mid Phases of Oestrous Cycle in Karakul Sheep

ZHENG  Mao-Liang, LI  Guang   

  1. 1. 塔里木大学动物科学学院
    2. 西北农林科技大学动物科技学院
  • Received:2010-10-20 Revised:2011-04-14 Online:2011-08-01 Published:2011-05-13

Abstract: 【Objective】The experiment was conducted to study coexistence of gonadotropin-releasing hormone (GnRH), oxytocin (OT), synaptophysin (SYN) and S-100 protein of dispersed or diffuse neuroendocrine system (dispersed or diffuse neuroendocrine system,DNES) in the same luteal cell. 【Method】 The corpus luteum was stained using pairwise combinations of OT, GnRH, SYN, and S-100 monoclonal antibody through double labeling immunofluorescence staining, respectively, at the mid phases of oestrous cycle of the Karakul sheep. 【Result】 Five kinds of immunofluorescence staining double positive cells combinations (OT and GnRH, OT and S-100, OT and SYN, GnRH and S-100, and GnRH and SYN) were respectively presented in luteal cell. In addition, the correlation analysis on 10 combinations of 5 kinds of double positive cells showed that there were 9 highly correlated combinations (r>0.7). 【Conclusion】 This result reveals that there are DNES cells widespread in the same luteal cells,and there are OT and GnRH widespread in DNES cells. So, DNES cells may be the secretion cells of OT, and GnRH, and there are dual properties of both DNES cells and endocrine cells in luteal cells.

Key words: GnRH, OT, SYN, S-100, luteal cell, Coexistence

[1]Miyamoto A, Shirasuna K, Sasahara K. Local regulation of corpus luteum development and regression in the cow: Impact of angiogenic and vasoactive factors. Domestic Animal Endocrinology, 2009, 37(3): 159-169.

[2]Komatsu K, Manabe N, Kiso M, Shimabe M, Miyamoto H. Changes in localization of immune cell and cytokines in corpora lutea during luteolysis in murine ovaries. Journal of Experimental Zoology Part A: Comparative Experimental Biology, 2003, 296(2): 152-159.

[3]Kotwica J, Bogacki M, Rekawiecki R. Neural regulation of the bovine corpus luteum. Domestic Animal Endocrinology, 2002, 23(1-2): 299-308.

[4]Mayerhofer A, Dimitrijevic N, Kunz L. The expression and biological role of the non-neuronal cholinergic system in the ovary. Life Sciences, 2003, 72(18-19): 2039-2045.

[5]Harrison G S, Wierman M E, Nett T M, Glode L M. Gonadotropin- releasing hormone and its receptor in normal and malignant cells. Endocrine-Related Cancer, 2004, 11(4): 725-748.

[6]陈树林, 卿素珠, 范光丽, 赵慧英, 蒋田园, 张 艳, 林 磊. 成年奶山羊黄体中弥散性神经内分泌细胞鉴定. 中国动物解剖学及组织胚胎学学会论文集, 太谷: 山西农业大学, 2004: 169-174.

Chen S L, Qing S Z, Fan G L, Zhao H Y, Jiang T Y, Lin L. Identification of diffused neuroendorine system cells in adult dairy goat corpus luteum//Chinese Association of Animal Anatomy and Embryology Symposium Proceedings. Taigu: Shanxi Agricultural University, 2004: 169-174. (in Chinese)

[7]Besedovsky H, Sorkin E. Network of immune-neuroendocrine interactions. Clinical and Experimental Immunology, 1977, 27(1): 1-12.

[8]Pearse A G. The diffuse neuroendocrine system and the apud concept: related “endocrine” peptides in brain, intestine, pituitary, placenta, and anuran cutaneous glands. Medical Biology, 1977, 55(3): 115-125.

[9]陈树林, 马永生, 王桂花, 李兆才, 雷治海, 张  宝, 段会娟, 杭 超. 5-HT与NSE和SYN在牛周期黄体细胞中的共存. 西北农林科技大学学报: 自然科学版, 2009, 37(4): 37-41.

Chen S L, Ma Y S, Wang G H, Li Z C, Lei Z H, Zhang B, Duan H J, Hang C. Coexistence of 5-HT with NSE or SYN in corpus iuteum cells of bovine during estrous cycle. Journal of Northwest A & F University: Natural Science Edition, 2009, 37(4): 37-41. (in Chinese)

[10]Jahn R, Schiebler W, Ouimet C, Greengard P A. 38, 000 Dalton membrane protein (P38) present in synaptic vesicles. Proceedings of the National Academy of Sciences of the United States of America, 1985, 82: 4137-4141.

[11]Wiedenmann B, Franke W W. Identification and localization of synaptophysin, an integral membrane glycoprotein of Mr 38 000 characteristic of presynaptic vesicles. Cell, 1985, 41(3): 1017-28.

[12]Leclerc N, Beesley P W, Brown I, Colonnier M, Gurd J W, Paladino T, Hawkes R. Synaptophysin expression during synaptogenesis in the rat cerebellar cortex. Journal of Comparative Neurology, 1989, 280(2): 197-212.

[13]Terry R D, Masliah E, Salmon D P, Butters N, DeTeresa R, Hill R,

 

Hansen L A, Katzman R. Physical basis of cognitive alterations in Alzheimer’s disease: synapse loss is the major correlate of cognitive impairment. Annals of Neurology, 1991, 30(4): 572- 580.

[14]龙大宏, 姚志彬, 何蕴韶, 顾耀铭, 陈以慈. 神经生长因子对痴呆模型鼠海马突触素的影响. 解剖学杂志, 1997, 20(2): 114-117.

Long D H, Yao Z B, He Y S, Gu Y M, Chen Y C. Effect of nerve growth factor on synaptophysin in hippocampus of aged rats with fimbria-fornix transection. Chinese Journal of Anatomy, 1997, 20(2): 114-117. (in Chinese)

[15]Cruz-Sánchez F F, Moral A, Rossi M L, Quintó L, Castejón C, Tolosa E, de Belleroche J. Synaptophysin in spinal anterior horn in aging and ALS: an immunohistological study. Journal of Neural Transmission, 1996, 103(11): 1317-1329.

[16]Moore B W. A soluble protein characteristic of the nervous system. Biochemical and Biophysical Research Communications, 1965, 19(6): 739-744.

[17]Matsuda H, Hirato J, Kuroiwa M, Nakazato Y. Histopathological and immunohistochemical study of the enteric innervations among various types of aganglionoses including isolated and syndromic Hirschsprung disease. Neuropathology, 2006, 26(1): 8-23.

[18]Yang Q, Hamberger A, Hyden H, Wang S, Stigbrand T, Haglid K G. S-100 beta has a neuronal localisation in the rat hindbrain revealed by an antigen retrieval method. Brain Research, 1995, 696(1-2): 49-61.

[19]Wiesmann M, Missler U, Gottmann D, Gehring S. Plasma S-100b protein concentration in healthy adults is age- and sex-independent. Clinical Chemistry, 1998, 44(5): 1056 -1058.

[20]Iwasaki Y, Shiojima T, Kinoshita M. S100β prevents the death of motor neurons in newborn rats after sciatic nerve section. Journal of the Neurological Sciences, 151(1): 7-12.

[21]Ciechanowska M, Lapot M, Malewski T, Mateusiak K, Misztal T, Przekop F. Effects of GABAA receptor modulation on the expression of GnRH gene and GnRH receptor (GnRH-R) gene in the hypothalamus and GnRH-R gene in the anterior pituitary gland of follicular-phase ewes. Animal Reproduction Science, 2009, 111(2): 235-248.

[22]Huhtaniemi I, Alevizaki M. Mutations along the hypothalamic pituitary gonadal axis affecting male reproduction. Reproductive Biomedicine Online, 2007, 15(6): 622-632.

[23]Henry C. Role of prolactin in regulation of reproductive cycles. General and Comparative Endocrinology, 1969, 2(2): 42-54.
[1] LIN Ping, WANG KaiLiang, YAO XiaoHua, REN HuaDong. Development of DNA Molecular ID in Camellia oleifera Germplasm Based on Transcriptome-Wide SNPs [J]. Scientia Agricultura Sinica, 2023, 56(2): 217-235.
[2] XIAO DeShun, XU ChunMei, WANG DanYing, ZHANG XiuFu, CHEN Song, CHU Guang, LIU YuanHui. Effects of Rhizosphere Oxygen Environment on Phosphorus Uptake of Rice Seedlings and Its Physiological Mechanisms in Hydroponic Condition [J]. Scientia Agricultura Sinica, 2023, 56(2): 236-248.
[3] WANG XuanDong, SONG Zhen, LAN HeTing, JIANG YingZi, QI WenJie, LIU XiaoYang, JIANG DongHua. Isolation of Dominant Actinomycetes from Soil of Waxberry Orchards and Its Disease Prevention and Growth-Promotion Function [J]. Scientia Agricultura Sinica, 2023, 56(2): 275-286.
[4] CHEN XiaoWei, WANG XiaoLong. Accounting Framework of Carbon Footprint on Integrated Cropping-Breeding Farming System: A Case on Maize-Cow-Recycling Manure Model [J]. Scientia Agricultura Sinica, 2023, 56(2): 314-332.
[5] XU Qian, WANG Han, MA Sai, HU QiuHui, MA Ning, SU AnXiang, LI Chen, MA GaoXing. Inhibition and Interaction of Pleurotus eryngii Polysaccharide and Its Digestion Products on Starch Digestive Enzymes [J]. Scientia Agricultura Sinica, 2023, 56(2): 357-367.
[6] SHEN LongXian, WANG LiTing, HE Ke, DU Xue, YAN FeiFei, CHEN WeiHu, LÜ YaoPing, WANG Han, ZHOU XiaoLong, ZHAO AYong. Effects of Melatonin and Nicotinamide Mononucleotides on Proliferation of Skeletal Muscle Satellite Cells in Goose [J]. Scientia Agricultura Sinica, 2023, 56(2): 391-404.
[7] CHAI HaiYan,JIA Jiao,BAI Xue,MENG LingMin,ZHANG Wei,JIN Rong,WU HongBin,SU QianFu. Identification of Pathogenic Fusarium spp. Causing Maize Ear Rot and Susceptibility of Some Strains to Fungicides in Jilin Province [J]. Scientia Agricultura Sinica, 2023, 56(1): 64-78.
[8] LOU YiBao,KANG HongLiang,WANG WenLong,SHA XiaoYan,FENG LanQian,NIE HuiYing,SHI QianHua. Vertical Distribution of Vegetation Roots and Its Influence on Soil Erosion Resistance of Gully Heads on the Gullied Loess Plateau [J]. Scientia Agricultura Sinica, 2023, 56(1): 90-103.
[9] WANG CaiXiang,YUAN WenMin,LIU JuanJuan,XIE XiaoYu,MA Qi,JU JiSheng,CHEN Da,WANG Ning,FENG KeYun,SU JunJi. Comprehensive Evaluation and Breeding Evolution of Early Maturing Upland Cotton Varieties in the Northwest Inland of China [J]. Scientia Agricultura Sinica, 2023, 56(1): 1-16.
[10] LI XuFei,YANG ShengDi,LI SongQi,LIU HaiNan,PEI MaoSong,WEI TongLu,GUO DaLong,YU YiHe. Analysis of VlCKX4 Expression Characteristics and Prediction of Transcriptional Regulation in Grape [J]. Scientia Agricultura Sinica, 2023, 56(1): 144-155.
[11] HU Sheng,LI YangYang,TANG ZhangLin,LI JiaNa,QU CunMin,LIU LieZhao. Genome-Wide Association Analysis of the Changes in Oil Content and Protein Content Under Drought Stress in Brassica napus L. [J]. Scientia Agricultura Sinica, 2023, 56(1): 17-30.
[12] MO WenJing,ZHU JiaWei,HE XinHua,YU HaiXia,JIANG HaiLing,QIN LiuFei,ZHANG YiLi,LI YuZe,LUO Cong. Functional Analysis of MiZAT10A and MiZAT10B Genes in Mango [J]. Scientia Agricultura Sinica, 2023, 56(1): 193-202.
[13] ZHAO HaiXia,XIAO Xin,DONG QiXin,WU HuaLa,LI ChengLei,WU Qi. Optimization of Callus Genetic Transformation System and Its Application in FtCHS1 Overexpression in Tartary Buckwheat [J]. Scientia Agricultura Sinica, 2022, 55(9): 1723-1734.
[14] XIONG WeiYi,XU KaiWei,LIU MingPeng,XIAO Hua,PEI LiZhen,PENG DanDan,CHEN YuanXue. Effects of Different Nitrogen Application Levels on Photosynthetic Characteristics, Nitrogen Use Efficiency and Yield of Spring Maize in Sichuan Province [J]. Scientia Agricultura Sinica, 2022, 55(9): 1735-1748.
[15] LI YiLing,PENG XiHong,CHEN Ping,DU Qing,REN JunBo,YANG XueLi,LEI Lu,YONG TaiWen,YANG WenYu. Effects of Reducing Nitrogen Application on Leaf Stay-Green, Photosynthetic Characteristics and System Yield in Maize-Soybean Relay Strip Intercropping [J]. Scientia Agricultura Sinica, 2022, 55(9): 1749-1762.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!