Full Text:   <2816>

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CLC number: R697+.22

On-line Access: 2016-01-06

Received: 2015-07-16

Revision Accepted: 2015-11-09

Crosschecked: 2015-12-10

Cited: 3

Clicked: 4468

Citations:  Bibtex RefMan EndNote GB/T7714

 ORCID:

Supatcharee Arun

http://orcid.org/0000-0002-7518-2406

Sitthichai Iamsaard

http://orcid.org/0000-0002-6793-2879

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Journal of Zhejiang University SCIENCE B 2016 Vol.17 No.1 P.21-29

http://doi.org/10.1631/jzus.B1500174


Changes of testicular phosphorylated proteins in response to restraint stress in male rats


Author(s):  Supatcharee Arun, Jaturon Burawat, Wannisa Sukhorum, Apichakan Sampannang, Nongnut Uabundit, Sitthichai Iamsaard

Affiliation(s):  1Department of Anatomy, Faculty of Medicine, Khon Kaen University, Khon Kaen 40002, Thailand; more

Corresponding email(s):   sittia@kku.ac.th

Key Words:  Restraint-stress rats, Steroidogenic acute regulatory (StAR) protein, Testicular phosphorylated protein


Supatcharee Arun, Jaturon Burawat, Wannisa Sukhorum, Apichakan Sampannang, Nongnut Uabundit, Sitthichai Iamsaard. Changes of testicular phosphorylated proteins in response to restraint stress in male rats[J]. Journal of Zhejiang University Science B, 2016, 17(1): 21-29.

@article{title="Changes of testicular phosphorylated proteins in response to restraint stress in male rats",
author="Supatcharee Arun, Jaturon Burawat, Wannisa Sukhorum, Apichakan Sampannang, Nongnut Uabundit, Sitthichai Iamsaard",
journal="Journal of Zhejiang University Science B",
volume="17",
number="1",
pages="21-29",
year="2016",
publisher="Zhejiang University Press & Springer",
doi="10.1631/jzus.B1500174"
}

%0 Journal Article
%T Changes of testicular phosphorylated proteins in response to restraint stress in male rats
%A Supatcharee Arun
%A Jaturon Burawat
%A Wannisa Sukhorum
%A Apichakan Sampannang
%A Nongnut Uabundit
%A Sitthichai Iamsaard
%J Journal of Zhejiang University SCIENCE B
%V 17
%N 1
%P 21-29
%@ 1673-1581
%D 2016
%I Zhejiang University Press & Springer
%DOI 10.1631/jzus.B1500174

TY - JOUR
T1 - Changes of testicular phosphorylated proteins in response to restraint stress in male rats
A1 - Supatcharee Arun
A1 - Jaturon Burawat
A1 - Wannisa Sukhorum
A1 - Apichakan Sampannang
A1 - Nongnut Uabundit
A1 - Sitthichai Iamsaard
J0 - Journal of Zhejiang University Science B
VL - 17
IS - 1
SP - 21
EP - 29
%@ 1673-1581
Y1 - 2016
PB - Zhejiang University Press & Springer
ER -
DOI - 10.1631/jzus.B1500174


Abstract: 
Objective: To investigate male reproductive parameters via changes of potential testicular protein markers in restraint-stress rats. Methods: Male Sprague-Dawley rats were divided into two groups (non-immobilized control and restraint-immobilized/stress groups, n=8 each group). The stress animals were immobilized (12 h/d) by a restraint cage for 7 consecutive days. All reproductive parameters, morphology and histology were observed and compared between groups. In addition, the expression of steroidogenic acute regulatory (StAR) and phosphotyrosine proteins (previously localized in Sertoli and late spermatid cells) in testicular lysate was assayed by immuno-Western blotting. Results: Testosterone level, sperm concentration and sperm head normality of stress rats were significantly decreased while the corticosterone level was increased as compared with the control (P<0.05). Histologically, stress rats showed low sperm mass in epididymal lumen and some atrophy of seminiferous tubules. Although the expression of testicular StAR protein was not significantly different between groups, changed patterns of the 131, 95, and 75 kDa testicular phosphorylated proteins were observed in the stress group compared with the control group. The intensity of a testicular 95-kDa phosphorylated protein was significantly decreased in stress rats. Conclusions: This study has demonstrated the alteration of testicular phosphorylated protein patterns, associated with adverse male reproductive parameters in stress rats. It could be an explanation of some infertility in stress males.

束缚应激对雄性大鼠睾丸磷酸化蛋白表达的影响

目的:寻找雄性大鼠应激模型中潜在的睾丸蛋白标记物,探索评估男性生殖能力新的参数。
创新点:压力可以影响男性生育能力,但其具体机制尚未明了。睾丸组织中酪氨酸磷酸化蛋白在精子形成过程中扮演着重要的角色。本研究首次利用动物模型说明了压力对睾丸组织中酪氨酸磷酸化蛋白表达的影响,进而探索评估男性生殖能力新的参数。
方法:雄性SD大鼠被随机分为对照组和束缚应激的实验组。实验组大鼠每天禁足12小时,持续7天。观察比较两组类固醇激素、精子密度、生殖系统形态学和组织学的差别,同时利用免疫印迹方法比较两组睾丸组织裂解产物中急性类固醇调节蛋白和酪氨酸的表达差别(早期在支持细胞中表达,后期在精子细胞中表达)。
结果:实验组大鼠的睾酮水平和精子密度较对照组均显著降低,而精子畸形率和皮质酮显著升高。组织学比较发现实验组大鼠精子团数量减少并且出现输精管萎缩。两组大鼠睾丸组织中酪氨酸磷酸化蛋白的表达具有显著差异,实验组95 kDa的磷酸化蛋白表达量显著降低,但两组急性类固醇调节蛋白的表达没有显著差异。
结论:本研究证明束缚应激可使大鼠睾丸组织磷酸化蛋白表达降低,并相应伴随着生殖能力参数的降低。这也许可以从一个方面解释压力对男性不育的影响。

关键词:束缚应激大鼠;类固醇激素合成急性调节蛋白;睾丸磷酸化蛋白

Darkslateblue:Affiliate; Royal Blue:Author; Turquoise:Article

Reference

[1]Ahmad, A., Rasheed, N., Gupta, P., et al., 2012. Novel Ocimumoside A and B as anti-stress agents: modulation of brain monoamines and antioxidant systems in chronic unpredictable stress model in rats. Phytomedicine, 19:639-647.

[2]Almeida, S.A., Petenusci, S.O., Anselmo-Franci, J.A., et al., 1998. Decreased spermatogenic and androgenic testicular functions in adult rats submitted to immobilization-induced stress from prepuberty. Braz. J. Med. Biol. Res., 31(11):1443-1448.

[3]Arad-Dann, H., Beller, U., Haimovitch, R., et al., 1993. Immunohistochemistry of phosphotyrosine residues: identification of distinct intracellular patterns in epithelial and steroidogenic tissues. J. Histochem. Cytochem., 41(4):513-519.

[4]Arner, P., 1992. Adrenergic receptor function in fat cells. Am. J. Clin. Nutr., 55:228S-236S.

[5]Aziz, N.M., Ragy, M.M., Gayyed, M.F., 2013. Effect of acute immobilization stress with or without a heme oxygenase inducer on testicular structure and function in male albino rats. J. Basic Clin. Physiol. Pharmacol., 24(4):255-262.

[6]Ballester, J., Munoz, M.C., Dominguez, J., et al., 2004. Insulin-dependent diabetes affects testicular function by FSH- and LH-linked mechanisms. J. Androl., 25(5):706-719.

[7]Bhatia, N., Jaggi, A.S., Singh, N., et al., 2011. Adaptogenic potential of curcumin in experimental chronic stress and chronic unpredictable stress-induced memory deficits and alterations in functional homeostasis. J. Nat. Med., 65(3-4):532-543.

[8]Bitgul, G., Tekmen, I., Keles, D., et al., 2013. Protective effects of resveratrol against chronic immobilization stress on testis. Urology, 6:1-10.

[9]Brzozowski, T., Konturek, P.C., Chlopicki, S., et al., 2008. Therapeutic potential of 1-methylnicotinamide against acute gastric lesions induced by stress: role of endogenous prostacyclin and sensory nerves. J. Pharmacol. Exp. Ther., 326(1):105-116.

[10]Carrasco, G.A., van de Kar, L.D., 2003. Neuroendocrine pharmacology of stress. Eur. J. Pharmacol., 463(1-3):235-272.

[11]Chotiwat, C., Harris, R.B., 2008. Antagonism of specific corticotropin-releasing factor receptor subtypes selectively modifies weight loss in restrained rats. Am. J. Physiol. Regul. Integr. Comp. Physiol., 295(6):R1762-R1773.

[12]Clarke, R.N., Klock, S.C., Geoghegan, A., et al., 1999. Relationship between psychological stress and semen quality among in-vitro fertilization patients. Hum. Reprod., 14(3):753-758.

[13]Ernst, C., Foldenyi, M., Angst, J., 1993. The Zurich Study: XXI. Sexual dysfunctions and disturbances in young adults. Data of a longitudinal epidemiological study. Eur. Arch. Psychiatry Clin. Neurosci., 243(3-4):179-188.

[14]Hanks, S.K., Quinn, A.M., Hunter, T., 1988. The protein kinase family: conserved features and deduced phylogeny of the catalytic domains. Science, 241(4861):42-52.

[15]Hari Priya, P., Sreenivasula Reddy, P., 2012. Effect of restraint stress on lead-induced male reproductive toxicity in rats. J. Exp. Zool. A Ecol. Genet. Physiol., 317(7):455-465.

[16]Hari Priya, P., Girish, B.P., Sreenivasula Reddy, P., 2014. Restraint stress exacerbates alcohol-induced reproductive toxicity in male rats. Alcohol, 48(8):781-786.

[17]Hunter, T., 1987. A thousand and one protein kinases. Cell, 50(6):823-829.

[18]Hunter, T., Cooper, J.A., 1985. Protein tyrosine kinases. Annu. Rev. Biochem., 54(1):897-930.

[19]Iamsaard, S., Prabsattroo, T., Sukhorum, W., et al., 2013. Anethum graveolens Linn. (dill) extract enhances the mounting frequency and level of testicular tyrosine protein phosphorylation in rats. J. Zhejiang Univ.-Sci. B (Biomed. & Biotechnol.), 14(3):247-252.

[20]Iamsaard, S., Arun, S., Burawat, J., et al., 2014. Phenolic contents and antioxidant capacities of Thai-Makham Pom (Phyllanthus emblica L.) aqueous extracts. J. Zhejiang Univ.-Sci. B (Biomed. & Biotechnol.), 15(4):405-408.

[21]Kennedy, S.H., Dickens, S.E., Eisfeld, B.S., et al., 1999. Sexual dysfunction before antidepressant therapy in major depression. J. Affect. Disord., 56(2-3):201-208.

[22]Kopf, G., Gerton, G., 1991. The mammalian sperm acrosome and the acrosome reaction. In: Wassarman, P. (Ed.), Elements of Mammalian Fertilization. CRC Press, Boca Raton, USA, p.154-203.

[23]Kwiecien, S., Ptak-Belowska, A., Krzysiek-Maczka, G., et al., 2012. Asymmetric dimethylarginine, an endogenous inhibitor of nitric oxide synthase, interacts with gastric oxidative metabolism and enhances stress-induced gastric lesions. J. Physiol. Pharmacol., 63(5):515-524.

[24]Lafontan, M., Barbe, P., Galitzky, J., et al., 1997. Adrenergic regulation of adipocyte metabolism. Hum. Reprod., 12(Suppl. 1):6-20.

[25]Lin, H., Yuan, K.M., Zhou, H.Y., et al., 2014. Time-course changes of steroidogenic gene expression and steroidogenesis of rat Leydig cells after acute immobilization stress. Int. J. Mol. Sci., 15(11):21028-21044.

[26]Nathan, S.G., 1986. The epidemiology of the DSM-III psychosexual dysfunctions. J. Sex Marital Ther., 12(4):267-281.

[27]Orr, T.E., Mann, D.R., 1990. Effects of restraint stress on plasma LH and testosterone concentrations, Leydig cell LH/HCG receptors, and in vitro testicular steroidogenesis in adult rats. Horm. Behav., 24(3):324-341.

[28]Prabsattroo, T., Wattanathorn, J., Iamsaard, S., et al., 2015. Moringa oleifera extract enhances sexual performance in stressed rats. J. Zhejiang Univ.-Sci. B (Biomed. & Biotechnol.), 16(3):179-190.

[29]Rai, J., Pandey, S.N., Srivastava, R.K., 2003. Effect of immobilization stress on spermatogenesis of albino rats. J. Anat. Soc. India, 52(1):55-57.

[30]Rai, J., Pandey S.N., Srivastava, R.K., 2004. Testosterone hormone level in albino rats following restraint stress of long duration. J. Anat. Soc. India, 53(1):17-19.

[31]Rao, M., Zhao, X.L., Yang, J., et al., 2015. Effect of transient scrotal hyperthermia on sperm parameters, seminal plasma biochemical markers, and oxidative stress in men. Asian J. Androl., 17(4):668-675.

[32]Retana-Márquez, S., Bonilla-Jaime, H., Vazquez-Palacios, G., et al., 2003. Changes in masculine sexual behavior, corticosterone and testosterone in response to acute and chronic stress in male rats. Horm. Behav., 44(4):327-337.

[33]Sakr, S.A., Zowail, M.E., Marzouk, A.M., 2014. Effect of saffron (Crocus sativus L.) on sodium valporate induced cytogenetic and testicular alterations in albino rats. Anat. Cell Biol., 47(3):171-179.

[34]Scherer, I.J., Holmes, P.V., Harris, R.B., 2011. The importance of corticosterone in mediating restraint-induced weight loss in rats. Physiol. Behav., 102(2):225-233.

[35]Ullrich, A., Schlessinger, J., 1990. Signal transduction by receptors with tyrosine kinase activity. Cell, 61(2):203-212.

[36]Visconti, P.E., Kopf, G.S., 1998. Regulation of protein phosphorylation during sperm capacitation. Biol. Reprod., 59(1):1-6.

[37]Warzecha, Z., Dembinski, A., Ceranowicz, P., et al., 2011. Role of sensory nerves in gastroprotective effect of anandamide in rats. J. Physiol. Pharmacol., 62(2):207-217.

[38]Weissman, B.A., Sottas, C.M., Holmes, M., et al., 2009. Normal responses to restraint stress in mice lacking the gene for neuronal nitric oxide synthase. J. Androl., 30(5):614-620.

[39]Wyrobek, A.J., Bruce, W.R., 1975. Chemical induction of sperm abnormalities in mice. PNAS, 72(11):4425-4429.

[40]Xu, M., Wei, Q., Zheng, K., et al., 2014. Protective effects of Big-leaf mulberry and physiological roles of nitric oxide synthases in the testis of mice following water immersion and restraint stress. Acta Histochem., 116(8):1323-1330.

[41]Yanagimachi, R., 1994. Mammalian fertilization. In: Knobil, E. (Ed.), The Physiology of Reproduction. Raven Press, New York, p.189-317.

[42]Zardooz, H., Zahedi Asl, S., Gharib Naseri, M.K., et al., 2006. Effect of chronic restraint stress on carbohydrate metabolism in rat. Physiol. Behav., 89(3):373-378.

[43]Zayachkivska, O.S., Gzhegotsky, M.R., Terletska, O.I., et al., 2006. Influence of Viburnum opulus proanthocyanidins on stress-induced gastrointestinal mucosal damage. J. Physiol. Pharmacol., 5:155-167.

[44]Zhang, M.H., Shi, Z.D., Yu, J.C., et al., 2015. Scrotal heat stress causes sperm chromatin damage and cysteinyl aspartate-spicific proteinases 3 changes in fertile men. J. Assist. Reprod. Genet., 32(5):747-755.

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