Informacja

Drogi użytkowniku, aplikacja do prawidłowego działania wymaga obsługi JavaScript. Proszę włącz obsługę JavaScript w Twojej przeglądarce.

Tytuł pozycji:

Effects of resistance training, palm pollen grain extracts, and testosterone injection on luteinizing hormone receptors, claudin-1, cingulin, and zonula occludens in the prostate tissues of adult male rats.

Tytuł:
Effects of resistance training, palm pollen grain extracts, and testosterone injection on luteinizing hormone receptors, claudin-1, cingulin, and zonula occludens in the prostate tissues of adult male rats.
Autorzy:
Nazarian A; Department of Exercise Physiology, Central Tehran Branch, Islamic Azad University, Tehran, Iran.
Azarbayjani MA; Department of Exercise Physiology, Central Tehran Branch, Islamic Azad University, Tehran, Iran.
Atashak S; Department of Exercise Physiology, Mahabad Branch, Islamic Azad University, Mahabad, Iran.
Peeri M; Department of Exercise Physiology, Central Tehran Branch, Islamic Azad University, Tehran, Iran.
Źródło:
Andrologia [Andrologia] 2022 Jun; Vol. 54 (5), pp. e14394. Date of Electronic Publication: 2022 Feb 28.
Typ publikacji:
Journal Article
Język:
English
Imprint Name(s):
Publication: : Berlin : Blackwell Pub.
Original Publication: Berlin, Grosse
MeSH Terms:
Phoeniceae*
Physical Conditioning, Animal*
Pollen*
Prostate*/metabolism
Animals ; Claudin-1 ; Male ; Membrane Proteins ; Microfilament Proteins ; Plant Extracts/pharmacology ; Rats ; Receptors, LH ; Testosterone ; Tight Junctions
References:
Ahtiainen, J. P., Pakarinen, A., Alen, M., Kraemer, W. J., & Häkkinen, K. (2003). Muscle hypertrophy, hormonal adaptations and strength development during strength training in strength-trained and untrained men. European Journal of Applied Physiology, 89(6), 555-563. https://doi.org/10.1007/s00421-003-0833-3.
Aldarweesh, H., & AlHajjaj, A. (2020). Anabolic androgenic steroid use prevalence, knowledge, and practice among male athletes in Eastern Province of Saudi Arabia. Electron J Gen Med. 2020; 17(2): em187. https://doi.org/10.29333/ejgm/7617.
Bajpyee, K. (1997). Ethnobotany of Phoenix (Arecaceae). Journal of Economic and Taxonomic Botany, 21, 155-157.
Bhasin, S., Woodhouse, L., Casaburi, R., Singh, A. B., Bhasin, D., Berman, N., Chen, X., Yarasheski, K. E., Magliano, L., & Dzekov, C. (2001). Testosterone dose-response relationships in healthy young men. American Journal of Physiology-Endocrinology and Metabolism, https://doi.org/10.1152/ajpendo.2001.281.6.E1172.
Bhasin, S., Woodhouse, L., Casaburi, R., Singh, A. B., Mac, R. P., Lee, M., Yarasheski, K. E., Sinha-Hikim, I., Dzekov, C., & Dzekov, J. (2005). Older men are as responsive as young men to the anabolic effects of graded doses of testosterone on the skeletal muscle. The Journal of Clinical Endocrinology & Metabolism, 90(2), 678-688. https://doi.org/10.1210/jc.2004-1184.
Bhat, A. A., Uppada, S., Achkar, I. W., Hashem, S., Yadav, S. K., Shanmugakonar, M., Al-Naemi, H. A., Haris, M., & Uddin, S. (2019). Tight junction proteins and signaling pathways in cancer and inflammation: a functional crosstalk. Frontiers in Physiology, 9, 1942. https://doi.org/10.3389/fphys.2018.01942.
Boyle, P., Koechlin, A., Bota, M., d'Onofrio, A., Zaridze, D. G., Perrin, P., Fitzpatrick, J., Burnett, A. L., & Boniol, M. (2016). Endogenous and exogenous testosterone and the risk of prostate cancer and increased prostate-specific antigen (PSA) level: a meta-analysis. BJU International, 118(5), 731-741. https://doi.org/10.1111/bju.13417.
Chodari, L., Mohammadi, M., Mohaddes, G., Alipour, M. R., Ghorbanzade, V., Dariushnejad, H., & Mohammadi, S. (2016). Testosterone and voluntary exercise, alone or together increase cardiac activation of AKT and ERK1/2 in diabetic rats. Arquivos Brasileiros De Cardiologia, 107, 532-541. https://doi.org/10.5935/abc.20160174.
Coutinho-Camillo, C. M., Lourenço, S. V., Da Fonseca, F. P., & Soares, F. A. (2011). Claudin expression is dysregulated in prostate adenocarcinomas but does not correlate with main clinicopathological parameters. Pathology, 43(2), 143-148. https://doi.org/10.1097/PAT.0b013e3283428099.
Dubé, É., Dufresne, J., Chan, P. T., Hermo, L., & Cyr, D. G. (2010). Assessing the role of claudins in maintaining the integrity of epididymal tight junctions using novel human epididymal cell lines. Biology of Reproduction, 82(6), 1119-1128. https://doi.org/10.1095/biolreprod.109.083196.
Dubé, E., Hermo, L., Chan, P. T., & Cyr, D. G. (2008). Alterations in gene expression in the caput epididymides of nonobstructive azoospermic men. Biology of Reproduction, 78(2), 342-351. https://doi.org/10.1095/biolreprod.107.062760.
Elberry, A. A., Mufti, S. T., Al-Maghrabi, J. A., Abdel-Sattar, E. A., Ashour, O. M., Ghareib, S. A., & Mosli, H. A. (2011). Anti-inflammatory and antiproliferative activities of date palm pollen (Phoenix dactylifera) on experimentally-induced atypical prostatic hyperplasia in rats. Journal of Inflammation, 8(1), 40. https://doi.org/10.1186/1476-9255-8-40.
El-Sisy, G., El-Badry, D., El-Sheshtawy, R., & El-Nattat, W. (2018). Effects of Phoenix dactylifera pollen grains extract supplementation on post-thaw quality of Arabian stallion semen. Bulgarian Journal of Veterinary Medicine, 21(1), https://doi.org/10.15547/bjvm.1044.
Fanning, A. S., & Anderson, J. M. (2009). Zonula occludens-1 and-2 are cytosolic scaffolds that regulate the assembly of cellular junctions. Annals of the New York Academy of Sciences, 1165, 113. https://doi.org/10.1111/j.1749-6632.2009.04440.x.
Fronczak, C. M., Kim, E. D., & Barqawi, A. B. (2012). The insults of illicit drug use on male fertility. Journal of Andrology, 33(4), 515-528. https://doi.org/10.2164/jandrol.110.011874.
Furman, B. (2018). Testosterone. Reference Module in Biomedical Sciences. Elsevier.
Furuse, M., Fujita, K., Hiiragi, T., Fujimoto, K., & Tsukita, S. (1998). Claudin-1 and-2: novel integral membrane proteins localizing at tight junctions with no sequence similarity to occludin. The Journal of Cell Biology, 141(7), 1539-1550. https://doi.org/10.1083/jcb.141.7.1539.
Gomella, L. G. (2009). Effective testosterone suppression for prostate cancer: is there a best castration therapy? Reviews in Urology, 11(2), 52.
Hartgens, F., & Kuipers, H. (2004). Effects of androgenic-anabolic steroids in athletes. Sports Medicine, 34(8), 513-554. https://doi.org/10.2165/00007256-200434080-00003.
Hornberger, T. A. Jr, & Farrar, R. P. (2004). Physiological hypertrophy of the FHL muscle following 8 weeks of progressive resistance exercise in the rat. Canadian Journal of Applied Physiology, 29(1), 16-31. https://doi.org/10.1139/h04-002.
Jiheel, M. J., & Arrak, J. K. (2015). Effect of different doses of ethanolic extract of date palm pollen grains on serum gonadotropin and total Glutathione in mature female rats. Kufa Journal for Veterinary Medical Sciences, 6(2).
Kahn, B., Collazo, J., & Kyprianou, N. (2014). Androgen receptor as a driver of therapeutic resistance in advanced prostate cancer. International Journal of Biological Sciences, 10(6), 588. https://doi.org/10.7150/ijbs.8671.
Karavolos, S., Reynolds, M., Panagiotopoulou, N., McEleny, K., Scally, M., & Quinton, R. (2015). Male central hypogonadism secondary to exogenous androgens: a review of the drugs and protocols highlighted by the online community of users for prevention and/or mitigation of adverse effects. Clinical Endocrinology, 82(5), 624-632. https://doi.org/10.1111/cen.12641.
Kicman, A. T. (2008). Pharmacology of anabolic steroids. British Journal of Pharmacology, 154(3), 502-521. https://doi.org/10.1038/bjp.2008.165.
Kraemer, W. J., & Ratamess, N. A. (2005). Hormonal responses and adaptations to resistance exercise and training. Sports Medicine, 35(4), 339-361. https://doi.org/10.2165/00007256-200535040-00004.
Krajewska, M., Olson, A. H., Mercola, D., Reed, J. C., & Krajewski, S. (2007). Claudin-1 immunohistochemistry for distinguishing malignant from benign epithelial lesions of prostate. The Prostate, 67(9), 907-910. https://doi.org/10.1002/pros.20578.
Martin, S. J., Sherley, M., & McLeod, M. (2018). Adverse effects of sports supplements in men. Australian Prescriber, 41(1). https://doi.org/10.18773/austprescr.2018.003.
Medicine, A. C. o. S. (2009). American College of Sports Medicine position stand. Progression models in resistance training for healthy adults. Medicine and science in sports and exercise, 41(3), 687. https://doi.org/https://doi.org/10.1249/MSS.0b013e3181915670.
Meng, J., Mostaghel, E. A., Vakar-Lopez, F., Montgomery, B., True, L., & Nelson, P. S. (2011). Testosterone regulates tight junction proteins and influences prostatic autoimmune responses. Hormones and Cancer, 2(3), 145-156. https://doi.org/10.1007/s12672-010-0063-1.
Moss, J. L., Crosnoe, L. E., & Kim, E. D. (2013). Effect of rejuvenation hormones on spermatogenesis. Fertility and Sterility, 99(7), 1814-1820. https://doi.org/10.1016/j.fertnstert.2013.04.003.
Rahnema, C. D., Lipshultz, L. I., Crosnoe, L. E., Kovac, J. R., & Kim, E. D. (2014). Anabolic steroid-induced hypogonadism: diagnosis and treatment. Fertility and Sterility, 101(5), 1271-1279. https://doi.org/10.1016/j.fertnstert.2014.02.002.
Saeed, H. S., Osman, B., El-Hadiyah, T. M. H., Mohamed, M. S., Osman, W. J., Abdoon, I. H., & Mothana, R. A. (2020). Date palm pollen grains as a potential manager for male sub-fertility: A clinical trial. Journal of Pharmaceutical Research International, 83-95, https://doi.org/10.9734/jpri/2020/v32i630451.
Salah, M.- A.-C. (2014). Effect of aqueous extract of Date Palm Pollen (DPP) on the sperm characteristic and Serum Testosterone, FSH and LH Values in albino male rats treated with sodium floride. The Iraqi Journal of Veterinary Medicine, 38(2), 41-47. https://doi.org/10.30539/ijvm.
Schneeberger, E. E., & Lynch, R. D. (1992). Structure, function, and regulation of cellular tight junctions. American Journal of Physiology-Lung Cellular and Molecular Physiology, 262(6), L647-L661. https://doi.org/10.1083/jcb.142.1.101.
Soliman, F., & Soliman, A. (1958). The gonad stimulating potency of date palm pollen grains. Experientia, 14(3), 92-93. https://doi.org/10.1007/BF02159230.
Stevenson, B. R., Siliciano, J. D., Mooseker, M. S., & Goodenough, D. A. (1986). Identification of ZO-1: a high molecular weight polypeptide associated with the tight junction (zonula occludens) in a variety of epithelia. The Journal of Cell Biology, 103(3), 755-766. https://doi.org/10.1083/jcb.103.3.755.
Swisshelm, K., Machl, A., Planitzer, S., Robertson, R., Kubbies, M., & Hosier, S. (1999). SEMP1, a senescence-associated cDNA isolated from human mammary epithelial cells, is a member of an epithelial membrane protein superfamily. Gene, 226(2), 285-295. https://doi.org/10.1016/s0378-1119(98)00553-8.
Tabariès, S., & Siegel, P. (2017). The role of claudins in cancer metastasis. Oncogene, 36(9), 1176-1190. https://doi.org/10.1038/onc.2016.289.
Tahvilzadeh, M., Hajimahmoodi, M., & Rahimi, R. (2016). The role of date palm (Phoenix dactylifera L) pollen in fertility: A comprehensive review of current evidence. Journal of evidence-based Complementary & Alternative Medicine, 21(4), 320-324. https://doi.org/10.1177/2156587215609851.
Väre, P., Loikkanen, I., Hirvikoski, P., Vaarala, M., & Soini, Y. (2007). Low claudin expression is associated with high Gleason grade in prostate adenocarcinoma. Oncology Reports, 19(1), 25-31.
Grant Information:
Islamic Azad University Central Tehran Branch
Contributed Indexing:
Keywords: claudin-1; palm pollen; prostate; resistance exercise; tight junction
Substance Nomenclature:
0 (Claudin-1)
0 (Membrane Proteins)
0 (Microfilament Proteins)
0 (Plant Extracts)
0 (Receptors, LH)
3XMK78S47O (Testosterone)
Entry Date(s):
Date Created: 20220228 Date Completed: 20220520 Latest Revision: 20220531
Update Code:
20240104
DOI:
10.1111/and.14394
PMID:
35226967
Czasopismo naukowe
The present study aimed to investigate the effects of resistance training, Phoenix dactylifera extract, and testosterone enanthate injection on luteinizing hormone receptor, claudin-1, cingulin, and zonula occludens in the prostate tissues of adult rats. 30 male rats were divided into six groups: (1) control, (2) resistance training, (3) Phoenix dactylifera extract, (4) testosterone enanthate, (5) resistance training+Phoenix dactylifera extract, and (6) resistance training + testosterone enanthate. After completing the treatments and resistance training, all rats were sacrificed via anaesthesia. The results showed that resistance training, Phoenix dactylifera, and testosterone enanthate significantly increased the luteinizing hormone receptor, claudin-1, cingulin, and zonula occludens gene expression levels in the prostate. The resistance training treatment, along with Phoenix dactylifera + testosterone enanthate, exerted synergic effects on the prostate luteinizing hormone receptor levels and claudin-1 gene expression. In conclusion, Phoenix dactylifera, as a natural compound with fewer side effects than testosterone injection, can be used to enhance athletic performance. Besides, considering the potential benefits of Phoenix dactylifera, it can be considered in the treatment of testosterone deficiency; however, further research is needed.
(© 2022 Wiley-VCH GmbH.)
Zaloguj się, aby uzyskać dostęp do pełnego tekstu.

Ta witryna wykorzystuje pliki cookies do przechowywania informacji na Twoim komputerze. Pliki cookies stosujemy w celu świadczenia usług na najwyższym poziomie, w tym w sposób dostosowany do indywidualnych potrzeb. Korzystanie z witryny bez zmiany ustawień dotyczących cookies oznacza, że będą one zamieszczane w Twoim komputerze. W każdym momencie możesz dokonać zmiany ustawień dotyczących cookies