Therapeutic Potential of Date Palm against Human Infertility: A Review
Abstract
:1. Introduction
2. Causes of Infertility in Male
3. Causes of Infertility in Female
4. Date Palm: Nutritional Profile
5. Date Palm Fruit, Pollen, and Seed: A Remedy against Infertility
5.1. Effect on Male Infertility
5.1.1. Cadmium-Induced Infertile Male Rats
5.1.2. Streptozotocin-Induced Infertile Male Rats
5.1.3. Thyroid Disorder Induces Infertile Male Rats
5.2. Effect of Date Palm on Female Fertility Parameters
5.2.1. Gestation, Labor, and Delivery
5.2.2. Pre-Eclamptic Pregnant Women
5.2.3. Prevention of Postpartum Hemorrhage
5.2.4. Experimentation with Infertile Adult Female Rats
6. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Ahmed, H.M.; Khan, M.; Yasmin, F.; Jawaid, H.; Khalid, H.; Shigri, A.; Nawaz, F.; Hasan, C.A. Awareness regarding causes of infertility among out-patients at a tertiary care hospital in Karachi, Pakistan. Cureus 2020, 12, 1–10. [Google Scholar] [CrossRef] [Green Version]
- Tatar, T.; Akdevelioğlu, Y. Effect of pollen, pit powder, and gemmule extract of date palm on male infertility: A Systematic Review. J. Am. Coll. Nutr. 2018, 37, 154–160. [Google Scholar] [CrossRef]
- Inhorn, M.C.; Patrizio, P. Infertility around the globe: New thinking on gender, reproductive technologies and global movements in the 21st century. Hum. Reprod. Update 2015, 21, 411–426. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Taha, E.A.; Sabry, M.; Abdelrahman, I.F.S.; Elktatny, H.; Hosny, A. Impact of irregular marital cohabitation on quality of life and sexual dysfunction in infertile men from upper Egypt. Clin. Exp. Reprod. Med. 2020, 47, 77. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Farsimadan, M.; Motamedifar, M. The effects of human immunodeficiency virus, human papillomavirus, herpes simplex virus-1 and-2, human herpesvirus-6 and-8, cytomegalovirus, and hepatitis B and C virus on female fertility and pregnancy. Br. J. Biomed. Sci. 2020, 78, 1–11. [Google Scholar] [CrossRef]
- Zegers-Hochschild, F.; Adamson, G.D.; Dyer, S.; Racowsky, C.; De Mouzon, J.; Sokol, R.; Rienzi, L.; Sunde, A.; Schmidt, L.; Cooke, I.D. The international glossary on infertility and fertility care, 2017. Hum. Reprod. 2017, 32, 1786–1801. [Google Scholar] [CrossRef] [Green Version]
- Gerrits, T.; Van Rooij, F.; Esho, T.; Ndegwa, W.; Goossens, J.; Bilajbegovic, A.; Jansen, A.; Kioko, B.; Koppen, L.; Migiro, S.K. Infertility in the Global South: Raising awareness and generating insights for policy and practice. Facts Views Vis. ObGyn 2017, 9, 39. [Google Scholar]
- Deshpande, P.S.; Gupta, A.S. Causes and prevalence of factors causing infertility in a public health facility. J. Hum. Reprod. Sci. 2019, 12, 287. [Google Scholar] [PubMed]
- Harada, T.; Taniguchi, F.; Onishi, K.; Kurozawa, Y.; Hayashi, K.; Harada, T.; Environment, J.; Group, C.s.S. Obstetrical complications in women with endometriosis: A cohort study in Japan. PLoS ONE 2016, 11, 1–12. [Google Scholar] [CrossRef] [Green Version]
- Datta, J.; Palmer, M.; Tanton, C.; Gibson, L.; Jones, K.; Macdowall, W.; Glasier, A.; Sonnenberg, P.; Field, N.; Mercer, C. Prevalence of infertility and help seeking among 15 000 women and men. Hum. Reprod. 2016, 31, 2108–2118. [Google Scholar] [CrossRef] [Green Version]
- Echegaray, N.; Pateiro, M.; Gullón, B.; Amarowicz, R.; Misihairabgwi, J.M.; Lorenzo, J.M. Phoenix dactylifera products in human health–A review. Trends Food Sci. Technol. 2020, 105, 238–250. [Google Scholar] [CrossRef]
- Ahmad, A.; Naqvi, S.A.; Jaskani, M.J.; Waseem, M.; Ali, E.; Khan, I.A.; Faisal Manzoor, M.; Siddeeg, A.; Aadil, R.M. Efficient utilization of date palm waste for the bioethanol production through Saccharomyces cerevisiae strain. Food Sci. Nutr. 2021, 9, 2066–2074. [Google Scholar] [CrossRef]
- Rivera, D.; Obón, C.; Alcaraz, F.; Laguna, E.; Johnson, D. Date-palm (Phoenix, Arecaceae) iconography in coins from the Mediterranean and West Asia (485 BC–1189 AD). J. Cult. Herit. 2019, 37, 199–214. [Google Scholar] [CrossRef]
- Tahvilzadeh, M.; Hajimahmoodi, M.; Rahimi, R. The role of date palm (Phoenix dactylifera L) pollen in fertility: A comprehensive review of current evidence. J. Evid.-Based Complement. Altern. Med. 2016, 21, 320–324. [Google Scholar] [CrossRef]
- Deroux, A.; Dumestre-Perard, C.; Dunand-Faure, C.; Bouillet, L.; Hoffmann, P. Female infertility and serum auto-antibodies: A systematic review. Clin. Rev. Allergy Immunol. 2017, 53, 78–86. [Google Scholar] [CrossRef]
- CDC. Infertility FAQs. 2013. Available online: https://www.jognn.org/article/S0884-2175(15)31517-3/fulltext (accessed on 30 December 2020).
- Davidson, L.M.; Millar, K.; Jones, C.; Fatum, M.; Coward, K. Deleterious effects of obesity upon the hormonal and molecular mechanisms controlling spermatogenesis and male fertility. Hum. Fertil. 2015, 18, 184–193. [Google Scholar] [CrossRef]
- Fode, M.; Sønksen, J. Management of male neurologic patients with infertility. In Handbook of Clinical Neurology; Elsevier: Amsterdam, The Netherlands, 2015; Volume 130, pp. 435–449. [Google Scholar]
- Fallahi, S.; Rostami, A.; Shiadeh, M.N.; Behniafar, H.; Paktinat, S. An updated literature review on maternal-fetal and reproductive disorders of Toxoplasma gondii infection. J. Gynecol. Obstet. Hum. Reprod. 2018, 47, 133–140. [Google Scholar] [CrossRef]
- Sengupta, P.; Agarwal, A.; Pogrebetskaya, M.; Roychoudhury, S.; Durairajanayagam, D.; Henkel, R. Role of Withania somnifera (Ashwagandha) in the management of male infertility. Reprod. Biomed. Online 2018, 36, 311–326. [Google Scholar] [CrossRef] [Green Version]
- Sun, X.-L.; Wang, J.-L.; Peng, Y.-P.; Gao, Q.-Q.; Song, T.; Yu, W.; Xu, Z.-P.; Chen, Y.; Dai, Y.-T. Bilateral is superior to unilateral varicocelectomy in infertile males with left clinical and right subclinical varicocele: A prospective randomized controlled study. Int. Urol. Nephrol. 2018, 50, 205–210. [Google Scholar] [CrossRef] [PubMed]
- Sharma, A. Male infertility; evidences, risk factors, causes, diagnosis and management in human. Ann. Clin. Lab. Res. 2017, 5, 188. [Google Scholar] [CrossRef]
- Liu, K.-S.; Pan, F.; Chen, Y.-J.; Mao, X.-D. The influence of sperm DNA damage and semen homocysteine on male infertility. Reprod. Dev. Med. 2017, 1, 228. [Google Scholar]
- Hanson, B.; Johnstone, E.; Dorais, J.; Silver, B.; Peterson, C.M.; Hotaling, J. Female infertility, infertility-associated diagnoses, and comorbidities: A review. J. Assist. Reprod. Genet. 2017, 34, 167–177. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Prescott, J.; Farland, L.; Tobias, D.; Gaskins, A.; Spiegelman, D.; Chavarro, J.; Rich-Edwards, J.; Barbieri, R.; Missmer, S. A prospective cohort study of endometriosis and subsequent risk of infertility. Hum. Reprod. 2016, 31, 1475–1482. [Google Scholar] [CrossRef] [Green Version]
- Tansaz, M.; Adhami, S.; Mokaberinejad, R.; Namavar Jahromi, B.; Atarzadeh, F.; Jaladat, A.M. An overview of the causes and symptoms of male infertility from the perspective of traditional persian medicine. Iran. J. Obstet. Gynecol. Infertil. 2016, 18, 11–17. [Google Scholar]
- Bala, R.; Singh, V.; Rajender, S.; Singh, K. Environment, Lifestyle, and Female Infertility. Reprod. Sci. 2020, 28, 1–22. [Google Scholar] [CrossRef]
- Hussain, M.I.; Farooq, M.; Syed, Q.A. Nutritional and biological characteristics of the date palm fruit (Phoenix dactylifera L.)–A review. Food Biosci. 2020, 34, 100509. [Google Scholar] [CrossRef]
- Qadir, A.; Shakeel, F.; Ali, A.; Faiyazuddin, M. Phytotherapeutic potential and pharmaceutical impact of Phoenix dactylifera (date palm): Current research and future prospects. J. Food Sci. Technol. 2020, 57, 1191–1204. [Google Scholar] [CrossRef] [PubMed]
- Rambabu, K.; Bharath, G.; Hai, A.; Banat, F.; Hasan, S.W.; Taher, H.; Mohd Zaid, H.F. Nutritional quality and physico-chemical characteristics of selected date fruit varieties of the United Arab Emirates. Processes 2020, 8, 256. [Google Scholar] [CrossRef] [Green Version]
- Antonelli, M.; Donelli, D.; Firenzuoli, F. Therapeutic efficacy of orally administered pollen for nonallergic diseases: An umbrella review. Phytother. Res. 2019, 33, 2938–2947. [Google Scholar] [CrossRef] [PubMed]
- de Arruda, V.A.S.; Pereira, A.A.S.; Estevinho, L.M.; de Almeida-Muradian, L.B. Presence and stability of B complex vitamins in bee pollen using different storage conditions. Food Chem. Toxicol. 2013, 51, 143–148. [Google Scholar] [CrossRef] [Green Version]
- Margaoan, R.; Mărghitaş, L.A.; Dezmirean, D.S.; Dulf, F.V.; Bunea, A.; Socaci, S.A.; Bobiş, O. Predominant and secondary pollen botanical origins influence the carotenoid and fatty acid profile in fresh honeybee-collected pollen. J. Agric. Food Chem. 2014, 62, 6306–6316. [Google Scholar] [CrossRef] [PubMed]
- Banu, H.; Renuka, N.; Faheem, S.M.; Ismail, R.; Singh, V.; Saadatmand, Z.; Khan, S.S.; Narayanan, K.; Raheem, A.; Premkumar, K. Gold and silver nanoparticles biomimetically synthesized using date palm pollen extract-induce apoptosis and regulate p53 and Bcl-2 expression in human breast adenocarcinoma cells. Biol. Trace Elem. Res. 2018, 186, 122–134. [Google Scholar] [CrossRef]
- Kuras, M.J.; Zielińska-Pisklak, M.; Duszyńska, J.; Jabłońska, J. Determination of the elemental composition and antioxidant properties of dates (Phoenix dactyliferia) originated from different regions. J. Food Sci. Technol. 2020, 57, 2828–2839. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Salomón-Torres, R.; Sol-Uribe, J.A.; Valdez-Salas, B.; García-González, C.; Krueger, R.; Hernández-Balbuena, D.; Norzagaray-Plasencia, S.; García-Vázquez, J.P.; Ortiz-Uribe, N. Effect of four pollinating sources on nutritional properties of medjool date (Phoenix dactylifera L.) seeds. Agriculture 2020, 10, 45. [Google Scholar] [CrossRef] [Green Version]
- Oni, S.O.; Adeosun, A.M.; Ladokun, O.A.; Ighodaro, O.M.; Oyedele, M. Nutritional and phytochemical profile of Niger cultivated date palm (Phoenix dactilyfera L). J. Food Nutr. Sci. 2015, 3, 114–118. [Google Scholar]
- Abu-Reidah, I.M.; Gil-Izquierdo, Á.; Medina, S.; Ferreres, F. Phenolic composition profiling of different edible parts and by-products of date palm (Phoenix dactylifera L.) by using HPLC-DAD-ESI/MSn. Food Res. Int. 2017, 100, 494–500. [Google Scholar] [CrossRef]
- Rasouli, H.; Norooznezhad, A.H.; Rashidi, T.; Hoseinkhani, Z.; Mahnam, A.; Tarlan, M.; Moasefi, N.; Mostafaei, A.; Mansouri, K. Comparative in vitro/theoretical studies on the anti-angiogenic activity of date pollen hydro-alcoholic extract: Highlighting the important roles of its hot polyphenols. BioImpacts: BI 2018, 8, 281. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Moshtaghi, A.; Jouhari, H.; Shariati, M.; Amiri, J. Effects of phoenix dactylifera on serum concentration of estrogen, progesterone and gonadotropins in adult female rats. J. Rafsanjan Univ. Med. Sci. Health Serv. 2010, 8, 281. [Google Scholar]
- Baliga, M.S.; Baliga, B.R.V.; Kandathil, S.M.; Bhat, H.P.; Vayalil, P.K. A review of the chemistry and pharmacology of the date fruits (Phoenix dactylifera L.). Food Res. Int. 2011, 44, 1812–1822. [Google Scholar] [CrossRef]
- Ghnimi, S.; Umer, S.; Karim, A.; Kamal-Eldin, A. Date fruit (Phoenix dactylifera L.): An underutilized food seeking industrial valorization. NFS J. 2017, 6, 1–10. [Google Scholar] [CrossRef] [Green Version]
- Younas, A.; Naqvi, S.A.; Khan, M.R.; Shabbir, M.A.; Jatoi, M.A.; Anwar, F.; Inam-Ur-Raheem, M.; Saari, N.; Aadil, R.M. Functional food and nutra-pharmaceutical perspectives of date (Phoenix dactylifera L.) fruit. J. Food Biochem. 2020, 44, 1–18. [Google Scholar] [CrossRef]
- Li, Q.-Q.; Wang, K.; Marcucci, M.C.; Sawaya, A.C.H.F.; Hu, L.; Xue, X.-F.; Wu, L.-M.; Hu, F.-L. Nutrient-rich bee pollen: A treasure trove of active natural metabolites. J. Funct. Foods 2018, 49, 472–484. [Google Scholar] [CrossRef]
- Chehma, A.; Longo, H. Valorisation des sous-produits du palmier dattier en vue de leur utilisation en alimentation du bétail. Rev. Energ. Renouvelables 2001, 59–64. [Google Scholar]
- Hassan, H.M. Chemical composition and nutritional value of palm pollen grains. Glob. J. Biotechnol. Biochem. 2011, 6, 1–7. [Google Scholar]
- Al-Farsi, M.; Alasalvar, C.; Al-Abid, M.; Al-Shoaily, K.; Al-Amry, M.; Al-Rawahy, F. Compositional and functional characteristics of dates, syrups, and their by-products. Food Chem. 2007, 104, 943–947. [Google Scholar] [CrossRef]
- Kordi, M.; Aghaei Meybodi, F.; Tara, F.; Nemati, M.; Taghi Shakeri, M. The effect of late pregnancy consumption of date fruit on cervical ripening in nulliparous women. J. Midwifery Reprod. Health 2014, 2, 150–156. [Google Scholar]
- Kordi, M.; Aghaei Maibodi, F.; Tara, F.; Nemati, M.; Shakeri, M. Effect of consumption date fruit on spontaneous labor in primiparous woman. J. Obs. Gynecol. Infertil. 2013, 77, 9–15. [Google Scholar]
- Al-Kuran, O.; Al-Mehaisen, L.; Bawadi, H.; Beitawi, S.; Amarin, Z. The effect of late pregnancy consumption of date fruit on labour and delivery. J. Obstet. Gynaecol. 2011, 31, 29–31. [Google Scholar] [CrossRef]
- Najjar, S.; Hekmat, K. Effects of intravenous normal saline with and without dextrose on labour duration and delivey outcomes in nulliparous women. Koomesh 2012, 13, 434–439. [Google Scholar]
- Otify, A.M.; El-Sayed, A.M.; Michel, C.G.; Farag, M.A. Metabolites profiling of date palm (Phoenix dactylifera L.) commercial by-products (pits and pollen) in relation to its antioxidant effect: A multiplex approach of MS and NMR metabolomics. Metabolomics 2019, 15, 119. [Google Scholar] [CrossRef]
- Abdi, F.; Roozbeh, N.; Mortazavian, A.M. Effects of date palm pollen on fertility: Research proposal for a systematic review. BMC Res. Notes 2017, 10, 1–4. [Google Scholar] [CrossRef] [Green Version]
- Waly, M.I. Health benefits and nutritional aspects of date palm pollen. Can. J. Clin. Nutr. 2020, 8, 1–3. [Google Scholar] [CrossRef]
- Saeed, H.S.; Osman, B.; El-Hadiyah, T.M.H.; Mohamed, M.S.; Osman, W.J.; Abdoon, I.H.; Mothana, R.A. Date palm pollen grains as a potential manager for male sub-fertility: A clinical trial. J. Pharm. Res. Int. 2020, 32, 83–95. [Google Scholar] [CrossRef]
- Orabi, S.H.; Shawky, S.M. Effect of date palm (Phoenix dactylifera) seeds extracts on hematological, biochemical parameters and some fertility indices in male rats. Int. J. Sci. Basic Appl. Res. 2014, 17, 137–147. [Google Scholar]
- Dayab, A.; Ghareghose, A. Medicine in Koran; Aras Press: Tehran, Iran, 2001. [Google Scholar]
- Khadem, N.; Sharaphy, A.; Latifnejad, R.; Hammod, N.; Ibrahimzadeh, S. Comparing the efficacy of dates and oxytocin in the management of postpartum hemorrhage. Shiraz E-Med. J. 2007, 8, 64–71. [Google Scholar]
- Zhang, C.-R.; Aldosari, S.A.; Vidyasagar, P.S.; Nair, K.M.; Nair, M.G. Antioxidant and anti-inflammatory assays confirm bioactive compounds in Ajwa date fruit. J. Agric. Food Chem. 2013, 61, 5834–5840. [Google Scholar] [CrossRef] [PubMed]
- Karimi, B.A.; Elmi, A.; Mirghafourvand, M.; Baghervand Navid, R. Effects of date fruit (Phoenix dactylifera L.) on labor and delivery outcomes: A systematic review and meta-analysis. BMC Pregnancy Childbirth 2020, 20, 1–14. [Google Scholar] [CrossRef]
- Kuswati, K.; Handayani, R. Effect of Dates Consumption On Bleeding, Duration, And Types of Labor. J. Midwifery 2019, 4, 85–91. [Google Scholar] [CrossRef]
- Hoyo, C.; Murtha, A.P.; Schildkraut, J.M.; Forman, M.R.; Calingaert, B.; Demark-Wahnefried, W.; Kurtzberg, J.; Jirtle, R.L.; Murphy, S.K. Folic acid supplementation before and during pregnancy in the Newborn Epigenetics STudy (NEST). BMC Public Health 2011, 11, 46. [Google Scholar] [CrossRef] [Green Version]
- Abbas, F.A.; Ateya, A.-M. Estradiol, esteriol, estrone and novel flavonoids from date palm pollen. Aust. J. Basic Appl. Sci. 2011, 5, 606–614. [Google Scholar]
- El-Ridi, M.; El Mofty, A.; Khalifa, K.; Soliman, L. Gonadotrophic hormones in pollen grains of the date palm. Z. Für Nat. B 1960, 15, 45–49. [Google Scholar] [CrossRef]
- El-Neweshy, M.; El-Maddawy, Z.; El-Sayed, Y. Therapeutic effects of date palm (Phoenix dactylifera L.) pollen extract on cadmium-induced testicular toxicity. Andrologia 2013, 45, 369–378. [Google Scholar] [CrossRef]
- Abedi, A.; Parviz, M.; Karimian, S.M.; Rodsari, H.R.S. Aphrodisiac activity of aqueous extract of Phoenix dactylifera pollen in male rats. Adv. Sex. Med. 2013, 3, 1–7. [Google Scholar]
- Anger, J.T.; Wang, G.J.; Boorgian, S.A.; Goldstein, M. Sperm cryopreservation and in vitro fertilization /intracytoplasmic sperm injection in men with congenital bilateral absence of the vas deferens: A success story. Fertil. Steril. 2004, 82, 1452–1454. [Google Scholar] [CrossRef]
- Gakunga, N.J.; Mugisha, K.; Owiny, D.; Waako, P. Effects of crude aqueous leaf extracts of Citropsis articulata and Mystroxylon aethiopicum on sex hormone levels in male albino rats. Int. J. Pharm. Sci. Invent. 2014, 3, 5–17. [Google Scholar]
- Selmani, C.; Chabane, D.; Bouguedoura, N. Ethnobotanical survey of Phoenix dactylifera L. pollen used for the treatment of infertility problems in Algerian oases. Afr. J. Tradit. Complement. Altern. Med. 2017, 14, 175–186. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Joshi, S.G.; Joshi, S.G. Medicinal Plants; Oxford and IBH Publishing: New Delhi, India, 2000; Volume 491. [Google Scholar]
- Elberry, A.A.; Mufti, S.T.; Al-Maghrabi, J.A.; Abdel-Sattar, E.A.; Ashour, O.M.; Ghareib, S.A.; Mosli, H.A. Anti-inflammatory and antiproliferative activities of date palm pollen (Phoenix dactylifera) on experimentally-induced atypical prostatic hyperplasia in rats. J. Inflamm. 2011, 8, 40. [Google Scholar] [CrossRef] [Green Version]
- Mehraban, F.; Jafari, M.; Toori, M.A.; Sadeghi, H.; Joodi, B.; Mostafazade, M.; Sadeghi, H. Effects of date palm pollen (Phoenix dactylifera L.) and Astragalus ovinus on sperm parameters and sex hormones in adult male rats. Iran. J. Reprod. Med. 2014, 12, 705. [Google Scholar] [PubMed]
- Aboul-Ela, A.; Abdel-Hamid Mabrouk, E.; Atef Helmy, N.; Ragab Mohamed, S. Effects of some dietary supplements on the reproductive and productive performances in male rats. J. Vet. Med. Res. 2018, 25, 199–212. [Google Scholar] [CrossRef]
- Dibal, N.; Hambolu, J.; Buraimoh, A. Effects of Phoenix dactylifera on the prostate and seminal vesicle of Wistar rats. Int. J. Med. Med. Sci. 2016, 8, 8–14. [Google Scholar]
- Iftikhar, S.; Bashir, A.; Anwar, M.S.; Mastoi, S.M.; Shahzad, M. Effect of date palm pollen (dpp) on serum testosterone levels in prepubertal albino rats. Pak. J. Med. Health Sci. 2011, 6, 639–644. [Google Scholar]
- Marbut, M.M.; Al-Snafi, A.E.; Marbeen, M.I. The probable therapeutic effects of date palm pollen in thetreatment of male infertility. Tikret J. Pharm. Sci. 2005, 1, 30–35. [Google Scholar]
- Mohamed, N.A.; Ahmed, O.M.; Hozayen, W.G.; Ahmed, M.A. Ameliorative effects of bee pollen and date palm pollen on the glycemic state and male sexual dysfunctions in streptozotocin-Induced diabetic wistar rats. Biomed. Pharmacother. 2018, 97, 9–18. [Google Scholar] [CrossRef]
- El-Komy, M.; Saad, H.O. Magda protective effect of date palm extracts on cadmium-induced infertility in male rats. Egypt. J. Hosp. Med. 2017, 69, 2181–2190. [Google Scholar]
- Abdallaha, I.Z.; Khattab, H.A.; Ragheb, E.M.; Yousef, F.M.; Alkreathy, H.M. Date pits alleviate reproductive disorders in male diabetic rats glob. J. Pharm. 2015, 9, 208–221. [Google Scholar]
- Hassan, W.A.; El-kashlan, A.M.; Mohamed, N.A. Egyptian date palm pollen ameliorates testicular dysfunction induced by cadmium chloride in adult male rats. J. Am. Sci. 2012, 8, 659–669. [Google Scholar]
- El-Tahan, N.R.; Mesilhy, S.; Abdelaziz, H.Y.A. Effect of date palm pollen on fertility of diabetic male rats. J. Specif. Educ. Stud. Res. 2019, 3, 207–223. [Google Scholar]
- Kazeminia, S.M.; Kalaee, S.E.V.; Nasri, S. Effect of dietary intake alcoholic extract of palm pollen (Phoenix dactylifera L.) on pituitary-testicular axis in male diabetic rats. J. Maz. Univ. Med. Sci. 2014, 24, 167–175. [Google Scholar]
- El-Kashlan, A.M.; Nooh, M.M.; Hassan, W.A.; Rizk, S.M. Therapeutic potential of date palm pollen for testicular dysfunction induced by thyroid disorders in male rats. PLoS ONE 2015, 10, e0139493. [Google Scholar] [CrossRef] [Green Version]
- Barrett, K.E.; Boitano, S.; Barman, S.M.; Brooks, H.L. Ganong’s Review of Medical Physiology, Lang, 23rd ed.; McGraw Hill: New York, NY, USA, 2010; p. 530. [Google Scholar]
- Moshfegh, F.; Baharara, J.; Namvar, F.; Zafar-Balanezhad, S.; Amini, E.; Jafarzadeh, L. Effects of date palm pollen on fertility and development of reproductive system in female Balb/C mice. J. HerbMed Pharmacol. 2015, 5, 23–28. [Google Scholar]
- Ali, B.; Bashir, A.; Alhadrami, G. Reproductive hormonal status of rats treated with date pits. Food Chem. 1999, 66, 437–441. [Google Scholar] [CrossRef]
- Mehrabani, D. Effect of palm pollen extract on sexual hormone levels and follicle numbers in adult female BALB/c mice. Horiz. Med. Sci. 2014, 20, 139–143. [Google Scholar]
- Abdelsalam, M.; Zeitoun, M.; Ateah, M.; Al-Hassan, A.; Abdel-Salam, A. Impact of probiotic fermented milk, palm date extract and their mixture supplementation on neonatal traits and hematological parameters of late pregnant Najdi ewes. Int. J. Biol. Chem. 2014, 8, 37–47. [Google Scholar] [CrossRef] [Green Version]
- Ahmed, I.E.; Mirghani, H.O.; Mesaik, M.A.; Ibrahim, Y.M.; Amin, T.Q. Effects of date fruit consumption on labour and vaginal delivery in Tabuk, KSA. J. Taibah Univ. Med. Sci. 2018, 13, 557–563. [Google Scholar] [CrossRef]
- Razali, N.; Mohd Nahwari, S.H.; Sulaiman, S.; Hassan, J. Date fruit consumption at term: Effect on length of gestation, labour and delivery. J. Obs. Gynaecol. 2017, 37, 595–600. [Google Scholar] [CrossRef] [PubMed]
- Al-Dossari, A.; Ahmad, E.R.; Al Qahtani, N. Effect of eating dates and drinking water versus IV fluids during labor on labor and neonatal outcomes. IOSR J. Nurs. Health Sci. 2017, 6, 86e94. [Google Scholar]
- Kordi, M.; Meybodi, F.A.; Tara, F.; Fakari, F.R.; Nemati, M.; Shakeri, M. Effect of dates in late pregnancy on the duration of labor in nulliparous women. Iran. J. Nurs. Midwifery Res. 2017, 22, 383. [Google Scholar]
- Taavoni, S.; Fathi, L.; Nazem Ekbatani, N.; Haghani, H. The Effect of Oral Date Syrup on Severity of Labor Pain in Nulliparous. Shiraz E-Med. J. 2018, 20, 1–5. [Google Scholar] [CrossRef] [Green Version]
- Royani, I.; As’ad, S.; Mappaware, N.A.; Hatta, M. Effect of ajwa dates consumption to inhibit the progression of preeclampsia threats on mean arterial pressure and roll-over test. BioMed Res. Int. 2019, 2019, 1–6. [Google Scholar] [CrossRef] [Green Version]
- Yadegari, Z.; Amir Ali Akbari, S.; Sheikhan, Z.; Nasiri, M.; Akhlaghi, F. The effect of consumption of the date fruit on the amount and duration of the postpartum bleeding. Iran. J. Obstet. Gynecol. Infertil. 2016, 18, 20–27. [Google Scholar]
- Mojahed, S.; Aflatunian, A.; Khadem, N.; Dehghani Firouzabadi, R.; Karimi Zarchi, M. An investigation into effectiveness of date (Rutab) on postpartum hemorrhage. SSU_J. 2012, 20, 159–166. [Google Scholar]
- Hammed, M.S.; Arrak, J.K.; Al-Khafaji, N.J.; Hassan, A.A. Effect of date palm pollen suspension on ovarian function and fertility in adult female rats exposed to lead acetate. Diyala J. Med. 2012, 3, 90–96. [Google Scholar]
- Dillasamola, D.; Almahdy, A.; Elfianita, F. The effect of extract of date palm fruit (Phoenix dactylifera L.) on fertility in male mice (Musmusculus L.). Asian J. Pharma. Clin. Res. 2019, 12, 418. [Google Scholar] [CrossRef]
- Saryono, M.; Rahmawati, E. Effects of dates fruit (Phoenix dactylifera L.) in the female reproductive process. Int. J. Recent Adv. Multidiscip. Res 2016, 3, 1630–1633. [Google Scholar]
- El-Sayyad, H.I.; El-Shershaby, E.M.; El-Mansi, A.A.; El-Ashry, N.E. Anti-hypercholesterolemic impacts of barley and date palm fruits on the ovary of Wistar albino rats and their offspring. Reprod. Biol. 2018, 18, 236–251. [Google Scholar] [CrossRef]
Main Group | Nutritional Profile | Reference |
---|---|---|
Vitamins | Vit A, Vit E, Vit C, Vit B1, B2, B3, B6, B7, B9, Carotenoids (such as lutein, β-cryptoxanthin, and β-carotene) | [31,32,33,34] |
Minerals | Al, Ca, Cu, Fe, K, Mg, Mn, P, Sr and Zn, Se, Mb, Co, Si | [34,35,36] |
Phytochemicals | Flavonoids (isorhamnetin, apigenin, lutein, and naringin), and phenolic compounds (caffeic acid, gallic acid, catechin, coumaric acid, chlorogenic acid, and quercetin), tannins and anthocyanins, rutin | [37,38] |
Protein | Amino acids (aspartic acid, threonine, glutamine, proline, glycine, alanine, Valine, methionine, isoleucine, leucine, tyrosine, phenylalanine, Histidine, lysine, arginine, and serine) | [39] |
Fatty acid | Unsaturated fatty acids (oleic, linoleic, and Linolenic acids) Saturated fatty acids (palmitic, linoleic, myristic acids) | [34,40,41] |
Carbohydrates | Soluble sugars, dietary fiber | [42] |
Date Palm Parts | Nutritional Composition | References |
---|---|---|
Palm pollen grains | Moisture (28.80%), ash (4.57%), crude fiber (1.37%), crude fat (20.74%), protein (31.11%) and carbohydrate (13.41%) | [46] |
Date seed | Moisture (3.1–7.1%), protein (2.3–6.4%), fat(5.0–13.2), ash(0.9–1.8%) and dietary fiber (22.5–80.2%), phenolics (3102– 4430 mg gallic acid equivalents/100 g), antioxidants and dietary fiber (78–80 g/100 g) | [47] |
Date leaves | Crude protein 4.8%, crude fiber 31.9% (Neutral detergent fiber 81.5%, Acid detergent fiber 59.8%, Lignin 14.6%), ash 12.9% (average Ca content about 7 g/kg and P about 1 g/kg) on a dry weight basis | [45] |
Date and Date Parts | Active Component | Mechanism | Reference |
---|---|---|---|
Date | Simple sugar | Dominant and readily accessible source of energy that provides, save and maintain the mother’s power during labour | [49,50,51] |
Date | Glucose | Provide energy, strengthens uterine muscles, and best nutritional material for cervical dilutions | [41,50,57] |
Date | Ca | Contraction of the smooth muscle of the uterus | [58,59] |
Date | Tannin | Contractions of smooth muscles of the cervix | [58,60] |
Date | Tannin and Linoleic acid | Control bleeding | [57] |
Date | Sugar, Vitamin B1, and Fe | Control the rate of movement of the uterus | [61] |
Date | Folic acid | Role in cell division and the formation of the genetic structure of cells | [62] |
Date | Potuchin hormone | Potuchin hormone serves to bind the uterus and muscles of the uterus so that it can help reduce postpartum bleeding | [61] |
DPP | Estrogenic compound: estradiol, estriol, and estrone | Alleviate infertility through their gonadotrophic activity in male rats | [63,64,65] |
DPP | Estrogen compounds | Estrogen compounds increase the estrogen hormone. These compounds transfer to embryos and offspring via lactate and placenta and affect the reproductive system in adult mice | [66] |
DPP | Saponins | Saponins encourage the Leydig cells of the testes to increase the testosterone production system | [67,68] |
DPP | Carbohydrates, Saponins and gallic tannins | DPP has an aphrodisiac potential and may increase the reproductive parameters of male adult rats | [69] |
DPP | Estradiol components | Play a role in regulating the renewal of spermatogenic cells and male reproductive tissues that possess oestrogen receptors | [50] |
DPP grains | Phytochemicals: alkaloids, saponins, and flavonoids | Phytochemicals have engorgement and androgen enhancing properties that improve sexual behavior in male rats | [66] |
DPP grains extracts | Estrogenic materials | Gonad stimulating compounds that improve male infertility | [70] |
Date and Date Products | Subjects | Target | Materials and Methods | Active Component | Result | References |
---|---|---|---|---|---|---|
Phoenix dactylifera (Date) | Wistar rats | On the prostate and seminal vesicle of Wistar rats | n = 20 Group 1 (control) Group 2 to 4 (experimental group) received the extract at 250, 500, and 1000 mg/kg body weight orogastrically for 35 days | Vitamins, Simple sugar, Flavonoids Saponins, Tannins, Carotenoid-s and steroids | The extract might affect sperm function by reducing sperm quality and viability | [74] |
DPP | Pre-pubertal rats | Serum testosterone levels and body weight | Four groups (12 pups each) (Control 1, Experimental 1, Control 2, and Experimental 2). Experimental groups 1 and 2 were given oral DPP suspension of 120 mg/kg daily for 18 and 35 days respectively | − | Increase in serum testosterone levels with a concurrent increase in body weight | [75] |
DPP | Infertile men | On male infertility | Pollen powder (500 mg capsules twice daily for 3 months) | − | The treatment significantly increased serum (LH), (FSH) and testosterone levels, sperm count, and motility. Sexual desire was also increased significantly increased wives of two treated males become pregnant during the treatment period. | [76] |
DPP extract | Thyroid disorder induces male rate | Protective effect on testicular dysfunction | Six groups; Group 1 (Control) Group 2 (DPP extract, 150 mg/kg) Group 3 (hyperthyroid received intraperitoneal injection of L-T4, 300 μg kg−1) Group 4, received L-T4 plus DPP extract, Group 5 (hypothyroid received PTU 10 mg /kg) Group 6 received PTU plus DPP extract. Treatment was given for 56 days | − | Supplementation of DPP extract to normal rats augmented sperm count and motility, serum levels of LH, testosterone, and estradiol (E2) paralleled with increased activities of 3β-hydroxysteroid dehydrogenase and 17 β-hydroxysteroid dehydrogenase as well as testicular antioxidant status | [58] |
Bee Pollen and DPP | Streptozotocin-inducing diabetic Wistar rats | Male sexual dysfunction | Bee pollen and DPP suspension (100 mg/kg body weight /day for 4 weeks | Antioxidant Compounds (Phytoestrogen and flavonoid) | BP/DPP suspension may have a protective role against diabetic induced pituitary testicular dysfunction and testicular histological changes in association with antihyperglycemic actions | [77] |
DPP and seed extract | Cadmium-induced female rats | Check protective effect on cadmium induce infertility | Six groups (36 albino rats) G 1 (control) G 2 (DPP): (240 mg/kg) daily, G 3 (DPS):(100 mg/kg) daily, G 4 (CdCl2): (5 mg/kg) every other day Group 5 (CdCl2 + DPP): CDC12 as group 4 and DPS as group 2 Group 6 (CdCl2+dps): CdC12 as group 4 and DPS as group 3 Treatment period: 30 days | Antioxidant | There was a significant improvement in these parameters (sperm quality, T, E2, FSH, LH aromatase enzyme, TAC, GSH, SOD, CAT, MDA, XO testis histoarchitecture) in CdCl2 treated rats | [78] |
Date palm seed extract | Male rats | Date palm seed extract effect on Hematological parameters hormone testosterone and antioxidant status in testis. | Twenty male rats (10 rats in each group) Group 1 (Control) Group 2 received date seed extract in a dose of 2 ml/kg orally for 60 days | − | The daily oral administration of seed extract decreased malondialdehyde level in testicular tissues. It has the potential to improve serum biochemical values, testosterone level and antioxidant status in testis. | [56] |
DPP and Astragalus ovinus | Adult Male rats | Effect of DPP and (A.Ovinus) on fertility in healthy adult male rats | Thirty-six rats (six groups) One group (Control) Other five groups (Treatment) DPP (120, 240 and 360 mg/kg) and A. ovinus (100, 500 mg/kg) were given orally. | − | Findings indicate that DPP could improve fertility factors, while Astragalus ovinus can exhibit deleterious effects on gonad and sperm parameters in rats | [72] |
Date pit powder | Male diabetic rats | Restoring reproductive function | Group 1 (control) Group 2 (diabetic rats) fed a basal diet, Group 3,4 and 5 fed basal diets supplemented with DP at three-levels (5, 10 and 15%) | Antioxidants | Supplement of DP causes a significant increase in body weight, remarkable improvement in sperm characteristic and glycemic state, an increase in serum testosterone level a decrease in Thiobarbituric Acid Reactive Substances (TBARS) and an increase in SOD activity in testicular tissue, and improvement in lipid profile | [79] |
Dietary supplement (Date seed, Saccharomyces cerevisiae, and normal basal diet) | Male rats | Reproductive and productive performance | n = 40 male albino rats Groups (4) Control group, EC supplement group (400 mg EC/kg body weight) Saccharomyces cerevisiae supplement group (120 mg/kg body weight) Date seed supplement group (2.0 mg/kg body weight) | − | Date seeds supplementation significantly increased body weight. Date seeds and Saccharomyces cerevisiae supplements increase significantly gonadosomatic TAC and reproductive parameters. | [73] |
Date and Date Products | Subjects | Target | Material and Method | Active Component | Result | References |
---|---|---|---|---|---|---|
Date fruit | 154 Nulliparous women | The onset of labour and the need for induction | Date consumer (77) and Date control group (77) Intake (7 dates/day) | − | No significant difference in the onset of spontaneous labour. Date consumption reduces the need for labour augmentation but does not expedite the onset of labour | [90] |
Date fruit | Females | Labour parameter and delivery outcomes | Date fruit group: 69 women for 4 weeks per day before labour Non-date fruit group: 45 Intake (6 dates/day for 4 weeks) | − | In the date fruit group, cervical dilation was significantly increased, there was a higher rate of spontaneous labour and the latent phase of the first stage of labour was shorter 28% of women in this group required the use of protein or oxytocin compared with 43% in the non-date fruit group | [50] |
Date fruit | Nulliparous women (18–35 years) who were in their 37–38th week of pregnancy | Duration of labour | Control group Date consuming group (70–76 g dates daily for from the 37th week of pregnancy) | Tannins | There was no significant difference between the average length of the active phase of labour in the two groups | [92] |
Date fruit | Pregnant women | Onset and progression of labour | 89 participants Control group: (31 women) Date consuming group: 26 women (7 dates/day) Dates + water consuming group: 32 women (7 dates + 250 mL) | − | Significant positive impact on maternal outcomes on both the first and third stage of labour and fetal well-being factors No significant difference between the date fruit consumer and their counterparts regarding cervical dilation, the regularity of uterine contraction, and maternal progression factors | [64] |
Date fruit | Pregnant women | Postpartum Haemorrhage | Group 1 (50 g oral deglet Noor dates Group 2 (10 units of Intramuscular oxytocin) | Serotonin | In the whole three hours after delivery, the blood loss means in date group was significantly less than the oxytocin group | [58] |
Date fruit | Pregnant women | Bleeding, length of labour, type of labour | Total of 60 Treated Group (30) consumed 7–9 dates per day since 37th-week gestation Control group (30) | − | The result of the study about the length of labour showed that there was an effect of data consumption on the length of labour with a value of p = 0.000 | [61] |
Date fruit | Pregnant women | Preeclampsia | 40 Pregnant women were randomly assigned to Control group (10) Intervention group (30) Intake (7 dates/day for a week) | − | Daily consumption of 7 Ajwa date Has a remarkable potential to decrease MAP and ROT in pregnant women at risk of developing preeclampsia and thus prevent from preeclampsia | [94] |
DPP | Female reproductive study | Reproductive System | Intake (100 and 200 mg/kg) | Flavonoid, Alkaloid, and Estradiol | The use of DPP suspension during gestation and lactation increase oogenesis significantly | [85] |
DPP | Adult female Albino rats exposed to lead acetate | Ovarian function and fertility | Total = 404 (4 groups) Control Group (orally 1 mL distilled water) T1 was given orally 150 mg/kg BW. DPP (0.5 mL) T2 was given orally 10 mg/kg BW. Lead acetate 1 mL T3 was given oral administration of both DPP 150 mg/kg BW and 10 mg/kg BW. lead acetate All animals were treated via gavages needles for 6 weeks | − | Oral administration of DPP with a protective dose of 150 mg/kg BW lead to rebalancing the harmful effect of lead acetate in female rats | [97] |
Date palm syrup | Nulliparous Women | Labour pain | Total = 80 Control Group: Water Palm Syrup Group: Consumed pulp-free syrup added in 150 mL water | − | Date palm syrup significantly reduces labour pain. Findings showed that starting impact occurred late in palm syrup usage, but it has a long relief effect | [93] |
Probiotic fermented milk, Sukkary date fruit extract, and their mixture | Mature late pregnant Najdi ewes | Neonatal traits Hematological Parameters | Total = 20 Group 1 (control) Group 2 (50 mL date extract every other day for the last 8th week of pregnancy Group 3 (50 mL of probiotic fermented cow’s milk for the same period Group 4 (50 mL of the mixture Date extract: Fermented milk, 1:1) | − | Mean litter weight increased significantly in ewes given dates alone (85% more kg than control) Fermented milk or mixture with dates did not significantly increase the litter weight. Fermented milk alone did not show alteration in litter birth weight | [88] |
Barley and date fruit (Anti hypercholesteremia Impact) | Female Wistar Albino Rats | Ovarian function and infertility | Eight Groups (n = 12) Control (C) Barley Group (B): Diet containing 10% barley grains Date Palm fruit group (D): A diet containing 10% fruit Barley and date group (BD) High cholesterol diet group (H) High cholesterol and barley grains (HB) High cholesterol and date palm fruit group (HD) High cholesterol and both barley and date palm fruit (HBD) | Phytomicro nutrients polyphenols, Beta-glucan, and trace elements | Concomitant supplementation of barley and date fruit to the hypercholesterolemic group revealed marked improvement of ovarian structure and function | [77] |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Shehzad, M.; Rasheed, H.; Naqvi, S.A.; Al-Khayri, J.M.; Lorenzo, J.M.; Alaghbari, M.A.; Manzoor, M.F.; Aadil, R.M. Therapeutic Potential of Date Palm against Human Infertility: A Review. Metabolites 2021, 11, 408. https://doi.org/10.3390/metabo11060408
Shehzad M, Rasheed H, Naqvi SA, Al-Khayri JM, Lorenzo JM, Alaghbari MA, Manzoor MF, Aadil RM. Therapeutic Potential of Date Palm against Human Infertility: A Review. Metabolites. 2021; 11(6):408. https://doi.org/10.3390/metabo11060408
Chicago/Turabian StyleShehzad, Maham, Hina Rasheed, Summar A. Naqvi, Jameel M. Al-Khayri, Jose Manuel Lorenzo, Mohammed Abdulrazzaq Alaghbari, Muhammad Faisal Manzoor, and Rana Muhammad Aadil. 2021. "Therapeutic Potential of Date Palm against Human Infertility: A Review" Metabolites 11, no. 6: 408. https://doi.org/10.3390/metabo11060408
APA StyleShehzad, M., Rasheed, H., Naqvi, S. A., Al-Khayri, J. M., Lorenzo, J. M., Alaghbari, M. A., Manzoor, M. F., & Aadil, R. M. (2021). Therapeutic Potential of Date Palm against Human Infertility: A Review. Metabolites, 11(6), 408. https://doi.org/10.3390/metabo11060408