Tournaye H, Krausz C, Oates RD. Novel concepts in the aetiology of male reproductive impairment. Lancet Diabetes Endocrinol. 2017;5(7):544–53.
Krausz C, et al. Genetics of male infertility. In: Pyeritz RE, Korf BR, Grody WW, editors. Emery and Rimoin’s principles and practice of medical genetics and genomics (seventh edition). Academic Press. 2022. p. 121–147.
Sudhakar DVS, Shah R, Gajbhiye RK. Genetics of male infertility - present and future: a narrative review. J Hum Reprod Sci. 2021;14(3):217–27.
Article CAS PubMed PubMed Central Google Scholar
Kuroda S, et al. Genetic disorders and male infertility. Reproductive Med Biology. 2020;19(4):314–22.
Gunes S, Esteves SC. Role of genetics and epigenetics in male infertility. Andrologia. 2021;53(1):e13586.
Tu C, et al. Bi-allelic mutations of DNAH10 cause primary male infertility with asthenoteratozoospermia in humans and mice. Am J Hum Genet. 2021;108(8):1466–77.
Article CAS PubMed PubMed Central Google Scholar
Liu C et al. Novel mutations in X-Linked, USP26-Induced Asthenoteratozoospermia and male infertility. Cells, 2021;10(7).
Sabeti P, Pourmasumi S, Fagheirelahee N. Effect of selenium and vitamin E on the level of sperm HSPA2+, intracellular superoxide anion and chromatin integrity in idiopathic asthenoteratozoospermia: a double-blind, randomized, placebo-controlled trial. Urol J. 2021;18(05):549–55.
Jugwirth A, et al. Guidelines on male infertility. Eur Assotiation Urol. 2015;1:42–8.
Dohle GR. Male infertility in cancer patients: review of the literature. Int J Urol. 2010;17(4):327–31.
Liu S, Li F. Cryopreservation of single-sperm: where are we today? Reproductive Biology Endocrinol. 2020;18(1):41.
Peris-Frau P et al. Sperm cryodamage in ruminants: understanding the molecular changes induced by the cryopreservation process to optimize sperm quality. Int J Mol Sci, 2020;21(8).
Mangoli E, et al. Vitamin C attenuates negative effects of vitrification on sperm parameters, chromatin quality, apoptosis and acrosome reaction in neat and prepared normozoospermic samples. Taiwan J Obstet Gynecol. 2018;57(2):200–4.
Ebrahimi B, Matavos-Aramyan H, Keshtgar S. The cryoprotective effect of vitamins on human spermatozoa quality: a systematic review and meta-analysis. Cell Tissue Banking. 2022;23(2):213–25.
Article CAS PubMed Google Scholar
Santonastaso M, et al. Protective effects of curcumin on the outcome of cryopreservation in human sperm. Reproductive Sci. 2021;28(10):2895–905.
Tamburrino L et al. Cryopreservation of human spermatozoa: functional, molecular and clinical aspects. Int J Mol Sci, 2023;24(5).
Zandiyeh S, et al. A novel approach for human sperm cryopreservation with AFPIII. Reprod Biol. 2020;20(2):169–74.
Ivanova A, et al. Problems of human spermatozoa cryopreservation: research methods, solutions. Biophys Rev. 2023;15(5):1223–32.
Khosravizadeh Z, et al. Sperm cryopreservation and DNA methylation: possible implications for ART success and the health of offspring. J Assist Reprod Genet. 2022;39(8):1815–24.
Article PubMed PubMed Central Google Scholar
Yánez-Ortiz I, et al. Advances in sperm cryopreservation in farm animals: cattle, horse, pig and sheep. Anim Reprod Sci. 2022;246:106904.
Do G-Y, et al. Antioxidant effect of edaravone on the development of preimplantation porcine embryos against Hydrogen Peroxide-Induced oxidative stress. JET. 2015;30(4):289–98.
Fan S-R, et al. Edaravone attenuates cadmium-induced toxicity by inhibiting oxidative stress and inflammation in ICR mice. Neurotoxicology. 2021;86:1–9.
Article CAS PubMed Google Scholar
Shakkour Z, et al. Drug repurposing: promises of edaravone target drug in traumatic brain injury. Curr Med Chem. 2021;28(12):2369–91.
Article CAS PubMed Google Scholar
Cho H, Shukla S. Role of edaravone as a treatment option for patients with amyotrophic lateral sclerosis. Pharmaceuticals (Basel) 2020;14(1).
Fidalgo M, et al. Edaravone for acute ischemic stroke – systematic review with meta-analysis. Clin Neurol Neurosurg. 2022;219:107299.
Ismail H, et al. Traumatic brain injury: oxidative stress and novel antioxidants such as mitoquinone and edaravone. Antioxidants (Basel); 2020;9(10).
Spasić S, et al. Edaravone may prevent ferroptosis in ALS. Curr Drug Targets. 2020;21(8):776–80.
Çelik Ç, et al. Protective effect of edaravone on rat testis after valproic acid treatment. Journal of Research in Pharmacy; 2022.
Novin MG, et al. Therapeutic effects of edaravone on azoospermia: free radical scavenging and autophagy modulation in testicular tissue of mice. J Reprod Infertility. 2022;23(2):73.
Organization WH. WHO laboratory manual for the examination and processing of human semen. World Health Organization; 2021.
Safian F, et al. Photobiomodulation with 810 nm wavelengths improves human sperms’ motility and viability in vitro. Photobiomodulation Photomed Laser Surg. 2020;38(4):222–31.
Zaazaa A, et al. Effect of varicocelectomy and/or mast cells stabilizer on sperm DNA fragmentation in infertile patients with varicocele. Andrology. 2018;6(1):146–50.
Article CAS PubMed Google Scholar
Len JS, Koh WSD, Tan S-X. The roles of reactive oxygen species and antioxidants in cryopreservation. Biosci Rep. 2019;39(8):BSR20191601.
Article CAS PubMed PubMed Central Google Scholar
Karabulut S, et al. Sperm selection with Annexin-V coated polystrene bead technique (APB-Tech): a novel and reliable method for the microscopic selection of viable and non-apoptotic sperm to be used for intracytoplasmic sperm injection. Theriogenology. 2022;194:92–103.
Article CAS PubMed Google Scholar
Nazmara Z, Salehnia M, HosseinKhani S. Mitochondrial distribution and ATP content of vitrified, in vitro matured mouse oocytes. Avicenna J Med Biotechnol. 2014;6(4):210.
PubMed PubMed Central Google Scholar
Sedlak J, Lindsay RH. Estimation of total, protein-bound, and nonprotein sulfhydryl groups in tissue with Ellman’s reagent. Anal Biochem. 1968;25:192–205.
Article CAS PubMed Google Scholar
Safian F, et al. Photobiomodulation preconditioned human semen protects sperm cells against detrimental effects of cryopreservation. Cryobiology. 2021;98:239–44.
Article CAS PubMed Google Scholar
Safian F, et al. Comparative effect of photobiomodulation on human semen samples pre-and post-cryopreservation. Reproductive Sci. 2022;29(5):1463–70.
Lanzafame FM, et al. Oxidative stress and medical antioxidant treatment in male infertility. Reprod Biomed Online. 2009;19(5):638–59.
Article CAS PubMed Google Scholar
Ozkavukcu S, et al. Effects of cryopreservation on sperm parameters and ultrastructural morphology of human spermatozoa. J Assist Reprod Genet. 2008;25:403–11.
Article PubMed PubMed Central Google Scholar
Pedersen H, Lebech PE. Ultrastructural changes in the human spermatozoon after freezing for artificial insemination. Fertil Steril. 1971;22(2):125–33.
Article CAS PubMed Google Scholar
Di Santo M, et al. Human sperm cryopreservation: update on techniques, effect on DNA integrity, and implications for ART. Volume 2012. Advances in urology; 2012. p. 854837. 1.
O’connell M, Mcclure N, Lewis S. The effects of cryopreservation on sperm morphology, motility and mitochondrial function. Hum Reprod. 2002;17(3):704–9.
Said TM, Gaglani A, Agarwal A. Implication of apoptosis in sperm cryoinjury. Reprod Biomed Online. 2010;21(4):456–62.
Bogle O, et al. Identification of protein changes in human spermatozoa throughout the cryopreservation process. Andrology. 2017;5(1):10–22.
Article CAS PubMed Google Scholar
Yeste M, et al. Good and bad freezability boar ejaculates differ in the integrity of nucleoprotein structure after freeze-thawing but not in ROS levels. Theriogenology. 2013;79(6):929–39.
Article CAS PubMed Google Scholar
Agarwal A, Durairajanayagam D, Du Plessis SS. Utility of antioxidants during assiste
Comments (0)