Abstract
It is estimated that one in 100 men have azoospermia, the complete lack of sperm in the ejaculate. Currently, ~ 20% of azoospermia cases remain idiopathic. Non-obstructive azoospermia (NOA) is mostly explained by congenital factors leading to spermatogenic failure, such as chromosome abnormalities. The knowledge of the monogenic causes of NOA is very limited. High genetic heterogeneity due to the complexity of spermatogenesis and testicular function, lack of non-consanguineous familial cases and confirmatory studies challenge the field. The reported monogenic defects cause syndromic NOA phenotypes presenting also additional congenital problems and isolated NOA cases, explained by spermatogenic defects. The established and recently reported NOA genes (n = 38) represent essential guardians of meiosis, transcriptional and endocrine regulators of reproduction. Despite the list being short, 92% of these loci are predicted to functionally interact with each other (STRING analysis: average 5.21 connections/gene, enrichment P < 10–16). Notably, ~ 50% of NOA genes have also been implicated in primary ovarian insufficiency, amenorrhea and female genital anomalies, referring to overlapping mechanisms. Considering the knowledge from respective female phenotypes and animal models, exploring the scenarios of di/oligogenic and de novo mutations represent perspective directions in the genetic research of NOA. Knowing the exact genetic cause in each patient improves the management of infertility and other health risks (e.g., cancer), and facilitates the counseling of family members about their reproductive health. Uncovering the loci and biological processes implicated in NOA will also broaden the understanding of etiologies behind spermatogenic failure and promote the development of novel non-invasive treatments for male infertility.
Similar content being viewed by others
References
Achermann JC, Ito M, Ito M, Hindmarsh PC, Jameson JL (1999) A mutation in the gene encoding steroidogenic factor-1 causes XY sex reversal and adrenal failure in humans. Nat Genet 22:125–126. https://doi.org/10.1038/9629
Andrews AM, McCartney HJ, Errington TM, D'Andrea AD, Macara IG (2018) A senataxin-associated exonuclease SAN1 is required for resistance to DNA interstrand cross-links. Nat Commun 9:2592. https://doi.org/10.1038/s41467-018-05008-8
Arafat M et al (2017) Mutation in TDRD9 causes non-obstructive azoospermia in infertile men. J Med Genet 54:633–639. https://doi.org/10.1136/jmedgenet-2017-104514
Ayhan O, Balkan M, Guven A, Hazan R, Atar M, Tok A, Tolun A (2014) Truncating mutations in TAF4B and ZMYND15 causing recessive azoospermia. J Med Genet 51:239–244. https://doi.org/10.1136/jmedgenet-2013-102102
Ballow D, Meistrich ML, Matzuk M, Rajkovic A (2006) Sohlh1 is essential for spermatogonial differentiation. Dev Biol 294:161–167. https://doi.org/10.1016/j.ydbio.2006.02.027
Basbous J, Constantinou A (2019) A tumor suppressive DNA translocase named FANCM. Crit Rev Biochem Mol Biol 54:27–40. https://doi.org/10.1080/10409238.2019.1568963
Basciani S et al (2012) Hypogonadism in a patient with two novel mutations of the luteinizing hormone beta-subunit gene expressed in a compound heterozygous form. J Clin Endocrinol Metab 97:3031–3038. https://doi.org/10.1210/jc.2012-1986
Bashamboo A et al (2016) A recurrent p.Arg92Trp variant in steroidogenic factor-1 (NR5A1) can act as a molecular switch in human sex development. Hum Mol Genet 25:5286. https://doi.org/10.1093/hmg/ddw390
Bashamboo A et al (2010) Human male infertility associated with mutations in NR5A1 encoding steroidogenic factor 1. Am J Hum Genet 87:505–512. https://doi.org/10.1016/j.ajhg.2010.09.009
Becherel OJ, Fogel BL, Zeitlin SI, Samaratunga H, Greaney J, Homer H, Lavin MF (2019) Disruption of Spermatogenesis and Infertility in Ataxia with Oculomotor Apraxia Type 2 (AOA2). Cerebellum 18:448–456. https://doi.org/10.1007/s12311-019-01012-w
Ben Khelifa M et al (2018) A MEI1 homozygous missense mutation associated with meiotic arrest in a consanguineous family. Hum Reprod 33:1034–1037. https://doi.org/10.1093/humrep/dey073
Bennett CL, La Spada AR (2018) Senataxin, A novel helicase at the interface of RNA transcriptome regulation and neurobiology: from normal function to pathological roles in motor neuron disease and cerebellar degeneration. Adv Neurobiol 20:265–281. https://doi.org/10.1007/978-3-319-89689-2_10
Bennett CP, Docherty Z, Robb SA, Ramani P, Hawkins JR, Grant D (1993) Deletion 9p and sex reversal. J Med Genet 30:518–520. https://doi.org/10.1136/jmg.30.6.518
Bick D et al (1992) Brief report: intragenic deletion of the KALIG-1 gene in Kallmann's syndrome. N Engl J Med 326:1752–1755. https://doi.org/10.1056/NEJM199206253262606
Boehm U et al (2015) Expert consensus document: European Consensus Statement on congenital hypogonadotropic hypogonadism–pathogenesis, diagnosis and treatment. Nat Rev Endocrinol 11:547–564. https://doi.org/10.1038/nrendo.2015.112
Bolcun-Filas E et al (2009) Mutation of the mouse Syce1 gene disrupts synapsis and suggests a link between synaptonemal complex structural components and DNA repair. PLoS Genet 5:e1000393. https://doi.org/10.1371/journal.pgen.1000393
Bult CJ, Blake JA, Smith CL, Kadin JA, Richardson JE, Mouse Genome Database G (2019) Mouse genome database (MGD) 2019. Nucleic Acids Res 47:D801–D806. https://doi.org/10.1093/nar/gky1056
Camats N, Fernandez-Cancio M, Audi L, Schaller A, Fluck CE (2018) Broad phenotypes in heterozygous NR5A1 46, XY patients with a disorder of sex development: an oligogenic origin? Eur J Hum Genet 26:1329–1338. https://doi.org/10.1038/s41431-018-0202-7
Cardoso-Moreira M et al (2019) Gene expression across mammalian organ development. Nature 571:505–509. https://doi.org/10.1038/s41586-019-1338-5
Cassatella D et al (2018) Congenital hypogonadotropic hypogonadism and constitutional delay of growth and puberty have distinct genetic architectures. Eur J Endocrinol 178:377–388. https://doi.org/10.1530/EJE-17-0568
Catford SR, O'Bryan MK, McLachlan RI, Delatycki MB, Rombauts L (2019) Germ cell arrest associated with aSETX mutation in ataxia oculomotor apraxia type 2. Reprod Biomed Online 38:961–965. https://doi.org/10.1016/j.rbmo.2018.12.042
Chalmel F, Lardenois A, Primig M (2007) Toward understanding the core meiotic transcriptome in mammals and its implications for somatic cancer. Ann N Y Acad Sci 1120:1–15. https://doi.org/10.1196/annals.1411.010
Chalmel F et al (2012) Global human tissue profiling and protein network analysis reveals distinct levels of transcriptional germline-specificity and identifies target genes for male infertility. Hum Reprod 27:3233–3248. https://doi.org/10.1093/humrep/des301
Chen YZ et al (2004) DNA/RNA helicase gene mutations in a form of juvenile amyotrophic lateral sclerosis (ALS4). Am J Hum Genet 74:1128–1135. https://doi.org/10.1086/421054
Choi Y et al (2010) Mutations in SOHLH1 gene associate with nonobstructive azoospermia. Hum Mutat 31:788–793. https://doi.org/10.1002/humu.21264
Clark WT et al (2019) Assessment of predicted enzymatic activity of alpha-N-acetylglucosaminidase variants of unknown significance for CAGI 2016. Hum Mutat 40:1519–1529. https://doi.org/10.1002/humu.23875
Colombo R, Pontoglio A, Bini M (2017) Two novel TEX15 mutations in a family with nonobstructive azoospermia. Gynecol Obstet Invest 82:283–286. https://doi.org/10.1159/000468934
Cools M et al (2018) Caring for individuals with a difference of sex development (DSD): a Consensus Statement. Nat Rev Endocrinol 14:415–429. https://doi.org/10.1038/s41574-018-0010-8
Darde TA et al (2019) The ReproGenomics Viewer: a multi-omics and cross-species resource compatible with single-cell studies for the reproductive science community. Bioinformatics 35:3133–3139. https://doi.org/10.1093/bioinformatics/btz047
Dode C, Hardelin JP (2010) Clinical genetics of Kallmann syndrome. Ann Endocrinol (Paris) 71:149–157. https://doi.org/10.1016/j.ando.2010.02.005
Eggers S et al (2016) Disorders of sex development: insights from targeted gene sequencing of a large international patient cohort. Genome Biol 17:243. https://doi.org/10.1186/s13059-016-1105-y
Eisenberg ML, Betts P, Herder D, Lamb DJ, Lipshultz LI (2013) Increased risk of cancer among azoospermic men. Fertil Steril 100:681–685. https://doi.org/10.1016/j.fertnstert.2013.05.022
Fakhro KA et al (2018) Point-of-care whole-exome sequencing of idiopathic male infertility. Genet Med 20:1365–1373. https://doi.org/10.1038/gim.2018.10
Ferlin A, Rocca MS, Vinanzi C, Ghezzi M, Di Nisio A, Foresta C (2015) Mutational screening of NR5A1 gene encoding steroidogenic factor 1 in cryptorchidism and male factor infertility and functional analysis of seven undescribed mutations. Fertil Steril 104(163–169):e161. https://doi.org/10.1016/j.fertnstert.2015.04.017
Frapsauce C et al (2011) Birth after TESE-ICSI in a man with hypogonadotropic hypogonadism and congenital adrenal hypoplasia linked to a DAX-1 (NR0B1) mutation. Hum Reprod 26:724–728. https://doi.org/10.1093/humrep/deq372
Gershoni M et al (2017) A familial study of azoospermic men identifies three novel causative mutations in three new human azoospermia genes. Genet Med 19:998–1006. https://doi.org/10.1038/gim.2016.225
Gershoni M, Hauser R, Barda S, Lehavi O, Arama E, Pietrokovski S, Kleiman SE (2019) A new MEIOB mutation is a recurrent cause for azoospermia and testicular meiotic arrest. Hum Reprod 34:666–671. https://doi.org/10.1093/humrep/dez016
Gottlieb B, Beitel LK, Nadarajah A, Paliouras M, Trifiro M (2012) The androgen receptor gene mutations database: 2012 update. Hum Mutat 33:887–894. https://doi.org/10.1002/humu.22046
Greenbaum MP, Iwamori T, Buchold GM, Matzuk MM (2011) Germ cell intercellular bridges. Cold Spring Harb Perspect Biol 3:a005850. https://doi.org/10.1101/cshperspect.a005850
Griffin WC, Trakselis MA (2019) The MCM8/9 complex: a recent recruit to the roster of helicases involved in genome maintenance. DNA Repair (Amst) 76:1–10. https://doi.org/10.1016/j.dnarep.2019.02.003
Habedanck R, Stierhof YD, Wilkinson CJ, Nigg EA (2005) The Polo kinase Plk4 functions in centriole duplication. Nat Cell Biol 7:1140–1146. https://doi.org/10.1038/ncb1320
Hanley NA et al (1999) Expression of steroidogenic factor 1 and Wilms' tumour 1 during early human gonadal development and sex determination. Mech Dev 87:175–180. https://doi.org/10.1016/s0925-4773(99)00123-9
Hanson BM, Eisenberg ML, Hotaling JM (2018) Male infertility: a biomarker of individual and familial cancer risk. Fertil Steril 109:6–19. https://doi.org/10.1016/j.fertnstert.2017.11.005
Hardelin JP et al (1992) X chromosome-linked Kallmann syndrome: stop mutations validate the candidate gene. Proc Natl Acad Sci U S A 89:8190–8194. https://doi.org/10.1073/pnas.89.17.8190
Hastie ND (2017) Wilms' tumour 1 (WT1) in development, homeostasis and disease. Development 144:2862–2872. https://doi.org/10.1242/dev.153163
He WB et al (2018) DMC1 mutation that causes human non-obstructive azoospermia and premature ovarian insufficiency identified by whole-exome sequencing. J Med Genet 55:198–204. https://doi.org/10.1136/jmedgenet-2017-104992
Horn HF, Kim DI, Wright GD, Wong ES, Stewart CL, Burke B, Roux KJ (2013) A mammalian KASH domain protein coupling meiotic chromosomes to the cytoskeleton. J Cell Biol 202:1023–1039. https://doi.org/10.1083/jcb.201304004
Jarow JP, Espeland MA, Lipshultz LI (1989) Evaluation of the azoospermic patient. J Urol 142:62–65. https://doi.org/10.1016/s0022-5347(17)38662-7
Jarvi K et al (2015) The workup and management of azoospermic males. Can Urol Assoc J 9:229–235. https://doi.org/10.5489/cuaj.3209
Jungwirth A et al (2012) European Association of Urology guidelines on male infertility: the 2012 update. Eur Urol 62:324–332. https://doi.org/10.1016/j.eururo.2012.04.048
Kaneko Y et al (2015) A high incidence of WT1 abnormality in bilateral Wilms tumours in Japan, and the penetrance rates in children with WT1 germline mutation. Br J Cancer 112:1121–1133. https://doi.org/10.1038/bjc.2015.13
Kasak L et al (2018) Bi-allelic recessive loss-of-function variants in FANCM cause non-obstructive azoospermia. Am J Hum Genet 103:200–212. https://doi.org/10.1016/j.ajhg.2018.07.005
Kasak L et al (2019a) Assessing computational predictions of the phenotypic effect of cystathionine-beta-synthase variants. Hum Mutat 40:1530–1545. https://doi.org/10.1002/humu.23868
Kasak L et al (2019b) CAGI SickKids challenges: assessment of phenotype and variant predictions derived from clinical and genomic data of children with undiagnosed diseases. Hum Mutat 40:1373–1391. https://doi.org/10.1002/humu.23874
Kherraf ZE et al (2017) SPINK2 deficiency causes infertility by inducing sperm defects in heterozygotes and azoospermia in homozygotes. EMBO Mol Med 9:1132–1149. https://doi.org/10.15252/emmm.201607461
Kim S, Bardwell VJ, Zarkower D (2007) Cell type-autonomous and non-autonomous requirements for Dmrt1 in postnatal testis differentiation. Dev Biol 307:314–327. https://doi.org/10.1016/j.ydbio.2007.04.046
Köhler B et al (2011) Analysis of the Wilms' tumor suppressor gene (WT1) in patients 46, XY disorders of sex development. J Clin Endocrinol Metab 96:E1131–1136. https://doi.org/10.1210/jc.2010-2804
Köhler S et al (2019) Expansion of the Human Phenotype Ontology (HPO) knowledge base and resources. Nucleic Acids Res 47:D1018–D1027. https://doi.org/10.1093/nar/gky1105
Krausz C, Riera-Escamilla A (2018) Genetics of male infertility. Nat Rev Urol 15:369–384. https://doi.org/10.1038/s41585-018-0003-3
Krausz C, Hoefsloot L, Simoni M, Tuttelmann F, European Academy of A, European Molecular Genetics Quality N (2014) EAA/EMQN best practice guidelines for molecular diagnosis of Y-chromosomal microdeletions: state-of-the-art 2013. Andrology 2:5–19. https://doi.org/10.1111/j.2047-2927.2013.00173.x
Kuzmin E et al (2018) Systematic analysis of complex genetic interactions. Science. https://doi.org/10.1126/science.aao1729
Lachke SA et al (2011) Mutations in the RNA granule component TDRD7 cause cataract and glaucoma. Science 331:1571–1576. https://doi.org/10.1126/science.1195970
Lecluze E, Jegou B, Rolland AD, Chalmel F (2018) New transcriptomic tools to understand testis development and functions. Mol Cell Endocrinol 468:47–59. https://doi.org/10.1016/j.mce.2018.02.019
Libby BJ, Reinholdt LG, Schimenti JC (2003) Positional cloning and characterization of Mei1, a vertebrate-specific gene required for normal meiotic chromosome synapsis in mice. Proc Natl Acad Sci U S A 100:15706–15711. https://doi.org/10.1073/pnas.2432067100
Lopes AM et al (2013) Human spermatogenic failure purges deleterious mutation load from the autosomes and both sex chromosomes, including the gene DMRT1. PLoS Genet 9:e1003349. https://doi.org/10.1371/journal.pgen.1003349
Lourenco D et al (2009) Mutations in NR5A1 associated with ovarian insufficiency. N Engl J Med 360:1200–1210. https://doi.org/10.1056/NEJMoa0806228
Luo M et al (2013) MEIOB exhibits single-stranded DNA-binding and exonuclease activities and is essential for meiotic recombination. Nat Commun 4:2788. https://doi.org/10.1038/ncomms3788
Macdonald J et al (2018) DMRT1 repression using a novel approach to genetic manipulation induces testicular dysgenesis in human fetal gonads. Hum Reprod 33:2107–2121. https://doi.org/10.1093/humrep/dey289
Maione L, Dwyer AA, Francou B, Guiochon-Mantel A, Binart N, Bouligand J, Young J (2018) Genetics in endocrinology: genetic counseling for congenital hypogonadotropic hypogonadism and Kallmann Syndrome: new challenges in the era of oligogenism and next-generation sequencing. Eur J Endocrinol 178:R55–R80. https://doi.org/10.1530/EJE-17-0749
Maor-Sagie E et al (2015) Deleterious mutation in SYCE1 is associated with non-obstructive azoospermia. J Assist Reprod Genet 32:887–891. https://doi.org/10.1007/s10815-015-0445-y
Marcos S et al (2014) The prevalence of CHD7 missense versus truncating mutations is higher in patients with Kallmann Syndrome than in typical CHARGE patients. J Clin Endocrinol Metab 99:E2138–E2143. https://doi.org/10.1210/jc.2014-2110
Martin CA et al (2014) Mutations in PLK4, encoding a master regulator of centriole biogenesis, cause microcephaly, growth failure and retinopathy. Nat Genet 46:1283–1292. https://doi.org/10.1038/ng.3122
Matson CK, Zarkower D (2012) Sex and the singular DM domain: insights into sexual regulation, evolution and plasticity. Nat Rev Genet 13:163–174. https://doi.org/10.1038/nrg3161
Miraoui H et al (2013) Mutations in FGF17, IL17RD, DUSP6, SPRY4, and FLRT3 are identified in individuals with congenital hypogonadotropic hypogonadism. Am J Hum Genet 92:725–743. https://doi.org/10.1016/j.ajhg.2013.04.008
Miyamoto T et al (2016) A PLK4 mutation causing azoospermia in a man with Sertoli cell-only syndrome. Andrology 4:75–81. https://doi.org/10.1111/andr.12113
Moreira MC et al (2004) Senataxin, the ortholog of a yeast RNA helicase, is mutant in ataxia-ocular apraxia 2. Nat Genet 36:225–227. https://doi.org/10.1038/ng1303
Muscatelli F et al (1994) Mutations in the DAX-1 gene give rise to both X-linked adrenal hypoplasia congenita and hypogonadotropic hypogonadism. Nature 372:672–676. https://doi.org/10.1038/372672a0
Nachtigal MW, Hirokawa Y, Enyeart-VanHouten DL, Flanagan JN, Hammer GD, Ingraham HA (1998) Wilms' tumor 1 and Dax-1 modulate the orphan nuclear receptor SF-1 in sex-specific gene expression. Cell 93:445–454. https://doi.org/10.1016/s0092-8674(00)81172-1
Nagirnaja L, Rull K, Uuskula L, Hallast P, Grigorova M, Laan M (2010) Genomics and genetics of gonadotropin beta-subunit genes: Unique FSHB and duplicated LHB/CGB loci. Mol Cell Endocrinol 329:4–16. https://doi.org/10.1016/j.mce.2010.04.024
Nagirnaja L, Aston KI, Conrad DF (2018) Genetic intersection of male infertility and cancer. Fertil Steril 109:20–26. https://doi.org/10.1016/j.fertnstert.2017.10.028
Nakamura S et al (2017) Next-generation sequencing for patients with non-obstructive azoospermia: implications for significant roles of monogenic/oligogenic mutations. Andrology 5:824–831. https://doi.org/10.1111/andr.12378
Nguyen NMP et al (2018) Causative mutations and mechanism of androgenetic hydatidiform moles. Am J Hum Genet 103:740–751. https://doi.org/10.1016/j.ajhg.2018.10.007
Niraj J, Farkkila A, D'Andrea AD (2019) The Fanconi anemia pathway in cancer. Annu Rev Cancer Biol 3:457–478. https://doi.org/10.1146/annurev-cancerbio-030617-050422
O'Hara L, Smith LB (2015) Androgen receptor roles in spermatogenesis and infertility. Best Pract Res Clin Endocrinol Metab 29:595–605. https://doi.org/10.1016/j.beem.2015.04.006
Okutman O et al (2015) Exome sequencing reveals a nonsense mutation in TEX15 causing spermatogenic failure in a Turkish family. Hum Mol Genet 24:5581–5588. https://doi.org/10.1093/hmg/ddv290
Olesen IA, Andersson AM, Aksglaede L, Skakkebaek NE, Rajpert-de Meyts E, Joergensen N, Juul A (2017) Clinical, genetic, biochemical, and testicular biopsy findings among 1,213 men evaluated for infertility. Fertil Steril 107(74–82):e77. https://doi.org/10.1016/j.fertnstert.2016.09.015
Oud MS et al (2017) Validation and application of a novel integrated genetic screening method to a cohort of 1,112 men with idiopathic azoospermia or severe oligozoospermia. Hum Mutat 38:1592–1605. https://doi.org/10.1002/humu.23312
Oud MS, Volozonoka L, Smits RM, Vissers L, Ramos L, Veltman JA (2019) A systematic review and standardized clinical validity assessment of male infertility genes. Hum Reprod 34:932–941. https://doi.org/10.1093/humrep/dez022
Papadimitriou S et al (2019) Predicting disease-causing variant combinations. Proc Natl Acad Sci U S A 116:11878–11887. https://doi.org/10.1073/pnas.1815601116
Pitteloud N, Hayes FJ, Dwyer A, Boepple PA, Lee H, Crowley WF Jr (2002) Predictors of outcome of long-term GnRH therapy in men with idiopathic hypogonadotropic hypogonadism. J Clin Endocrinol Metab 87:4128–4136. https://doi.org/10.1210/jc.2002-020518
Pitteloud N et al (2007) Digenic mutations account for variable phenotypes in idiopathic hypogonadotropic hypogonadism. J Clin Invest 117:457–463. https://doi.org/10.1172/JCI29884
Posey JE et al (2017) Resolution of disease phenotypes resulting from multilocus genomic variation. N Engl J Med 376:21–31. https://doi.org/10.1056/NEJMoa1516767
Posey JE et al (2019) Insights into genetics, human biology and disease gleaned from family based genomic studies. Genet Med 21:798–812. https://doi.org/10.1038/s41436-018-0408-7
Practice Committee of the American Society for Reproductive Medicine in collaboration with the Society for Male Reproduction and Urology (2018) Evaluation of the azoospermic male: a committee opinion. Fertil Steril 109:777–782. https://doi.org/10.1016/j.fertnstert.2018.01.043
Punab M et al (2017) Causes of male infertility: a 9-year prospective monocentre study on 1737 patients with reduced total sperm counts. Hum Reprod 32:18–31. https://doi.org/10.1093/humrep/dew284
Raymond CS, Shamu CE, Shen MM, Seifert KJ, Hirsch B, Hodgkin J, Zarkower D (1998) Evidence for evolutionary conservation of sex-determining genes. Nature 391:691–695. https://doi.org/10.1038/35618
Raymond CS, Murphy MW, O'Sullivan MG, Bardwell VJ, Zarkower D (2000) Dmrt1, a gene related to worm and fly sexual regulators, is required for mammalian testis differentiation. Genes Dev 14:2587–2595. https://doi.org/10.1101/gad.834100
Reynolds A et al (2013) RNF212 is a dosage-sensitive regulator of crossing-over during mammalian meiosis. Nat Genet 45:269–278. https://doi.org/10.1038/ng.2541
Riera-Escamilla A et al (2019) Sequencing of a 'mouse azoospermia' gene panel in azoospermic men: identification of RNF212 and STAG3 mutations as novel genetic causes of meiotic arrest. Hum Reprod 34:978–988. https://doi.org/10.1093/humrep/dez042
Robevska G et al (2018) Functional characterization of novel NR5A1 variants reveals multiple complex roles in disorders of sex development. Hum Mutat 39:124–139. https://doi.org/10.1002/humu.23354
Roca I, Fernández-Marmiesse A, Gouveia S, Segovia M, Couce ML (2018) Prioritization of variants detected by next generation sequencing according to the mutation tolerance and mutational architecture of the corresponding genes. Int J Mol Sci 19(6):1584. https://doi.org/10.3390/ijms19061584
Saba R, Kato Y, Saga Y (2014) NANOS2 promotes male germ cell development independent of meiosis suppression. Dev Biol 385:32–40. https://doi.org/10.1016/j.ydbio.2013.10.018
Schäffer AA (2013) Digenic inheritance in medical genetics. J Med Genet 50:641–652. https://doi.org/10.1136/jmedgenet-2013-101713
Schimenti JC, Handel MA (2018) Unpackaging the genetics of mammalian fertility: strategies to identify the "reproductive genome". Biol Reprod 99:1119–1128. https://doi.org/10.1093/biolre/ioy133
Seabra CM et al (2015) The mutational spectrum of WT1 in male infertility. J Urol 193:1709–1715. https://doi.org/10.1016/j.juro.2014.11.004
Segaloff DL (2009) Diseases associated with mutations of the human lutropin receptor. Prog Mol Biol Transl Sci 89:97–114. https://doi.org/10.1016/S1877-1173(09)89004-2
Sha Y et al (2018) A novel TEX11 mutation induces azoospermia: a case report of infertile brothers and literature review. BMC Med Genet 19:63. https://doi.org/10.1186/s12881-018-0570-4
Shaheen R, Al Tala S, Almoisheer A, Alkuraya FS (2014) Mutation in PLK4, encoding a master regulator of centriole formation, defines a novel locus for primordial dwarfism. J Med Genet 51:814–816. https://doi.org/10.1136/jmedgenet-2014-102790
Shimamura A, Alter BP (2010) Pathophysiology and management of inherited bone marrow failure syndromes. Blood Rev 24:101–122. https://doi.org/10.1016/j.blre.2010.03.002
Shoji M et al (2009) The TDRD9-MIWI2 complex is essential for piRNA-mediated retrotransposon silencing in the mouse male germline. Dev Cell 17:775–787. https://doi.org/10.1016/j.devcel.2009.10.012
Soumillon M et al (2013) Cellular source and mechanisms of high transcriptome complexity in the mammalian testis. Cell Rep 3:2179–2190. https://doi.org/10.1016/j.celrep.2013.05.031
Soraggi S, Riera M, Rajpert‑De Meyts E, Schierup MH, Almstrup K (2020) Evaluating genetic causes of azoospermia: What can we learn from a complex cellular structure and single‑cell transcriptomics of the human testis? Hum Genet. https://doi.org/10.1007/s00439-020-02116-8
Stephen EH, Chandra A (2006) Declining estimates of infertility in the United States: 1982–2002. Fertil Steril 86:516–523. https://doi.org/10.1016/j.fertnstert.2006.02.129
Suntharalingham JP, Buonocore F, Duncan AJ, Achermann JC (2015) DAX-1 (NR0B1) and steroidogenic factor-1 (SF-1, NR5A1) in human disease. Best Pract Res Clin Endocrinol Metab 29:607–619. https://doi.org/10.1016/j.beem.2015.07.004
Suzuki H, Ahn HW, Chu T, Bowden W, Gassei K, Orwig K, Rajkovic A (2012) SOHLH1 and SOHLH2 coordinate spermatogonial differentiation. Dev Biol 361:301–312. https://doi.org/10.1016/j.ydbio.2011.10.027
Swee DS, Quinton R (2019) Managing congenital hypogonadotrophic hypogonadism: a contemporary approach directed at optimizing fertility and long-term outcomes in males. Ther Adv Endocrinol Metab 10:2042018819826889. https://doi.org/10.1177/2042018819826889
Sykiotis GP et al (2010) Oligogenic basis of isolated gonadotropin-releasing hormone deficiency. Proc Natl Acad Sci U S A 107:15140–15144. https://doi.org/10.1073/pnas.1009622107
Szklarczyk D et al (2019) STRING v11: protein-protein association networks with increased coverage, supporting functional discovery in genome-wide experimental datasets. Nucleic Acids Res 47:D607–D613. https://doi.org/10.1093/nar/gky1131
Tan YQ et al (2019) Loss-of-function mutations in TDRD7 lead to a rare novel syndrome combining congenital cataract and nonobstructive azoospermia in humans. Genet Med 21:1209–1217. https://doi.org/10.1038/gim.2017.130
Tanaka T et al (2011) Tudor domain containing 7 (Tdrd7) is essential for dynamic ribonucleoprotein (RNP) remodeling of chromatoid bodies during spermatogenesis. Proc Natl Acad Sci USA 108:10579–10584. https://doi.org/10.1073/pnas.1015447108
Tannour-Louet M et al (2010) Identification of de novo copy number variants associated with human disorders of sexual development. PLoS ONE 5:e15392. https://doi.org/10.1371/journal.pone.0015392
Tapanainen JS, Aittomaki K, Min J, Vaskivuo T, Huhtaniemi IT (1997) Men homozygous for an inactivating mutation of the follicle-stimulating hormone (FSH) receptor gene present variable suppression of spermatogenesis and fertility. Nat Genet 15:205–206. https://doi.org/10.1038/ng0297-205
Tenenbaum-Rakover Y et al (2015) Minichromosome maintenance complex component 8 (MCM8) gene mutations result in primary gonadal failure. J Med Genet 52:391–399. https://doi.org/10.1136/jmedgenet-2014-102921
Tewes AC, Ledig S, Tuttelmann F, Kliesch S, Wieacker P (2014) DMRT1 mutations are rarely associated with male infertility. Fertil Steril 102(816–820):e813. https://doi.org/10.1016/j.fertnstert.2014.05.022
Thorslund T, Esashi F, West SC (2007) Interactions between human BRCA2 protein and the meiosis-specific recombinase DMC1. EMBO J 26:2915–2922. https://doi.org/10.1038/sj.emboj.7601739
Tock AJ, Henderson IR (2018) Hotspots for initiation of meiotic recombination. Front Genet 9:521. https://doi.org/10.3389/fgene.2018.00521
Tournaye H, Krausz C, Oates RD (2017) Novel concepts in the aetiology of male reproductive impairment. Lancet Diabetes Endocrinol 5:544–553. https://doi.org/10.1016/S2213-8587(16)30040-7
Tsui V, Crismani W (2019) The Fanconi anemia pathway and fertility. Trends Genet 35:199–214. https://doi.org/10.1016/j.tig.2018.12.007
Tüttelmann F, Werny F, Cooper TG, Kliesch S, Simoni M, Nieschlag E (2011) Clinical experience with azoospermia: aetiology and chances for spermatozoa detection upon biopsy. Int J Androl 34:291–298. https://doi.org/10.1111/j.1365-2605.2010.01087.x
Tüttelmann F, Ruckert C, Ropke A (2018) Disorders of spermatogenesis: perspectives for novel genetic diagnostics after 20 years of unchanged routine. Med Genet 30:12–20. https://doi.org/10.1007/s11825-018-0181-7
Uhlen M et al (2015) Proteomics Tissue-based map of the human proteome. Science 347:1260419. https://doi.org/10.1126/science.1260419
Valdes-Socin H et al (2004) Hypogonadism in a patient with a mutation in the luteinizing hormone beta-subunit gene. N Engl J Med 351:2619–2625. https://doi.org/10.1056/NEJMoa040326
Vockel M, Riera-Escamilla A, Tüttelmann F, Krausz C (2019) The X chromosome and male infertility. Hum Genet. https://doi.org/10.1007/s00439-019-02101-w
van der Bijl N et al (2019) Mutations in the stromal antigen 3 (STAG3) gene cause male infertility due to meiotic arrest. Hum Reprod 34:2112–2119. https://doi.org/10.1093/humrep/dez204
Vloeberghs V, Verheyen G, Haentjens P, Goossens A, Polyzos NP, Tournaye H (2015) How successful is TESE-ICSI in couples with non-obstructive azoospermia? Hum Reprod 30:1790–1796. https://doi.org/10.1093/humrep/dev139
Wang XN et al (2013) The Wilms tumor gene, Wt1, is critical for mouse spermatogenesis via regulation of sertoli cell polarity and is associated with non-obstructive azoospermia in humans. PLoS Genet 9:e1003645. https://doi.org/10.1371/journal.pgen.1003645
Wang H et al (2018) Next-generation sequencing reveals genetic landscape in 46, XY disorders of sexual development patients with variable phenotypes. Hum Genet 137:265–277. https://doi.org/10.1007/s00439-018-1879-y
WHO (2010) WHO laboratory manual for the examination and processing of human semen, 5th edn. World Health Organization, Geneva, p 2010
Winters T, McNicoll F, Jessberger R (2014) Meiotic cohesin STAG3 is required for chromosome axis formation and sister chromatid cohesion. EMBO J 33:1256–1270. https://doi.org/10.1002/embj.201387330
Xu J et al (2017) A novel functional variant in Wilms' Tumor 1 (WT1) is associated with idiopathic non-obstructive azoospermia. Mol Reprod Dev 84:222–228. https://doi.org/10.1002/mrd.22768
Yan W et al (2010) Zmynd15 encodes a histone deacetylase-dependent transcriptional repressor essential for spermiogenesis and male fertility. J Biol Chem 285:31418–31426. https://doi.org/10.1074/jbc.M110.116418
Yang F et al (2008) Meiotic failure in male mice lacking an X-linked factor. Genes Dev 22:682–691. https://doi.org/10.1101/gad.1613608
Yang F et al (2015) TEX11 is mutated in infertile men with azoospermia and regulates genome-wide recombination rates in mouse. EMBO Mol Med 7:1198–1210. https://doi.org/10.15252/emmm.201404967
Yang Y et al (2018) XRCC2 mutation causes meiotic arrest, azoospermia and infertility. J Med Genet 55:628–636. https://doi.org/10.1136/jmedgenet-2017-105145
Yang X et al (2018) Homozygous nonsense mutation Trp28X in the LHB gene causes male hypogonadism. J Assist Reprod Genet 35:913–919. https://doi.org/10.1007/s10815-018-1133-5
Yatsenko AN et al (2015) X-linked TEX11 mutations, meiotic arrest, and azoospermia in infertile men. N Engl J Med 372:2097–2107. https://doi.org/10.1056/NEJMoa1406192
Yin H et al (2019) A homozygous FANCM frameshift pathogenic variant causes male infertility. Genet Med 21:62–70. https://doi.org/10.1038/s41436-018-0015-7
Young J et al (2019) Clinical Management of Congenital Hypogonadotropic Hypogonadism. Endocr Rev 40:669–710. https://doi.org/10.1210/er.2018-00116
Zare-Abdollahi D et al (2015) Mutational screening of the NR5A1 in azoospermia. Andrologia 47:395–401. https://doi.org/10.1111/and.12274
Zimmermann C et al (2015) Research resource: the dynamic transcriptional profile of sertoli cells during the progression of spermatogenesis. Mol Endocrinol 29:627–642. https://doi.org/10.1210/me.2014-1356
Acknowledgements
M. Laan and L. Kasak are supported by Estonian Research Council grant IUT34-12.
Author information
Authors and Affiliations
Corresponding author
Ethics declarations
Conflict of interest
On behalf of all authors, the corresponding author states that there is no conflict of interest.
Additional information
Publisher's Note
Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.
Electronic supplementary material
Below is the link to the electronic supplementary material.
Rights and permissions
About this article
Cite this article
Kasak, L., Laan, M. Monogenic causes of non-obstructive azoospermia: challenges, established knowledge, limitations and perspectives. Hum Genet 140, 135–154 (2021). https://doi.org/10.1007/s00439-020-02112-y
Received:
Accepted:
Published:
Issue Date:
DOI: https://doi.org/10.1007/s00439-020-02112-y