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1.
Int J Fertil Steril ; 18(2): 180-184, 2024 Feb 02.
Article in English | MEDLINE | ID: mdl-38368523

ABSTRACT

BACKGROUND: Infertile men with multiple morphological abnormalities of the sperm flagella (MMAF) phenotype exhibit mosaic sperm flagella abnormalities such as short, bent, coiled, and irregular flagella or absent flagella. Sperm flagellum has an ultrastructurally axonemal structure that contains a large number of proteins. A-Kinase Anchoring Protein 3 (AKAP3) is expressed in spermatozoa. It may function as a regulator of motility and the acrosome reaction. This study aimed to compare genetic changes in infertile men suffering MMAF phenotype with the control group. MATERIALS AND METHODS: In this case-control study, genetic variants of the AKAP3 gene were evaluated in 60 infertile men with MMAF phenotype and 40 fertile men, as control. As exon five of the AKAP3 gene encodes the functional domain of this protein, its genetic variants were studied. Therefore, polymerase chain reaction (PCR)-sequencing was undertaken on the DNA extracted from control and patients' blood samples. RESULTS: Sixty infertile men with MMAF phenotype and 40 normozoospermic men, as control, were enrolled in this study. Four haplotype variants 1378T>C (rs10774251), 1391C>G (rs11063266), 1437T>C (rs11063265), and 1573G>A (rs1990312) were detected in all patients and controls. On the other hand, a missense mutation 1499T>C (rs12366671) was observed in four patients with the homozygous form while seven patients carried the heterozygous form. No mutation was identified in the controls (P=0.04). The difference between the variation allele frequencies was assessed in the patient and control groups by the Fisher Exact Test. CONCLUSION: In the homozygous form, this mutation changed Isoleucine to Threonine. This alternation occurred inside the AKAP4 binding domain of the AKAP3 protein. The observed variants caused no significant deviation in the secondary structure of AKAP3 protein and probably its function in spermatozoa flagella. So, these variants cannot be considered as the causes of MMAF phenotype in the studied patients.

2.
Clin Genet ; 105(3): 317-322, 2024 03.
Article in English | MEDLINE | ID: mdl-37975235

ABSTRACT

Sperm flagella share an evolutionary conserved microtubule-based structure with motile cilia expressed at the surface of several cell types, such as the airways epithelial cells. As a result, male infertility can be observed as an isolated condition or a syndromic trait, illustrated by Primary Cilia Dyskinesia (PCD). We report two unrelated patients showing multiple morphological abnormalities of the sperm flagella (MMAF) and carrying distinct homozygous truncating variants in the PCD-associated gene CCDC65. We characterized one of the identified variants (c.1208del; p.Asn403Ilefs*9), which induces the near absence of CCDC65 protein in patient sperm. In Chlamydomonas, CCDC65 ortholog (DRC2, FAP250) is a component of the Nexin-Dynein Regulatory complex (N-DRC), which interconnects microtubule doublets and coordinates dynein arms activity. In sperm cells from the patient, we also show the loss of GAS8, another component of the N-DRC, supporting a structural/functional link between the two proteins. Our work indicates that, similarly to ciliary axoneme, CCDC65 is required for sperm flagellum structure. Importantly, our work provides first evidence that mutations in the PCD-associated gene CCDC65 also cause asthenozoospermia.


Subject(s)
Infertility, Male , Sperm Tail , Humans , Male , Sperm Tail/metabolism , Axoneme/genetics , Seeds/metabolism , Microtubule-Associated Proteins/genetics , Mutation/genetics , Dyneins/genetics , Infertility, Male/genetics , Glycoproteins/genetics
3.
Elife ; 122023 11 07.
Article in English | MEDLINE | ID: mdl-37934199

ABSTRACT

Male infertility is common and complex, presenting a wide range of heterogeneous phenotypes. Although about 50% of cases are estimated to have a genetic component, the underlying cause often remains undetermined. Here, from whole-exome sequencing on samples from 168 infertile men with asthenoteratozoospermia due to severe sperm flagellum, we identified homozygous ZMYND12 variants in four unrelated patients. In sperm cells from these individuals, immunofluorescence revealed altered localization of DNAH1, DNALI1, WDR66, and TTC29. Axonemal localization of ZMYND12 ortholog TbTAX-1 was confirmed using the Trypanosoma brucei model. RNAi knock-down of TbTAX-1 dramatically affected flagellar motility, with a phenotype similar to the sperm from men bearing homozygous ZMYND12 variants. Co-immunoprecipitation and ultrastructure expansion microscopy in T. brucei revealed TbTAX-1 to form a complex with TTC29. Comparative proteomics with samples from Trypanosoma and Ttc29 KO mice identified a third member of this complex: DNAH1. The data presented revealed that ZMYND12 is part of the same axonemal complex as TTC29 and DNAH1, which is critical for flagellum function and assembly in humans, and Trypanosoma. ZMYND12 is thus a new asthenoteratozoospermia-associated gene, bi-allelic variants of which cause severe flagellum malformations and primary male infertility.


Subject(s)
Asthenozoospermia , Infertility, Male , Humans , Male , Animals , Mice , Semen , Flagella , Fertility , Calcium-Binding Proteins , Dyneins
4.
Int J Mol Sci ; 24(3)2023 Jan 29.
Article in English | MEDLINE | ID: mdl-36768883

ABSTRACT

Male infertility is a common and complex disease and presents as a wide range of heterogeneous phenotypes. Multiple morphological abnormalities of the sperm flagellum (MMAF) phenotype is a peculiar condition of extreme morphological sperm defects characterized by a mosaic of sperm flagellum defects to a total asthenozoospermia. At this time, about 40 genes were associated with the MMAF phenotype. However, mutation prevalence for most genes remains individually low and about half of individuals remain without diagnosis, encouraging us to pursue the effort to identify new mutations and genes. In the present study, an a cohort of 167 MMAF patients was analyzed using whole-exome sequencing, and we identified three unrelated patients with new pathogenic mutations in DNHD1, a new gene recently associated with MMAF. Immunofluorescence experiments showed that DNHD1 was totally absent from sperm cells from DNHD1 patients, supporting the deleterious effect of the identified mutations. Transmission electron microscopy reveals severe flagellum abnormalities of sperm cells from one mutated patient, which appeared completely disorganized with the absence of the central pair and midpiece defects with a shortened and misshapen mitochondrial sheath. Immunostaining of IFT20 was not altered in mutated patients, suggesting that IFT may be not affected by DNHD1 mutations. Our data confirmed the importance of DNHD1 for the function and structural integrity of the sperm flagellum. Overall, this study definitively consolidated its involvement in MMAF phenotype on a second independent cohort and enriched the mutational spectrum of the DNHD1 gene.


Subject(s)
Abnormalities, Multiple , Infertility, Male , Humans , Male , Abnormalities, Multiple/genetics , Flagella/genetics , Infertility, Male/genetics , Mutation , Semen , Sperm Tail , Spermatozoa/pathology , Dyneins/metabolism
5.
J Med Genet ; 59(7): 710-718, 2022 07.
Article in English | MEDLINE | ID: mdl-34348960

ABSTRACT

BACKGROUND: Oligoasthenoteratozoospermia is a typical feature of sperm malformations leading to male infertility. Only a few genes have been clearly identified as pathogenic genes of oligoasthenoteratozoospermia. METHODS AND RESULTS: Here, we identified a homozygous frameshift variant (c.731dup, p.Asn244Lysfs*3) in CCDC34, which is preferentially expressed in the human testis, using whole-exome sequencing in a cohort of 100 Chinese men with multiple morphological abnormalities of the sperm flagella (MMAF). In an additional cohort of 167 MMAF-affected men from North Africa, Iran and France, we identified a second subject harbouring a homozygous CCDC34 frameshift variant (c.799_817del, p.Glu267Lysfs*72). Both affected men presented a typical MMAF phenotype with an abnormally low sperm concentration (ie, oligoasthenoteratozoospermia). Transmission electron microscopy analysis of the sperm flagella affected by CCDC34 deficiency further revealed dramatic disorganisation of the axoneme. Immunofluorescence assays of the spermatozoa showed that CCDC34 deficiency resulted in almost absent staining of CCDC34 and intraflagellar transport-B complex-associated proteins (such as IFT20 and IFT52). Furthermore, we generated a mouse Ccdc34 frameshift mutant using CRISPR-Cas9 technology. Ccdc34-mutated (Ccdc34mut/mut ) male mice were sterile and presented oligoasthenoteratozoospermia with typical MMAF anomalies. Intracytoplasmic sperm injection has good pregnancy outcomes in both humans and mice. CONCLUSIONS: Our findings support that CCDC34 is crucial to the formation of sperm flagella and that biallelic deleterious mutations in CCDC34/Ccdc34 cause male infertility with oligoasthenoteratozoospermia in humans and mice.


Subject(s)
Asthenozoospermia , Infertility, Male , Neoplasm Proteins , Oligospermia , Animals , Antigens, Neoplasm , Asthenozoospermia/genetics , Asthenozoospermia/pathology , Female , Humans , Infertility, Male/genetics , Infertility, Male/pathology , Male , Mice , Mutation/genetics , Neoplasm Proteins/genetics , Oligospermia/genetics , Oligospermia/pathology , Pregnancy , Semen , Spermatozoa/pathology , Testis/pathology
7.
Andrologia ; 53(5): e13935, 2021 Jun.
Article in English | MEDLINE | ID: mdl-33774863

ABSTRACT

Intracytoplasmic sperm injection (ICSI) is increasingly used to treat male-factor infertility when sperm parameters are not proper for intrauterine insemination (IUI) or in vitro fertilization (IVF). Among sperm abnormalities, short tail sperm defect is a rare kind of teratozoospermia, which is a severe cause of male infertility. In this study, we evaluated the ICSI outcomes of infertile men with severely short tail sperm defect. 117 infertile men with primary infertility were included in this study. We evaluated the impact of short tail sperm defect on large ICSI series (228 cycles) outcomes. The fertilisation rate (FR) was 49.0%, the clinical pregnancy rate (PR) was 21.7%, and the delivery rate (DR) was 17.5%. The results of statistical analysis show that there is no relationship between short tail sperm defect and clinical pregnancy. According to the present study, there were patients with successful ICSI outcomes despite the severe defect in their spermatozoa flagella. Our results can be considered in two main aspects: (a) it seems that ICSI could be a proper therapy for infertile men with short-tailed sperm defect and (b) the abnormal sperm morphology (especially in sperm flagellum) is not a reliable predictor for the ICSI outcomes. In conclusion, our study suggests that ICSI should be considered as a proper treatment way for infertile men with severe short tail sperm defect and probably other sperm flagella abnormalities.


Subject(s)
Infertility, Male , Sperm Injections, Intracytoplasmic , Female , Fertilization in Vitro , Humans , Infertility, Male/therapy , Male , Pregnancy , Pregnancy Rate , Retrospective Studies , Spermatozoa
8.
Hum Genet ; 140(7): 1031-1043, 2021 Jul.
Article in English | MEDLINE | ID: mdl-33689014

ABSTRACT

Cilia and flagella are formed around an evolutionary conserved microtubule-based axoneme and are required for fluid and mucus clearance, tissue homeostasis, cell differentiation and movement. The formation and maintenance of cilia and flagella require bidirectional transit of proteins along the axonemal microtubules, a process called intraflagellar transport (IFT). In humans, IFT defects contribute to a large group of systemic diseases, called ciliopathies, which often display overlapping phenotypes. By performing exome sequencing of a cohort of 167 non-syndromic infertile men displaying multiple morphological abnormalities of the sperm flagellum (MMAF) we identified two unrelated patients carrying a homozygous missense variant adjacent to a splice donor consensus site of IFT74 (c.256G > A;p.Gly86Ser). IFT74 encodes for a core component of the IFT machinery that is essential for the anterograde transport of tubulin. We demonstrate that this missense variant affects IFT74 mRNA splicing and induces the production of at least two distinct mutant proteins with abnormal subcellular localization along the sperm flagellum. Importantly, while IFT74 deficiency was previously implicated in two cases of Bardet-Biedl syndrome, a pleiotropic ciliopathy with variable expressivity, our data indicate that this missense mutation only results in primary male infertility due to MMAF, with no other clinical features. Taken together, our data indicate that the nature of the mutation adds a level of complexity to the clinical manifestations of ciliary dysfunction, thus contributing to the expanding phenotypical spectrum of ciliopathies.


Subject(s)
Asthenozoospermia/genetics , Bardet-Biedl Syndrome/genetics , Cytoskeletal Proteins/genetics , Flagella/genetics , Infertility, Male/genetics , Mutation, Missense/genetics , Tubulin/genetics , Animals , Axoneme/genetics , Cilia/genetics , Homozygote , Humans , Male , Protein Transport/genetics , RNA Splice Sites/genetics , Sperm Tail/physiology , Exome Sequencing/methods
9.
Mol Reprod Dev ; 87(2): 251-259, 2020 02.
Article in English | MEDLINE | ID: mdl-31880374

ABSTRACT

SEPT12 is a testis-specific gene involved in the terminal differentiation of male germ cells. SEPT12 protein is required for sperm head-tail formation and acts as a fundamental constituent of sperm tail annulus. In this study, we screened genetic variations in exons 5, 6, 7 of the SEPT12 and assessed the annulus status in teratozoospermic, globozoospermic, and patients with immotile short tail sperm. DNA sequencing was performed for 90 teratozoospermic and 30 normozoospermic individuals. Immunocytochemistry, transmission electron microscopy and western blotting were conducted to evaluate annulus status and the expression level of SEPT12 in patients with a distinct exonic variation (c.474G>A), respectively. Five polymorphisms identified within the desired regions of the SEPT12, among them c.474G>A had the potential to induce aberrant splicing results in the expression of a truncated protein. The annulus was detected in most of the spermatozoa from teratozoospermic and normozoospermic men with c.474G>A. In contrast, in the patient with short tail sperm defect carrying c.474G>A, 99% of spermatozoa were devoid of the annulus. Based on our findings there would be no association between exons 5, 6, 7 polymorphisms of the SEPT12 gene and the occurrence of mentioned disease but c.474G>A would be a predisposing factor in male infertility.


Subject(s)
Exons , Genetic Predisposition to Disease , Polymorphism, Single Nucleotide , Septins/genetics , Teratozoospermia/genetics , Case-Control Studies , Causality , Cohort Studies , Humans , Introns , Iran/epidemiology , Male , Sperm Tail/metabolism , Teratozoospermia/epidemiology , Testis/metabolism
10.
Andrologia ; 52(1): e13445, 2020 Feb.
Article in English | MEDLINE | ID: mdl-31657071

ABSTRACT

Teratozoospermia is characterised by the presence of spermatozoa with abnormal morphology. One of the morphological disorders that lead to male infertility is immotile short-tail sperm (ISTS) defect. In this study, we evaluated the levels of chromatin packing and DNA fragmentation in patients with immotile short-tail sperm defect. Semen samples were obtained from 31 infertile men with ISTS as case group and 31 normozoospermic men as a control group. Protamine status was evaluated using chromomycin A3 (CMA3) staining and sperm DNA fragmentation assessed by sperm chromatin structure assay (SCSA) and terminal deoxynucleotidyl transferase-mediated deoxyuridine triphosphate biotin nick-end labelling (TUNEL). The percentage of positive CMA3 spermatozoa was significantly higher in patients' samples (22.6 ± 6.9) compared with controls (16.3 ± 4.2) (p < .05) and also mean (±SD) of sperm DNA fragmentation was significantly higher in patients compared with controls, as measured by TUNEL assay (10.45 ± 4.60 vs. 7.03 ± 2.86, p < .05) and SCSA (24.80 ± 13.1 vs. 15.2 ± 7.2, p < .05). According to our study, sperm DNA fragmentation and chromatin packing abnormality are significantly higher in the ISTS samples compared with normal samples. A possible explanation for this relationship is that sperm chromatin condensation and sperm flagellum formation occur during the same phase of spermatogenesis.


Subject(s)
Chromatin/metabolism , DNA Fragmentation , Sperm Tail/pathology , Teratozoospermia/genetics , Adult , Case-Control Studies , Chromomycin A3/chemistry , DNA Packaging , Fluorescent Dyes/chemistry , Humans , Male , Middle Aged , Papanicolaou Test , Protamines/metabolism , Semen Analysis/methods , Sperm Tail/metabolism , Teratozoospermia/pathology , Young Adult
11.
Am J Hum Genet ; 105(6): 1148-1167, 2019 12 05.
Article in English | MEDLINE | ID: mdl-31735292

ABSTRACT

In humans, structural or functional defects of the sperm flagellum induce asthenozoospermia, which accounts for the main sperm defect encountered in infertile men. Herein we focused on morphological abnormalities of the sperm flagellum (MMAF), a phenotype also termed "short tails," which constitutes one of the most severe sperm morphological defects resulting in asthenozoospermia. In previous work based on whole-exome sequencing of a cohort of 167 MMAF-affected individuals, we identified bi-allelic loss-of-function mutations in more than 30% of the tested subjects. In this study, we further analyzed this cohort and identified five individuals with homozygous truncating variants in TTC29, a gene preferentially and highly expressed in the testis, and encoding a tetratricopeptide repeat-containing protein related to the intraflagellar transport (IFT). One individual carried a frameshift variant, another one carried a homozygous stop-gain variant, and three carried the same splicing variant affecting a consensus donor site. The deleterious effect of this last variant was confirmed on the corresponding transcript and protein product. In addition, we produced and analyzed TTC29 loss-of-function models in the flagellated protist T. brucei and in M. musculus. Both models confirmed the importance of TTC29 for flagellar beating. We showed that in T. brucei the TPR structural motifs, highly conserved between the studied orthologs, are critical for TTC29 axonemal localization and flagellar beating. Overall our work demonstrates that TTC29 is a conserved axonemal protein required for flagellar structure and beating and that TTC29 mutations are a cause of male sterility due to MMAF.


Subject(s)
Asthenozoospermia/etiology , Axoneme/pathology , Flagella/pathology , Infertility, Male/etiology , Microtubule-Associated Proteins/genetics , Mutation , Animals , Asthenozoospermia/metabolism , Asthenozoospermia/pathology , Axoneme/genetics , Axoneme/metabolism , Evolution, Molecular , Female , Fertilization in Vitro , Flagella/genetics , Flagella/metabolism , Humans , Infertility, Male/metabolism , Infertility, Male/pathology , Male , Mice, Inbred C57BL , Trypanosoma brucei brucei/physiology , Trypanosomiasis
12.
Clin Genet ; 96(5): 394-401, 2019 11.
Article in English | MEDLINE | ID: mdl-31292949

ABSTRACT

Multiple morphological anomalies of the sperm flagella (MMAF syndrome) is a severe male infertility phenotype which has so far been formally linked to the presence of biallelic mutations in nine genes mainly coding for axonemal proteins overexpressed in the sperm flagellum. Homozygous mutations in QRICH2, a gene coding for a protein known to be required for stabilizing proteins involved in sperm flagellum biogenesis, have recently been identified in MMAF patients from two Chinese consanguineous families. Here, in order to better assess the contribution of QRICH2 in the etiology of the MMAF phenotype, we analyzed all QRICH2 variants from whole exome sequencing data of a cohort of 167 MMAF-affected subjects originating from North Africa, Iran, and Europe. We identified a total of 14 potentially deleterious variants in 18 unrelated individuals. Two unrelated subjects, representing 1% of the cohort, carried a homozygous loss-of-function variant: c.3501C>G [p.Tyr1167Ter] and c.4614C>G [p.Tyr1538Ter], thus confirming the implication of QRICH2 in the MMAF phenotype and human male infertility. Sixteen MMAF patients (9.6%) carried a heterozygous QRICH2 potentially deleterious variant. This rate was comparable to what was observed in a control group (15.5%) suggesting that the presence of QRICH2 heterozygous variants is not associated with MMAF syndrome.


Subject(s)
Abnormalities, Multiple/genetics , Infertility, Male/genetics , Microtubule Proteins/genetics , Abnormalities, Multiple/pathology , Africa, Northern/epidemiology , Axoneme , Cohort Studies , Cytoskeletal Proteins , Europe/epidemiology , Homozygote , Humans , Infertility, Male/pathology , Iran/epidemiology , Male , Mutation/genetics , Sperm Tail/metabolism , Sperm Tail/pathology , Spermatozoa/growth & development , Spermatozoa/pathology
13.
Am J Hum Genet ; 104(2): 331-340, 2019 02 07.
Article in English | MEDLINE | ID: mdl-30686508

ABSTRACT

Male infertility is a major health concern. Among its different causes, multiple morphological abnormalities of the flagella (MMAF) induces asthenozoospermia and is one of the most severe forms of qualitative sperm defects. Sperm of affected men display short, coiled, absent, and/or irregular flagella. To date, six genes (DNAH1, CFAP43, CFAP44, CFAP69, FSIP2, and WDR66) have been found to be recurrently associated with MMAF, but more than half of the cases analyzed remain unresolved, suggesting that many yet-uncharacterized gene defects account for this phenotype. Here, whole-exome sequencing (WES) was performed on 168 infertile men who had a typical MMAF phenotype. Five unrelated affected individuals carried a homozygous deleterious mutation in ARMC2, a gene not previously linked to the MMAF phenotype. Using the CRISPR-Cas9 technique, we generated homozygous Armc2 mutant mice, which also presented an MMAF phenotype, thus confirming the involvement of ARMC2 in human MMAF. Immunostaining experiments in AMRC2-mutated individuals and mutant mice evidenced the absence of the axonemal central pair complex (CPC) proteins SPAG6 and SPEF2, whereas the other tested axonemal and peri-axonemal components were present, suggesting that ARMC2 is involved in CPC assembly and/or stability. Overall, we showed that bi-allelic mutations in ARMC2 cause male infertility in humans and mice by inducing a typical MMAF phenotype, indicating that this gene is necessary for sperm flagellum structure and assembly.


Subject(s)
Alleles , Asthenozoospermia/genetics , Asthenozoospermia/pathology , Cytoskeletal Proteins/genetics , Flagella/genetics , Mutation , Spermatozoa/abnormalities , Spermatozoa/pathology , Animals , CRISPR-Cas Systems , Cell Cycle Proteins/deficiency , Humans , Infertility, Male/genetics , Infertility, Male/pathology , Male , Mice , Microtubule Proteins/deficiency , Proteins
14.
Am J Hum Genet ; 102(4): 636-648, 2018 04 05.
Article in English | MEDLINE | ID: mdl-29606301

ABSTRACT

The multiple morphological abnormalities of the flagella (MMAF) phenotype is among the most severe forms of sperm defects responsible for male infertility. The phenotype is characterized by the presence in the ejaculate of immotile spermatozoa with severe flagellar abnormalities including flagella being short, coiled, absent, and of irregular caliber. Recent studies have demonstrated that MMAF is genetically heterogeneous, and genes thus far associated with MMAF account for only one-third of cases. Here we report the identification of homozygous truncating mutations (one stop-gain and one splicing variant) in CFAP69 of two unrelated individuals by whole-exome sequencing of a cohort of 78 infertile men with MMAF. CFAP69 encodes an evolutionarily conserved protein found at high levels in the testis. Immunostaining experiments in sperm from fertile control individuals showed that CFAP69 localized to the midpiece of the flagellum, and the absence of CFAP69 was confirmed in both individuals carrying CFPA69 mutations. Additionally, we found that sperm from a Cfap69 knockout mouse model recapitulated the MMAF phenotype. Ultrastructural analysis of testicular sperm from the knockout mice showed severe disruption of flagellum structure, but histological analysis of testes from these mice revealed the presence of all stages of the seminiferous epithelium, indicating that the overall progression of spermatogenesis is preserved and that the sperm defects likely arise during spermiogenesis. Together, our data indicate that CFAP69 is necessary for flagellum assembly/stability and that in both humans and mice, biallelic truncating mutations in CFAP69 cause autosomal-recessive MMAF and primary male infertility.


Subject(s)
Cytoskeletal Proteins/genetics , Infertility, Male/genetics , Infertility, Male/pathology , Sperm Tail/metabolism , Sperm Tail/pathology , Animals , Axoneme/metabolism , Epididymis/pathology , Epididymis/ultrastructure , Homozygote , Humans , Male , Mice, Knockout , Mutation/genetics , Semen/metabolism , Sperm Midpiece/metabolism , Sperm Tail/ultrastructure , Spermatogenesis , Testis/pathology , Exome Sequencing
15.
Nat Commun ; 9(1): 686, 2018 02 15.
Article in English | MEDLINE | ID: mdl-29449551

ABSTRACT

Spermatogenesis defects concern millions of men worldwide, yet the vast majority remains undiagnosed. Here we report men with primary infertility due to multiple morphological abnormalities of the sperm flagella with severe disorganization of the sperm axoneme, a microtubule-based structure highly conserved throughout evolution. Whole-exome sequencing was performed on 78 patients allowing the identification of 22 men with bi-allelic mutations in DNAH1 (n = 6), CFAP43 (n = 10), and CFAP44 (n = 6). CRISPR/Cas9 created homozygous CFAP43/44 male mice that were infertile and presented severe flagellar defects confirming the human genetic results. Immunoelectron and stimulated-emission-depletion microscopy performed on CFAP43 and CFAP44 orthologs in Trypanosoma brucei evidenced that both proteins are located between the doublet microtubules 5 and 6 and the paraflagellar rod. Overall, we demonstrate that CFAP43 and CFAP44 have a similar structure with a unique axonemal localization and are necessary to produce functional flagella in species ranging from Trypanosoma to human.


Subject(s)
Flagella/physiology , Infertility, Male/genetics , Microtubule Proteins/genetics , Mutation , Nuclear Proteins/genetics , Peptide Hydrolases/genetics , Spermatozoa/physiology , Trypanosoma/physiology , Adult , Animals , Axoneme , Clustered Regularly Interspaced Short Palindromic Repeats , Cohort Studies , Cytoskeletal Proteins , Fertility , Flagella/metabolism , Homozygote , Humans , Male , Mice , Mice, Knockout , Microscopy, Immunoelectron , Middle Aged , Sperm Motility , Spermatozoa/metabolism , Exome Sequencing
16.
J Assist Reprod Genet ; 34(4): 505-510, 2017 Apr.
Article in English | MEDLINE | ID: mdl-28138870

ABSTRACT

PURPOSE: Male infertility is a multifactorial disorder with impressively genetic basis; besides, sperm abnormalities are the cause of numerous cases of male infertility. In this study, we evaluated the genetic variants in exons 4 and 5 and their intron-exon boundaries in RABL2B gene in infertile men with oligoasthenoteratozoospermia (OAT) and immotile short tail sperm (ISTS) defects to define if there is any association between these variants and human male infertility. METHODS: To this purpose, DNA was extracted from peripheral blood and after PCR reaction and sequencing, the results of sequenced segments were analyzed. In the present study, 30 infertile men with ISTS defect and 30 oligoasthenoteratozoospermic infertile men were recruited. All men were of Iranian origin and it took 3 years to collect patient's samples with ISTS defect. RESULTS: As a result, the 50776482 delC intronic variant (rs144944885) was identified in five patients with oligoasthenoteratozoospermia defect and one patient with ISTS defect in heterozygote form. This variant was not identified in controls. The allelic frequency of the 50776482 delC variant was significantly statistically higher in oligoasthenoteratozoospermic infertile men (p < 0.05). Bioinformatics studies suggested that the 50776482 delC allele would modify the splicing of RABL2B pre-mRNA. In addition, we identified a new genetic variant in RABL2B gene. CONCLUSIONS: According to the present study, 50776482 delC allele in the RABL2B gene could be a risk factor in Iranian infertile men with oligoasthenoteratozoospermia defect, but more genetic studies are required to understand the accurate role of this variant in pathogenesis of human male infertility.


Subject(s)
Asthenozoospermia/genetics , Infertility, Male/genetics , Oligospermia/genetics , rab GTP-Binding Proteins/genetics , Asthenozoospermia/pathology , Gene Frequency , Genetic Variation , Humans , Infertility, Male/pathology , Male , Oligospermia/pathology , Sperm Tail/metabolism , Sperm Tail/pathology , Spermatozoa/pathology
17.
Hum Reprod ; 31(12): 2872-2880, 2016 12.
Article in English | MEDLINE | ID: mdl-27798045

ABSTRACT

STUDY QUESTION: Can whole-exome sequencing (WES) of patients with multiple morphological abnormalities of the sperm flagella (MMAF) identify causal mutations in new genes or mutations in the previously identified dynein axonemal heavy chain 1 (DNAH1) gene? SUMMARY ANSWER: WES for six families with men affected by MMAF syndrome allowed the identification of DNAH1 mutations in four affected men distributed in two out of the six families but no new candidate genes were identified. WHAT IS KNOWN ALREADY: Mutations in DNAH1, an axonemal inner dynein arm heavy chain gene, have been shown to be responsible for male infertility due to a characteristic form of asthenozoospermia called MMAF, defined by the presence in the ejaculate of spermatozoa with a mosaic of flagellar abnormalities including absent, coiled, bent, angulated, irregular and short flagella. STUDY DESIGN, SIZE, DURATION: This was a retrospective genetics study of patients presenting a MMAF phenotype. Patients were recruited in Iran and Italy between 2008 and 2015. PARTICIPANTS/MATERIALS, SETTING, METHODS: WES was performed for a total of 10 subjects. All identified variants were confirmed by Sanger sequencing. Two additional affected family members were analyzed by direct Sanger sequencing. To establish the prevalence of the DNAH1 mutation identified in an Iranian family, we carried out targeted sequencing on 38 additional MMAF patients of the same geographical origin. RT-PCR and immunochemistry were performed on sperm samples to assess the effect of the identified mutation on RNA and protein. MAIN RESULTS AND THE ROLE OF CHANCE: WES in six families identified a causal mutations in two families. Two additional affected family members were confirmed to hold the same homozygous mutation as their sibling. In total, DNAH1 mutations were identified in 5 out of 12 analyzed subjects (41.7%). If we only include index cases, we detected two mutated subjects out of six (33%) tested MMAF individuals. Furthermore we sequenced one DNAH1 exon found to be mutated (c.8626-1G > A) in an Iranian family in an additional 38 MMAF patients from Iran. One of these patients carried the variant confirming that this variant is relatively frequent in the Iranian population. The effect of the c.8626-1G > A variant was confirmed by RT-PCR and immunochemistry as no RNA or protein could be observed in sperm from the affected men. LARGE SCALE DATA: N/A. LIMITATIONS, REASONS FOR CAUTION: WES allows the amplification of 80-90% of all coding exons. It is possible that some DNAH1 exons may not have been sequenced and that we may have missed some additional mutations. Also, WES cannot identify deep intronic mutations and it is not efficient for detection of large genomic events (deletions, insertions, inversions). We did not identify any causal mutations in DNAH1 or in other candidate genes in four out of the six tested families. This indicates that the technique and/or the analysis of our data can be improved to increase the diagnosis efficiency. WIDER IMPLICATIONS OF THE FINDINGS: Our findings confirm that DNAH1 is one of the main genes involved in MMAF syndrome. It is a large gene with 78 exons making it challenging and expensive to sequence using the traditional Sanger sequencing methods. We show that WES sequencing is good alternative to Sanger sequencing to reach a genetic diagnosis in patients with severe male infertility phenotypes. STUDY FUNDING/COMPETING INTERESTS: This work was supported by following grants: the 'MAS-Flagella' project financed by the French ANR and the DGOS for the program PRTS 2014 and the 'Whole genome sequencing of patients with Flagellar Growth Defects (FGD)' project financed by the Fondation Maladies Rares for the program Séquençage à haut débit 2012. The authors have no conflict of interest.


Subject(s)
Dyneins/genetics , Infertility, Male/genetics , Mutation , Sperm Tail , Spermatozoa/abnormalities , Cell Shape/genetics , Exome , Humans , Male , Pedigree , Retrospective Studies , Sequence Analysis, DNA , Spermatozoa/cytology , Exome Sequencing
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