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1.
PLoS Genet ; 20(3): e1011038, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38498551

ABSTRACT

Motile cilia assembly utilizes over 800 structural and cytoplasmic proteins. Variants in approximately 58 genes cause primary ciliary dyskinesia (PCD) in humans, including the dynein arm (pre)assembly factor (DNAAF) gene DNAAF4. In humans, outer dynein arms (ODAs) and inner dynein arms (IDAs) fail to assemble motile cilia when DNAAF4 function is disrupted. In Chlamydomonas reinhardtii, a ciliated unicellular alga, the DNAAF4 ortholog is called PF23. The pf23-1 mutant assembles short cilia and lacks IDAs, but partially retains ODAs. The cilia of a new null allele (pf23-4) completely lack ODAs and IDAs and are even shorter than cilia from pf23-1. In addition, PF23 plays a role in the cytoplasmic modification of IC138, a protein of the two-headed IDA (I1/f). As most PCD variants in humans are recessive, we sought to test if heterozygosity at two genes affects ciliary function using a second-site non-complementation (SSNC) screening approach. We asked if phenotypes were observed in diploids with pairwise heterozygous combinations of 21 well-characterized ciliary mutant Chlamydomonas strains. Vegetative cultures of single and double heterozygous diploid cells did not show SSNC for motility phenotypes. When protein synthesis is inhibited, wild-type Chlamydomonas cells utilize the pool of cytoplasmic proteins to assemble half-length cilia. In this sensitized assay, 8 double heterozygous diploids with pf23 and other DNAAF mutations show SSNC; they assemble shorter cilia than wild-type. In contrast, double heterozygosity of the other 203 strains showed no effect on ciliary assembly. Immunoblots of diploids heterozygous for pf23 and wdr92 or oda8 show that PF23 is reduced by half in these strains, and that PF23 dosage affects phenotype severity. Reductions in PF23 and another DNAAF in diploids affect the ability to assemble ODAs and IDAs and impedes ciliary assembly. Thus, dosage of multiple DNAAFs is an important factor in cilia assembly and regeneration.


Subject(s)
Chlamydomonas reinhardtii , Chlamydomonas , Humans , Chlamydomonas reinhardtii/genetics , Chlamydomonas reinhardtii/metabolism , Cilia/genetics , Cilia/metabolism , Mutation , Dyneins/genetics , Dyneins/metabolism , Proteins/genetics , Chlamydomonas/genetics , Chlamydomonas/metabolism , Gene Dosage , Axoneme/genetics , Axoneme/metabolism
2.
Clin Genet ; 105(2): 220-225, 2024 02.
Article in English | MEDLINE | ID: mdl-37950557

ABSTRACT

Motile cilia and flagella are closely related organelles structured around a highly conserved axoneme whose formation and maintenance involve proteins from hundreds of genes. Defects in many of these genes have been described to induce primary ciliary dyskinesia (PCD) mainly characterized by chronic respiratory infections, situs inversus and/or infertility. In men, cilia/flagella-related infertility is usually caused by asthenozoospermia due to multiple morphological abnormalities of the sperm flagella (MMAF). Here, we investigated a cohort of 196 infertile men displaying a typical MMAF phenotype without any other PCD symptoms. Analysis of WES data identified a single case carrying a deleterious homozygous GAS8 variant altering a splice donor consensus site. This gene, also known as DRC4, encodes a subunit of the Nexin-Dynein Regulatory Complex (N-DRC), and has been already associated to male infertility and mild PCD. Confirming the deleterious effect of the candidate variant, GAS8 staining by immunofluorescence did not evidence any signal from the patient's spermatozoa whereas a strong signal was present along the whole flagella length in control cells. Concordant with its role in the N-DRC, transmission electron microscopy evidenced peripheral microtubule doublets misalignments. We confirm here the importance of GAS8 in the N-DRC and observed that its absence induces a typical MMAF phenotype not necessarily accompanied by other PCD symptoms.


Subject(s)
Axoneme , Infertility, Male , Male , Humans , Axoneme/genetics , Mutation , Semen , Sperm Tail , Infertility, Male/genetics , Spermatozoa , Flagella , Microtubule-Associated Proteins/genetics , Dyneins/genetics
3.
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
4.
Clin Genet ; 104(6): 694-699, 2023 12.
Article in English | MEDLINE | ID: mdl-37804054

ABSTRACT

Asthenozoospermia (AZS) is the primary cause of infertility in males. The radial spoke (RS) is an axonemal structure, connecting the peripheral doublet microtubules with the central pair of microtubules. This T-shaped multiprotein complex functions as a mechanochemical sensor to promote sperm motility. LRRC23 is a novel subunit of the RS complex that is necessary for flagellar assembly and movement in mice. However, the importance of LRRC23 in modulating RS formation in humans remains unclear. Here, we identified a homozygous nonsense mutation in LRRC23 (c.376C>T:p. Arg126X) in an infertile AZS patient whose parents were consanguineous. We verified the adversity of this novel mutation because of its ability to disrupt LRRC23 synthesis and impair RSs integrity. Furthermore, we demonstrated an interaction between LRRC23 and RSPH3 in vitro, indicating that LCCR23 is associated with RS in humans. Meanwhile, the LRRC23-mutant patient had a good prognosis following intracytoplasmic sperm injection. This study provides strong preliminary evidence that LRRC23 defects are potential causative factors of AZS in humans, which expands our knowledge for improved genetic counseling and better reproductive recommendations for patients with AZS.


Subject(s)
Asthenozoospermia , Infertility, Male , Male , Humans , Animals , Mice , Asthenozoospermia/genetics , Sperm Motility , Semen , Infertility, Male/genetics , Axoneme/genetics , Spermatozoa
5.
JCI Insight ; 8(10)2023 05 22.
Article in English | MEDLINE | ID: mdl-37071472

ABSTRACT

Leber congenital amaurosis (LCA) is a group of inherited retinal diseases characterized by early-onset, rapid loss of photoreceptor cells. Despite the discovery of a growing number of genes associated with this disease, the molecular mechanisms of photoreceptor cell degeneration of most LCA subtypes remain poorly understood. Here, using retina-specific affinity proteomics combined with ultrastructure expansion microscopy, we reveal the structural and molecular defects underlying LCA type 5 (LCA5) with nanoscale resolution. We show that LCA5-encoded lebercilin, together with retinitis pigmentosa 1 protein (RP1) and the intraflagellar transport (IFT) proteins IFT81 and IFT88, localized at the bulge region of the photoreceptor outer segment (OS), a region crucial for OS membrane disc formation. Next, we demonstrate that mutant mice deficient in lebercilin exhibited early axonemal defects at the bulge region and the distal OS, accompanied by reduced levels of RP1 and IFT proteins, affecting membrane disc formation and presumably leading to photoreceptor death. Finally, adeno-associated virus-based LCA5 gene augmentation partially restored the bulge region, preserved OS axoneme structure and membrane disc formation, and resulted in photoreceptor cell survival. Our approach thus provides a next level of assessment of retinal (gene) therapy efficacy at the molecular level.


Subject(s)
Leber Congenital Amaurosis , Animals , Mice , Leber Congenital Amaurosis/genetics , Leber Congenital Amaurosis/therapy , Leber Congenital Amaurosis/metabolism , Axoneme/genetics , Axoneme/metabolism , Eye Proteins/genetics , Eye Proteins/metabolism , Photoreceptor Cells/metabolism
6.
Genet Med ; 25(5): 100798, 2023 05.
Article in English | MEDLINE | ID: mdl-36727596

ABSTRACT

PURPOSE: Primary ciliary dyskinesia (PCD) is a heterogeneous disorder that includes respiratory symptoms, laterality defects, and infertility caused by dysfunction of motile cilia. Most PCD-causing variants result in abnormal outer dynein arms (ODAs), which provide the generative force for respiratory ciliary beating and proper mucociliary clearance. METHODS: In addition to studies in mouse and planaria, clinical exome sequencing and functional analyses in human were performed. RESULTS: In this study, we identified homozygous pathogenic variants in CLXN (EFCAB1/ODAD5) in 3 individuals with laterality defects and respiratory symptoms. Consistently, we found that Clxn is expressed in mice left-right organizer. Transmission electron microscopy depicted ODA defects in distal ciliary axonemes. Immunofluorescence microscopy revealed absence of CLXN from the ciliary axonemes, absence of the ODA components DNAH5, DNAI1, and DNAI2 from the distal axonemes, and mislocalization or absence of DNAH9. In addition, CLXN was undetectable in ciliary axonemes of individuals with defects in the ODA-docking machinery: ODAD1, ODAD2, ODAD3, and ODAD4. Furthermore, SMED-EFCAB1-deficient planaria displayed ciliary dysmotility. CONCLUSION: Our results revealed that pathogenic variants in CLXN cause PCD with defects in the assembly of distal ODAs in the respiratory cilia. CLXN should be referred to as ODA-docking complex-associated protein ODAD5.


Subject(s)
Cilia , Kartagener Syndrome , Humans , Animals , Mice , Cilia/genetics , Kartagener Syndrome/genetics , Kartagener Syndrome/metabolism , Kartagener Syndrome/pathology , Calcium-Binding Proteins , Axoneme/genetics , Axoneme/metabolism , Axoneme/pathology , Mutation , Axonemal Dyneins/genetics , Axonemal Dyneins/metabolism
7.
Genet Med ; 24(11): 2249-2261, 2022 11.
Article in English | MEDLINE | ID: mdl-36074124

ABSTRACT

PURPOSE: The clinical spectrum of motile ciliopathies includes laterality defects, hydrocephalus, and infertility as well as primary ciliary dyskinesia when impaired mucociliary clearance results in otosinopulmonary disease. Importantly, approximately 30% of patients with primary ciliary dyskinesia lack a genetic diagnosis. METHODS: Clinical, genomic, biochemical, and functional studies were performed alongside in vivo modeling of DAW1 variants. RESULTS: In this study, we identified biallelic DAW1 variants associated with laterality defects and respiratory symptoms compatible with motile cilia dysfunction. In early mouse embryos, we showed that Daw1 expression is limited to distal, motile ciliated cells of the node, consistent with a role in left-right patterning. daw1 mutant zebrafish exhibited reduced cilia motility and left-right patterning defects, including cardiac looping abnormalities. Importantly, these defects were rescued by wild-type, but not mutant daw1, gene expression. In addition, pathogenic DAW1 missense variants displayed reduced protein stability, whereas DAW1 loss-of-function was associated with distal type 2 outer dynein arm assembly defects involving axonemal respiratory cilia proteins, explaining the reduced cilia-induced fluid flow in particle tracking velocimetry experiments. CONCLUSION: Our data define biallelic DAW1 variants as a cause of human motile ciliopathy and determine that the disease mechanism involves motile cilia dysfunction, explaining the ciliary beating defects observed in affected individuals.


Subject(s)
Ciliary Motility Disorders , Ciliopathies , Cytoskeletal Proteins , Animals , Humans , Mice , Axoneme/genetics , Cilia/metabolism , Ciliary Motility Disorders/genetics , Ciliary Motility Disorders/metabolism , Ciliary Motility Disorders/pathology , Ciliopathies/genetics , Ciliopathies/metabolism , Ciliopathies/pathology , Cytoskeletal Proteins/genetics , Mutation , Proteins/genetics , Zebrafish/genetics
8.
PLoS Genet ; 18(8): e1010374, 2022 08.
Article in English | MEDLINE | ID: mdl-36026524

ABSTRACT

Assembly of dynein arms requires cytoplasmic processes which are mediated by dynein preassembly factors (DNAAFs). CFAP298, which is conserved in organisms with motile cilia, is required for assembly of dynein arms but with obscure mechanisms. Here, we show that FBB18, a Chlamydomonas homologue of CFAP298, localizes to the cytoplasm and functions in folding/stabilization of almost all axonemal dyneins at the early steps of dynein preassembly. Mutation of FBB18 causes no or short cilia accompanied with partial loss of both outer and inner dynein arms. Comparative proteomics using 15N labeling suggests partial degradation of almost all axonemal dynein heavy chains (DHCs). A mutant mimicking a patient variant induces particular loss of DHCα. FBB18 associates with 9 DNAAFs and 14 out of 15 dynein HCs but not with IC1/IC2. FBB18 interacts with RuvBL1/2, components of the HSP90 co-chaperone R2TP complex but not the holo-R2TP complex. Further analysis suggests simultaneous formation of multiple DNAAF complexes involves dynein folding/stability and thus provides new insights into axonemal dynein preassembly.


Subject(s)
Axonemal Dyneins , Chlamydomonas , Axonemal Dyneins/genetics , Axonemal Dyneins/metabolism , Axoneme/genetics , Axoneme/metabolism , Chlamydomonas/metabolism , Cilia/genetics , Cilia/metabolism , Dyneins/metabolism , Flagella/genetics , Humans , Molecular Chaperones/genetics , Molecular Chaperones/metabolism
9.
J Assist Reprod Genet ; 39(3): 757-764, 2022 Mar.
Article in English | MEDLINE | ID: mdl-35166991

ABSTRACT

PURPOSE: To evaluate the unknown genetic causes of teratozoospermia, and determine the pathogenicity of candidate variants. METHODS: A primary infertile patient and his family members were recruited in the West China Second University Hospital of Sichuan University. Whole-exome sequencing was performed to identify causative genes in a man with teratozoospermia. Immunofluorescence staining and western blotting were applied to assess the pathogenicity of the identified variant. Intracytoplasmic sperm injection (ICSI) was used to assist fertilization for the patient with teratozoospermia. RESULTS: We performed whole-exome sequencing (WES) and detected a novel homozygous frameshift mutation of c.335_336del [p.E112Vfs*3] in DNAJB13 on a primary infertile male patient. Intriguingly, we identified abnormal sperm morphology in this patient, with recurrent respiratory infections and chronic cough. Furthermore, we confirmed that this mutation resulted in negative effects on DNAJB13 expression in the spermatozoa of the affected individual, causing ultrastructural defects in his sperm. Remarkably, our staining revealed that DNAJB13 was expressed in the cytoplasm of primary germ cells and in the flagella of spermatids during spermiogenesis in humans and mice. Finally, we are the first group to report a favorable prognosis using ICSI for a patient carrying this DNAJB13 mutation. CONCLUSION: Our study revealed a novel homozygous frameshift mutation of c.335_336del [p.E112Vfs*3] in DNAJB13 involved in teratozoospermia phenotype. Our study greatly expands the spectrum of limited DNAJB13 mutations, and is expected to provide a better understanding of genetic counseling diagnoses and subsequent treatment of male infertility.


Subject(s)
Infertility, Male , Teratozoospermia , Animals , Apoptosis Regulatory Proteins/genetics , Axoneme/genetics , Humans , Infertility, Male/therapy , Male , Mice , Molecular Chaperones/genetics , Molecular Chaperones/metabolism , Mutation , Spermatozoa/metabolism , Teratozoospermia/genetics , Teratozoospermia/metabolism
10.
Am J Hum Genet ; 109(1): 157-171, 2022 01 06.
Article in English | MEDLINE | ID: mdl-34932939

ABSTRACT

Asthenoteratozoospermia, defined as reduced sperm motility and abnormal sperm morphology, is a disorder with considerable genetic heterogeneity. Although previous studies have identified several asthenoteratozoospermia-associated genes, the etiology remains unknown for the majority of affected men. Here, we performed whole-exome sequencing on 497 unrelated men with asthenoteratozoospermia and identified DNHD1 bi-allelic variants from eight families (1.6%). All detected variants were predicted to be deleterious via multiple bioinformatics tools. Hematoxylin and eosin (H&E) staining revealed that individuals with bi-allelic DNHD1 variants presented striking abnormalities of the flagella; transmission electron microscopy (TEM) further showed flagellar axoneme defects, including central pair microtubule (CP) deficiency and mitochondrial sheath (MS) malformations. In sperm from fertile men, DNHD1 was localized to the entire flagella of the normal sperm; however, it was nearly absent in the flagella of men with bi-allelic DNHD1 variants. Moreover, abundance of the CP markers SPAG6 and SPEF2 was significantly reduced in spermatozoa from men harboring bi-allelic DNHD1 variants. In addition, Dnhd1 knockout male mice (Dnhd1‒/‒) exhibited asthenoteratozoospermia and infertility, a finding consistent with the sperm phenotypes present in human subjects with DNHD1 variants. The female partners of four out of seven men who underwent intracytoplasmic sperm injection therapy subsequently became pregnant. In conclusion, our study showed that bi-allelic DNHD1 variants cause asthenoteratozoospermia, a finding that provides crucial insights into the biological underpinnings of this disorder and should assist with counseling of affected individuals.


Subject(s)
Alleles , Asthenozoospermia/genetics , Axoneme/genetics , Dyneins/genetics , Flagella/genetics , Genetic Predisposition to Disease , Mutation , Animals , Asthenozoospermia/diagnosis , Axoneme/pathology , Computational Biology/methods , DNA Mutational Analysis , Disease Models, Animal , Flagella/pathology , Gene Frequency , Genetic Association Studies , Humans , Infertility, Male/genetics , Male , Mice , Mice, Knockout , Mitochondria/genetics , Mitochondria/metabolism , Mitochondria/ultrastructure , Pedigree , Phenotype , Semen Analysis , Sperm Tail/pathology , Sperm Tail/ultrastructure , Exome Sequencing
11.
Front Endocrinol (Lausanne) ; 13: 1058651, 2022.
Article in English | MEDLINE | ID: mdl-36726469

ABSTRACT

Asthenozoospermia is the most common cause of male infertility. Dynein protein arms play a crucial role in the motility of sperm flagella and defects in these proteins generally impair the axoneme structure and affect sperm flagella function. In this study, we performed whole exome sequencing for a cohort of 126 infertile patients with asthenozoospermia and identified homozygous DNALI1 mutation in one patient from a consanguineous family. This identified homozygous mutation was verified by Sanger sequencing. In silico analysis showed that this homozygous mutation is very rare, highly pathogenic, and very conserved. Sperm routine analysis confirmed that the motility of the spermatozoa from the patient significantly decreased. Further sperm morphology analysis showed that the spermatozoa from the patient exhibited multiple flagella morphological defects and a specific loss in the inner dynein arms. Fortunately, the patient was able to have his child via intracytoplasmic sperm injection treatment. Our study is the first to demonstrate that homozygous DNALI1 mutation may impair the integration of axoneme structure, affect sperm motility and cause asthenoteratozoospermia in human beings.


Subject(s)
Asthenozoospermia , Dyneins , Humans , Male , Asthenozoospermia/genetics , Axoneme/genetics , Axoneme/pathology , Dyneins/genetics , Mutation , Semen , Sperm Motility/genetics
12.
Development ; 148(23)2021 12 01.
Article in English | MEDLINE | ID: mdl-34792097

ABSTRACT

Defects in the structure or motility of cilia and flagella may lead to severe diseases such as primary ciliary dyskinesia (PCD), a multisystemic disorder with heterogeneous manifestations affecting primarily respiratory and reproductive functions. We report that CFAP61 is a conserved component of the calmodulin- and radial spoke-associated complex (CSC) of cilia. We find that a CFAP61 splice variant, c.143+5G>A, causes exon skipping/intron retention in human, inducing a multiple morphological abnormalities of the flagella (MMAF) phenotype. We generated Cfap61 knockout mice that recapitulate the infertility phenotype of the human CFAP61 mutation, but without other symptoms usually observed in PCD. We find that CFAP61 interacts with the CSC, radial spoke stalk and head. During early stages of Cfap61-/- spermatid development, the assembly of radial spoke components is impaired. As spermiogenesis progresses, the axoneme in Cfap61-/- cells becomes unstable and scatters, and the distribution of intraflagellar transport proteins is disrupted. This study reveals an organ-specific mechanism of axoneme stabilization that is related to male infertility.


Subject(s)
Infertility, Male , Membrane Proteins , Point Mutation , Sperm Tail/metabolism , Spermatids/metabolism , Spermatogenesis/genetics , Animals , Axoneme/genetics , Axoneme/metabolism , Humans , Infertility, Male/genetics , Infertility, Male/metabolism , Male , Membrane Proteins/genetics , Membrane Proteins/metabolism , Mice , Mice, Knockout , RNA Splicing
13.
Biol Open ; 10(10)2021 10 15.
Article in English | MEDLINE | ID: mdl-34553759

ABSTRACT

Ciliary motility is powered by a suite of highly conserved axoneme-specific dynein motor complexes. In humans, the impairment of these motors through mutation results in the disease primary ciliary dyskinesia (PCD). Studies in Drosophila have helped to validate several PCD genes whose products are required for cytoplasmic pre-assembly of axonemal dynein motors. Here we report the characterisation of the Drosophila orthologue of the less-known assembly factor DNAAF3. This gene, CG17669 (Dnaaf3), is expressed exclusively in developing mechanosensory chordotonal (Ch) neurons and the cells that generate spermatozoa, The only two Drosophila cell types bearing cilia/flagella containing dynein motors. Mutation of Dnaaf3 results in larvae that are deaf and adults that are uncoordinated, indicating defective Ch neuron function. The mutant Ch neuron cilia of the antenna specifically lack dynein arms, while Ca imaging in larvae reveals a complete loss of Ch neuron response to vibration stimulus, confirming that mechanotransduction relies on ciliary dynein motors. Mutant males are infertile with immotile sperm whose flagella lack dynein arms and show axoneme disruption. Analysis of proteomic changes suggest a reduction in heavy chains of all axonemal dynein forms, consistent with an impairment of dynein pre-assembly.


Subject(s)
Axonemal Dyneins/genetics , Ciliary Motility Disorders/genetics , Drosophila Proteins/genetics , Drosophila/genetics , Microtubule-Associated Proteins/genetics , Animals , Axoneme/genetics , Cilia/genetics , Female , Flagella/genetics , Male , Mechanotransduction, Cellular/genetics , Mutation
14.
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
15.
PLoS Genet ; 17(2): e1009306, 2021 02.
Article in English | MEDLINE | ID: mdl-33635866

ABSTRACT

Axonemal protein complexes, such as outer (ODA) and inner (IDA) dynein arms, are responsible for the generation and regulation of flagellar and ciliary beating. Studies in various ciliated model organisms have shown that axonemal dynein arms are first assembled in the cell cytoplasm and then delivered into axonemes during ciliogenesis. In humans, mutations in genes encoding for factors involved in this process cause structural and functional defects of motile cilia in various organs such as the airways and result in the hereditary disorder primary ciliary dyskinesia (PCD). Despite extensive knowledge about the cytoplasmic assembly of axonemal dynein arms in respiratory cilia, this process is still poorly understood in sperm flagella. To better define its clinical relevance on sperm structure and function, and thus male fertility, further investigations are required. Here we report the fertility status in different axonemal dynein preassembly mutant males (DNAAF2/ KTU, DNAAF4/ DYX1C1, DNAAF6/ PIH1D3, DNAAF7/ZMYND10, CFAP300/C11orf70 and LRRC6). Besides andrological examinations, we functionally and structurally analyzed sperm flagella of affected individuals by high-speed video- and transmission electron microscopy as well as systematically compared the composition of dynein arms in sperm flagella and respiratory cilia by immunofluorescence microscopy. Furthermore, we analyzed the flagellar length in dynein preassembly mutant sperm. We found that the process of axonemal dynein preassembly is also critical in sperm, by identifying defects of ODAs and IDAs in dysmotile sperm of these individuals. Interestingly, these mutant sperm consistently show a complete loss of ODAs, while some respiratory cilia from the same individual can retain ODAs in the proximal ciliary compartment. This agrees with reports of solely one distinct ODA type in sperm, compared to two different ODA types in proximal and distal respiratory ciliary axonemes. Consistent with observations in model organisms, we also determined a significant reduction of sperm flagellar length in these individuals. These findings are relevant to subsequent studies on the function and composition of sperm flagella in PCD patients and non-syndromic infertile males. Our study contributes to a better understanding of the fertility status in PCD-affected males and should help guide genetic and andrological counselling for affected males and their families.


Subject(s)
Axonemal Dyneins/metabolism , Axoneme/metabolism , Cilia/metabolism , Flagella/metabolism , Infertility, Male/metabolism , Spermatozoa/metabolism , Axonemal Dyneins/genetics , Axonemal Dyneins/ultrastructure , Axoneme/genetics , Axoneme/ultrastructure , Cilia/genetics , Cohort Studies , Cytoplasm/metabolism , Cytoskeletal Proteins/genetics , Cytoskeletal Proteins/metabolism , Flagella/genetics , Flagella/ultrastructure , Humans , Infertility, Male/genetics , Intracellular Signaling Peptides and Proteins/genetics , Intracellular Signaling Peptides and Proteins/metabolism , Male , Microscopy, Electron, Transmission , Mutation , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , Spermatozoa/ultrastructure
16.
Proc Natl Acad Sci U S A ; 118(6)2021 02 09.
Article in English | MEDLINE | ID: mdl-33536340

ABSTRACT

The mammalian sperm midpiece has a unique double-helical structure called the mitochondrial sheath that wraps tightly around the axoneme. Despite the remarkable organization of the mitochondrial sheath, the molecular mechanisms involved in mitochondrial sheath formation are unclear. In the process of screening testis-enriched genes for functions in mice, we identified armadillo repeat-containing 12 (ARMC12) as an essential protein for mitochondrial sheath formation. Here, we engineered Armc12-null mice, FLAG-tagged Armc12 knock-in mice, and TBC1 domain family member 21 (Tbc1d21)-null mice to define the functions of ARMC12 in mitochondrial sheath formation in vivo. We discovered that absence of ARMC12 causes abnormal mitochondrial coiling along the flagellum, resulting in reduced sperm motility and male sterility. During spermiogenesis, sperm mitochondria in Armc12-null mice cannot elongate properly at the mitochondrial interlocking step which disrupts abnormal mitochondrial coiling. ARMC12 is a mitochondrial peripheral membrane protein and functions as an adherence factor between mitochondria in cultured cells. ARMC12 in testicular germ cells interacts with mitochondrial proteins MIC60, VDAC2, and VDAC3 as well as TBC1D21 and GK2, which are required for mitochondrial sheath formation. We also observed that TBC1D21 is essential for the interaction between ARMC12 and VDAC proteins in vivo. These results indicate that ARMC12 uses integral mitochondrial membrane proteins VDAC2 and VDAC3 as scaffolds to link mitochondria and works cooperatively with TBC1D21. Thus, our studies have revealed that ARMC12 regulates spatiotemporal mitochondrial dynamics to form the mitochondrial sheath through cooperative interactions with several proteins on the sperm mitochondrial surface.


Subject(s)
Armadillo Domain Proteins/genetics , GTPase-Activating Proteins/genetics , Infertility, Male/genetics , Microfilament Proteins/genetics , Mitochondrial Dynamics/genetics , Animals , Axoneme/genetics , Humans , Infertility, Male/pathology , Male , Mice , Mice, Knockout , Mitochondrial Membrane Transport Proteins/genetics , Sperm Motility/genetics , Sperm Tail/pathology , Sperm Tail/ultrastructure , Spermatids/metabolism , Spermatogenesis/genetics , Spermatozoa/pathology , Spermatozoa/ultrastructure , Testis/metabolism , Voltage-Dependent Anion Channel 2/genetics , Voltage-Dependent Anion Channels/genetics
17.
Mol Hum Reprod ; 27(3)2021 02 27.
Article in English | MEDLINE | ID: mdl-33561200

ABSTRACT

Motile cilia line the efferent ducts of the mammalian male reproductive tract. Several recent mouse studies have demonstrated that a reduced generation of multiple motile cilia in efferent ducts is associated with obstructive oligozoospermia and fertility issues. However, the sole impact of efferent duct cilia dysmotility on male infertility has not been studied so far either in mice or human. Using video microscopy, histological- and ultrastructural analyses, we examined male reproductive tracts of mice deficient for the axonemal motor protein DNAH5: this defect exclusively disrupts the outer dynein arm (ODA) composition of motile cilia but not the ODA composition and motility of sperm flagella. These mice have immotile efferent duct cilia that lack ODAs, which are essential for ciliary beat generation. Furthermore, they show accumulation of sperm in the efferent duct. Notably, the ultrastructure and motility of sperm from these males are unaffected. Likewise, human individuals with loss-of-function DNAH5 mutations present with reduced sperm count in the ejaculate (oligozoospermia) and dilatations of the epididymal head but normal sperm motility, similar to DNAH5 deficient mice. The findings of this translational study demonstrate, in both mice and men, that efferent duct ciliary motility is important for male reproductive fitness and uncovers a novel pathomechanism distinct from primary defects of sperm motility (asthenozoospermia). If future work can identify environmental factors or defects in genes other than DNAH5 that cause efferent duct cilia dysmotility, this will help unravel other causes of oligozoospermia and may influence future practices in genetic and fertility counseling as well as ART.


Subject(s)
Axonemal Dyneins/metabolism , Axoneme/metabolism , Cilia/metabolism , Genitalia, Male/metabolism , Sperm Motility , Spermatozoa/pathology , Animals , Axonemal Dyneins/genetics , Axoneme/genetics , Axoneme/ultrastructure , Cilia/genetics , Cilia/ultrastructure , Ciliary Motility Disorders/genetics , Ciliary Motility Disorders/metabolism , Ciliary Motility Disorders/pathology , Genetic Predisposition to Disease , Genitalia, Male/ultrastructure , Humans , Male , Mice, 129 Strain , Mice, Inbred C57BL , Mice, Transgenic , Movement , Mutation , Oligospermia/genetics , Oligospermia/metabolism , Oligospermia/pathology , Phenotype , Spermatozoa/ultrastructure
18.
Hum Genet ; 140(1): 21-42, 2021 Jan.
Article in English | MEDLINE | ID: mdl-31950240

ABSTRACT

Spermatozoa contain highly specialized structural features reflecting unique functions required for fertilization. Among them, the flagellum is a sperm-specific organelle required to generate the motility, which is essential to reach the egg. The flagellum integrity is, therefore, critical for normal sperm function and flagellum defects consistently lead to male infertility due to reduced or absent sperm motility defined as asthenozoospermia. Multiple morphological abnormalities of the flagella (MMAF), also called short tails, is among the most severe forms of sperm flagellum defects responsible for male infertility and is characterized by the presence in the ejaculate of spermatozoa being short, coiled, absent and of irregular caliber. Recent studies have demonstrated that MMAF is genetically heterogeneous which is consistent with the large number of proteins (over one thousand) localized in the human sperm flagella. In the past 5 years, genomic investigation of the MMAF phenotype allowed the identification of 18 genes whose mutations induce MMAF and infertility. Here we will review information about those genes including their expression pattern, the features of the encoded proteins together with their localization within the different flagellar protein complexes (axonemal or peri-axonemal) and their potential functions. We will categorize the identified MMAF genes following the protein complexes, functions or biological processes they may be associated with, based on the current knowledge in the field.


Subject(s)
Sperm Tail/metabolism , Spermatozoa/abnormalities , Animals , Axoneme/genetics , Flagella/genetics , Humans , Infertility, Male/genetics , Male , Mutation/genetics , Phenotype , Sperm Motility/genetics
19.
Clin Genet ; 99(1): 176-186, 2021 01.
Article in English | MEDLINE | ID: mdl-33070343

ABSTRACT

Multiple morphological abnormalities of the flagella (MMAF) is a genetically heterogeneous disorder leading to male infertility. Recent studies have revealed that DNAH17 variants are associated with MMAF, yet there is no functional evidence in support of their pathnogenicity. Here, we recruited two consanguineous families of Pakistani and Chinese origins, respectively, diagnosed with MMAF. Whole-exome sequencing identified novel homozygous DNAH17 variants, which led to loss of DNAH17 proteins, in the patients. Transmission electron microscope analyses revealed completely disorganized axonemal structure as the predominant anomaly and increased frequencies of missings of microtubule doublet(s) 4-7 in sperm flagella of patients. Similar to those found in patients, Dnah17-/- mice also displayed MMAF phenotype along with completely disorganized axonemal structures. Clusters of disorganized microtubules and outer dense fibers were observed in developing spermatids, indicating impaired sperm flagellar assembly. Besides, we also noticed many elongating spermatids with a deformed nuclear shape and abnormal step 16 spermatids that failed to spermiate, which subsequently underwent apoptosis in Dnah17-null mice. These findings present direct evidence establishing that DNAH17 is a MMAF-related gene in humans and mice, extend the clinical interpretations of DNAH17 variants, and highlight an essential and complex role of DNAH17 in spermatogenesis.


Subject(s)
Abnormalities, Multiple/genetics , Axonemal Dyneins/genetics , Infertility, Male/genetics , Spermatogenesis/genetics , Abnormalities, Multiple/metabolism , Abnormalities, Multiple/pathology , Alleles , Animals , Asthenozoospermia/genetics , Asthenozoospermia/pathology , Axonemal Dyneins/metabolism , Axoneme/genetics , Axoneme/pathology , Flagella/genetics , Flagella/pathology , Homozygote , Humans , Infertility, Male/pathology , Loss of Function Mutation/genetics , Male , Mice , Sperm Tail/metabolism , Sperm Tail/pathology , Spermatozoa/metabolism , Spermatozoa/pathology , Testis/growth & development , Testis/pathology , Exome Sequencing
20.
PLoS Genet ; 16(12): e1009232, 2020 12.
Article in English | MEDLINE | ID: mdl-33347437

ABSTRACT

Motile cilia can beat with distinct patterns, but how motility variations are regulated remain obscure. Here, we have studied the role of the coiled-coil protein CFAP53 in the motility of different cilia-types in the mouse. While node (9+0) cilia of Cfap53 mutants were immotile, tracheal and ependymal (9+2) cilia retained motility, albeit with an altered beat pattern. In node cilia, CFAP53 mainly localized at the base (centriolar satellites), whereas it was also present along the entire axoneme in tracheal cilia. CFAP53 associated tightly with microtubules and interacted with axonemal dyneins and TTC25, a dynein docking complex component. TTC25 and outer dynein arms (ODAs) were lost from node cilia, but were largely maintained in tracheal cilia of Cfap53-/- mice. Thus, CFAP53 at the base of node cilia facilitates axonemal transport of TTC25 and dyneins, while axonemal CFAP53 in 9+2 cilia stabilizes dynein binding to microtubules. Our study establishes how differential localization and function of CFAP53 contributes to the unique motion patterns of two important mammalian cilia-types.


Subject(s)
Axonemal Dyneins/metabolism , Axoneme/metabolism , Biological Transport, Active/genetics , Cell Movement/genetics , Cilia/metabolism , Embryo, Mammalian/metabolism , Microtubules/metabolism , Animals , Axonemal Dyneins/genetics , Axoneme/genetics , Carrier Proteins/genetics , Carrier Proteins/metabolism , Cilia/genetics , Embryo, Mammalian/physiology , Embryo, Mammalian/ultrastructure , Ependyma/embryology , Ependyma/metabolism , Ependyma/physiology , Fluorescent Antibody Technique , Genotype , Immunoprecipitation , Mice , Mice, Knockout , Microscopy, Electron, Transmission , Microtubules/genetics , Mutation , Phenotype , Trachea/embryology , Trachea/metabolism , Trachea/physiology , Trachea/ultrastructure
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