1.Novel bi-allelic variants in DNAH10 lead to multiple morphological abnormalities of sperm flagella and male infertility.
Muhammad SHOAIB ; Muhammad ZUBAIR ; Wasim SHAH ; Meftah UDDIN ; Ansar HUSSAIN ; Ghulam MUSTAFA ; Fazal RAHIM ; Huan ZHANG ; Imtiaz ALI ; Tanveer ABBAS ; Yousaf RAZA ; Sui-Xing FAN ; Qing-Hua SHI
Asian Journal of Andrology 2025;27(4):516-523
Multiple morphological abnormalities of sperm flagella (MMAF) is a severe form of asthenoteratozoospermia, characterized by morphological abnormalities and reduced motility of sperm, causing male infertility. Although approximately 60% of MMAF cases can be explained genetically, the etiology of the remaining cases is unclear. Here, we identified two novel compound heterozygous variants in the gene, dynein axonemal heavy chain 10 ( DNAH10 ), in three patients from two unrelated Pakistani families using whole-exome sequencing (WES), including one compound heterozygous mutation ( DNAH10 : c.9409C>A [p.P3137T]; c.12946G>C [p.D4316H]) in family 1 and another compound heterozygous mutation ( DNAH10 : c.8849G>A [p.G2950D]; c.11509C>T [p.R3687W]) in family 2. All the identified variants are absent or rare in public genome databases and are predicted to have deleterious effects according to multiple bioinformatic tools. Sanger sequencing revealed that these variants follow an autosomal recessive mode of inheritance. Hematoxylin and eosin (H&E) staining revealed MMAF, including sperm head abnormalities, in the patients. In addition, immunofluorescence staining revealed loss of DNAH10 protein signals along sperm flagella. These findings broaden the spectrum of DNAH10 variants and expand understanding of the genetic basis of male infertility associated with the MMAF phenotype.
Adult
;
Humans
;
Male
;
Alleles
;
Asthenozoospermia/pathology*
;
Axonemal Dyneins/genetics*
;
Dyneins/genetics*
;
Exome Sequencing
;
Infertility, Male/pathology*
;
Mutation
;
Pakistan
;
Pedigree
;
Sperm Tail/pathology*
2.A novel frameshift variant in AXDND1 may cause multiple morphological abnormalities of the sperm flagella in a consanguineous Pakistani family.
Imtiaz ALI ; Meng-Lei YANG ; Fazal RAHIM ; Haider ALI ; Aurang ZEB ; Nisar AHMAD ; Yousaf RAZA ; Wang YUE ; Muhammad SHOAIB ; Tanveer ABBAS ; Wasim SHAH ; Hui MA ; Huan ZHANG ; Hao YIN ; Qing-Hua SHI
Asian Journal of Andrology 2025;27(6):691-696
The syndrome of multiple morphological abnormalities of the sperm flagella (MMAF) is one of the most serious kinds of sperm defects, leading to asthenoteratozoospermia and male infertility. In this study, we use whole-exome sequencing to identify genetic factors that account for male infertility in a patient born from a consanguineous Pakistani couple. A homozygous frameshift mutation (c.1399_1402del; p.Gln468ArgfsTer2) in axonemal dynein light chain domain containing 1 ( AXDND1 ) was identified in the patient. Sanger sequencing data showed that the mutation was cosegregated recessively with male infertility in this family. Papanicolaou staining and scanning electron microscopy analysis of the sperm revealed severely abnormal flagellar morphology in the patient. Immunofluorescence and western blot showed undetectable AXDND1 expression in the sperm of the patient. Transmission electron microscopy analysis showed disorganized sperm axonemal structure in the patient, particularly missing the central pair of microtubules. Immunofluorescence staining showed the absence of sperm-associated antigen 6 (SPAG6) and dynein axonemal light intermediate chain 1 (DNALI1) signals in the sperm flagella of the patient. These findings indicate that AXDND1 is essential for the organization of flagellar axoneme and provide direct evidence that AXDND1 is a MMAF gene in humans, thus expanding the phenotypic spectrum of AXDND1 frameshift mutations.
Humans
;
Male
;
Sperm Tail/ultrastructure*
;
Frameshift Mutation
;
Infertility, Male/pathology*
;
Pakistan
;
Pedigree
;
Consanguinity
;
Axonemal Dyneins/genetics*
;
Adult
;
Spermatozoa
;
Exome Sequencing
3.Analysis of DNAH11 gene variants and clinical characteristics of a Chinese pedigree affected with Primary ciliary dyskinesia.
Xiaodong WANG ; Ying XU ; Lan JIANG ; Quyang YANG ; Liyang LIU ; Meng LI ; Qingchuan DUAN
Chinese Journal of Medical Genetics 2025;42(11):1347-1353
OBJECTIVE:
To explore the genetic etiology of a Chinese pedigree affected with Primary ciliary dyskinesia (PCD).
METHODS:
A child who presented at the ENT Department of Zhengzhou University Children's Hospital in March 2024 due to secretory otitis media, chronic sinusitis, adenoid hypertrophy, dextrocardia, and bronchiectasis was selected as study subject. Relevant clinical data were collected. Peripheral blood samples from the child and her family members were collected. Following DNA extraction, whole exome sequencing was carried out. Candidate variants were validated by Sanger sequencing, and the correlation between the variants and phenotype was analyzed. This study was approved by the Medical Ethics Committee of the Hospital (Ethics No.: 2024-K-135).
RESULTS:
The child and her elder siblings exhibited similar clinical manifestations including recurrent cough, secretory otitis media, chronic sinusitis, tracheobronchitis, and pneumonia. The child also presented with bronchiectasis and visceral situs inversus. Genetic testing results indicated that the child and her elder siblings had all harbored compound heterozygous variants of the DNAH11 gene, namely c.3000 1G>A and c.5775C>G (p.Tyr1925*), which were respectively inherited from their phenotypically normal parents. Both variants can affect mRNA splicing and protein translation integrity. Based on the guidelines from the American College of Medical Genetics and Genomics, both variants were classified as likely pathogenic. It was predicted that they may jointly lead to a functional defect in axonemal dynein, resulting in the phenotype of PCD, conforming to an autosomal recessive inheritance.
CONCLUSION
The compound heterozygous variants c.3000 1G>A and c.5775C>G (p.Tyr1925*) of the DNAH11 gene probably underlay the pathogenesis of PCD in this pedigree. The same variant in different individuals may lead to different clinical phenotypes, which has reflected significant heterogeneity in genetic background and clinical phenotype. Above findings have enriched the mutational spectrum of PCD gene and have important implications for the accurate diagnosis, treatment, prognosis, and genetic counseling.
Humans
;
Pedigree
;
Female
;
Axonemal Dyneins/genetics*
;
Male
;
Child
;
Asian People/genetics*
;
Kartagener Syndrome/genetics*
;
Mutation
;
Phenotype
;
China
;
Adult
;
East Asian People
4.Clinical characteristics and prenatal diagnosis of a fetus with Short-rib thoracic dysplasia syndrome due to variants of DYNC2H1 gene.
Chongyang ZHAO ; Guoping REN ; Jingjing BI ; Cuicui JING ; Xueting ZHOU ; Cimei LI
Chinese Journal of Medical Genetics 2025;42(11):1369-1374
OBJECTIVE:
To explore the prenatal features and genetic etiology of a fetus with Short-rib cage dysplasia (SRTD) due to variants of DYNC2H1 gene.
METHODS:
A pregnant women presented at Xinxiang Central Hospital in June 2020 for abnormal prenatal ultrasound findings was selected as the study subject. With informed consent obtained, amniotic fluid sample was extracted from the woman, and clinical data of the fetus were collected. Whole exome sequencing (WES) was carried out, and candidate variants were verified by Sanger sequencing. This study was approved by the Medical Ethics Committee of Xinxiang Central Hospital [Ethics No.: 2025-214-01(K)].
RESULTS:
At 25+6 weeks gestation, genetic testing revealed that the fetus has harbored compound heterozygous variants of the DYNC2H1 gene, namely c.10585C>T (p.Arg3529Ter) and c.8954T>G (p.Val2985Gly), which were derived from its father and mother, respectively. Based on the guidelines from the American College of Medical Genetics and Genomics (ACMG), the c.10585C>T (p.Arg3529Ter) and c.8954T>G (p.Val2985Gly) variants were classified as pathogenic (PVS1+PM2_supporting+PM3+PP5) and likely pathogenic (PM1+PM2_supporting+PM3+PP3), respectively. Bioinformatics analysis suggested that both variants may affect the 3D structure of the DYNC2H1 protein.
CONCLUSION
The compound heterozygous variants of c.10585C>T (p.Arg3529Ter) and c.8954T>G (p.Val2985Gly) of the DYNC2H1 gene probably underlay the pathogenesis of SRTD in the fetus. Above findings had facilitated prenatal diagnosis and genetic counseling for the couple.
Humans
;
Female
;
Pregnancy
;
Cytoplasmic Dyneins/chemistry*
;
Prenatal Diagnosis
;
Adult
;
Short Rib-Polydactyly Syndrome/diagnostic imaging*
;
Mutation
;
Exome Sequencing
;
Fetus/abnormalities*
;
Ultrasonography, Prenatal
6.Analysis of 4 children with DYNC1H1 gene related spinal muscular atrophy with lower extremity predominant 1.
Chang Jian YANG ; Shuang WANG ; Dan Dan TAN ; Yi Dan LIU ; Yan Bin FAN ; Cui Jie WEI ; Dan Yu SONG ; Ying ZHU ; Hui XIONG
Chinese Journal of Pediatrics 2023;61(2):154-158
Objective: To investigate the clinical features and gene variation characteristics of children with dynein cytoplasmic 1 heavy chain 1 (DYNC1H1) gene associated spinal muscular atrophy with lower extremity predominant (SMALED) 1. Methods: The clinical data of 4 SMALED1 children admitted to Peking University First Hospital from December 2018 to May 2021, who were found to have pathogenic variation of DYNC1H1 gene through genetic testing, except for other genes known to be related to motor retardation, were retrospectively summarized to analyze the phenotype and genotype characteristics. Results: There were 3 males and 1 female. The age of onset was 1 year, 1 day, 1 day and 4 months, respectively. The age of diagnosis was 4 years and 10 months, 9 months, 5 years and 9 months, and 3 years and 1 month, respectively. The clinical manifestations were muscle weakness and muscular atrophy of lower limbs, 2 cases with foot deformity, 1 case with early non progressive joint contracture, 1 case with hip dislocation and 1 case with mental retardation. De novo heterozygous missense variations in DYNC1H1 gene were found in all 4 children. According to the rating of American College of medical genetics and genomics, they were all possible pathogenic and pathogenic variations, with p.R598C, p.P776L, p.Y1109D variations had been reported, and p.I1086R variation had not been reported. Conclusions: For those with unexplained lower limb muscle weakness, muscle atrophy, joint contracture and foot deformity, upper limb motor ability related retention, with or without mental retardation, as well as the motor ability progresses slowly, it is necessary to consider the possibility of SMALED1 and the detection of DYNC1H1 gene when necessary.
Female
;
Male
;
Humans
;
Intellectual Disability
;
Retrospective Studies
;
Muscular Atrophy, Spinal/genetics*
;
Lower Extremity
;
Muscle Weakness
;
Muscular Atrophy
;
Contracture
;
Cytoplasmic Dyneins/genetics*
7.Genetic analysis of a child with Kartagener syndrome due to novel compound heterozygous variants of DNAH5 gene.
Shan ZHANG ; Chaobing WANG ; Yong ZHANG ; Yandong HU ; Xu LI ; Chuang ZHI
Chinese Journal of Medical Genetics 2023;40(1):71-75
OBJECTIVE:
To explore the clinical characteristics and genetic basis of a child with Kartagener syndrome (KTS).
METHODS:
Trio-whole exome sequencing was carried out for the child and his parents, and candidate variants were verified by Sanger sequencing. Changes in protein structure due to missense variants were simulated and analyzed, and the Human Splicing Finder 3.0 (HSF 3.0) online platform was used to predict the effect of the variant of the non-coding region.
RESULTS:
The child had featured bronchiectasis, sinusitis and visceral inversion. Genetic testing revealed that he has harbored compound heterozygous variants of the DNAH5 gene, namely c.5174T>C and c.7610-3T>G. Sanger sequencing confirmed the existence of the variants. The variants were not found in the dbSNP, 1000 Genomes, ExAC, ClinVar and HGMD databases. Protein structural analysis suggested that the c.5174T>C (p.Leu1725Pro) variant may affect the stability of local structure and its biological activity. The results of HSF 3.0 analysis suggested that the c.7610-3T>G variant has probably destroyed a splicing receptor to affect the transcription process.
CONCLUSION
The compound heterozygous variants of the DNAH5 gene probably underlay the pathogenesis in the child. Above finding may facilitate the understanding of the clinical characteristics and genetic basis of KTS, and further expand the spectrum of DNAH5 gene variants.
Male
;
Humans
;
Child
;
Mutation
;
Kartagener Syndrome/genetics*
;
Genetic Testing
;
Mutation, Missense
;
Exome Sequencing
;
Axonemal Dyneins/genetics*
8.Identification of a novel splice site mutation in the DNAAF4 gene of a Chinese patient with primary ciliary dyskinesia.
Yang XU ; Jing WANG ; Ji-Hai LIU ; Qing-Qiang GAO ; Bing WANG ; Zhi-Peng XU
Asian Journal of Andrology 2023;25(6):713-718
Primary ciliary dyskinesia (PCD) is a rare hereditary orphan condition that results in variable phenotypes, including infertility. About 50 gene variants are reported in the scientific literature to cause PCD, and among them, dynein axonemal assembly factor 4 ( DNAAF4 ) has been recently reported. DNAAF4 has been implicated in the preassembly of a multiunit dynein protein essential for the normal function of locomotory cilia as well as flagella. In the current study, a single patient belonging to a Chinese family was recruited, having been diagnosed with PCD and asthenoteratozoospermia. The affected individual was a 32-year-old male from a nonconsanguineous family. He also had abnormal spine structure and spinal cord bends at angles diagnosed with scoliosis. Medical reports, laboratory results, and imaging data were investigated. Whole-exome sequencing, Sanger sequencing, immunofluorescence analysis, hematoxylin-eosin staining, and in silico functional analysis, including protein modeling and docking studies, were used. The results identified DNAAF4 disease-related variants and confirmed their pathogenicity. Genetic analysis through whole-exome sequencing identified two pathogenic biallelic variants in the affected individual. The identified variants were a hemizygous splice site c.784-1G>A and heterozygous 20.1 Kb deletion at the DNAAF4 locus, resulting in a truncated and functionless DNAAF4 protein. Immunofluorescence analysis indicated that the inner dynein arm was not present in the sperm flagellum, and sperm morphological analysis revealed small sperm with twisted and curved flagella or lacking flagella. The current study found novel biallelic variants causing PCD and asthenoteratozoospermia, extending the range of DNAAF4 pathogenic variants in PCD and associated with the etiology of asthenoteratozoospermia. These findings will improve our understanding of the etiology of PCD.
Adult
;
Humans
;
Male
;
Asthenozoospermia/genetics*
;
Dyneins/genetics*
;
East Asian People
;
Kartagener Syndrome/genetics*
;
Mutation
;
Proteins/genetics*
;
Semen/metabolism*
9.Dynein axonemal heavy chain 10 deficiency causes primary ciliary dyskinesia in humans and mice.
Rongchun WANG ; Danhui YANG ; Chaofeng TU ; Cheng LEI ; Shuizi DING ; Ting GUO ; Lin WANG ; Ying LIU ; Chenyang LU ; Binyi YANG ; Shi OUYANG ; Ke GONG ; Zhiping TAN ; Yun DENG ; Yueqiu TAN ; Jie QING ; Hong LUO
Frontiers of Medicine 2023;17(5):957-971
Primary ciliary dyskinesia (PCD) is a congenital, motile ciliopathy with pleiotropic symptoms. Although nearly 50 causative genes have been identified, they only account for approximately 70% of definitive PCD cases. Dynein axonemal heavy chain 10 (DNAH10) encodes a subunit of the inner arm dynein heavy chain in motile cilia and sperm flagella. Based on the common axoneme structure of motile cilia and sperm flagella, DNAH10 variants are likely to cause PCD. Using exome sequencing, we identified a novel DNAH10 homozygous variant (c.589C > T, p.R197W) in a patient with PCD from a consanguineous family. The patient manifested sinusitis, bronchiectasis, situs inversus, and asthenoteratozoospermia. Immunostaining analysis showed the absence of DNAH10 and DNALI1 in the respiratory cilia, and transmission electron microscopy revealed strikingly disordered axoneme 9+2 architecture and inner dynein arm defects in the respiratory cilia and sperm flagella. Subsequently, animal models of Dnah10-knockin mice harboring missense variants and Dnah10-knockout mice recapitulated the phenotypes of PCD, including chronic respiratory infection, male infertility, and hydrocephalus. To the best of our knowledge, this study is the first to report DNAH10 deficiency related to PCD in human and mouse models, which suggests that DNAH10 recessive mutation is causative of PCD.
Humans
;
Male
;
Animals
;
Mice
;
Semen/metabolism*
;
Dyneins/metabolism*
;
Cilia/metabolism*
;
Mutation
;
Ciliary Motility Disorders/genetics*
10.A recurrent homozygous missense mutation in CCDC103 causes asthenoteratozoospermia due to disorganized dynein arms.
Muhammad ZUBAIR ; Ranjha KHAN ; Ao MA ; Uzma HAMEED ; Mazhar KHAN ; Tanveer ABBAS ; Riaz AHMAD ; Jian-Teng ZHOU ; Wasim SHAH ; Ansar HUSSAIN ; Nisar AHMED ; Ihsan KHAN ; Khalid KHAN ; Yuan-Wei ZHANG ; Huan ZHANG ; Li-Min WU ; Qing-Hua SHI
Asian Journal of Andrology 2022;24(3):255-259
Asthenoteratozoospermia is one of the most severe types of qualitative sperm defects. Most cases are due to mutations in genes encoding the components of sperm flagella, which have an ultrastructure similar to that of motile cilia. Coiled-coil domain containing 103 (CCDC103) is an outer dynein arm assembly factor, and pathogenic variants of CCDC103 cause primary ciliary dyskinesia (PCD). However, whether CCDC103 pathogenic variants cause severe asthenoteratozoospermia has yet to be determined. Whole-exome sequencing (WES) was performed for two individuals with nonsyndromic asthenoteratozoospermia in a consanguineous family. A homozygous CCDC103 variant segregating recessively with an infertility phenotype was identified (ENST00000035776.2, c.461A>C, p.His154Pro). CCDC103 p.His154Pro was previously reported as a high prevalence mutation causing PCD, though the reproductive phenotype of these PCD individuals is unknown. Transmission electron microscopy (TEM) of affected individuals' spermatozoa showed that the mid-piece was severely damaged with disorganized dynein arms, similar to the abnormal ultrastructure of respiratory ciliary of PCD individuals with the same mutation. Thus, our findings expand the phenotype spectrum of CCDC103 p.His154Pro as a novel pathogenic gene for nonsyndromic asthenospermia.
Asthenozoospermia/pathology*
;
Dyneins/genetics*
;
Homozygote
;
Humans
;
Male
;
Microtubule-Associated Proteins
;
Mutation
;
Mutation, Missense
;
Sperm Tail/metabolism*

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