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Tdrd12 is known to play an important role in spermatogenesis in mice. However, evidence linking TDRD12 mutations to male azoospermia is limited, and no cases of TDRD12-related teratozoospermia have been reported. We identified two novel homozygous TDRD12 mutations (c.3378dupG and c.2463C>G) in two unrelated infertile men, respectively. Patient 1 carried a TDRD12 frameshift mutation (c.3378dupG), resulting in a truncated protein lacking the cysteine-rich domain. This patient presented with teratozoospermia, characterized by abnormal sperm morphology, including defects in the head and flagellum. Patient 2 carried a TDRD12 nonsense mutation (c.2463C>G), resulting in complete degradation of the protein. This patient exhibited azoospermia, characterized by germ cell maturation arrest at the spermatocyte stage. Mechanistically, TDRKH, TDRD9, PIWIL2, and PIWIL1, key piRNA biogenesis proteins, are predicted to interact with TDRD12. Notably, PIWIL1 fluorescence was reduced in Patient 1's sperm, while PIWIL2 and TDRD9 signals were diminished and LINE-1 signal was increased in Patient 2's testicular tissue. Furthermore, Intracytoplasmic sperm injection using Patient 1's sperm was unsuccessful. Our study first identified that the loss of different domains of TDRD12 results in distinct male infertility-related phenotypes. These findings revealed novel genetic insights into male infertility, demonstrated the critical role of TDRD12 in human spermatogenesis, and are helpful for diagnosis and genetic counseling.
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http://dx.doi.org/10.1111/cge.70034 | DOI Listing |
Clin Genet
August 2025
Department of Obstetrics/Gynecology, Gynecologic and Pediatric Diseases and Birth Defects of Ministry of Education, West China Second University Hospital, Sichuan University, Chengdu, China.
Tdrd12 is known to play an important role in spermatogenesis in mice. However, evidence linking TDRD12 mutations to male azoospermia is limited, and no cases of TDRD12-related teratozoospermia have been reported. We identified two novel homozygous TDRD12 mutations (c.
View Article and Find Full Text PDFGeroscience
April 2025
Department of Medical Education, School of Medicine, California University of Science & Medicine, Colton, CA, USA.
J Genet Genomics
November 2024
State Key Laboratory of Reproductive Medicine and Offspring Health, Center for Reproductive Medicine, Institute of Women, Children and Reproductive Health, Shandong University, Jinan, Shandong 250012, China; Department of Reproductive Medicine, Ren Ji Hospital, Shanghai Jiao Tong University School o
Biol Sex Differ
August 2023
State Key Laboratory of Freshwater Ecology and Biotechnology, Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan, 430072, China.
Background: Sexually dimorphic mating behaviors differ between sexes and involve gonadal hormones and possibly sexually dimorphic gene expression in the brain. However, the associations among the brain, gonad, and sexual behavior in teleosts are still unclear. Here, we utilized germ cells-free tdrd12 knockout (KO) zebrafish, and steroid synthesis enzyme cyp17a1-deficient zebrafish to investigate the differences and interplays in the brain-gonad-behavior axis, and the molecular control of brain dimorphism and male mating behaviors.
View Article and Find Full Text PDFGenes (Basel)
May 2021
School of Chemistry and Molecular Bioscience, The University of Queensland Australia, Brisbane, QLD 4072, Australia.
Fertility traits measured early in life define the reproductive potential of heifers. Knowledge of genetics and biology can help devise genomic selection methods to improve heifer fertility. In this study, we used ~2400 Brahman cattle to perform GWAS and multi-trait meta-analysis to determine genomic regions associated with heifer fertility.
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