Related Experiment Video
Updated: Jan 3, 2026

Medium-throughput Screening Assays for Assessment of Effects on Ca2+-Signaling and Acrosome Reaction in Human Sperm
Published on: March 1, 2019
Mutations in TTC29, Encoding an Evolutionarily Conserved Axonemal Protein, Result in Asthenozoospermia and Male
Patrick Lorès1, Denis Dacheux2, Zine-Eddine Kherraf3
1INSERM U1016, Institut Cochin, Paris 75014, France; Centre National de la Recherche Scientifique UMR8104, Paris 75014, France; Faculté de Médecine, Université Paris Descartes, Sorbonne Paris Cité, Paris 75014, France.
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.
Insights
Mutations in the TTC29 gene cause male infertility by leading to morphological abnormalities of the sperm flagellum (MMAF), also known as "short tails." This impacts sperm motility and function, highlighting TTC29
Area of Science:
- Human Genetics
- Reproductive Biology
- Cell Biology
Background:
- Asthenozoospermia, characterized by sperm flagellar defects, is a primary cause of male infertility.
- Morphological Abnormalities of the Sperm Flagellum (MMAF), or 'short tails,' represent a severe form of asthenozoospermia.
- Previous studies identified genetic causes for MMAF in over 30% of affected individuals.
Purpose of the Study:
- To investigate the role of the TTC29 gene in male infertility associated with MMAF.
- To identify genetic variants in TTC29 and assess their functional impact on sperm flagella.
Main Methods:
- Whole-exome sequencing of MMAF-affected individuals.
- Analysis of TTC29 variants, including homozygous truncating mutations (frameshift, stop-gain, splicing).
- Functional studies using loss-of-function models in *T. brucei* and *M. musculus*.
Main Results:
- Five individuals with homozygous TTC29 variants causing MMAF were identified.
- TTC29 variants led to impaired flagellar beating in both protist and mouse models.
- Conserved tetratricopeptide repeat (TPR) motifs in TTC29 are crucial for its localization and function in flagella.
Conclusions:
- TTC29 is a conserved axonemal protein essential for flagellar structure and motility.
- Mutations in TTC29 are a significant cause of male infertility due to MMAF.
- TTC29 plays a critical role in maintaining sperm function and male reproductive health.
Related Concept Videos
The Y Chromosome Determines Maleness
Evolution
Around 300 million years ago, the two sex chromosomes diverged from two identical autosomal chromosomes. Over time, the Y chromosome has lost most of its genes, shrinking in size....
Nondisjunction
Nondisjunction
Genetic Variation
Genes exist in different versions called alleles,...
Sex-linked Disorders
Meiosis I
Prophase I is the most extended and complex step of meiosis I characterized by synapsis, chromosome pairing, and recombination of the homologous chromosomes. This process is facilitated by a proteinaceous structure called the...

