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Biology subjects

Graffeo, M.

Publications and source records attributed to Graffeo, M..

2 recordsLinked to original sources

A novel CCDC112-dependent process of sperm midpiece formation and epididymal maturation

The sperm mitochondrial sheath has proposed functions in structural support and energy production for motility. Here we define coiled coil domain containing protein 112, CCDC112, as crucial for male fertility, specifically in the assembly and function of the mitochondrial sheath. We unveiled a previously unrecognised process of epididymal mitochondrial sheath maturation. Sperm mitochondrial sheaths are structurally immature upon exiting the testis and continue to mature as they transit from the caput to the cauda epididymis. Data reveal the critical role of CCDC112 in mitochondrial morphogenesis during sheath formation. A lack of CCDC112 lead to significantly reduced mitochondrial respiration capacity, irregular flagellar waveforms, diminished progressive motility and a failure of sperm to traverse the female reproductive tract to the site of fertilisation and penetrate the zonae pellucidae of oocytes. Finally, we identify CCDC112 as a component of the distal appendages of the mother centriole and identify a facilitative role in core tail assembly. Collectively, CCDC112 is a key regulator of sperm mitochondrial sheath assembly while further expanding the understanding of spermatogenesis, energy generation and flagella kinematics.

developmental biology↗

Male mammalian meiosis and spermiogenesis is critically dependent on the shared functions of the katanins KATNA1 and KATNAL1

Katanin microtubule severing enzymes are potent M-phase regulators in oocytes and somatic cells. How the complex, and evolutionarily critical, male mammalian meiotic spindle is sculpted remains unknown. Here, using multiple single and double gene knockout mice, we reveal that the canonical katanin A-subunit, KATNA1, and its close paralogue, KATNAL1, together execute multiple aspects of meiosis. We show KATNA1 and KATNAL1 collectively regulate the male meiotic spindle, cytokinesis and midbody abscission, in addition to diverse spermatid remodelling events, including Golgi organisation, and acrosome and manchette formation. We also define KATNAL1-specific roles in sperm flagella development, manchette regulation, and sperm-epithelial disengagement. Finally, using proteomic approaches we define the KATNA1, KATNAL1, and KATNB1 mammalian testis interactome, which includes a network of cytoskeletal and vesicle trafficking proteins. Collectively, we reveal the presence of multiple katanin A-subunit paralogs in mammalian spermatogenesis allows for customized cutting via neofunctionalization and protective buffering via gene redundancy.

cell biology↗