Related Experiment Video
Updated: Oct 11, 2025

Functional Assessment of Kinesin-7 CENP-E in Spermatocytes Using In Vivo Inhibition, Immunofluorescence and Flow Cytometry
Published on: December 28, 2021
Loss of Profilin3 Impairs Spermiogenesis by Affecting Acrosome Biogenesis, Autophagy, Manchette Development and
Naila Umer1, Lena Arévalo1, Sharang Phadke1
1Department of Developmental Pathology, Institute of Pathology, University Hospital Bonn, Bonn, Germany.
Abstract:
Profilins (PFNs) are key regulatory proteins for the actin polymerization in cells and are encoded in mouse and humans by four Pfn genes. PFNs are involved in cell mobility, cell growth, neurogenesis, and metastasis of tumor cells. The testes-specific PFN3 is localized in the acroplaxome-manchette complex of developing spermatozoa. We demonstrate that PFN3 further localizes in the Golgi complex and proacrosomal vesicles during spermiogenesis, suggesting a role in vesicle transport for acrosome formation. Using CRISPR/Cas9 genome editing, we generated mice deficient for Pfn3. Pfn3 males are subfertile, displaying a type II globozoospermia. We revealed that Pfn3 sperm display abnormal manchette development leading to an amorphous sperm head shape. Additionally, Pfn3 sperm showed reduced sperm motility resulting from flagellum deformities. We show that acrosome biogenesis is impaired starting from the Golgi phase, and mature sperm seems to suffer from a cytoplasm removal defect. An RNA-seq analysis revealed an upregulation of Trim27 and downregulation of Atg2a. As a consequence, mTOR was activated and AMPK was suppressed, resulting in the inhibition of autophagy. This dysregulation of AMPK/mTOR affected the autophagic flux, which is hallmarked by LC3B accumulation and increased SQSTM1 protein levels. Autophagy is involved in proacrosomal vesicle fusion and transport to form the acrosome. We conclude that this disruption leads to the observed malformation of the acrosome. TRIM27 is associated with PFN3 as determined by co-immunoprecipitation from testis extracts. Further, actin-related protein ARPM1 was absent in the nuclear fraction of Pfn3 testes and sperm. This suggests that lack of PFN3 leads to destabilization of the PFN3-ARPM1 complex, resulting in the degradation of ARPM1. Interestingly, in the Pfn3 testes, we detected increased protein levels of essential actin regulatory proteins, cofilin-1 (CFL1), cofilin-2 (CFL2), and actin depolymerizing factor (ADF). Taken together, our results reveal the importance for PFN3 in male fertility and implicate this protein as a candidate for male factor infertility in humans.
Insights
Testis-specific profilin 3 (PFN3) is crucial for sperm development and male fertility. Its absence causes globozoospermia and infertility due to defects in acrosome formation and sperm motility.
Area of Science:
- Reproductive Biology
- Cell Biology
- Molecular Genetics
Background:
- Profilins (PFNs) regulate actin polymerization, impacting cell functions like mobility and growth.
- Testis-specific PFN3 localizes to sperm structures, suggesting a role in spermiogenesis and acrosome formation.
Purpose of the Study:
- To investigate the function of PFN3 in male fertility using a PFN3-deficient mouse model.
- To elucidate the molecular mechanisms underlying PFN3's role in sperm development and acrosome biogenesis.
Main Methods:
- CRISPR/Cas9 genome editing to generate PFN3-deficient mice.
- Analysis of sperm morphology, motility, and acrosome formation.
- RNA-sequencing (RNA-seq) for gene expression profiling.
- Co-immunoprecipitation to assess protein interactions.
Main Results:
- PFN3-deficient mice exhibit subfertility with type II globozoospermia, characterized by amorphous sperm heads and reduced motility.
- Abnormal manchette development, impaired acrosome biogenesis, and potential cytoplasm removal defects were observed.
- Dysregulation of autophagy (AMPK/mTOR pathway) and altered expression of TRIM27 and ATG2A were identified.
- PFN3 deficiency led to ARPM1 absence and increased levels of CFL1, CFL2, and ADF.
Conclusions:
- PFN3 is essential for normal sperm development, acrosome formation, and male fertility.
- Disruption of PFN3 impacts actin dynamics, autophagy, and protein complex stability, leading to infertility.
- PFN3 is implicated as a potential factor in human male infertility.
Related Concept Videos
Spermatogenesis
Mechanism of Filopodia Formation
Their main function is to guide migrating cells during normal tissue morphogenesis or cancer metastasis by recognizing and making initial contacts with the extracellular matrix. However, they can also act as stationary cell anchors or help to establish communication...
Destabilization of Microtubules

