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Updated: Apr 16, 2026

A Seminiferous Tubule Squash Technique for the Cytological Analysis of Spermatogenesis Using the Mouse Model
Published on: February 6, 2018
A MEIG1/PACRG complex in the manchette is essential for building the sperm flagella
Wei Li1, Waixing Tang2, Maria E Teves1
1Department of Obstetrics and Gynecology, Virginia Commonwealth University, Richmond, VA 23298, USA.
Abstract:
A key event in the process of spermiogenesis is the formation of the flagella, which enables sperm to reach eggs for fertilization. Yeast two-hybrid studies revealed that meiosis-expressed gene 1 (MEIG1) and Parkin co-regulated gene (PACRG) interact, and that sperm-associated antigen 16, which encodes an axoneme central apparatus protein, is also a binding partner of MEIG1. In spermatocytes of wild-type mice, MEIG1 is expressed in the whole germ cell bodies, but the protein migrates to the manchette, a unique structure at the base of elongating spermatid that directs formation of the flagella. In the elongating spermatids of wild-type mice, PACRG colocalizes with α-tubulin, a marker for the manchette, whereas this localization was not changed in the few remaining elongating spermatids of Meig1-deficient mice. In addition, MEIG1 no longer localizes to the manchette in the remaining elongating spermatids of Pacrg-deficient mice, indicating that PACRG recruits MEIG1 to the manchette. PACRG is not stable in mammalian cells, but can be stabilized by MEIG1 or by inhibition of proteasome function. SPAG16L is present in the spermatocyte cytoplasm of wild-type mice, and in the manchette of elongating spermatids, but in the Meig1 or Pacrg-deficient mice, SPAG16L no longer localizes to the manchette. By contrast, MEIG1 and PACRG are still present in the manchette of Spag16L-deficient mice, indicating that SPAG16L is a downstream partner of these two proteins. Together, our studies demonstrate that MEIG1/PACRG forms a complex in the manchette and that this complex is necessary to transport cargos, such as SPAG16L, to build the sperm flagella.
Insights
Meiosis-expressed gene 1 (MEIG1) and Parkin co-regulated gene (PACRG) form a complex essential for sperm flagella development. This complex, located in the manchette, is crucial for transporting proteins like SPAG16L during spermiogenesis.
Area of Science:
- Reproductive biology
- Spermatogenesis research
- Molecular cell biology
Background:
- Flagella formation is vital for sperm motility and fertilization.
- Meiosis-expressed gene 1 (MEIG1) and Parkin co-regulated gene (PACRG) are implicated in sperm development.
- Sperm-associated antigen 16 (SPAG16) is an axoneme protein involved in flagella structure.
Purpose of the Study:
- To elucidate the roles of MEIG1, PACRG, and SPAG16L in sperm flagella formation.
- To determine the interaction and localization dynamics of MEIG1, PACRG, and SPAG16L during spermiogenesis.
- To understand the molecular mechanisms governing the transport of proteins to the manchette for flagella assembly.
Main Methods:
- Yeast two-hybrid assays to identify protein interactions.
- Immunofluorescence microscopy to visualize protein localization in mouse spermatocytes and spermatids.
- Analysis of gene-deficient mice (Meig1, Pacrg, Spag16L) to assess protein function and localization.
Main Results:
- MEIG1 and PACRG interact and localize to the manchette, a structure critical for flagella formation.
- PACRG is required to recruit MEIG1 to the manchette.
- SPAG16L localization to the manchette depends on both MEIG1 and PACRG, while MEIG1 and PACRG localization is independent of SPAG16L.
- MEIG1 stabilizes the otherwise unstable PACRG protein.
Conclusions:
- MEIG1 and PACRG form a stable complex within the manchette.
- This MEIG1/PACRG complex acts as a crucial transport mechanism for proteins like SPAG16L.
- The coordinated action of MEIG1, PACRG, and SPAG16L is essential for the proper assembly of the sperm flagella during spermiogenesis.
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