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Updated: May 25, 2025

Probing High-density Functional Protein Microarrays to Detect Protein-protein Interactions
Published on: August 2, 2015
Characterization of PRDM9 Multifunctionality in Yak Testes Through Protein Interaction Mapping
Guowen Wang1,2,3, Shi Shu2, Changqi Fu2,4
1State Key Laboratory of Plateau Ecology and Agriculture, Qinghai University, Xining 810016, China.
Abstract:
Meiotic recombination is initiated by the formation of programmed DNA double-strand breaks during spermatogenesis. PRDM9 determines the localization of recombination hotspots by interacting with several protein complexes in mammals. The function of PRDM9 is not well understood during spermatogenesis in mice or yaks. In this study, we applied yeast two-hybrid assays combined with next-generation sequencing techniques to screen the complete set of PRDM9-interacting proteins and explore its novel functions in yak spermatogenesis. Our results showed that 267 PRDM9-interacting proteins were identified. The gene ontology (GO) analysis of the interacting proteins revealed that the GO terms were primarily associated with spermatogenesis, positive regulation of double-strand break repair via homologous recombination, RNA splicing, the ubiquitin-dependent ERAD pathway, and other biological processes. MKX and PDCD5 were verified to be strongly interacting with PRDM9 and expressed in prophase I of meiosis in both mouse and yak testes. The localizations of RNA splicing genes including THOC5, DDX5, and XRCC6 were expressed in spermatocytes. Cattleyak is the hybrid offspring of a yak and a domestic cow, and the male offspring are sterile. The gene expression of the interacting proteins was also examined in the sterile male hybrid of yak and cattle. Among the 58 detected genes, 55 were downregulated in cattleyak. In conclusion, we established a complete PRDM9 interaction network, and a novel function of PRDM9 was identified, which will further promote our understanding of spermatogenesis. It also provides new insights for the study of hybrid male sterility.
Insights
Researchers identified 267 proteins interacting with PRDM9, revealing its novel roles in yak spermatogenesis and double-strand break repair. This network provides insights into hybrid male sterility.
Area of Science:
- Reproductive Biology
- Genetics
- Molecular Biology
Background:
- Meiotic recombination initiates DNA double-strand breaks during spermatogenesis.
- PRDM9 protein is crucial for localizing recombination hotspots in mammals.
- The precise function of PRDM9 in yak spermatogenesis remains largely unknown.
Purpose of the Study:
- To identify PRDM9-interacting proteins and elucidate its novel functions in yak spermatogenesis.
- To investigate the role of PRDM9 in the context of hybrid male sterility.
Main Methods:
- Yeast two-hybrid assays were employed to screen for PRDM9-interacting proteins.
- Next-generation sequencing techniques were utilized for comprehensive screening.
- Gene ontology (GO) analysis was performed on identified interacting proteins.
- Gene expression analysis was conducted in sterile male cattleyak.
Main Results:
- A total of 267 PRDM9-interacting proteins were identified.
- GO analysis highlighted associations with spermatogenesis, homologous recombination repair, RNA splicing, and the ERAD pathway.
- MKX and PDCD5 showed strong interaction with PRDM9 and were expressed in prophase I of meiosis in mice and yaks.
- RNA splicing genes (THOC5, DDX5, XRCC6) were localized in spermatocytes.
- In sterile male cattleyak, 55 out of 58 detected interacting genes were downregulated.
Conclusions:
- A comprehensive PRDM9 interaction network was established.
- A novel function of PRDM9 in spermatogenesis was identified, enhancing understanding of the process.
- The findings offer new perspectives for studying hybrid male sterility in yaks and cattle.
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