1.Loss of RBFOX2 inhibits meiotic initiation in male mice.
Lin YAN ; Jian CHEN ; Yan NING ; Chunsheng HAN
Chinese Journal of Biotechnology 2023;39(10):4108-4122
Meiotic initiation is a critical step in gametogenesis. Recently, some genes required for meiotic initiation have been identified. However, meiosis-initiating factors and the underlying mechanisms are far from being fully understood. We have established a long-term culture system of spermatogonial stem cells (SSCs) and an in vitro model of meiotic initiation using mouse SSCs. Our previous study revealed that the RNA-binding protein RBFOX2 may regulate meiotic initiation, but the role and the mechanism need to be further elucidated. In this study, we constructed RBFOX2 knockdown SSC lines by using lentivirus-mediated gene delivery method, and found that the knockdown SSCs underwent normal self-renewal, mitosis and differentiation. However, they were unable to initiate meiosis when treated with retinoic acid, and they underwent apoptosis. These results indicate that RBFOX2 plays an essential role in meiotic initiation of spermatogonia. This work provides new clues for understanding the functions of RNA-binding proteins in meiotic initiation.
Mice
;
Male
;
Animals
;
Spermatogonia/metabolism*
;
Meiosis/genetics*
;
Cell Differentiation
;
Tretinoin/pharmacology*
;
Mitosis
;
Testis/metabolism*
2.BLOC1S1 promotes proliferation of goat spermatogonial stem cells.
Shicheng WAN ; Mengfei ZHANG ; Wenbo CHEN ; Miao HAN ; Donghui YANG ; Congliang WANG ; Wenping WU ; Yuqi WANG ; Na LI ; Haijing ZHU ; Arisha AHMED HAMED ; Jinlian HUA
Chinese Journal of Biotechnology 2023;39(12):4901-4914
With the rapid development of gene editing technology, the study of spermatogonial stem cells (SSCs) holds great significance in understanding spermatogenesis and its regulatory mechanism, developing transgenic animals, gene therapy, infertility treatment and protecting rare species. Biogenesis of lysosome-related organelles complex 1 subunit 1 (BLOC1S1) is believed to have anti-brucella potential. Exploring the impack of BLOC1S1 on goat SSCs not only helps investigate the ability of BLOC1S1 to promote SSCs proliferation, but also provides a cytological basis for disease-resistant breeding research. In this study, a BLOC1S1 overexpression vector was constructed by homologous recombination. The BLOC1S1 overexpression cell line of goat spermatogonial stem cells was successfully constructed by lentivirus packaging, transfection and puromycin screening. The overexpression efficiency of BLOC1S1 was found to be 18 times higher using real time quantitative PCR (RT-qPCR). Furthermore, the results from cell growth curve analysis, flow cytometry for cell cycle detection, and 5-ethynyl-2'-deoxyuridine (EdU) staining showed that BLOC1S1 significantly increased the proliferation activity of goat SSCs. The results of RT-qPCR, immunofluorescence staining and Western blotting analyses revealed up-regulation of proliferation-related genes (PCNA, CDK2, CCND1), and EIF2S3Y, a key gene regulating the proliferation of spermatogonial stem cells. These findings strongly suggest that the proliferative ability of goat SSCs can be enhanced through the EIF2S3Y/ERK pathway. In summary, this study successfully created a goat spermatogonial stem cell BLOC1S1 overexpression cell line, which exhibited improved proliferation ability. This research laid the groundwork for exploring the regulatory role of BLOC1S1 in goat spermatogonia and provided a cell platform for further study into the biological function of BLOC1S1. These findings also establish a foundation for breeding BLOC1S1 overexpressing goats.
Animals
;
Male
;
Goats
;
Stem Cells
;
Spermatogonia/metabolism*
;
Cell Proliferation
;
Flow Cytometry
;
Testis/metabolism*
3.Effects and mechanism of p53 gene deletion on energy metabolism during the pluripotent transformation of spermatogonial stem cells.
Hong-Yang LIU ; Rui WEI ; Xiao-Xiao LI ; Kang ZOU
Acta Physiologica Sinica 2023;75(1):17-26
Previous studies have shown that long-term spermatogonial stem cells (SSCs) have the potential to spontaneously transform into pluripotent stem cells, which is speculated to be related to the tumorigenesis of testicular germ cells, especially when p53 is deficient in SSCs which shows a significant increase in the spontaneous transformation efficiency. Energy metabolism has been proved to be strongly associated with the maintenance and acquisition of pluripotency. Recently, we compared the difference in chromatin accessibility and gene expression profiles between wild-type (p53+/+) and p53 deficient (p53-/-) mouse SSCs using the Assay for Targeting Accessible-Chromatin with high-throughput sequencing (ATAC-seq) and transcriptome sequencing (RNA-seq) techniques, and revealed that SMAD3 is a key transcription factor in the transformation of SSCs into pluripotent cells. In addition, we also observed significant changes in the expression levels of many genes related to energy metabolism after p53 deletion. To further reveal the role of p53 in the regulation of pluripotency and energy metabolism, this paper explored the effects and mechanism of p53 deletion on energy metabolism during the pluripotent transformation of SSCs. The results of ATAC-seq and RNA-seq from p53+/+ and p53-/- SSCs revealed that gene chromatin accessibility related to positive regulation of glycolysis and electron transfer and ATP synthesis was increased, and the transcription levels of genes encoding key glycolytic enzymes and regulating electron transport-related enzymes were markedly increased. Furthermore, transcription factors SMAD3 and SMAD4 promoted glycolysis and energy homeostasis by binding to the chromatin of the Prkag2 gene which encodes the AMPK subunit. These results suggest that p53 deficiency activates the key enzyme genes of glycolysis in SSCs and enhances the chromatin accessibility of genes associated with glycolysis activation to improve glycolysis activity and promote transformation to pluripotency. Moreover, SMAD3/SMAD4-mediated transcription of the Prkag2 gene ensures the energy demand of cells in the process of pluripotency transformation and maintains cell energy homeostasis by promoting AMPK activity. These results shed light on the importance of the crosstalk between energy metabolism and stem cell pluripotency transformation, which might be helpful for clinical research of gonadal tumors.
Animals
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Mice
;
AMP-Activated Protein Kinases
;
Chromatin
;
Energy Metabolism
;
Gene Deletion
;
Stem Cells
;
Tumor Suppressor Protein p53/genetics*
;
Spermatogonia/cytology*
;
Male
4.FOXP4 promotes proliferation of human spermatogonial stem cells.
Shu-Wei LUO ; Le TANG ; Dai ZHOU ; Hao BO ; Li-Qing FAN
Asian Journal of Andrology 2023;25(3):322-330
Continuous self-renewal and differentiation of spermatogonial stem cells (SSCs) is vital for maintenance of adult spermatogenesis. Although several spermatogonial stem cell regulators have been extensively investigated in rodents, regulatory mechanisms of human SSC self-renewal and differentiation have not been fully established. We analyzed single-cell sequencing data from the human testis and found that forkhead box P4 (FOXP4) expression gradually increased with development of SSCs. Further analysis of its expression patterns in human testicular tissues revealed that FOXP4 specifically marks a subset of spermatogonia with stem cell potential. Conditional inactivation of FOXP4 in human SSC lines suppressed SSC proliferation and significantly activated apoptosis. FOXP4 expressions were markedly suppressed in tissues with dysregulated spermatogenesis. These findings imply that FOXP4 is involved in human SSC proliferation, which will help elucidate on the mechanisms controlling the fate decisions in human SSCs.
Adult
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Humans
;
Male
;
Cell Differentiation
;
Cell Proliferation
;
Forkhead Transcription Factors/metabolism*
;
Spermatogenesis/genetics*
;
Spermatogonia/metabolism*
;
Stem Cells/metabolism*
;
Testis/metabolism*
5.The chemical reprogramming of unipotent adult germ cells towards authentic pluripotency and de novo establishment of imprinting.
Yuhan CHEN ; Jiansen LU ; Yanwen XU ; Yaping HUANG ; Dazhuang WANG ; Peiling LIANG ; Shaofang REN ; Xuesong HU ; Yewen QIN ; Wei KE ; Ralf JAUCH ; Andrew Paul HUTCHINS ; Mei WANG ; Fuchou TANG ; Xiao-Yang ZHAO
Protein & Cell 2023;14(7):477-496
Although somatic cells can be reprogrammed to pluripotent stem cells (PSCs) with pure chemicals, authentic pluripotency of chemically induced pluripotent stem cells (CiPSCs) has never been achieved through tetraploid complementation assay. Spontaneous reprogramming of spermatogonial stem cells (SSCs) was another non-transgenic way to obtain PSCs, but this process lacks mechanistic explanation. Here, we reconstructed the trajectory of mouse SSC reprogramming and developed a five-chemical combination, boosting the reprogramming efficiency by nearly 80- to 100-folds. More importantly, chemical induced germline-derived PSCs (5C-gPSCs), but not gPSCs and chemical induced pluripotent stem cells, had authentic pluripotency, as determined by tetraploid complementation. Mechanistically, SSCs traversed through an inverted pathway of in vivo germ cell development, exhibiting the expression signatures and DNA methylation dynamics from spermatogonia to primordial germ cells and further to epiblasts. Besides, SSC-specific imprinting control regions switched from biallelic methylated states to monoallelic methylated states by imprinting demethylation and then re-methylation on one of the two alleles in 5C-gPSCs, which was apparently distinct with the imprinting reprogramming in vivo as DNA methylation simultaneously occurred on both alleles. Our work sheds light on the unique regulatory network underpinning SSC reprogramming, providing insights to understand generic mechanisms for cell-fate decision and epigenetic-related disorders in regenerative medicine.
Male
;
Mice
;
Animals
;
Cellular Reprogramming/genetics*
;
Tetraploidy
;
Pluripotent Stem Cells/metabolism*
;
Induced Pluripotent Stem Cells/metabolism*
;
DNA Methylation
;
Spermatogonia/metabolism*
;
Germ Cells/metabolism*
6.Ionizing Radiation-Induced RPL23a Reduction Regulates Apoptosis
Yu Xuan HE ; Yi Xiao GUO ; Yong ZHANG ; Jun Jie HU ; Wei Tao DONG ; Xiang Hong DU ; Xing Xu ZHAO
Biomedical and Environmental Sciences 2021;34(10):789-802
Objective:
The expression patterns of ribosomal large subunit protein 23a (RPL23a) in mouse testes and GC-1 cells were analyzed to investigate the potential relationship between RPL23a expression and spermatogonia apoptosis upon exposure to X-ray.
Methods:
Male mice and GC-1 cells were irradiated with X-ray, terminal dUTP nick end-labelling (TUNEL) was performed to detect apoptotic spermatogonia
Results:
Ionizing radiation (IR) increased spermatogonia apoptosis, the expression of RPL11, MDM2 and p53, and decreased RPL23a expression in mice spermatogonia
Conclusion
These results suggested that IR reduced RPL23a expression, leading to weakened the RPL23a-RPL11 interactions, which may have activated p53, resulting in spermatogonia apoptosis. These results provide insights into environmental and clinical risks of radiotherapy following exposure to IR in male fertility. The graphical abstract was available in the web of www.besjournal.com.
Animals
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Apoptosis/genetics*
;
Gene Expression Regulation
;
Male
;
Mice
;
Ribosomal Proteins/metabolism*
;
Signal Transduction
;
Spermatogonia/radiation effects*
7.Mechanistic target of rapamycin kinase (Mtor) is required for spermatogonial proliferation and differentiation in mice.
Jun CAO ; Zuo-Bao LIN ; Ming-Han TONG ; Yong-Lian ZHANG ; Yi-Ping LI ; Yu-Chuan ZHOU
Asian Journal of Andrology 2020;22(2):169-176
Spermatogonial development is a vital prerequisite for spermatogenesis and male fertility. However, the exact mechanisms underlying the behavior of spermatogonia, including spermatogonial stem cell (SSC) self-renewal and spermatogonial proliferation and differentiation, are not fully understood. Recent studies demonstrated that the mTOR complex 1 (mTORC1) signaling pathway plays a crucial role in spermatogonial development, but whether MTOR itself was also involved in any specific process of spermatogonial development remained undetermined. In this study, we specifically deleted Mtor in male germ cells of mice using Stra8-Cre and assessed its effect on the function of spermatogonia. The Mtor knockout (KO) mice exhibited an age-dependent perturbation of testicular development and progressively lost germ cells and fertility with age. These age-related phenotypes were likely caused by a delayed initiation of Mtor deletion driven by Stra8-Cre. Further examination revealed a reduction of differentiating spermatogonia in Mtor KO mice, suggesting that spermatogonial differentiation was inhibited. Spermatogonial proliferation was also impaired in Mtor KO mice, leading to a diminished spermatogonial pool and total germ cell population. Our results show that MTOR plays a pivotal role in male fertility and is required for spermatogonial proliferation and differentiation.
Animals
;
Cell Proliferation/genetics*
;
Fertility/genetics*
;
Male
;
Mice
;
Mice, Knockout
;
Spermatogenesis/genetics*
;
Spermatogonia/metabolism*
;
TOR Serine-Threonine Kinases/metabolism*
;
Testis/metabolism*
8.The role of tyrosine phosphatase Shp2 in spermatogonial differentiation and spermatocyte meiosis.
Yang LI ; Wen-Sheng LIU ; Jia YI ; Shuang-Bo KONG ; Jian-Cheng DING ; Yi-Nan ZHAO ; Ying-Pu TIAN ; Gen-Sheng FENG ; Chao-Jun LI ; Wen LIU ; Hai-Bin WANG ; Zhong-Xian LU
Asian Journal of Andrology 2020;22(1):79-87
The transition from spermatogonia to spermatocytes and the initiation of meiosis are key steps in spermatogenesis and are precisely regulated by a plethora of proteins. However, the underlying molecular mechanism remains largely unknown. Here, we report that Src homology domain tyrosine phosphatase 2 (Shp2; encoded by the protein tyrosine phosphatase, nonreceptor type 11 [Ptpn11] gene) is abundant in spermatogonia but markedly decreases in meiotic spermatocytes. Conditional knockout of Shp2 in spermatogonia in mice using stimulated by retinoic acid gene 8 (Stra8)-cre enhanced spermatogonial differentiation and disturbed the meiotic process. Depletion of Shp2 in spermatogonia caused many meiotic spermatocytes to die; moreover, the surviving spermatocytes reached the leptotene stage early at postnatal day 9 (PN9) and the pachytene stage at PN11-13. In preleptotene spermatocytes, Shp2 deletion disrupted the expression of meiotic genes, such as disrupted meiotic cDNA 1 (Dmc1), DNA repair recombinase rad51 (Rad51), and structural maintenance of chromosome 3 (Smc3), and these deficiencies interrupted spermatocyte meiosis. In GC-1 cells cultured in vitro, Shp2 knockdown suppressed the retinoic acid (RA)-induced phosphorylation of extracellular-regulated protein kinase (Erk) and protein kinase B (Akt/PKB) and the expression of target genes such as synaptonemal complex protein 3 (Sycp3) and Dmc1. Together, these data suggest that Shp2 plays a crucial role in spermatogenesis by governing the transition from spermatogonia to spermatocytes and by mediating meiotic progression through regulating gene transcription, thus providing a potential treatment target for male infertility.
Animals
;
Cell Cycle Proteins/genetics*
;
Cell Line
;
Cell Survival
;
Chondroitin Sulfate Proteoglycans/genetics*
;
Chromosomal Proteins, Non-Histone/genetics*
;
Gene Expression Regulation
;
Gene Knockdown Techniques
;
Infertility, Male
;
Male
;
Meiosis/genetics*
;
Mice
;
Mice, Knockout
;
Mice, Transgenic
;
Phosphate-Binding Proteins/genetics*
;
Protein Tyrosine Phosphatase, Non-Receptor Type 11/genetics*
;
Rad51 Recombinase/genetics*
;
Real-Time Polymerase Chain Reaction
;
Spermatocytes/metabolism*
;
Spermatogenesis/genetics*
;
Spermatogonia/metabolism*
9.Direct modification of spermatogonial stem cells using lentivirus vectors in vivo leads to efficient generation of transgenic rats.
Bang-Jin KIM ; Yong-Hee KIM ; Myeong-Geun OH ; Ki-Jung KIM ; Sang-Eun JUNG ; Ju-Hee JIN ; Sun-Uk KIM ; Kwan-Sik MIN ; Buom-Yong RYU
Asian Journal of Andrology 2019;21(2):190-195
Spermatogonial stem cells (SSCs) transmit genetic information to the next progeny in males. Thus, SSCs are a potential target for germline modifications to generate transgenic animals. In this study, we report a technique for the generation of transgenic rats by in vivo manipulation of SSCs with a high success rate. SSCs in juvenile rats were transduced in vivo with high titers of lentivirus harboring enhanced green fluorescent protein and mated with wild-type females to create founder rats. These founder rats expressed the transgene and passed on the transgene with an overall success rate of 50.0%. Subsequent generations of progeny from the founder rats both expressed and passed on the transgene. Thus, direct modification of SSCs in juvenile rats is an effective means of generating transgenic rats through the male germline. This technology could be adapted to larger animals, in which existing methods for gene modification are inadequate or inapplicable, resulting in the generation of transgenic animals in a variety of species.
Animals
;
Green Fluorescent Proteins
;
Lentivirus
;
Male
;
Rats
;
Rats, Transgenic
;
Spermatogonia/metabolism*
10.PLZFposc-KITpos-delineated A1-A4-differentiating spermatogonia by subset and stage detection upon Bouin fixation.
Asian Journal of Andrology 2019;21(3):309-318
While hallmarks of rodent spermatogonia stem cell biomarkers' heterogeneity have recently been identified, their stage and subset distributions remain unclear. Furthermore, it is currently difficult to accurately identify subset-specific SSC marker distributions due to the poor nuclear morphological characteristics associated with fixation in 4% paraformaldehyde. In the present study, testicular cross-sections and whole-mount samples were Bouin fixed to optimize nuclear resolution and visualized by immunohistochemistry (IHC) and immunofluorescence (IF). The results identified an expression pattern of PLZFhighc-KITpos in A1 spermatogonia, while A2-A4-differentiating spermatogonia were PLZFlowc-KITpos. Additionally, this procedure was used to examine asymmetrically expressing GFRA1 and PLZF clones, asymmetric Apr and false clones were distinguished based on the presence or absence of TEX14, a molecular maker of intercellular bridges, despite having identical nuclear morphology and intercellular distances that were <25 μm. In conclusion, this optimized Bouin fixation procedure facilitates the accurate identification of spermatogonium subsets based on their molecular profiles and is capable of distinguishing asymmetric and false clones. Therefore, the findings presented herein will facilitate further morphological and functional analysis studies and provide further insight into spermatogonium subtypes.
Animals
;
Cell Differentiation
;
Fluorescent Antibody Technique
;
Gene Expression Regulation/genetics*
;
Glial Cell Line-Derived Neurotrophic Factor Receptors/genetics*
;
Immunohistochemistry
;
Male
;
Mice
;
Mice, Inbred C57BL
;
Promyelocytic Leukemia Zinc Finger Protein/genetics*
;
Proto-Oncogene Proteins c-kit/genetics*
;
Seminiferous Tubules/cytology*
;
Spermatogenesis
;
Spermatogonia/metabolism*
;
Testis/cytology*
;
Tissue Fixation
;
Transcription Factors/genetics*

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