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1.
Development ; 151(13)2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38953252

ABSTRACT

Spermatogonial stem cell (SSC) self-renewal and differentiation provide foundational support for long-term, steady-state spermatogenesis in mammals. Here, we have investigated the essential role of RNA exosome associated DIS3 ribonuclease in maintaining spermatogonial homeostasis and facilitating germ cell differentiation. We have established male germ-cell Dis3 conditional knockout (cKO) mice in which the first and subsequent waves of spermatogenesis are disrupted. This leads to a Sertoli cell-only phenotype and sterility in adult male mice. Bulk RNA-seq documents that Dis3 deficiency partially abolishes RNA degradation and causes significant increases in the abundance of transcripts. This also includes pervasively transcribed PROMoter uPstream Transcripts (PROMPTs), which accumulate robustly in Dis3 cKO testes. In addition, scRNA-seq analysis indicates that Dis3 deficiency in spermatogonia significantly disrupts RNA metabolism and gene expression, and impairs early germline cell development. Overall, we document that exosome-associated DIS3 ribonuclease plays crucial roles in maintaining early male germ cell lineage in mice.


Subject(s)
Fertility , Mice, Knockout , Spermatogenesis , Spermatogonia , Testis , Animals , Male , Spermatogenesis/genetics , Spermatogenesis/physiology , Mice , Fertility/genetics , Testis/metabolism , Spermatogonia/metabolism , Spermatogonia/cytology , Sertoli Cells/metabolism , Cell Differentiation , Exosome Multienzyme Ribonuclease Complex/metabolism , Exosome Multienzyme Ribonuclease Complex/genetics , Exosomes/metabolism , RNA Stability/genetics , Infertility, Male/genetics
2.
Biomolecules ; 14(6)2024 May 21.
Article in English | MEDLINE | ID: mdl-38927011

ABSTRACT

Normal testicular development ensures the process of spermatogenesis, which is a complex biological process. The sustained high productivity of spermatogenesis throughout life is predominantly attributable to the constant proliferation and differentiation of spermatogonial stem cells (SSCs). The self-renewal and differentiation processes of SSCs are strictly regulated by the SSC niche. Therefore, understanding the developmental pattern of SSCs is crucial for spermatogenesis. The Shaziling pig is a medium-sized indigenous pig breed originating from central China. It is renowned for its superior meat quality and early male sexual maturity. The spermatogenic ability of the boars is of great economic importance to the pig industry. To investigate testicular development, particularly the pattern of SSC development in Shaziling pigs, we used single-cell transcriptomics to identify gene expression patterns in 82,027 individual cells from nine Shaziling pig testes at three key postnatal developmental stages. We generated an unbiased cell developmental atlas of Shaziling pig testicular tissues. We elucidated the complex processes involved in the development of SSCs within their niche in the Shaziling pig. Specifically, we identified potential marker genes and cellular signaling pathways that regulate SSC self-renewal and maintenance. Additionally, we proposed potential novel marker genes for SSCs that could be used for SSC isolation and sorting in Shaziling pigs. Furthermore, by immunofluorescence staining of testicular tissues of different developmental ages using marker proteins (UCHL1 and KIT), the developmental pattern of the spermatogonia of Shaziling pigs was intensively studied. Our research enhances the comprehension of the development of SSCs and provides a valuable reference for breeding Shaziling pigs.


Subject(s)
RNA-Seq , Spermatogonia , Testis , Animals , Male , Swine/genetics , Spermatogonia/metabolism , Spermatogonia/cytology , Testis/metabolism , Testis/cytology , Testis/growth & development , Adult Germline Stem Cells/metabolism , Adult Germline Stem Cells/cytology , Single-Cell Analysis , Cell Differentiation/genetics , Spermatogenesis/genetics , Stem Cells/metabolism , Stem Cells/cytology , Transcriptome/genetics
3.
PLoS One ; 19(6): e0304475, 2024.
Article in English | MEDLINE | ID: mdl-38848382

ABSTRACT

Cystic spermatogenesis in the subadult, maturing and adult Greenland shark (Somniosus microcephalus) displays multiple novel features, characterized early on by an unorganized internal cellular environment of the spermatocysts (anatomically discrete follicle-like units containing a single germ cell stage and its complement of co-developing Sertoli cells). These typically show polar asymmetries due to asymmetrically distributed germ and Sertoli cells. These arise from several novel cellular rearrangements at the immature pole, including fusion of a cluster of somatic cells with newly formed cysts containing only one to three spermatogonia and that already display an excess of Sertoli cells. The subadult's germinative zone revealed an additional novelty, namely numerous previously formed somatic cell-lined rings into which spermatogonia were incorporated. A striking finding was the conspicuous rarity of the routinely discernible Sertoli mitotic figures in the hallmark cyst stage of diametric elasmobranch spermatogenesis that is known for the peak display of the latter. Scrutiny of sequentially unfolding phenomena in the linearly arranged spermatogonial generations revealed that the cellular developments at the most common type of cyst-duct transition area (comprising slender to spindle-like basophilic cells with pointed ends) were concurrent with the discreet appearance of a second dark Sertoli nucleus, a development that persisted in spermiated cysts. Spermatogenically active mature males displayed vigorous meiotic divisions. However, a scattering of their spermatid cysts also displayed shark-atypical asynchronous passage through spermiogenesis, phenomena which were exacerbated as arrested spermiogenesis in an archival collection of tissues from 13 maturing specimens. Subadult specimens revealed meiotic arrest, and foci of infiltration of leukocytes that originate from a mass of eosinophilic, granule-laden immune cells dorsally under the testis capsule. This tissue was identical to the testis-affixed bone marrow equivalent in other shark species. This tissue is likely developmentally regulated in the Greenland shark as it is absent in adults.


Subject(s)
Sertoli Cells , Sharks , Spermatogenesis , Animals , Male , Sharks/physiology , Sertoli Cells/cytology , Sertoli Cells/physiology , Spermatogenesis/physiology , Spermatogonia/cytology , Testis/cytology
4.
Int J Mol Sci ; 25(12)2024 Jun 14.
Article in English | MEDLINE | ID: mdl-38928267

ABSTRACT

The neuropeptide vasopressin is known for its regulation of osmotic balance in mammals. Arginine vasotocin (AVT) is a non-mammalian homolog of this neuropeptide that is present in fish. Limited information suggested that vasopressin and its homologs may also influence reproductive function. In the present study, we investigated the direct effect of AVT on spermatogenesis, using zebrafish as a model organism. Results demonstrate that AVT and its receptors (avpr1aa, avpr2aa, avpr1ab, avpr2ab, and avpr2l) are expressed in the zebrafish brain and testes. The direct action of AVT on spermatogenesis was investigated using an ex vivo culture of mature zebrafish testes for 7 days. Using histological, morphometric, and biochemical approaches, we observed direct actions of AVT on zebrafish testicular function. AVT treatment directly increased the number of spermatozoa in an androgen-dependent manner, while reducing mitotic cells and the proliferation activity of type B spermatogonia. The observed stimulatory action of AVT on spermiogenesis was blocked by flutamide, an androgen receptor antagonist. The present results support the novel hypothesis that AVT stimulates short-term androgen-dependent spermiogenesis. However, its prolonged presence may lead to diminished spermatogenesis by reducing the proliferation of spermatogonia B, resulting in a diminished turnover of spermatogonia, spermatids, and spermatozoa. The overall findings offer an insight into the physiological significance of vasopressin and its homologs in vertebrates as a contributing factor in the multifactorial regulation of male reproduction.


Subject(s)
Receptors, Vasopressin , Spermatogenesis , Testis , Vasotocin , Zebrafish , Animals , Zebrafish/metabolism , Male , Vasotocin/metabolism , Vasotocin/pharmacology , Testis/metabolism , Receptors, Vasopressin/metabolism , Receptors, Vasopressin/genetics , Zebrafish Proteins/metabolism , Zebrafish Proteins/genetics , Spermatozoa/metabolism , Cell Proliferation , Spermatogonia/metabolism , Spermatogonia/cytology
5.
Development ; 151(12)2024 Jun 15.
Article in English | MEDLINE | ID: mdl-38934417

ABSTRACT

Spermatogonial stem cells (SSCs) undergo self-renewal division to sustain spermatogenesis. Although it is possible to derive SSC cultures in most mouse strains, SSCs from a 129 background never proliferate under the same culture conditions, suggesting they have distinct self-renewal requirements. Here, we established long-term culture conditions for SSCs from mice of the 129 background (129 mice). An analysis of 129 testes showed significant reduction of GDNF and CXCL12, whereas FGF2, INHBA and INHBB were higher than in testes of C57BL/6 mice. An analysis of undifferentiated spermatogonia in 129 mice showed higher expression of Chrna4, which encodes an acetylcholine (Ach) receptor component. By supplementing medium with INHBA and Ach, SSC cultures were derived from 129 mice. Following lentivirus transduction for marking donor cells, transplanted cells re-initiated spermatogenesis in infertile mouse testes and produced transgenic offspring. These results suggest that the requirements of SSC self-renewal in mice are diverse, which has important implications for understanding self-renewal mechanisms in various animal species.


Subject(s)
Mice, Inbred C57BL , Spermatogenesis , Spermatogonia , Testis , Animals , Male , Mice , Spermatogonia/cytology , Spermatogonia/metabolism , Spermatogenesis/genetics , Spermatogenesis/physiology , Testis/metabolism , Testis/cytology , Cell Self Renewal , Adult Germline Stem Cells/metabolism , Adult Germline Stem Cells/cytology , Cells, Cultured , Receptors, Nicotinic/metabolism , Receptors, Nicotinic/genetics , Mice, Inbred Strains , Cell Differentiation , Cell Proliferation , Stem Cells/cytology , Stem Cells/metabolism , Mice, Transgenic
6.
Nature ; 631(8019): 170-178, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38768632

ABSTRACT

Epigenetic reprogramming resets parental epigenetic memories and differentiates primordial germ cells (PGCs) into mitotic pro-spermatogonia or oogonia. This process ensures sexually dimorphic germ cell development for totipotency1. In vitro reconstitution of epigenetic reprogramming in humans remains a fundamental challenge. Here we establish a strategy for inducing epigenetic reprogramming and differentiation of pluripotent stem-cell-derived human PGC-like cells (hPGCLCs) into mitotic pro-spermatogonia or oogonia, coupled with their extensive amplification (about >1010-fold). Bone morphogenetic protein (BMP) signalling is a key driver of these processes. BMP-driven hPGCLC differentiation involves attenuation of the MAPK (ERK) pathway and both de novo and maintenance DNA methyltransferase activities, which probably promote replication-coupled, passive DNA demethylation. hPGCLCs deficient in TET1, an active DNA demethylase abundant in human germ cells2,3, differentiate into extraembryonic cells, including amnion, with de-repression of key genes that bear bivalent promoters. These cells fail to fully activate genes vital for spermatogenesis and oogenesis, and their promoters remain methylated. Our study provides a framework for epigenetic reprogramming in humans and an important advance in human biology. Through the generation of abundant mitotic pro-spermatogonia and oogonia-like cells, our results also represent a milestone for human in vitro gametogenesis research and its potential translation into reproductive medicine.


Subject(s)
Cellular Reprogramming , DNA Methylation , Epigenesis, Genetic , Germ Cells , Proto-Oncogene Proteins , Humans , Male , Cellular Reprogramming/genetics , DNA Methylation/genetics , Germ Cells/metabolism , Germ Cells/cytology , Female , Proto-Oncogene Proteins/metabolism , Proto-Oncogene Proteins/genetics , Proto-Oncogene Proteins/deficiency , Cell Differentiation , DNA-Binding Proteins/metabolism , DNA-Binding Proteins/genetics , Spermatogonia/cytology , Spermatogonia/metabolism , Spermatogenesis/genetics , Pluripotent Stem Cells/cytology , Pluripotent Stem Cells/metabolism , MAP Kinase Signaling System , Promoter Regions, Genetic/genetics , Oogenesis/genetics , Mitosis/genetics , Mixed Function Oxygenases
7.
Int J Mol Sci ; 25(9)2024 Apr 29.
Article in English | MEDLINE | ID: mdl-38732061

ABSTRACT

Embryonic stem-like cells (ES-like cells) are promising for medical research and clinical applications. Traditional methods involve "Yamanaka" transcription (OSKM) to derive these cells from somatic cells in vitro. Recently, a novel approach has emerged, obtaining ES-like cells from spermatogonia stem cells (SSCs) in a time-related process without adding artificial additives to cell cultures, like transcription factors or small molecules such as pten or p53 inhibitors. This study aims to investigate the role of the Nanog in the conversion of SSCs to pluripotent stem cells through both in silico analysis and in vitro experiments. We used bioinformatic methods and microarray data to find significant genes connected to this derivation path, to construct PPI networks, using enrichment analysis, and to construct miRNA-lncRNA networks, as well as in vitro experiments, immunostaining, and Fluidigm qPCR analysis to connect the dots of Nanog significance. We concluded that Nanog is one of the most crucial differentially expressed genes during SSC conversion, collaborating with critical regulators such as Sox2, Dazl, Pou5f1, Dnmt3, and Cdh1. This intricate protein network positions Nanog as a pivotal factor in pathway enrichment for generating ES-like cells, including Wnt signaling, focal adhesion, and PI3K-Akt-mTOR signaling. Nanog expression is presumed to play a vital role in deriving ES-like cells from SSCs in vitro. Finding its pivotal role in this path illuminates future research and clinical applications.


Subject(s)
Nanog Homeobox Protein , Nanog Homeobox Protein/metabolism , Nanog Homeobox Protein/genetics , Animals , Male , Embryonic Stem Cells/metabolism , Embryonic Stem Cells/cytology , Cell Differentiation , Mice , MicroRNAs/genetics , MicroRNAs/metabolism , Spermatogonia/cytology , Spermatogonia/metabolism , Computer Simulation , Gene Regulatory Networks , RNA, Long Noncoding/genetics , RNA, Long Noncoding/metabolism , Pluripotent Stem Cells/metabolism , Pluripotent Stem Cells/cytology , Gene Expression Profiling , Computational Biology/methods , Humans
8.
Cells ; 13(9)2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38727278

ABSTRACT

Spermatogenesis involves a complex process of cellular differentiation maintained by spermatogonial stem cells (SSCs). Being critical to male reproduction, it is generally assumed that spermatogenesis starts and ends in equivalent transcriptional states in related species. Based on single-cell gene expression profiling, it has been proposed that undifferentiated human spermatogonia can be subclassified into four heterogenous subtypes, termed states 0, 0A, 0B, and 1. To increase the resolution of the undifferentiated compartment and trace the origin of the spermatogenic trajectory, we re-analysed the single-cell (sc) RNA-sequencing libraries of 34 post-pubescent human testes to generate an integrated atlas of germ cell differentiation. We then used this atlas to perform comparative analyses of the putative SSC transcriptome both across human development (using 28 foetal and pre-pubertal scRNA-seq libraries) and across species (including data from sheep, pig, buffalo, rhesus and cynomolgus macaque, rat, and mouse). Alongside its detailed characterisation, we show that the transcriptional heterogeneity of the undifferentiated spermatogonial cell compartment varies not only between species but across development. Our findings associate 'state 0B' with a suppressive transcriptomic programme that, in adult humans, acts to functionally oppose proliferation and maintain cells in a ready-to-react state. Consistent with this conclusion, we show that human foetal germ cells-which are mitotically arrested-can be characterised solely as state 0B. While germ cells with a state 0B signature are also present in foetal mice (and are likely conserved at this stage throughout mammals), they are not maintained into adulthood. We conjecture that in rodents, the foetal-like state 0B differentiates at birth into the renewing SSC population, whereas in humans it is maintained as a reserve population, supporting testicular homeostasis over a longer reproductive lifespan while reducing mutagenic load. Together, these results suggest that SSCs adopt differing evolutionary strategies across species to ensure fertility and genome integrity over vastly differing life histories and reproductive timeframes.


Subject(s)
Spermatogonia , Humans , Animals , Male , Spermatogonia/cytology , Spermatogonia/metabolism , Adult Germline Stem Cells/metabolism , Adult Germline Stem Cells/cytology , Cell Differentiation/genetics , Spermatogenesis/genetics , Transcriptome/genetics , Adult , Mice , Fetus/cytology , Testis/cytology , Testis/metabolism , Rodentia , Rats , Single-Cell Analysis
9.
J Biomed Mater Res B Appl Biomater ; 112(5): e35414, 2024 May.
Article in English | MEDLINE | ID: mdl-38733611

ABSTRACT

Utilizing natural scaffold production derived from extracellular matrix components presents a promising strategy for advancing in vitro spermatogenesis. In this study, we employed decellularized human placental tissue as a scaffold, upon which neonatal mouse spermatogonial cells (SCs) were cultured three-dimensional (3D) configuration. To assess cellular proliferation, we examined the expression of key markers (Id4 and Gfrα1) at both 1 and 14 days into the culture. Our quantitative reverse transcription-polymerase chain reaction (qRT-PCR) analysis revealed a notable increase in Gfrα1 gene expression, with the 3D culture group exhibiting the highest levels. Furthermore, the relative frequency of Gfrα1-positive cells significantly rose from 38.1% in isolated SCs to 46.13% and 76.93% in the two-dimensional (2D) and 3D culture systems, respectively. Moving forward to days 14 and 35 of the culture period, we evaluated the expression of differentiating markers (Sycp3, acrosin, and Protamine 1). Sycp3 and Prm1 gene expression levels were upregulated in both 2D and 3D cultures, with the 3D group displaying the highest expression. Additionally, acrosin gene expression increased notably within the 3D culture. Notably, at the 35-day mark, the percentage of Prm1-positive cells in the 3D group (36.4%) significantly surpassed that in the 2D group (10.96%). This study suggests that the utilization of placental scaffolds holds significant promise as a bio-scaffold for enhancing mouse in vitro spermatogenesis.


Subject(s)
Cell Differentiation , Cell Proliferation , Placenta , Animals , Female , Mice , Male , Humans , Placenta/cytology , Placenta/metabolism , Pregnancy , Spermatogonia/cytology , Spermatogonia/metabolism , Tissue Scaffolds/chemistry , Decellularized Extracellular Matrix/chemistry , Decellularized Extracellular Matrix/metabolism , Stem Cells/metabolism , Stem Cells/cytology
10.
Cell Mol Life Sci ; 81(1): 211, 2024 May 09.
Article in English | MEDLINE | ID: mdl-38722330

ABSTRACT

Spermatogonial stem cells (SSCs) are capable of transmitting genetic information to the next generations and they are the initial cells for spermatogenesis. Nevertheless, it remains largely unknown about key genes and signaling pathways that regulate fate determinations of human SSCs and male infertility. In this study, we explored the expression, function, and mechanism of USP11 in controlling the proliferation and apoptosis of human SSCs as well as the association between its abnormality and azoospermia. We found that USP11 was predominantly expressed in human SSCs as shown by database analysis and immunohistochemistry. USP11 silencing led to decreases in proliferation and DNA synthesis and an enhancement in apoptosis of human SSCs. RNA-sequencing identified HOXC5 as a target of USP11 in human SSCs. Double immunofluorescence, Co-immunoprecipitation (Co-IP), and molecular docking demonstrated an interaction between USP11 and HOXC5 in human SSCs. HOXC5 knockdown suppressed the growth of human SSCs and increased apoptosis via the classical WNT/ß-catenin pathway. In contrast, HOXC5 overexpression reversed the effect of proliferation and apoptosis induced by USP11 silencing. Significantly, lower levels of USP11 expression were observed in the testicular tissues of patients with spermatogenic disorders. Collectively, these results implicate that USP11 regulates the fate decisions of human SSCs through the HOXC5/WNT/ß-catenin pathway. This study thus provides novel insights into understanding molecular mechanisms underlying human spermatogenesis and the etiology of azoospermia and it offers new targets for gene therapy of male infertility.


Subject(s)
Apoptosis , Cell Proliferation , Spermatogenesis , Thiolester Hydrolases , Wnt Signaling Pathway , Humans , Male , Adult Germline Stem Cells/metabolism , Apoptosis/genetics , Azoospermia/metabolism , Azoospermia/genetics , Azoospermia/pathology , beta Catenin/metabolism , beta Catenin/genetics , Cell Proliferation/genetics , Homeodomain Proteins/metabolism , Homeodomain Proteins/genetics , Spermatogenesis/genetics , Spermatogonia/metabolism , Spermatogonia/cytology , Testis/metabolism , Testis/cytology , Thiolester Hydrolases/genetics , Thiolester Hydrolases/metabolism , Wnt Signaling Pathway/genetics
11.
Curr Opin Genet Dev ; 86: 102190, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38608568

ABSTRACT

Epigenetic priming presets chromatin states that allow the rapid induction of gene expression programs in response to differentiation cues. In the germline, it provides the blueprint for sexually dimorphic unidirectional differentiation. In this review, we focus on epigenetic priming in the mammalian male germline and discuss how cellular memories are regulated and inherited to the next generation. During spermatogenesis, epigenetic priming predetermines cellular memories that ensure the lifelong maintenance of spermatogonial stem cells and their subsequent commitment to meiosis and to the production of haploid sperm. The paternal chromatin state is also essential for the recovery of totipotency after fertilization and contributes to paternal epigenetic inheritance. Thus, epigenetic priming establishes stable but reversible chromatin states during spermatogenesis and enables epigenetic inheritance and reprogramming in the next generation.


Subject(s)
Epigenesis, Genetic , Spermatogenesis , Epigenesis, Genetic/genetics , Male , Spermatogenesis/genetics , Animals , Humans , Meiosis/genetics , Germ Cells/growth & development , Germ Cells/metabolism , Chromatin/genetics , Cell Differentiation/genetics , Spermatogonia/cytology , Spermatogonia/metabolism , Spermatozoa/metabolism , Spermatozoa/growth & development
12.
Cell Rep ; 43(4): 114113, 2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38625792

ABSTRACT

The continuous regeneration of spermatogonial stem cells (SSCs) underpins spermatogenesis and lifelong male fertility, but the developmental origins of the SSC pool remain unclear. Here, we document that hnRNPU is essential for establishing the SSC pool. In male mice, conditional loss of hnRNPU in prospermatogonia (ProSG) arrests spermatogenesis and results in sterility. hnRNPU-deficient ProSG fails to differentiate and migrate to the basement membrane to establish SSC pool in infancy. Moreover, hnRNPU deletion leads to the accumulation of ProSG and disrupts the process of T1-ProSG to T2-ProSG transition. Single-cell transcriptional analyses reveal that germ cells are in a mitotically quiescent state and lose their unique identity upon hnRNPU depletion. We further show that hnRNPU could bind to Vrk1, Slx4, and Dazl transcripts that have been identified to suffer aberrant alternative splicing in hnRNPU-deficient testes. These observations offer important insights into SSC pool establishment and may have translational implications for male fertility.


Subject(s)
Spermatogenesis , Spermatogonia , Animals , Male , Mice , Adult Germline Stem Cells/metabolism , Alternative Splicing/genetics , Cell Differentiation , Spermatogenesis/genetics , Spermatogonia/metabolism , Spermatogonia/cytology , Stem Cells/metabolism , Stem Cells/cytology , Testis/metabolism , Testis/cytology , Heterogeneous-Nuclear Ribonucleoprotein U/metabolism
13.
J Cell Physiol ; 239(4): e31202, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38291718

ABSTRACT

In the orchestrated environment of the testicular niche, the equilibrium between self-renewal and differentiation of spermatogonial stem cells (SSCs) is meticulously maintained, ensuring a stable stem cell reserve and robust spermatogenesis. Within this milieu, extracellular vesicles, specifically exosomes, have emerged as critical conveyors of intercellular communication. Despite their recognized significance, the implications of testicular exosomes in modulating SSC fate remain incompletely characterized. Given the fundamental support and regulatory influence of Sertoli cells (SCs) on SSCs, we were compelled to explore the role of SC-derived exosomes (SC-EXOs) in the SSC-testicular niche. Our investigation hinged on the hypothesis that SC-EXOs, secreted by SCs from the testes of 5-day-old mice-a developmental juncture marking the onset of SSC differentiation-participate in the regulation of this process. We discovered that exposure to SC-EXOs resulted in an upsurge of PLZF, MVH, and STRA8 expression in SSC cultures, concomitant with a diminution of ID4 and GFRA1 levels. Intriguingly, obstructing exosomal communication in a SC-SSC coculture system with the exosome inhibitor GW4869 attenuated SSC differentiation, suggesting that SC-EXOs may modulate this process via paracrine signaling. Further scrutiny revealed the presence of miR-493-5p within SC-EXOs, which suppresses Gdnf mRNA in SCs to indirectly restrain SSC differentiation through the modulation of GDNF expression-an indication of autocrine regulation. Collectively, our findings illuminate the complex regulatory schema by which SC-EXOs affect SSC differentiation, offering novel perspectives and laying the groundwork for future preclinical and clinical investigations.


Subject(s)
Autocrine Communication , Cell Differentiation , Exosomes , Paracrine Communication , Sertoli Cells , Spermatogonia , Animals , Male , Mice , Cell Differentiation/physiology , Exosomes/metabolism , Glial Cell Line-Derived Neurotrophic Factor/metabolism , Mice, Inbred ICR , Sertoli Cells/cytology , Sertoli Cells/metabolism , Spermatogonia/cytology , Spermatogonia/metabolism
14.
Sheng Li Xue Bao ; 75(1): 17-26, 2023 Feb 25.
Article in Chinese | MEDLINE | ID: mdl-36859831

ABSTRACT

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.


Subject(s)
AMP-Activated Protein Kinases , Spermatogonia , Tumor Suppressor Protein p53 , Animals , Mice , Chromatin , Energy Metabolism , Gene Deletion , Stem Cells , Tumor Suppressor Protein p53/genetics , Spermatogonia/cytology , Male
15.
Nature ; 613(7943): 308-316, 2023 01.
Article in English | MEDLINE | ID: mdl-36544022

ABSTRACT

The testis produces gametes through spermatogenesis and evolves rapidly at both the morphological and molecular level in mammals1-6, probably owing to the evolutionary pressure on males to be reproductively successful7. However, the molecular evolution of individual spermatogenic cell types across mammals remains largely uncharacterized. Here we report evolutionary analyses of single-nucleus transcriptome data for testes from 11 species that cover the three main mammalian lineages (eutherians, marsupials and monotremes) and birds (the evolutionary outgroup), and include seven primates. We find that the rapid evolution of the testis was driven by accelerated fixation rates of gene expression changes, amino acid substitutions and new genes in late spermatogenic stages, probably facilitated by reduced pleiotropic constraints, haploid selection and transcriptionally permissive chromatin. We identify temporal expression changes of individual genes across species and conserved expression programs controlling ancestral spermatogenic processes. Genes predominantly expressed in spermatogonia (germ cells fuelling spermatogenesis) and Sertoli (somatic support) cells accumulated on X chromosomes during evolution, presumably owing to male-beneficial selective forces. Further work identified transcriptomal differences between X- and Y-bearing spermatids and uncovered that meiotic sex-chromosome inactivation (MSCI) also occurs in monotremes and hence is common to mammalian sex-chromosome systems. Thus, the mechanism of meiotic silencing of unsynapsed chromatin, which underlies MSCI, is an ancestral mammalian feature. Our study illuminates the molecular evolution of spermatogenesis and associated selective forces, and provides a resource for investigating the biology of the testis across mammals.


Subject(s)
Evolution, Molecular , Mammals , Spermatogenesis , Testis , Animals , Male , Chromatin/genetics , Mammals/genetics , Meiosis/genetics , Spermatogenesis/genetics , Testis/cytology , Transcriptome , Single-Cell Analysis , Birds/genetics , Primates/genetics , Gene Expression Regulation , Spermatogonia/cytology , Sertoli Cells/cytology , X Chromosome/genetics , Y Chromosome/genetics , Dosage Compensation, Genetic , Gene Silencing
16.
Asian J Androl ; 25(3): 322-330, 2023.
Article in English | MEDLINE | ID: mdl-36018067

ABSTRACT

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.


Subject(s)
Forkhead Transcription Factors , Spermatogonia , Adult , Humans , Male , Cell Differentiation , Cell Proliferation , Forkhead Transcription Factors/genetics , Forkhead Transcription Factors/metabolism , Spermatogenesis/genetics , Spermatogonia/cytology , Spermatogonia/metabolism , Stem Cells/metabolism , Testis/metabolism
17.
Acta Physiologica Sinica ; (6): 17-26, 2023.
Article in Chinese | WPRIM (Western Pacific) | ID: wpr-970102

ABSTRACT

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.


Subject(s)
Animals , Mice , Male , AMP-Activated Protein Kinases , Chromatin , Energy Metabolism , Gene Deletion , Stem Cells , Tumor Suppressor Protein p53/genetics , Spermatogonia/cytology
18.
Genes Dev ; 36(11-12): 752-763, 2022 06 01.
Article in English | MEDLINE | ID: mdl-35738678

ABSTRACT

Self-renewal of spermatogonial stem cells is vital to lifelong production of male gametes and thus fertility. However, the underlying mechanisms remain enigmatic. Here, we show that DOT1L, the sole H3K79 methyltransferase, is required for spermatogonial stem cell self-renewal. Mice lacking DOT1L fail to maintain spermatogonial stem cells, characterized by a sequential loss of germ cells from spermatogonia to spermatids and ultimately a Sertoli cell only syndrome. Inhibition of DOT1L reduces the stem cell activity after transplantation. DOT1L promotes expression of the fate-determining HoxC transcription factors in spermatogonial stem cells. Furthermore, H3K79me2 accumulates at HoxC9 and HoxC10 genes. Our findings identify an essential function for DOT1L in adult stem cells and provide an epigenetic paradigm for regulation of spermatogonial stem cells.


Subject(s)
Histone-Lysine N-Methyltransferase/metabolism , Spermatogonia , Stem Cells , Animals , Cell Differentiation , Male , Mice , Spermatogonia/cytology , Spermatogonia/metabolism , Stem Cells/cytology , Stem Cells/metabolism
19.
Gene ; 823: 146390, 2022 May 20.
Article in English | MEDLINE | ID: mdl-35248658

ABSTRACT

Male fertility relies on continual and robust spermatogenesis. Environmental hypoxia adversely affects reproductive health in humans and animal studies provide compelling evidences that hypoxia impairs spermatogenesis in directly exposed individuals. However, a detail examination of hypoxia induced changes in testicular gene expression is still lacking and spermatogenesis in offspring of hypoxia exposed animals of awaits investigation. In this study, a hypobaric hypoxic chamber was used to simulate hypoxic conditions in mice and effects of hypoxia on spermatogenesis, fertility and testicular gene expression were evaluated. The results showed that hypoxia exposure reduced the number of undifferentiated spermatogonia but did not change the regenerative capacity of spermatogonial stem cells (SSCs) after transplantation. Hypoxia significantly increased the percent of abnormal sperm and these defects were recovered 2 months after returning to the normoxia. Transcriptome analysis of testicular tissues from control and hypoxia treated animals revealed that 766 genes were up-regulated and 965 genes were down-regulated. Surprisingly, expressions of genes that regulate epigenetic modifications were altered, indicating hypoxia-induced damage to spermatogenesis may be intergenerational. Indeed, animals that were sired by hypoxia exposed males exhibited impaired spermatogenesis. Together, these findings suggest that hypoxia exposure alters testicular gene expression and causes long-lasting damage to spermatogenesis.


Subject(s)
Gene Expression Profiling/methods , Gene Regulatory Networks , Hypoxia/genetics , Testis/chemistry , Animals , Epigenesis, Genetic , Gene Expression Regulation , Male , Mice , Spermatogenesis , Spermatogonia/cytology , Spermatogonia/transplantation , Testis/cytology
20.
J Biol Chem ; 298(2): 101559, 2022 02.
Article in English | MEDLINE | ID: mdl-34979097

ABSTRACT

Spermatogonial stem cells (SSCs) are able to undergo both self-renewal and differentiation. Unlike self-renewal, which replenishes the SSC and progenitor pool, differentiation is an irreversible process committing cells to meiosis. Although the preparations for meiotic events in differentiating spermatogonia (Di-SG) are likely to be accompanied by alterations in chromatin structure, the three-dimensional chromatin architectural differences between SSCs and Di-SG, and the higher-order chromatin dynamics during spermatogonial differentiation, have not been systematically investigated. Here, we performed in situ high-throughput chromosome conformation capture, RNA-seq, and chromatin immunoprecipitation-sequencing analyses on porcine undifferentiated spermatogonia (which consist of SSCs and progenitors) and Di-SG. We identified that Di-SG exhibited less compact chromatin structural organization, weakened compartmentalization, and diminished topologically associating domains in comparison with undifferentiated spermatogonia, suggesting that diminished higher-order chromatin architecture in meiotic cells, as shown by recent reports, might be preprogrammed in Di-SG. Our data also revealed that A/B compartments, representing open or closed chromatin regions respectively, and topologically associating domains were related to dynamic gene expression during spermatogonial differentiation. Furthermore, we unraveled the contribution of promoter-enhancer interactions to premeiotic transcriptional regulation, which has not been accomplished in previous studies due to limited cell input and resolution. Together, our study uncovered the three-dimensional chromatin structure of SSCs/progenitors and Di-SG, as well as the interplay between higher-order chromatin architecture and dynamic gene expression during spermatogonial differentiation. These findings provide novel insights into the mechanisms for SSC self-renewal and differentiation and have implications for diagnosis and treatment of male sub-/infertility.


Subject(s)
Adult Germline Stem Cells , Chromatin , Spermatogenesis , Spermatogonia , Adult Germline Stem Cells/cytology , Adult Germline Stem Cells/metabolism , Animals , Cell Differentiation/physiology , Chromatin/metabolism , Male , Spermatogenesis/physiology , Spermatogonia/cytology , Swine
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