Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 20 de 4.857
Filtrar
Más filtros

Intervalo de año de publicación
1.
Genes Dev ; 38(13-14): 655-674, 2024 Aug 20.
Artículo en Inglés | MEDLINE | ID: mdl-39111825

RESUMEN

Alternative cleavage and polyadenylation (APA) often results in production of mRNA isoforms with either longer or shorter 3' UTRs from the same genetic locus, potentially impacting mRNA translation, localization, and stability. Developmentally regulated APA can thus make major contributions to cell type-specific gene expression programs as cells differentiate. During Drosophila spermatogenesis, ∼500 genes undergo APA when proliferating spermatogonia differentiate into spermatocytes, producing transcripts with shortened 3' UTRs, leading to profound stage-specific changes in the proteins expressed. The molecular mechanisms that specify usage of upstream polyadenylation sites in spermatocytes are thus key to understanding the changes in cell state. Here, we show that upregulation of PCF11 and Cbc, the two components of cleavage factor II (CFII), orchestrates APA during Drosophila spermatogenesis. Knockdown of PCF11 or cbc in spermatocytes caused dysregulation of APA, with many transcripts normally cleaved at a proximal site in spermatocytes now cleaved at their distal site, as in spermatogonia. Forced overexpression of CFII components in spermatogonia switched cleavage of some transcripts to the proximal site normally used in spermatocytes. Our findings reveal a developmental mechanism where changes in expression of specific cleavage factors can direct cell type-specific APA at selected genes.


Asunto(s)
Linaje de la Célula , Poliadenilación , Espermatocitos , Espermatogénesis , Animales , Poliadenilación/genética , Masculino , Espermatogénesis/genética , Espermatocitos/metabolismo , Espermatocitos/citología , Linaje de la Célula/genética , Regulación del Desarrollo de la Expresión Génica/genética , Células Madre Adultas/metabolismo , Células Madre Adultas/citología , Proteínas de Drosophila/metabolismo , Proteínas de Drosophila/genética , Drosophila melanogaster/genética , Drosophila melanogaster/citología , Drosophila melanogaster/metabolismo , Espermatogonias/citología , Espermatogonias/metabolismo , Factores de Escisión y Poliadenilación de ARNm/metabolismo , Factores de Escisión y Poliadenilación de ARNm/genética
2.
Nature ; 632(8023): 201-208, 2024 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-39020172

RESUMEN

Telomerase is intimately associated with stem cells and cancer, because it catalytically elongates telomeres-nucleoprotein caps that protect chromosome ends1. Overexpression of telomerase reverse transcriptase (TERT) enhances the proliferation of cells in a telomere-independent manner2-8, but so far, loss-of-function studies have provided no evidence that TERT has a direct role in stem cell function. In many tissues, homeostasis is shaped by stem cell competition, a process in which stem cells compete on the basis of inherent fitness. Here we show that conditional deletion of Tert in the spermatogonial stem cell (SSC)-containing population in mice markedly impairs competitive clone formation. Using lineage tracing from the Tert locus, we find that TERT-expressing SSCs yield long-lived clones, but that clonal inactivation of TERT promotes stem cell differentiation and a genome-wide reduction in open chromatin. This role for TERT in competitive clone formation occurs independently of both its reverse transcriptase activity and the canonical telomerase complex. Inactivation of TERT causes reduced activity of the MYC oncogene, and transgenic expression of MYC in the TERT-deleted pool of SSCs efficiently rescues clone formation. Together, these data reveal a catalytic-activity-independent requirement for TERT in enhancing stem cell competition, uncover a genetic connection between TERT and MYC and suggest that a selective advantage for stem cells with high levels of TERT contributes to telomere elongation in the male germline during homeostasis and ageing.


Asunto(s)
Competencia Celular , Células Clonales , Células Madre , Telomerasa , Animales , Masculino , Ratones , Diferenciación Celular , Linaje de la Célula , Cromatina/metabolismo , Cromatina/genética , Células Clonales/citología , Células Clonales/enzimología , Células Clonales/metabolismo , Eliminación de Gen , Genes myc , Proteínas Proto-Oncogénicas c-myc/metabolismo , Proteínas Proto-Oncogénicas c-myc/genética , Espermatogonias/citología , Espermatogonias/metabolismo , Células Madre/citología , Células Madre/enzimología , Células Madre/metabolismo , Telomerasa/deficiencia , Telomerasa/genética , Telomerasa/metabolismo , Transcripción Reversa , Biocatálisis , Homeostasis , Envejecimiento
3.
Nature ; 631(8019): 170-178, 2024 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-38768632

RESUMEN

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.


Asunto(s)
Reprogramación Celular , Epigénesis Genética , Células Germinativas , Técnicas In Vitro , Femenino , Humanos , Masculino , Amnios/citología , Proteínas Morfogenéticas Óseas/metabolismo , Reprogramación Celular/genética , Metilación de ADN/genética , Células Germinativas/metabolismo , Células Germinativas/citología , Sistema de Señalización de MAP Quinasas , Mitosis/genética , Oxigenasas de Función Mixta/deficiencia , Oogénesis/genética , Oogonios/citología , Oogonios/metabolismo , Células Madre Pluripotentes/citología , Células Madre Pluripotentes/metabolismo , Regiones Promotoras Genéticas/genética , Espermatogénesis/genética , Espermatogonias/citología , Espermatogonias/metabolismo , Regulación del Desarrollo de la Expresión Génica
4.
Genes Dev ; 36(11-12): 752-763, 2022 06 01.
Artículo en Inglés | MEDLINE | ID: mdl-35738678

RESUMEN

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.


Asunto(s)
N-Metiltransferasa de Histona-Lisina/metabolismo , Espermatogonias , Células Madre , Animales , Diferenciación Celular , Masculino , Ratones , Espermatogonias/citología , Espermatogonias/metabolismo , Células Madre/citología , Células Madre/metabolismo
5.
Nature ; 613(7943): 308-316, 2023 01.
Artículo en Inglés | MEDLINE | ID: mdl-36544022

RESUMEN

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.


Asunto(s)
Evolución Molecular , Mamíferos , Espermatogénesis , Testículo , Animales , Masculino , Cromatina/genética , Mamíferos/genética , Meiosis/genética , Espermatogénesis/genética , Testículo/citología , Transcriptoma , Análisis de la Célula Individual , Aves/genética , Primates/genética , Regulación de la Expresión Génica , Espermatogonias/citología , Células de Sertoli/citología , Cromosoma X/genética , Cromosoma Y/genética , Compensación de Dosificación (Genética) , Silenciador del Gen
6.
Mol Cell ; 81(23): 4826-4842.e8, 2021 12 02.
Artículo en Inglés | MEDLINE | ID: mdl-34626567

RESUMEN

In animals, PIWI-interacting RNAs (piRNAs) silence transposons, fight viral infections, and regulate gene expression. piRNA biogenesis concludes with 3' terminal trimming and 2'-O-methylation. Both trimming and methylation influence piRNA stability. Our biochemical data show that multiple mechanisms destabilize unmethylated mouse piRNAs, depending on whether the piRNA 5' or 3' sequence is complementary to a trigger RNA. Unlike target-directed degradation of microRNAs, complementarity-dependent destabilization of piRNAs in mice and flies is blocked by 3' terminal 2'-O-methylation and does not require base pairing to both the piRNA seed and the 3' sequence. In flies, 2'-O-methylation also protects small interfering RNAs (siRNAs) from complementarity-dependent destruction. By contrast, pre-piRNA trimming protects mouse piRNAs from a degradation pathway unaffected by trigger complementarity. In testis lysate and in vivo, internal or 3' terminal uridine- or guanine-rich tracts accelerate pre-piRNA decay. Loss of both trimming and 2'-O-methylation causes the mouse piRNA pathway to collapse, demonstrating that these modifications collaborate to stabilize piRNAs.


Asunto(s)
Proteínas Argonautas/metabolismo , ARN Interferente Pequeño/metabolismo , Animales , Separación Celular , Drosophila melanogaster , Femenino , Citometría de Flujo , Expresión Génica , Silenciador del Gen , Técnicas Genéticas , Masculino , Metilación , Ratones , Ratones Endogámicos C57BL , Ratones Transgénicos , Procesamiento Proteico-Postraduccional , ARN Bicatenario , Espermatocitos/metabolismo , Espermatogonias/metabolismo , Testículo/metabolismo
7.
Mol Cell ; 79(4): 645-659.e9, 2020 08 20.
Artículo en Inglés | MEDLINE | ID: mdl-32692974

RESUMEN

Stress granules (SGs) are membrane-less ribonucleoprotein condensates that form in response to various stress stimuli via phase separation. SGs act as a protective mechanism to cope with acute stress, but persistent SGs have cytotoxic effects that are associated with several age-related diseases. Here, we demonstrate that the testis-specific protein, MAGE-B2, increases cellular stress tolerance by suppressing SG formation through translational inhibition of the key SG nucleator G3BP. MAGE-B2 reduces G3BP protein levels below the critical concentration for phase separation and suppresses SG initiation. Knockout of the MAGE-B2 mouse ortholog or overexpression of G3BP1 confers hypersensitivity of the male germline to heat stress in vivo. Thus, MAGE-B2 provides cytoprotection to maintain mammalian spermatogenesis, a highly thermosensitive process that must be preserved throughout reproductive life. These results demonstrate a mechanism that allows for tissue-specific resistance against stress and could aid in the development of male fertility therapies.


Asunto(s)
Gránulos Citoplasmáticos/genética , ADN Helicasas/genética , Proteínas de Unión a Poli-ADP-Ribosa/genética , Biosíntesis de Proteínas , ARN Helicasas/genética , Proteínas con Motivos de Reconocimiento de ARN/genética , Estrés Fisiológico/genética , Regiones no Traducidas 5' , Animales , Antígenos de Neoplasias/genética , Antígenos de Neoplasias/metabolismo , Gránulos Citoplasmáticos/metabolismo , Gránulos Citoplasmáticos/patología , ARN Helicasas DEAD-box/genética , ARN Helicasas DEAD-box/metabolismo , ADN Helicasas/metabolismo , Femenino , Células HCT116 , Células HeLa , Humanos , Masculino , Ratones Endogámicos C57BL , Ratones Noqueados , Ratones Transgénicos , Proteínas de Neoplasias/genética , Proteínas de Neoplasias/metabolismo , Proteínas de Unión a Poli-ADP-Ribosa/metabolismo , ARN Helicasas/metabolismo , Proteínas con Motivos de Reconocimiento de ARN/metabolismo , Espermatogonias/citología , Espermatogonias/patología , Testículo/citología , Testículo/metabolismo
8.
Development ; 151(20)2024 Oct 15.
Artículo en Inglés | MEDLINE | ID: mdl-38477640

RESUMEN

Teleost testis development during the annual cycle involves dramatic changes in cellular compositions and molecular events. In this study, the testicular cells derived from adult black rockfish at distinct stages - regressed, regenerating and differentiating - were meticulously dissected via single-cell transcriptome sequencing. A continuous developmental trajectory of spermatogenic cells, from spermatogonia to spermatids, was delineated, elucidating the molecular events involved in spermatogenesis. Subsequently, the dynamic regulation of gene expression associated with spermatogonia proliferation and differentiation was observed across spermatogonia subgroups and developmental stages. A bioenergetic transition from glycolysis to mitochondrial respiration of spermatogonia during the annual developmental cycle was demonstrated, and a deeper level of heterogeneity and molecular characteristics was revealed by re-clustering analysis. Additionally, the developmental trajectory of Sertoli cells was delineated, alongside the divergence of Leydig cells and macrophages. Moreover, the interaction network between testicular micro-environment somatic cells and spermatogenic cells was established. Overall, our study provides detailed information on both germ and somatic cells within teleost testes during the annual reproductive cycle, which lays the foundation for spermatogenesis regulation and germplasm preservation of endangered species.


Asunto(s)
Espermatogonias , Testículo , Adulto , Masculino , Humanos , Células Intersticiales del Testículo , Células de Sertoli , Espermatogénesis
9.
Development ; 151(13)2024 Jul 01.
Artículo en Inglés | MEDLINE | ID: mdl-38953252

RESUMEN

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.


Asunto(s)
Fertilidad , Espermatogonias , Testículo , Animales , Masculino , Ratones , Diferenciación Celular , Complejo Multienzimático de Ribonucleasas del Exosoma/metabolismo , Complejo Multienzimático de Ribonucleasas del Exosoma/genética , Exosomas/metabolismo , Fertilidad/genética , Infertilidad Masculina/genética , Ratones Noqueados , Estabilidad del ARN/genética , Células de Sertoli/metabolismo , Espermatogénesis , Espermatogonias/metabolismo , Espermatogonias/citología , Testículo/metabolismo
10.
Development ; 151(12)2024 Jun 15.
Artículo en Inglés | MEDLINE | ID: mdl-38934417

RESUMEN

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.


Asunto(s)
Ratones Endogámicos C57BL , Espermatogénesis , Espermatogonias , Testículo , Animales , Masculino , Ratones , Espermatogonias/citología , Espermatogonias/metabolismo , Espermatogénesis/genética , Espermatogénesis/fisiología , Testículo/metabolismo , Testículo/citología , Autorrenovación de las Células , Células Madre Germinales Adultas/metabolismo , Células Madre Germinales Adultas/citología , Células Cultivadas , Receptores Nicotínicos/metabolismo , Receptores Nicotínicos/genética , Ratones Endogámicos , Diferenciación Celular , Proliferación Celular , Células Madre/citología , Células Madre/metabolismo , Ratones Transgénicos
11.
Development ; 151(14)2024 Jul 15.
Artículo en Inglés | MEDLINE | ID: mdl-38884383

RESUMEN

The specialized cell cycle of meiosis transforms diploid germ cells into haploid gametes. In mammals, diploid spermatogenic cells acquire the competence to initiate meiosis in response to retinoic acid. Previous mouse studies revealed that MEIOC interacts with RNA-binding proteins YTHDC2 and RBM46 to repress mitotic genes and to promote robust meiotic gene expression in spermatogenic cells that have initiated meiosis. Here, we have used the enhanced resolution of scRNA-seq and bulk RNA-seq of developmentally synchronized spermatogenesis to define how MEIOC molecularly supports early meiosis in spermatogenic cells. We demonstrate that MEIOC mediates transcriptomic changes before meiotic initiation, earlier than previously appreciated. MEIOC, acting with YTHDC2 and RBM46, destabilizes its mRNA targets, including the transcriptional repressors E2f6 and Mga, in mitotic spermatogonia. MEIOC thereby derepresses E2F6- and MGA-repressed genes, including Meiosin and other meiosis-associated genes. This confers on spermatogenic cells the molecular competence to, in response to retinoic acid, fully activate the transcriptional regulator STRA8-MEIOSIN, which is required for the meiotic G1/S phase transition and for meiotic gene expression. We conclude that, in mice, mRNA decay mediated by MEIOC-YTHDC2-RBM46 enhances the competence of spermatogenic cells to initiate meiosis.


Asunto(s)
Meiosis , ARN Mensajero , Proteínas de Unión al ARN , Espermatogénesis , Animales , Masculino , Ratones , ARN Mensajero/metabolismo , ARN Mensajero/genética , Espermatogénesis/genética , Espermatogénesis/fisiología , Proteínas de Unión al ARN/metabolismo , Proteínas de Unión al ARN/genética , Espermatogonias/metabolismo , Espermatogonias/citología , Tretinoina/metabolismo , Tretinoina/farmacología , Estabilidad del ARN/genética , Regulación del Desarrollo de la Expresión Génica , Proteínas Adaptadoras Transductoras de Señales/metabolismo , Proteínas Adaptadoras Transductoras de Señales/genética , ARN Helicasas
12.
Nature ; 597(7876): 381-386, 2021 09.
Artículo en Inglés | MEDLINE | ID: mdl-34433962

RESUMEN

Over the course of an individual's lifetime, normal human cells accumulate mutations1. Here we compare the mutational landscape in 29 cell types from the soma and germline using multiple samples from the same individuals. Two ubiquitous mutational signatures, SBS1 and SBS5/40, accounted for the majority of acquired mutations in most cell types, but their absolute and relative contributions varied substantially. SBS18, which potentially reflects oxidative damage2, and several additional signatures attributed to exogenous and endogenous exposures contributed mutations to subsets of cell types. The rate of mutation was lowest in spermatogonia, the stem cells from which sperm are generated and from which most genetic variation in the human population is thought to originate. This was due to low rates of ubiquitous mutational processes and may be partially attributable to a low rate of cell division in basal spermatogonia. These results highlight similarities and differences in the maintenance of the germline and soma.


Asunto(s)
Células Germinativas/metabolismo , Mutación de Línea Germinal , Tasa de Mutación , Especificidad de Órganos/genética , Anciano , Células Clonales/metabolismo , Femenino , Salud , Humanos , Masculino , Microdisección , Persona de Mediana Edad , Estrés Oxidativo , Espermatogonias/metabolismo
13.
EMBO J ; 41(13): e110600, 2022 07 04.
Artículo en Inglés | MEDLINE | ID: mdl-35703121

RESUMEN

Germ cells are unique in engendering totipotency, yet the mechanisms underlying this capacity remain elusive. Here, we perform comprehensive and in-depth nucleome analysis of mouse germ-cell development in vitro, encompassing pluripotent precursors, primordial germ cells (PGCs) before and after epigenetic reprogramming, and spermatogonia/spermatogonial stem cells (SSCs). Although epigenetic reprogramming, including genome-wide DNA de-methylation, creates broadly open chromatin with abundant enhancer-like signatures, the augmented chromatin insulation safeguards transcriptional fidelity. These insulatory constraints are then erased en masse for spermatogonial development. Notably, despite distinguishing epigenetic programming, including global DNA re-methylation, the PGCs-to-spermatogonia/SSCs development entails further euchromatization. This accompanies substantial erasure of lamina-associated domains, generating spermatogonia/SSCs with a minimal peripheral attachment of chromatin except for pericentromeres-an architecture conserved in primates. Accordingly, faulty nucleome maturation, including persistent insulation and improper euchromatization, leads to impaired spermatogenic potential. Given that PGCs after epigenetic reprogramming serve as oogenic progenitors as well, our findings elucidate a principle for the nucleome programming that creates gametogenic progenitors in both sexes, defining a basis for nuclear totipotency.


Asunto(s)
Epigénesis Genética , Células Germinativas , Animales , Cromatina/genética , Cromatina/metabolismo , Metilación de ADN , Epigenómica , Femenino , Células Germinativas/metabolismo , Masculino , Mamíferos/genética , Ratones , Espermatogonias
14.
Development ; 150(10)2023 05 15.
Artículo en Inglés | MEDLINE | ID: mdl-37222410

RESUMEN

The spermatogonial compartment maintains spermatogenesis throughout the reproductive lifespan. Single-cell RNA sequencing (scRNA-seq) has revealed the presence of several spermatogonial clusters characterized by specific molecular signatures. However, it is unknown whether the presence of such clusters can be confirmed in terms of protein expression and whether protein expression in the subsets overlaps. To investigate this, we analyzed the expression profile of spermatogonial markers during the seminiferous epithelial cycle in cynomolgus monkeys and compared the results with human data. We found that in cynomolgus monkeys, as in humans, undifferentiated spermatogonia are largely quiescent, and the few engaged in the cell cycle were immunoreactive to GFRA1 antibodies. Moreover, we showed that PIWIL4+ spermatogonia, considered the most primitive undifferentiated spermatogonia in scRNA-seq studies, are quiescent in primates. We also described a novel subset of early differentiating spermatogonia, detectable from stage III to stage VII of the seminiferous epithelial cycle, that were transitioning from undifferentiated to differentiating spermatogonia, suggesting that the first generation of differentiating spermatogonia arises early during the epithelial cycle. Our study makes key advances in the current understanding of male germline premeiotic expansion in primates.


Asunto(s)
Espermatogénesis , Espermatogonias , Adulto , Humanos , Animales , Masculino , Macaca fascicularis , Primates , Ciclo Celular
15.
Development ; 150(20)2023 10 15.
Artículo en Inglés | MEDLINE | ID: mdl-36897562

RESUMEN

Reactive oxygen species (ROS) are generated from NADPH oxidases and mitochondria; they are generally harmful for stem cells. Spermatogonial stem cells (SSCs) are unique among tissue-stem cells because they undergo ROS-dependent self-renewal via NOX1 activation. However, the mechanism by which SSCs are protected from ROS remains unknown. Here, we demonstrate a crucial role for Gln in ROS protection using cultured SSCs derived from immature testes. Measurements of amino acids required for SSC cultures revealed the indispensable role of Gln in SSC survival. Gln induced Myc expression to drive SSC self-renewal in vitro, whereas Gln deprivation triggered Trp53-dependent apoptosis and impaired SSC activity. However, apoptosis was attenuated in cultured SSCs that lacked NOX1. In contrast, cultured SSCs lacking Top1mt mitochondria-specific topoisomerase exhibited poor mitochondrial ROS production and underwent apoptosis. Gln deprivation reduced glutathione production; supra-molar Asn supplementation allowed offspring production from SSCs cultured without Gln. Therefore, Gln ensures ROS-dependent SSC-self-renewal by providing protection against NOX1 and inducing Myc.


Asunto(s)
Glutamina , Espermatogonias , Masculino , Ratones , Animales , Espermatogonias/metabolismo , Glutamina/metabolismo , Especies Reactivas de Oxígeno/metabolismo , Proliferación Celular , Células Madre , Células Cultivadas
16.
Development ; 150(14)2023 07 15.
Artículo en Inglés | MEDLINE | ID: mdl-37350382

RESUMEN

Retinoic acid (RA) is the proposed mammalian 'meiosis inducing substance'. However, evidence for this role comes from studies in the fetal ovary, where germ cell differentiation and meiotic initiation are temporally inseparable. In the postnatal testis, these events are separated by more than 1 week. Exploiting this difference, we discovered that, although RA is required for spermatogonial differentiation, it is dispensable for the subsequent initiation, progression and completion of meiosis. Indeed, in the absence of RA, the meiotic transcriptome program in both differentiating spermatogonia and spermatocytes entering meiosis was largely unaffected. Instead, transcripts encoding factors required during spermiogenesis were aberrant during preleptonema, and the subsequent spermatid morphogenesis program was disrupted such that no sperm were produced. Taken together, these data reveal a RA-independent model for male meiotic initiation.


Asunto(s)
Testículo , Tretinoina , Animales , Femenino , Masculino , Tretinoina/farmacología , Espermatogénesis/genética , Espermatogonias , Espermatozoides , Meiosis/genética , Mamíferos
17.
Development ; 150(6)2023 03 15.
Artículo en Inglés | MEDLINE | ID: mdl-36861441

RESUMEN

Several cell types have been proposed to create the required microenvironment for spermatogenesis. However, expression patterns of the key growth factors produced by these somatic cells have not been systematically studied and no such factor has been conditionally deleted from its primary source(s), raising the question of which cell type(s) are the physiological sources of these growth factors. Here, using single-cell RNA sequencing and a series of fluorescent reporter mice, we found that stem cell factor (Scf), one of the essential growth factors for spermatogenesis, was broadly expressed in testicular stromal cells, including Sertoli, endothelial, Leydig, smooth muscle and Tcf21-CreER+ stromal cells. Both undifferentiated and differentiating spermatogonia were associated with Scf-expressing Sertoli cells in the seminiferous tubule. Conditional deletion of Scf from Sertoli cells, but not any other Scf-expressing cells, blocked the differentiation of spermatogonia, leading to complete male infertility. Conditional overexpression of Scf in Sertoli cells, but not endothelial cells, significantly increased spermatogenesis. Our data reveal the importance of anatomical localization for Sertoli cells in regulating spermatogenesis and that SCF produced specifically by Sertoli cells is essential for spermatogenesis.


Asunto(s)
Células de Sertoli , Factor de Células Madre , Masculino , Animales , Ratones , Células de Sertoli/metabolismo , Factor de Células Madre/genética , Factor de Células Madre/metabolismo , Espermatogénesis/genética , Testículo/metabolismo , Espermatogonias/metabolismo
18.
Development ; 150(21)2023 11 01.
Artículo en Inglés | MEDLINE | ID: mdl-37781892

RESUMEN

Spermatogenesis begins when cell fate-committed prospermatogonia migrate to the basement membrane and initiate spermatogenesis in response to retinoic acid (RA) in the neonatal testis. The underlying cellular and molecular mechanisms in this process are not fully understood. Here, we report findings on the involvement of a cancer/testis antigen, PRAMEL1, in the initiation and maintenance of spermatogenesis. By analyzing mouse models with either global or conditional Pramel1 inactivation, we found that PRAMEL1 regulates the RA responsiveness of the subtypes of prospermatogonia in the neonatal testis, and affects their homing process during the initiation of spermatogenesis. Pramel1 deficiency led to increased fecundity in juvenile males and decreased fecundity in mature males. In addition, Pramel1 deficiency resulted in a regional Sertoli cell-only phenotype during the first round of spermatogenesis, which was rescued by administration of the RA inhibitor WIN18,446, suggesting that PRAMEL1 functions as an inhibitor of RA signaling in germ cells. Overall, our findings suggest that PRAMEL1 fine-tunes RA signaling, playing a crucial role in the proper establishment of the first and subsequent rounds of spermatogenesis.


Asunto(s)
Espermatogénesis , Tretinoina , Masculino , Ratones , Animales , Tretinoina/farmacología , Tretinoina/metabolismo , Espermatogénesis/genética , Espermatogonias/metabolismo , Testículo/metabolismo , Transducción de Señal , Células de Sertoli/metabolismo
19.
Nucleic Acids Res ; 52(6): 2995-3010, 2024 Apr 12.
Artículo en Inglés | MEDLINE | ID: mdl-38224953

RESUMEN

Meiosis is a key step during germ cell differentiation, accompanied by the activation of thousands of genes through germline-specific chromatin reorganization. The chromatin remodeling mechanisms underpinning early meiotic stages remain poorly understood. Here we focus on the function of one of the major autism genes, CHD8, in spermatogenesis, based on the epidemiological association between autism and low fertility rates. Specific ablation of Chd8 in germ cells results in gradual depletion of undifferentiated spermatogonia and the failure of meiotic double-strand break (DSB) formation, leading to meiotic prophase I arrest and cell death. Transcriptional analyses demonstrate that CHD8 is required for extensive activation of spermatogenic genes in spermatogonia, necessary for spermatogonial proliferation and meiosis. CHD8 directly binds and regulates genes crucial for meiosis, including H3K4me3 histone methyltransferase genes, meiotic cohesin genes, HORMA domain-containing genes, synaptonemal complex genes, and DNA damage response genes. We infer that CHD8 contributes to meiotic DSB formation and subsequent meiotic progression through combined regulation of these meiosis-related genes. Our study uncovers an essential role of CHD8 in the proliferation of undifferentiated spermatogonia and the successful progression of meiotic prophase I.


Asunto(s)
Meiosis , Espermatogonias , Masculino , Proliferación Celular/genética , Cromatina/genética , Cromatina/metabolismo , Meiosis/genética , Espermatogénesis/genética , Animales , Ratones
20.
Nucleic Acids Res ; 52(5): 2306-2322, 2024 Mar 21.
Artículo en Inglés | MEDLINE | ID: mdl-38142439

RESUMEN

Spermatogonial stem cells functionality reside in the slow-cycling and heterogeneous undifferentiated spermatogonia cell population. This pool of cells supports lifelong fertility in adult males by balancing self-renewal and differentiation to produce haploid gametes. However, the molecular mechanisms underpinning long-term stemness of undifferentiated spermatogonia during adulthood remain unclear. Here, we discover that an epigenetic regulator, Polycomb repressive complex 1 (PRC1), shields adult undifferentiated spermatogonia from differentiation, maintains slow cycling, and directs commitment to differentiation during steady-state spermatogenesis in adults. We show that PRC2-mediated H3K27me3 is an epigenetic hallmark of adult undifferentiated spermatogonia. Indeed, spermatogonial differentiation is accompanied by a global loss of H3K27me3. Disruption of PRC1 impairs global H3K27me3 deposition, leading to precocious spermatogonial differentiation. Therefore, PRC1 directs PRC2-H3K27me3 deposition to maintain the self-renewing state of undifferentiated spermatogonia. Importantly, in contrast to its role in other tissue stem cells, PRC1 negatively regulates the cell cycle to maintain slow cycling of undifferentiated spermatogonia. Our findings have implications for how epigenetic regulators can be tuned to regulate the stem cell potential, cell cycle and differentiation to ensure lifelong fertility in adult males.


Asunto(s)
Complejo Represivo Polycomb 1 , Complejo Represivo Polycomb 2 , Espermatogénesis , Células Madre , Animales , Femenino , Masculino , Ratones , Diferenciación Celular , Histonas/metabolismo , Complejo Represivo Polycomb 1/genética , Complejo Represivo Polycomb 1/metabolismo , Complejo Represivo Polycomb 2/metabolismo , Espermatogonias , Células Madre/citología , Células Madre/metabolismo
SELECCIÓN DE REFERENCIAS
DETALLE DE LA BÚSQUEDA