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1.
Mol Cell ; 74(5): 1069-1085.e11, 2019 06 06.
Article in English | MEDLINE | ID: mdl-31000436

ABSTRACT

Orderly segregation of chromosomes during meiosis requires that crossovers form between homologous chromosomes by recombination. Programmed DNA double-strand breaks (DSBs) initiate meiotic recombination. We identify ANKRD31 as a key component of complexes of DSB-promoting proteins that assemble on meiotic chromosome axes. Genome-wide, ANKRD31 deficiency causes delayed recombination initiation. In addition, loss of ANKRD31 alters DSB distribution because of reduced selectivity for sites that normally attract DSBs. Strikingly, ANKRD31 deficiency also abolishes uniquely high rates of recombination that normally characterize pseudoautosomal regions (PARs) of X and Y chromosomes. Consequently, sex chromosomes do not form crossovers, leading to chromosome segregation failure in ANKRD31-deficient spermatocytes. These defects co-occur with a genome-wide delay in assembling DSB-promoting proteins on autosome axes and loss of a specialized PAR-axis domain that is highly enriched for DSB-promoting proteins in wild type. Thus, we propose a model for spatiotemporal patterning of recombination by ANKRD31-dependent control of axis-associated DSB-promoting proteins.


Subject(s)
Carrier Proteins/genetics , DNA Breaks, Double-Stranded , Homologous Recombination/genetics , Meiosis/genetics , Animals , Carrier Proteins/chemistry , Chromosome Segregation/genetics , Male , Mice , Pseudoautosomal Regions/genetics , Spermatocytes/growth & development , Spermatocytes/metabolism , X Chromosome/genetics , Y Chromosome/genetics
2.
Cell Mol Life Sci ; 81(1): 194, 2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38653846

ABSTRACT

Sex chromosome aneuploidies are among the most common variations in human whole chromosome copy numbers, with an estimated prevalence in the general population of 1:400 to 1:1400 live births. Unlike whole-chromosome aneuploidies of autosomes, those of sex chromosomes, such as the 47, XXY aneuploidy that causes Klinefelter Syndrome (KS), often originate from the paternal side, caused by a lack of crossover (CO) formation between the X and Y chromosomes. COs must form between all chromosome pairs to pass meiotic checkpoints and are the product of meiotic recombination that occurs between homologous sequences of parental chromosomes. Recombination between male sex chromosomes is more challenging compared to both autosomes and sex chromosomes in females, as it is restricted within a short region of homology between X and Y, called the pseudo-autosomal region (PAR). However, in normal individuals, CO formation occurs in PAR with a higher frequency than in any other region, indicating the presence of mechanisms that promote the initiation and processing of recombination in each meiotic division. In recent years, research has made great strides in identifying genes and mechanisms that facilitate CO formation in the PAR. Here, we outline the most recent and relevant findings in this field. XY chromosome aneuploidy in humans has broad-reaching effects, contributing significantly also to Turner syndrome, spontaneous abortions, oligospermia, and even infertility. Thus, in the years to come, the identification of genes and mechanisms beyond XY aneuploidy is expected to have an impact on the genetic counseling of a wide number of families and adults affected by these disorders.


Subject(s)
Chromosome Pairing , Chromosome Segregation , Meiosis , Humans , Animals , Chromosome Pairing/genetics , Male , Meiosis/genetics , Mice , Chromosome Segregation/genetics , Female , Aneuploidy , Chromosomes, Human, X/genetics , Chromosomes, Human, Y/genetics , Sex Chromosomes/genetics , Crossing Over, Genetic/genetics
3.
PLoS Genet ; 18(7): e1010046, 2022 07.
Article in English | MEDLINE | ID: mdl-35857787

ABSTRACT

Recombinases RAD51 and its meiosis-specific paralog DMC1 accumulate on single-stranded DNA (ssDNA) of programmed DNA double strand breaks (DSBs) in meiosis. Here we used three-color dSTORM microscopy, and a mouse model with severe defects in meiotic DSB formation and synapsis (Hormad1-/-) to obtain more insight in the recombinase accumulation patterns in relation to repair progression. First, we used the known reduction in meiotic DSB frequency in Hormad1-/- spermatocytes to be able to conclude that the RAD51/DMC1 nanofoci that preferentially localize at distances of ~300 nm form within a single DSB site, whereas a second preferred distance of ~900 nm, observed only in wild type, represents inter-DSB distance. Next, we asked whether the proposed role of HORMAD1 in repair inhibition affects the RAD51/DMC1 accumulation patterns. We observed that the two most frequent recombinase configurations (1 DMC1 and 1 RAD51 nanofocus (D1R1), and D2R1) display coupled frequency dynamics over time in wild type, but were constant in the Hormad1-/- model, indicating that the lifetime of these intermediates was altered. Recombinase nanofoci were also smaller in Hormad1-/- spermatocytes, consistent with changes in ssDNA length or protein accumulation. Furthermore, we established that upon synapsis, recombinase nanofoci localized closer to the synaptonemal complex (SYCP3), in both wild type and Hormad1-/- spermatocytes. Finally, the data also revealed a hitherto unknown function of HORMAD1 in inhibiting coil formation in the synaptonemal complex. SPO11 plays a similar but weaker role in coiling and SYCP1 had the opposite effect. Using this large super-resolution dataset, we propose models with the D1R1 configuration representing one DSB end containing recombinases, and the other end bound by other ssDNA binding proteins, or both ends loaded by the two recombinases, but in below-resolution proximity. This may then often evolve into D2R1, then D1R2, and finally back to D1R1, when DNA synthesis has commenced.


Subject(s)
Cell Cycle Proteins , Spermatocytes , Synaptonemal Complex , Animals , Cell Cycle Proteins/genetics , Cell Cycle Proteins/metabolism , DNA/metabolism , Male , Meiosis/genetics , Mice , Mice, Knockout , Microscopy , Rad51 Recombinase/genetics , Rad51 Recombinase/metabolism , Recombinases/genetics , Recombinases/metabolism , Spermatocytes/metabolism , Synaptonemal Complex/genetics , Synaptonemal Complex/metabolism
4.
Cell Mol Life Sci ; 80(10): 279, 2023 Sep 08.
Article in English | MEDLINE | ID: mdl-37682311

ABSTRACT

XY chromosome missegregation is relatively common in humans and can lead to sterility or the generation of aneuploid spermatozoa. A leading cause of XY missegregation in mammals is the lack of formation of double-strand breaks (DSBs) in the pseudoautosomal region (PAR), a defect that may occur in mice due to faulty expression of Spo11 splice isoforms. Using a knock-in (ki) mouse that expresses only the single Spo11ß splice isoform, here we demonstrate that by varying the genetic background of mice, the length of chromatin loops extending from the PAR axis and the XY recombination proficiency varies. In spermatocytes of C57Spo11ßki/- mice, in which loops are relatively short, recombination/synapsis between XY is fairly normal. In contrast, in cells of C57/129Spo11ßki/- males where PAR loops are relatively long, formation of DSBs in the PAR (more frequently the Y-PAR) and XY synapsis fails at a high rate, and mice produce sperm with sex-chromosomal aneuploidy. However, if the entire set of Spo11 splicing isoforms is expressed by a wild type allele in the C57/129 background, XY recombination and synapsis is recovered. By generating a Spo11αki mouse model, we prove that concomitant expression of SPO11ß and SPO11α isoforms, boosts DSB formation in the PAR. Based on these findings, we propose that SPO11 splice isoforms cooperate functionally in promoting recombination in the PAR, constraining XY asynapsis defects that may arise due to differences in the conformation of the PAR between mouse strains.


Subject(s)
Endodeoxyribonucleases , Pseudoautosomal Regions , Animals , Humans , Male , Mice , Alleles , Protein Isoforms/genetics , Recombination, Genetic/genetics , Semen , Endodeoxyribonucleases/genetics
5.
Cell Mol Life Sci ; 80(4): 107, 2023 Mar 26.
Article in English | MEDLINE | ID: mdl-36967403

ABSTRACT

In mammals, meiotic recombination is initiated by the introduction of DNA double strand breaks (DSBs) into narrow segments of the genome, defined as hotspots, which is carried out by the SPO11/TOPOVIBL complex. A major player in the specification of hotspots is PRDM9, a histone methyltransferase that, following sequence-specific DNA binding, generates trimethylation on lysine 4 (H3K4me3) and lysine 36 (H3K36me3) of histone H3, thus defining the hotspots. PRDM9 activity is key to successful meiosis, since in its absence DSBs are redirected to functional sites and synapsis between homologous chromosomes fails. One protein factor recently implicated in guiding PRDM9 activity at hotspots is EWS, a member of the FET family of proteins that also includes TAF15 and FUS/TLS. Here, we demonstrate that FUS/TLS partially colocalizes with PRDM9 on the meiotic chromosome axes, marked by the synaptonemal complex component SYCP3, and physically interacts with PRDM9. Furthermore, we show that FUS/TLS also interacts with REC114, one of the axis-bound SPO11-auxiliary factors essential for DSB formation. This finding suggests that FUS/TLS is a component of the protein complex that promotes the initiation of meiotic recombination. Accordingly, we document that FUS/TLS coimmunoprecipitates with SPO11 in vitro and in vivo. The interaction occurs with both SPO11ß and SPO11α splice isoforms, which are believed to play distinct functions in the formation of DSBs in autosomes and male sex chromosomes, respectively. Finally, using chromatin immunoprecipitation experiments, we show that FUS/TLS is localized at H3K4me3-marked hotspots in autosomes and in the pseudo-autosomal region, the site of genetic exchange between the XY chromosomes.


Subject(s)
Lysine , RNA-Binding Protein FUS , Animals , Male , Lysine/genetics , RNA-Binding Protein FUS/genetics , Histone-Lysine N-Methyltransferase/genetics , Histone-Lysine N-Methyltransferase/metabolism , Homologous Recombination , DNA/metabolism , Meiosis/genetics , Mammals/metabolism
6.
Int J Mol Sci ; 25(16)2024 Aug 22.
Article in English | MEDLINE | ID: mdl-39201802

ABSTRACT

Drug residues that contaminate food and water represent a serious concern for human health. The major concerns regard the possible irrational use of these contaminants, since this might increase the amplitude of exposure. Multiple sources contribute to the overall exposure to contaminants, including agriculture, domestic use, personal, public and veterinary healthcare, increasing the possible origin of contamination. In this review, we focus on crop pesticides and veterinary drug residues because of their extensive use in modern agriculture and farming, which ensures food production and security for the ever-growing population around the world. We discuss crop pesticides and veterinary drug residues with respect to their worldwide distribution and impacts, with special attention on their harmful effects on human reproduction and embryo development, as well as their link to epigenetic alterations, leading to intergenerational and transgenerational diseases. Among the contaminants, the most commonly implicated in causing such disorders are organophosphates, glyphosate and antibiotics, with tetracyclines being the most frequently reported. This review highlights the importance of finding new management strategies for pesticides and veterinary drugs. Moreover, due to the still limited knowledge on inter- and transgenerational effects of these contaminants, we underlie the need to strengthen research in this field, so as to better clarify the specific effects of each contaminant and their long-term impact.


Subject(s)
Embryonic Development , Fertility , Pesticides , Veterinary Drugs , Humans , Embryonic Development/drug effects , Fertility/drug effects , Dietary Exposure/adverse effects , Animals , Drug Residues/analysis , Epigenesis, Genetic/drug effects , Pesticide Residues/analysis
7.
Genes Dev ; 27(8): 873-86, 2013 Apr 15.
Article in English | MEDLINE | ID: mdl-23599345

ABSTRACT

Different organisms display widely different numbers of the programmed double-strand breaks (DSBs) that initiate meiotic recombination (e.g., hundreds per meiocyte in mice and humans vs. dozens in nematodes), but little is known about what drives these species-specific DSB set points or the regulatory pathways that control them. Here we examine male mice with a lowered dosage of SPO11, the meiotic DSB catalyst, to gain insight into the effect of reduced DSB numbers on mammalian chromosome dynamics. An approximately twofold DSB reduction was associated with the reduced ability of homologs to synapse along their lengths, provoking prophase arrest and, ultimately, sterility. In many spermatocytes, chromosome subsets displayed a mix of synaptic failure and synapsis with both homologous and nonhomologous partners ("chromosome tangles"). The X chromosome was nearly always involved in tangles, and small autosomes were involved more often than large ones. We conclude that homolog pairing requirements dictate DSB set points during meiosis. Importantly, our results reveal that karyotype is a key factor: Smaller autosomes and heteromorphic sex chromosomes become weak links when DSBs are reduced below a critical threshold. Unexpectedly, unsynapsed chromosome segments trapped in tangles displayed an elevated density of DSB markers later in meiotic prophase. The unsynapsed portion of the X chromosome in wild-type males also showed evidence that DSB numbers increased as prophase progressed. These findings point to the existence of a feedback mechanism that links DSB number and distribution with interhomolog interactions.


Subject(s)
DNA Breaks, Double-Stranded , Feedback, Physiological , Meiosis/genetics , Animals , Chromosomes/genetics , Chromosomes/metabolism , Endodeoxyribonucleases/genetics , Endodeoxyribonucleases/metabolism , Male , Mice , Synaptonemal Complex/genetics , Synaptonemal Complex/metabolism
8.
Int J Mol Sci ; 22(11)2021 Jun 01.
Article in English | MEDLINE | ID: mdl-34205983

ABSTRACT

In the human embryo, the genetic program that orchestrates germ cell specification involves the activation of epigenetic and transcriptional mechanisms that make the germline a unique cell population continuously poised between germness and pluripotency. Germ cell tumors, neoplasias originating from fetal or neonatal germ cells, maintain such dichotomy and can adopt either pluripotent features (embryonal carcinomas) or germness features (seminomas) with a wide range of phenotypes in between these histotypes. Here, we review the basic concepts of cell specification, migration and gonadal colonization of human primordial germ cells (hPGCs) highlighting the analogies of transcriptional/epigenetic programs between these two cell types.


Subject(s)
Neoplasms, Germ Cell and Embryonal/genetics , Teratoma/genetics , Testicular Neoplasms/genetics , Transcription, Genetic , Cell Differentiation/genetics , Epigenomics , Germ Cells/growth & development , Germ Cells/pathology , Gonads/growth & development , Gonads/pathology , Humans , Male , Neoplasms, Germ Cell and Embryonal/pathology , Pluripotent Stem Cells/cytology , Teratoma/pathology , Testicular Neoplasms/pathology
9.
J Cell Sci ; 131(6)2018 03 20.
Article in English | MEDLINE | ID: mdl-29437857

ABSTRACT

In somatic cells, H2afx and Mdc1 are close functional partners in DNA repair and damage response. However, it is not known whether they are also involved in the maintenance of genome integrity in meiosis. By analyzing chromosome dynamics in H2afx-/- spermatocytes, we found that the synapsis of autosomes and X-Y chromosomes was impaired in a fraction of cells. Such defects correlated with an abnormal recombination profile. Conversely, Mdc1 was dispensable for the synapsis of the autosomes and played only a minor role in X-Y synapsis, compared with the action of H2afx This suggested that those genes have non-overlapping functions in chromosome synapsis. However, we observed that both genes play a similar role in the assembly of MLH3 onto chromosomes, a key step in crossover formation. Moreover, we show that H2afx and Mdc1 cooperate in promoting the activation of the recombination-dependent checkpoint, a mechanism that restrains the differentiation of cells with unrepaired DSBs. This occurs by a mechanism that involves P53. Overall, our data show that, in male germ cells, H2afx and Mdc1 promote the maintenance of genome integrity.This article has an associated First Person interview with the first author of the paper.


Subject(s)
Histones/metabolism , Intracellular Signaling Peptides and Proteins/metabolism , Spermatocytes/metabolism , Adaptor Proteins, Signal Transducing , Animals , Cell Cycle Proteins , Chromosome Pairing , Genomic Instability , Genomics , Histones/genetics , Intracellular Signaling Peptides and Proteins/genetics , Male , Mice , Mice, Inbred C57BL , MutL Proteins/genetics , MutL Proteins/metabolism , Recombination, Genetic , Sex Chromosomes/genetics , Sex Chromosomes/metabolism , Spermatocytes/cytology
10.
Int J Mol Sci ; 21(1)2019 Dec 18.
Article in English | MEDLINE | ID: mdl-31861494

ABSTRACT

Endocannabinoids are natural lipid molecules whose levels are regulated by specific biosynthetic and degradative enzymes. They bind to and activate two main cannabinoid receptors type 1 (CB1) and type 2 (CB2), and together with their metabolizing enzymes form the "endocannabinoid system" (ECS). In the last years, the relevance of endocannabinoids (eCBs) as critical modulators in various aspects of male reproduction has been pointed out. Mammalian male germ cells, from mitotic to haploid stage, have a complete ECS which is modulated during spermatogenesis. Compelling evidence indicate that in the testis an appropriate "eCBs tone", associated to a balanced CB receptors signaling, is critical for spermatogenesis and for the formation of mature and fertilizing spermatozoa. Any alteration of this system negatively affects male reproduction, from germ cell differentiation to sperm functions, and might have also an impact on testicular tumours. Indeed, most of testicular tumours develop during early germ-cell development in which a maturation arrest is thought to be the first key event leading to malignant transformation. Considering the ever-growing number and complexity of the data on ECS, this review focuses on the role of cannabinoid receptors CB1 and CB2 signaling in male germ cells development from gonocyte up to mature spermatozoa and in the induction of epigenetic alterations in these cells which might be transmitted to the progeny. Furthermore, we present new evidence on their relevance in testicular cancer.


Subject(s)
Disease Susceptibility , Epigenesis, Genetic , Gene Expression Regulation, Neoplastic , Neoplasms, Germ Cell and Embryonal/etiology , Neoplasms, Germ Cell and Embryonal/metabolism , Receptors, Cannabinoid/metabolism , Signal Transduction , Testicular Neoplasms/etiology , Testicular Neoplasms/metabolism , Animals , Biomarkers , Humans , Male , Neoplasms, Germ Cell and Embryonal/pathology , Reproduction , Spermatogenesis , Testicular Neoplasms/pathology
11.
Chromosoma ; 125(2): 189-203, 2016 Jun.
Article in English | MEDLINE | ID: mdl-26440409

ABSTRACT

Meiosis is the biological process that, after a cycle of DNA replication, halves the cellular chromosome complement, leading to the formation of haploid gametes. Haploidization is achieved via two successive rounds of chromosome segregation, meiosis I and II. In mammals, during prophase of meiosis I, homologous chromosomes align and synapse through a recombination-mediated mechanism initiated by the introduction of DNA double-strand breaks (DSBs) by the SPO11 protein. In male mice, if SPO11 expression and DSB number are reduced below heterozygosity levels, chromosome synapsis is delayed, chromosome tangles form at pachynema, and defective cells are eliminated by apoptosis at epithelial stage IV at a spermatogenesis-specific endpoint. Whether DSB levels produced in Spo11 (+/-) spermatocytes represent, or approximate, the threshold level required to guarantee successful homologous chromosome pairing is unknown. Using a mouse model that expresses Spo11 from a bacterial artificial chromosome, within a Spo11 (-/-) background, we demonstrate that when SPO11 expression is reduced and DSBs at zygonema are decreased (approximately 40 % below wild-type level), meiotic chromosome pairing is normal. Conversely, DMC1 foci number is increased at pachynema, suggesting that under these experimental conditions, DSBs are likely made with delayed kinetics at zygonema. In addition, we provide evidences that when zygotene-like cells receive enough DSBs before chromosome tangles develop, chromosome synapsis can be completed in most cells, preventing their apoptotic elimination.


Subject(s)
Chromosome Pairing , DNA Breaks, Double-Stranded , Endodeoxyribonucleases/metabolism , Meiosis , Spermatocytes/cytology , Animals , Chromosomes/genetics , Chromosomes/metabolism , Endodeoxyribonucleases/genetics , Female , Male , Meiotic Prophase I , Mice , Mice, Inbred C57BL , Mice, Knockout , Spermatocytes/metabolism , Spermatogenesis
12.
Development ; 139(14): 2523-34, 2012 Jul.
Article in English | MEDLINE | ID: mdl-22696294

ABSTRACT

NIPA (nuclear interaction partner of ALK) is an F-box-like protein that monitors the timing of mitotic entry. Constitutively active NIPA delays mitotic entry by preventing accumulation of nuclear cyclin B1. Here, we have investigated the consequences of Nipa inactivation by using a conditional knockout strategy. Nipa-deficient animals are viable but show a lower birth rate and reduced body weight. Furthermore, Nipa-deficient males are sterile owing to a block of spermatogenesis during meiotic prophase. Whereas Nipa-/- mouse embryonic fibroblasts show no severe phenotype, Nipa-/- spermatocytes arrest during stage IV of the epithelial cycle with subsequent TUNEL-positive apoptosis resulting from improper synapsis, defects in the repair of DNA double-stranded breaks and synaptonemal complex formation. Moreover, we show nuclear accumulation of cyclin B1 with a subsequent premature increase in G2/M kinase activity in Nipa-/- spermatocytes. Together, these results reveal a novel role for NIPA in meiosis.


Subject(s)
Cell Cycle/physiology , Meiosis/physiology , Nuclear Proteins/metabolism , Animals , Cell Cycle/genetics , Cyclin B1/genetics , Cyclin B1/metabolism , DNA Breaks, Double-Stranded , Flow Cytometry , Immunoblotting , Immunohistochemistry , Immunoprecipitation , Male , Meiosis/genetics , Mice , Mice, Knockout , Mice, Mutant Strains , Nuclear Proteins/genetics , RNA, Small Interfering/genetics , Spermatocytes/metabolism
13.
Nat Commun ; 15(1): 2941, 2024 Apr 05.
Article in English | MEDLINE | ID: mdl-38580643

ABSTRACT

Programmed DNA double-strand break (DSB) formation is a crucial feature of meiosis in most organisms. DSBs initiate recombination-mediated linking of homologous chromosomes, which enables correct chromosome segregation in meiosis. DSBs are generated on chromosome axes by heterooligomeric focal clusters of DSB-factors. Whereas DNA-driven protein condensation is thought to assemble the DSB-machinery, its targeting to chromosome axes is poorly understood. We uncover in mice that efficient biogenesis of DSB-machinery clusters requires seeding by axial IHO1 platforms. Both IHO1 phosphorylation and formation of axial IHO1 platforms are diminished by chemical inhibition of DBF4-dependent kinase (DDK), suggesting that DDK contributes to the control of the axial DSB-machinery. Furthermore, we show that axial IHO1 platforms are based on an interaction between IHO1 and the chromosomal axis component HORMAD1. IHO1-HORMAD1-mediated seeding of the DSB-machinery on axes ensures sufficiency of DSBs for efficient pairing of homologous chromosomes. Without IHO1-HORMAD1 interaction, residual DSBs depend on ANKRD31, which enhances both the seeding and the growth of DSB-machinery clusters. Thus, recombination initiation is ensured by complementary pathways that differentially support seeding and growth of DSB-machinery clusters, thereby synergistically enabling DSB-machinery condensation on chromosomal axes.


Subject(s)
Cell Cycle Proteins , DNA Breaks, Double-Stranded , Mice , Animals , Cell Cycle Proteins/metabolism , DNA , Meiosis/genetics , Synaptonemal Complex/metabolism , Recombination, Genetic , Homologous Recombination
14.
Nucleic Acids Res ; 39(12): 4961-74, 2011 Jul.
Article in English | MEDLINE | ID: mdl-21355037

ABSTRACT

Sam68 plays an essential role in mouse spermatogenesis and male fertility. Herein, we report an interaction between Sam68 and the phosphorylated forms of the RNA polymerase II (RNAPII) in meiotic spermatocytes. RNase treatment decreased but did not abolish the interaction, consistently with in vitro binding of RNAPII to the Sam68 carboxyl-terminal region. Sam68 retention in the spermatocyte nucleus was dependent on the integrity of cellular RNAs, suggesting that the protein is recruited to transcriptionally active chromatin. Mouse knockout models characterized by stage-specific arrest of spermatogenesis and staining with the phosphorylated form of RNAPII documented that Sam68 expression is confined to the transcriptionally active stages of spermatogenesis. Furthermore, Sam68 associates with splicing regulators in germ cells and we report that alternative splicing of Sgce exon 8 is regulated in a Sam68-dependent manner during spermatogenesis. RNA and chromatin crosslink immunoprecipitation experiments showed that Sam68 binds in vivo to sequences surrounding the intron 7/exon 8 boundary, thereby affecting the recruitment of the phosphorylated RNAPII and of the general splicing factor U2AF65. These results suggest that Sam68 regulates alternative splicing at transcriptionally active sites in differentiating germ cells and provide new insights into the regulation of Sam68 expression during spermatogenesis.


Subject(s)
Adaptor Proteins, Signal Transducing/metabolism , Alternative Splicing , RNA-Binding Proteins/metabolism , Spermatogenesis/genetics , Spermatozoa/metabolism , Transcription, Genetic , Animals , Male , Meiotic Prophase I/genetics , Mice , Mice, Knockout , RNA Polymerase II/metabolism , Sarcoglycans/genetics , Sarcoglycans/metabolism , Spermatocytes/enzymology , Spermatocytes/metabolism
15.
Vitam Horm ; 122: 75-106, 2023.
Article in English | MEDLINE | ID: mdl-36863802

ABSTRACT

In mammals, male germ cell development starts during fetal life and is carried out in postnatal life with the formation of sperms. Spermatogenesis is the complex and highly orderly process during which a group of germ stem cells is set at birth, starts to differentiate at puberty. It proceeds through several stages: proliferation, differentiation, and morphogenesis and it is strictly regulated by a complex network of hormonal, autocrine and paracrine factors and it is associated with a unique epigenetic program. Altered epigenetic mechanisms or inability to respond to these factors can impair the correct process of germ development leading to reproductive disorders and/or testicular germ cell cancer. Among factors regulating spermatogenesis an emerging role is played by the endocannabinoid system (ECS). ECS is a complex system comprising endogenous cannabinoids (eCBs), their synthetic and degrading enzymes, and cannabinoid receptors. Mammalian male germ cells have a complete and active ECS which is modulated during spermatogenesis and that crucially regulates processes such as germ cell differentiation and sperm functions. Recently, cannabinoid receptor signaling has been reported to induce epigenetic modifications such as DNA methylation, histone modifications and miRNA expression. Epigenetic modifications may also affect the expression and function of ECS elements, highlighting the establishment of a complex mutual interaction. Here, we describe the developmental origin and differentiation of male germ cells and testicular germ cell tumors (TGCTs) focusing on the interplay between ECS and epigenetic mechanisms involved in these processes.


Subject(s)
Neoplasms, Germ Cell and Embryonal , Testicular Neoplasms , Infant, Newborn , Animals , Humans , Male , Endocannabinoids , Testicular Neoplasms/genetics , Semen , Epigenesis, Genetic , Spermatogenesis , Neoplasms, Germ Cell and Embryonal/genetics , Mammals
16.
bioRxiv ; 2023 Nov 27.
Article in English | MEDLINE | ID: mdl-38077023

ABSTRACT

Programmed DNA double-strand break (DSB) formation is a unique meiotic feature that initiates recombination-mediated linking of homologous chromosomes, thereby enabling chromosome number halving in meiosis. DSBs are generated on chromosome axes by heterooligomeric focal clusters of DSB-factors. Whereas DNA-driven protein condensation is thought to assemble the DSB-machinery, its targeting to chromosome axes is poorly understood. We discovered in mice that efficient biogenesis of DSB-machinery clusters requires seeding by axial IHO1 platforms, which are based on a DBF4-dependent kinase (DDK)-modulated interaction between IHO1 and the chromosomal axis component HORMAD1. IHO1-HORMAD1-mediated seeding of the DSB-machinery on axes ensures sufficiency of DSBs for efficient pairing of homologous chromosomes. Without IHO1-HORMAD1 interaction, residual DSBs depend on ANKRD31, which enhances both the seeding and the growth of DSB-machinery clusters. Thus, recombination initiation is ensured by complementary pathways that differentially support seeding and growth of DSB-machinery clusters, thereby synergistically enabling DSB-machinery condensation on chromosomal axes.

17.
Dev Cell ; 13(4): 566-79, 2007 Oct.
Article in English | MEDLINE | ID: mdl-17925231

ABSTRACT

Bub1 is a component of the spindle assembly checkpoint (SAC), a surveillance mechanism that ensures genome stability by delaying anaphase until all the chromosomes are stably attached to spindle microtubules via their kinetochores. To define Bub1's role in chromosome segregation, embryogenesis, and tissue homeostasis, we generated a mouse strain in which BUB1 can be inactivated by administration of tamoxifen, thereby bypassing the preimplantation lethality associated with the Bub1 null phenotype. We show that Bub1 is essential for postimplantation embryogenesis and proliferation of primary embryonic fibroblasts. Bub1 inactivation in adult males inhibits proliferation in seminiferous tubules, reducing sperm production and causing infertility. In culture, Bub1-deficient fibroblasts fail to align their chromosomes or sustain SAC function, yielding a highly aberrant mitosis that prevents further cell divisions. Centromeres in Bub1-deficient cells also separate prematurely; however, we show that this is a consequence of SAC dysfunction rather than a direct role for Bub1 in protecting centromeric cohesion.


Subject(s)
Centromere/physiology , Infertility, Male/genetics , Protein Serine-Threonine Kinases/physiology , Spermatogenesis/physiology , Spindle Apparatus/physiology , Animals , Blastocyst/physiology , Cell Proliferation , Cells, Cultured , Chromosome Segregation , Embryo Loss , Embryo, Mammalian/cytology , Embryo, Mammalian/physiology , Embryonic Development , Fibroblasts/physiology , Kinetochores/physiology , Male , Mice , Protein Serine-Threonine Kinases/genetics
19.
Nat Commun ; 13(1): 7452, 2022 12 02.
Article in English | MEDLINE | ID: mdl-36460648

ABSTRACT

The resolution of fluorescence microscopy images is limited by the physical properties of light. In the last decade, numerous super-resolution microscopy (SRM) approaches have been proposed to deal with such hindrance. Here we present Mean-Shift Super Resolution (MSSR), a new SRM algorithm based on the Mean Shift theory, which extends spatial resolution of single fluorescence images beyond the diffraction limit of light. MSSR works on low and high fluorophore densities, is not limited by the architecture of the optical setup and is applicable to single images as well as temporal series. The theoretical limit of spatial resolution, based on optimized real-world imaging conditions and analysis of temporal image stacks, has been measured to be 40 nm. Furthermore, MSSR has denoising capabilities that outperform other SRM approaches. Along with its wide accessibility, MSSR is a powerful, flexible, and generic tool for multidimensional and live cell imaging applications.


Subject(s)
Algorithms , Drugs, Generic , Reading Frames , Microscopy, Fluorescence , Fluorescent Dyes
20.
PLoS Genet ; 4(5): e1000076, 2008 May 23.
Article in English | MEDLINE | ID: mdl-18497861

ABSTRACT

During meiosis in most sexually reproducing organisms, recombination forms crossovers between homologous maternal and paternal chromosomes and thereby promotes proper chromosome segregation at the first meiotic division. The number and distribution of crossovers are tightly controlled, but the factors that contribute to this control are poorly understood in most organisms, including mammals. Here we provide evidence that the ATM kinase or protein is essential for proper crossover formation in mouse spermatocytes. ATM deficiency causes multiple phenotypes in humans and mice, including gonadal atrophy. Mouse Atm-/- spermatocytes undergo apoptosis at mid-prophase of meiosis I, but Atm(-/-) meiotic phenotypes are partially rescued by Spo11 heterozygosity, such that ATM-deficient spermatocytes progress to meiotic metaphase I. Strikingly, Spo11+/-Atm-/- spermatocytes are defective in forming the obligate crossover on the sex chromosomes, even though the XY pair is usually incorporated in a sex body and is transcriptionally inactivated as in normal spermatocytes. The XY crossover defect correlates with the appearance of lagging chromosomes at metaphase I, which may trigger the extensive metaphase apoptosis that is observed in these cells. In addition, control of the number and distribution of crossovers on autosomes appears to be defective in the absence of ATM because there is an increase in the total number of MLH1 foci, which mark the sites of eventual crossover formation, and because interference between MLH1 foci is perturbed. The axes of autosomes exhibit structural defects that correlate with the positions of ongoing recombination. Together, these findings indicate that ATM plays a role in both crossover control and chromosome axis integrity and further suggests that ATM is important for coordinating these features of meiotic chromosome dynamics.


Subject(s)
Cell Cycle Proteins/metabolism , DNA-Binding Proteins/metabolism , Protein Serine-Threonine Kinases/metabolism , Sex Chromosomes/genetics , Spermatocytes/physiology , Tumor Suppressor Proteins/metabolism , Animals , Apoptosis , Ataxia Telangiectasia Mutated Proteins , Cell Cycle Proteins/genetics , Chromosome Aberrations , Chromosome Pairing , Crossing Over, Genetic , DNA-Binding Proteins/genetics , Endodeoxyribonucleases , Esterases/genetics , Female , Heterozygote , Male , Meiosis , Metaphase , Mice , Mice, Knockout , Phenotype , Protein Serine-Threonine Kinases/genetics , Spermatocytes/cytology , Tumor Suppressor Proteins/genetics
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