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1.
Development ; 151(10)2024 May 15.
Article in English | MEDLINE | ID: mdl-38775708

ABSTRACT

In utero infection and maternal inflammation can adversely impact fetal brain development. Maternal systemic illness, even in the absence of direct fetal brain infection, is associated with an increased risk of neuropsychiatric disorders in affected offspring. The cell types mediating the fetal brain response to maternal inflammation are largely unknown, hindering the development of novel treatment strategies. Here, we show that microglia, the resident phagocytes of the brain, highly express receptors for relevant pathogens and cytokines throughout embryonic development. Using a rodent maternal immune activation (MIA) model in which polyinosinic:polycytidylic acid is injected into pregnant mice, we demonstrate long-lasting transcriptional changes in fetal microglia that persist into postnatal life. We find that MIA induces widespread gene expression changes in neuronal and non-neuronal cells; importantly, these responses are abolished by selective genetic deletion of microglia, indicating that microglia are required for the transcriptional response of other cortical cell types to MIA. These findings demonstrate that microglia play a crucial durable role in the fetal response to maternal inflammation, and should be explored as potential therapeutic cell targets.


Subject(s)
Brain , Inflammation , Microglia , Poly I-C , Animals , Microglia/metabolism , Microglia/immunology , Female , Pregnancy , Mice , Brain/pathology , Brain/immunology , Brain/metabolism , Inflammation/pathology , Inflammation/genetics , Poly I-C/pharmacology , Fetus , Mice, Inbred C57BL , Gene Expression Regulation, Developmental , Neurons/metabolism
2.
PLoS One ; 19(5): e0300850, 2024.
Article in English | MEDLINE | ID: mdl-38718005

ABSTRACT

Essential for muscle fiber formation and hypertrophy, muscle stem cells, also called satellite cells, reside beneath the basal lamina of the muscle fiber. Satellite cells have been commonly identified by the expression of the Paired box 7 (Pax7) due to its specificity and the availability of antibodies in tetrapods. In fish, the identification of satellite cells remains difficult due to the lack of specific antibodies in most species. Based on the development of a highly sensitive in situ hybridization (RNAScope®) for pax7, we showed that pax7+ cells were detected in the undifferentiated myogenic epithelium corresponding to the dermomyotome at day 14 post-fertilization in rainbow trout. Then, from day 24, pax7+ cells gradually migrated into the deep myotome and were localized along the muscle fibers and reach their niche in satellite position of the fibres after hatching. Our results showed that 18 days after muscle injury, a large number of pax7+ cells accumulated at the wound site compared to the uninjured area. During the in vitro differentiation of satellite cells, the percentage of pax7+ cells decreased from 44% to 18% on day 7, and some differentiated cells still expressed pax7. Taken together, these results show the dynamic expression of pax7 genes and the follow-up of these muscle stem cells during the different situations of muscle fiber formation in trout.


Subject(s)
Cell Differentiation , Oncorhynchus mykiss , PAX7 Transcription Factor , Regeneration , Satellite Cells, Skeletal Muscle , Animals , Oncorhynchus mykiss/metabolism , Oncorhynchus mykiss/genetics , PAX7 Transcription Factor/metabolism , PAX7 Transcription Factor/genetics , Satellite Cells, Skeletal Muscle/metabolism , Satellite Cells, Skeletal Muscle/cytology , Muscle Development , Gene Expression Regulation, Developmental
3.
Development ; 151(9)2024 May 01.
Article in English | MEDLINE | ID: mdl-38727565

ABSTRACT

Proper embryonic development depends on the timely progression of a genetic program. One of the key mechanisms for achieving precise control of developmental timing is to use gene expression oscillations. In this Review, we examine how gene expression oscillations encode temporal information during vertebrate embryonic development by discussing the gene expression oscillations occurring during somitogenesis, neurogenesis, myogenesis and pancreas development. These oscillations play important but varied physiological functions in different contexts. Oscillations control the period of somite formation during somitogenesis, whereas they regulate the proliferation-to-differentiation switch of stem cells and progenitor cells during neurogenesis, myogenesis and pancreas development. We describe the similarities and differences of the expression pattern in space (i.e. whether oscillations are synchronous or asynchronous across neighboring cells) and in time (i.e. different time scales) of mammalian Hes/zebrafish Her genes and their targets in different tissues. We further summarize experimental evidence for the functional role of their oscillations. Finally, we discuss the outstanding questions for future research.


Subject(s)
Embryonic Development , Gene Expression Regulation, Developmental , Somites , Animals , Embryonic Development/genetics , Humans , Somites/metabolism , Somites/embryology , Muscle Development/genetics , Neurogenesis/genetics , Neurogenesis/physiology , Pancreas/embryology , Pancreas/metabolism , Cell Differentiation/genetics
4.
Curr Top Dev Biol ; 159: 168-231, 2024.
Article in English | MEDLINE | ID: mdl-38729676

ABSTRACT

The development of the vertebrate spinal cord involves the formation of the neural tube and the generation of multiple distinct cell types. The process starts during gastrulation, combining axial elongation with specification of neural cells and the formation of the neuroepithelium. Tissue movements produce the neural tube which is then exposed to signals that provide patterning information to neural progenitors. The intracellular response to these signals, via a gene regulatory network, governs the spatial and temporal differentiation of progenitors into specific cell types, facilitating the assembly of functional neuronal circuits. The interplay between the gene regulatory network, cell movement, and tissue mechanics generates the conserved neural tube pattern observed across species. In this review we offer an overview of the molecular and cellular processes governing the formation and patterning of the neural tube, highlighting how the remarkable complexity and precision of vertebrate nervous system arises. We argue that a multidisciplinary and multiscale understanding of the neural tube development, paired with the study of species-specific strategies, will be crucial to tackle the open questions.


Subject(s)
Body Patterning , Gene Expression Regulation, Developmental , Neural Tube , Signal Transduction , Neural Tube/embryology , Neural Tube/metabolism , Neural Tube/cytology , Animals , Body Patterning/genetics , Humans , Gene Regulatory Networks , Spinal Cord/embryology , Spinal Cord/cytology , Spinal Cord/metabolism , Cell Differentiation , Cell Movement
5.
Mol Biol Rep ; 51(1): 624, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38710963

ABSTRACT

BACKGROUND: Thyroid hormones are primarily responsible for the brain development in perinatal mammals. However, this process can be inhibited by external factors such as environmental chemicals. Perinatal mammals are viviparous, which makes direct fetal examination difficult. METHODS: We used metamorphic amphibians, which exhibit many similarities to perinatal mammals, as an experimental system. Therefore, using metamorphic amphibians, we characterized the gene expression of matrix metalloproteinases, which play an important role in brain development. RESULTS: The expression of many matrix metalloproteinases (mmps) was characteristically induced during metamorphosis. We also found that the expression of many mmps was induced by T3 and markedly inhibited by hydroxylated polychlorinated biphenyls (PCBs). CONCLUSION: Overall, our findings suggest that hydroxylated PCBs disrupt normal brain development by disturbing the gene expression of mmps.


Subject(s)
Brain , Matrix Metalloproteinases , Metamorphosis, Biological , Polychlorinated Biphenyls , Thyroid Hormones , Xenopus laevis , Animals , Brain/metabolism , Brain/drug effects , Brain/growth & development , Xenopus laevis/metabolism , Xenopus laevis/genetics , Matrix Metalloproteinases/metabolism , Matrix Metalloproteinases/genetics , Polychlorinated Biphenyls/toxicity , Metamorphosis, Biological/drug effects , Metamorphosis, Biological/genetics , Thyroid Hormones/metabolism , Gene Expression Regulation, Developmental/drug effects , Hydroxylation
6.
Reprod Domest Anim ; 59(5): e14576, 2024 May.
Article in English | MEDLINE | ID: mdl-38712681

ABSTRACT

The possibility of embryo cryopreservation is important for applying the genome resource banking (GRB) concept to those mammalian species that exhibit embryonal diapause in their early development. Odc1 encodes ODC1, which is a key enzyme in polyamine synthesis. RhoA is an essential part of Rho/ROCK system. Both Odc1 and RhoA play an important role in preimplantation embryo development. Studying these systems in mammalian species with obligate or experimentally designed embryonic diapause may provide insight into the molecular machinery underlying embryo dormancy and re-activation. The effect of cryopreservation procedures on the expression of the Odc1 and RhoA in diapausing embryos has not been properly studied yet. The purpose of this work is to address the possibility of cryopreservation diapausing embryos and to estimate the expression of the Odc1 and RhoA genes in diapausing and non-diapausing embryos before and after freeze-thaw procedures using ovariectomized progesterone treated mice as a model. Both diapausing and non-diapausing in vivo-derived embryos continued their development in vitro after freezing-thawing as evidenced by blastocoel re-expansion. Although cryopreservation dramatically decreased the expression of the Odc1 and RhoA genes in non-diapausing embryos, no such effects have been observed in diapausing embryos where these genes were already at the low level before freeze-thaw procedures. Future studies may attempt to facilitate the re-activation of diapausing embryos, for example frozen-thawed ones, specifically targeting Odc1 or Rho/ROCK system.


Subject(s)
Blastocyst , Cryopreservation , rhoA GTP-Binding Protein , Animals , Cryopreservation/veterinary , Blastocyst/metabolism , Female , rhoA GTP-Binding Protein/genetics , rhoA GTP-Binding Protein/metabolism , Mice , Gene Expression Regulation, Developmental , Diapause , Embryonic Development , Embryo Culture Techniques/veterinary
7.
Brief Bioinform ; 25(3)2024 Mar 27.
Article in English | MEDLINE | ID: mdl-38739758

ABSTRACT

The complicated process of neuronal development is initiated early in life, with the genetic mechanisms governing this process yet to be fully elucidated. Single-cell RNA sequencing (scRNA-seq) is a potent instrument for pinpointing biomarkers that exhibit differential expression across various cell types and developmental stages. By employing scRNA-seq on human embryonic stem cells, we aim to identify differentially expressed genes (DEGs) crucial for early-stage neuronal development. Our focus extends beyond simply identifying DEGs. We strive to investigate the functional roles of these genes through enrichment analysis and construct gene regulatory networks to understand their interactions. Ultimately, this comprehensive approach aspires to illuminate the molecular mechanisms and transcriptional dynamics governing early human brain development. By uncovering potential links between these DEGs and intelligence, mental disorders, and neurodevelopmental disorders, we hope to shed light on human neurological health and disease. In this study, we have used scRNA-seq to identify DEGs involved in early-stage neuronal development in hESCs. The scRNA-seq data, collected on days 26 (D26) and 54 (D54), of the in vitro differentiation of hESCs to neurons were analyzed. Our analysis identified 539 DEGs between D26 and D54. Functional enrichment of those DEG biomarkers indicated that the up-regulated DEGs participated in neurogenesis, while the down-regulated DEGs were linked to synapse regulation. The Reactome pathway analysis revealed that down-regulated DEGs were involved in the interactions between proteins located in synapse pathways. We also discovered interactions between DEGs and miRNA, transcriptional factors (TFs) and DEGs, and between TF and miRNA. Our study identified 20 significant transcription factors, shedding light on early brain development genetics. The identified DEGs and gene regulatory networks are valuable resources for future research into human brain development and neurodevelopmental disorders.


Subject(s)
Biomarkers , Brain , Gene Regulatory Networks , Human Embryonic Stem Cells , Single-Cell Analysis , Humans , Single-Cell Analysis/methods , Human Embryonic Stem Cells/metabolism , Human Embryonic Stem Cells/cytology , Brain/metabolism , Brain/embryology , Brain/cytology , Biomarkers/metabolism , Neurons/metabolism , Neurons/cytology , Cell Differentiation/genetics , RNA-Seq , Neurogenesis/genetics , Gene Expression Regulation, Developmental , Gene Expression Profiling , Sequence Analysis, RNA/methods , Single-Cell Gene Expression Analysis
8.
Genome Res ; 34(4): 572-589, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38719471

ABSTRACT

Dormancy is a key feature of stem cell function in adult tissues as well as in embryonic cells in the context of diapause. The establishment of dormancy is an active process that involves extensive transcriptional, epigenetic, and metabolic rewiring. How these processes are coordinated to successfully transition cells to the resting dormant state remains unclear. Here we show that microRNA activity, which is otherwise dispensable for preimplantation development, is essential for the adaptation of early mouse embryos to the dormant state of diapause. In particular, the pluripotent epiblast depends on miRNA activity, the absence of which results in the loss of pluripotent cells. Through the integration of high-sensitivity small RNA expression profiling of individual embryos and protein expression of miRNA targets with public data of protein-protein interactions, we constructed the miRNA-mediated regulatory network of mouse early embryos specific to diapause. We find that individual miRNAs contribute to the combinatorial regulation by the network, and the perturbation of the network compromises embryo survival in diapause. We further identified the nutrient-sensitive transcription factor TFE3 as an upstream regulator of diapause-specific miRNAs, linking cytoplasmic MTOR activity to nuclear miRNA biogenesis. Our results place miRNAs as a critical regulatory layer for the molecular rewiring of early embryos to establish dormancy.


Subject(s)
Cell Proliferation , MicroRNAs , Pluripotent Stem Cells , Animals , MicroRNAs/genetics , MicroRNAs/metabolism , Mice , Pluripotent Stem Cells/metabolism , Pluripotent Stem Cells/cytology , Gene Expression Regulation, Developmental , Gene Regulatory Networks , Embryonic Development/genetics , Germ Layers/metabolism , Germ Layers/cytology , Blastocyst/metabolism , Blastocyst/cytology , Female
9.
BMC Genomics ; 25(1): 464, 2024 May 13.
Article in English | MEDLINE | ID: mdl-38741085

ABSTRACT

Gonad development includes sex determination and divergent maturation of the testes and ovaries. Recent advances in measuring gene expression in single cells are providing new insights into this complex process. However, the underlying epigenetic regulatory mechanisms remain unclear. Here, we profiled chromatin accessibility in mouse gonadal cells of both sexes from embryonic day 11.5 to 14.5 using single-cell assay for transposase accessible chromatin by sequencing (scATAC-seq). Our results showed that individual cell types can be inferred by the chromatin landscape, and that cells can be temporally ordered along developmental trajectories. Integrative analysis of transcriptomic and chromatin-accessibility maps identified multiple putative regulatory elements proximal to key gonadal genes Nr5a1, Sox9 and Wt1. We also uncover cell type-specific regulatory factors underlying cell type specification. Overall, our results provide a better understanding of the epigenetic landscape associated with the progressive restriction of cell fates in the gonad.


Subject(s)
Cell Lineage , Chromatin , Gonads , SOX9 Transcription Factor , Single-Cell Analysis , Animals , Chromatin/metabolism , Chromatin/genetics , Mice , Cell Lineage/genetics , Female , Male , SOX9 Transcription Factor/genetics , SOX9 Transcription Factor/metabolism , Gonads/metabolism , Gonads/cytology , Gonads/embryology , Steroidogenic Factor 1/genetics , Steroidogenic Factor 1/metabolism , WT1 Proteins/genetics , WT1 Proteins/metabolism , Testis/metabolism , Testis/cytology , Epigenesis, Genetic , Gene Expression Regulation, Developmental , Ovary/metabolism , Ovary/cytology
10.
Bull Exp Biol Med ; 176(5): 658-665, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38727955

ABSTRACT

We studied the influence of extracellular vesicles from the follicular fluid of a young donor on gene expression (MKI67, MYBL2, CCNB1, CCND1, CCNE1, CALM2, BAX, NDRG1, TP53I3, VEGF, VCAN, HAS2, CTSL2, PIBF1, RPL37, PFKP, GPX3, and AQP3) in embryos of women of different ages. According to nanoparticle tracking analysis data, the concentration of extracellular vesicles was 3.75±0.47×1011 particles/ml and the mean particle size was 138.78±9.90 nm. During co-culturing of the follicular fluid extracellular vesicles with blastocysts of young women, we observed significantly increased expression of mRNA for genes CTSL2, CCND1, CCNE1, VEGF and reduced expression of BAX gene mRNA in comparison with embryos in women of late reproductive age. We hypothesized that addition of extracellular vesicles of the oocyte follicular fluid from a young donor to the culture medium of embryos could slow down apoptosis process typical of blastocyst cells in women above 36 years.


Subject(s)
Apoptosis , Blastocyst , Extracellular Vesicles , Follicular Fluid , Humans , Female , Extracellular Vesicles/metabolism , Extracellular Vesicles/genetics , Apoptosis/genetics , Adult , Follicular Fluid/metabolism , Blastocyst/metabolism , Blastocyst/cytology , Gene Expression Regulation, Developmental , Cell Proliferation , Oocytes/metabolism , Age Factors , Embryonic Development/genetics , RNA, Messenger/genetics , RNA, Messenger/metabolism
11.
Sci Rep ; 14(1): 10287, 2024 05 04.
Article in English | MEDLINE | ID: mdl-38704454

ABSTRACT

The identification of regulatory networks contributing to fetal/adult gene expression switches is a major challenge in developmental biology and key to understand the aberrant proliferation of cancer cells, which often reactivate fetal oncogenes. One key example is represented by the developmental gene LIN28B, whose aberrant reactivation in adult tissues promotes tumor initiation and progression. Despite the prominent role of LIN28B in development and cancer, the mechanisms of its transcriptional regulation are largely unknown. Here, by using quantitative RT-PCR and single cell RNA sequencing data, we show that in erythropoiesis the expression of the transcription factor SOX6 matched a sharp decline of LIN28B mRNA during human embryo/fetal to adult globin switching. SOX6 overexpression repressed LIN28B not only in a panel of fetal-like erythroid cells (K562, HEL and HUDEP1; ≈92% p < 0.0001, 54% p = 0.0009 and ≈60% p < 0.0001 reduction, respectively), but also in hepatoblastoma HepG2 and neuroblastoma SH-SY5H cells (≈99% p < 0.0001 and ≈59% p < 0.0001 reduction, respectively). SOX6-mediated repression caused downregulation of the LIN28B/Let-7 targets, including MYC and IGF2BP1, and rapidly blocks cell proliferation. Mechanistically, Lin28B repression is accompanied by SOX6 physical binding within its locus, suggesting a direct mechanism of LIN28B downregulation that might contribute to the fetal/adult erythropoietic transition and restrict cancer proliferation.


Subject(s)
RNA-Binding Proteins , SOXD Transcription Factors , Humans , SOXD Transcription Factors/genetics , SOXD Transcription Factors/metabolism , RNA-Binding Proteins/metabolism , RNA-Binding Proteins/genetics , Cell Line, Tumor , Gene Expression Regulation, Developmental , Erythropoiesis/genetics , MicroRNAs/genetics , MicroRNAs/metabolism , Hep G2 Cells , K562 Cells , Gene Expression Regulation, Neoplastic , Erythroid Cells/metabolism
12.
Curr Top Dev Biol ; 159: 232-271, 2024.
Article in English | MEDLINE | ID: mdl-38729677

ABSTRACT

The anterior-to-posterior (head-to-tail) body axis is extraordinarily diverse among vertebrates but conserved within species. Body axis development requires a population of axial progenitors that resides at the posterior of the embryo to sustain elongation and is then eliminated once axis extension is complete. These progenitors occupy distinct domains in the posterior (tail-end) of the embryo and contribute to various lineages along the body axis. The subset of axial progenitors with neuromesodermal competency will generate both the neural tube (the precursor of the spinal cord), and the trunk and tail somites (producing the musculoskeleton) during embryo development. These axial progenitors are called Neuromesodermal Competent cells (NMCs) and Neuromesodermal Progenitors (NMPs). NMCs/NMPs have recently attracted interest beyond the field of developmental biology due to their clinical potential. In the mouse, the maintenance of neuromesodermal competency relies on a fine balance between a trio of known signals: Wnt/ß-catenin, FGF signalling activity and suppression of retinoic acid signalling. These signals regulate the relative expression levels of the mesodermal transcription factor Brachyury and the neural transcription factor Sox2, permitting the maintenance of progenitor identity when co-expressed, and either mesoderm or neural lineage commitment when the balance is tilted towards either Brachyury or Sox2, respectively. Despite important advances in understanding key genes and cellular behaviours involved in these fate decisions, how the balance between mesodermal and neural fates is achieved remains largely unknown. In this chapter, we provide an overview of signalling and gene regulatory networks in NMCs/NMPs. We discuss mutant phenotypes associated with axial defects, hinting at the potential significant role of lesser studied proteins in the maintenance and differentiation of the progenitors that fuel axial elongation.


Subject(s)
Body Patterning , Mesoderm , Animals , Body Patterning/genetics , Mesoderm/metabolism , Mesoderm/cytology , Mesoderm/embryology , Gene Expression Regulation, Developmental , Humans , Signal Transduction , T-Box Domain Proteins/metabolism , T-Box Domain Proteins/genetics , Cell Differentiation , Head/embryology
13.
Curr Top Dev Biol ; 159: 1-27, 2024.
Article in English | MEDLINE | ID: mdl-38729674

ABSTRACT

The diversity of vertebrate body plans is dizzying, yet stunning for the many things they have in common. Vertebrates have inhabited virtually every part of the earth from its coldest to warmest climates. They locomote by swimming, flying, walking, slithering, or climbing, or combinations of these behaviors. And they exist in many different sizes, from the smallest of frogs, fish and lizards to giraffes, elephants, and blue whales. Despite these differences, vertebrates follow a remarkably similar blueprint for the establishment of their body plan. Within the relatively small amount of time required to complete gastrulation, the process through which the three germ layers, ectoderm, mesoderm, and endoderm are created, the embryo also generates its body axis and is simultaneously patterned. For the length of this axis, the genes that distinguish the neck from the rib cage or the trunk from the sacrum are the Hox genes. In vertebrates, there was evolutionary pressure to maintain this set of genes in the organism. Over the past decades, much has been learned regarding the regulatory mechanisms that ensure the appropriate expression of these genes along the main body axes. Genetic functions continue to be explored though much has been learned. Much less has been discerned on the identity of co-factors used by Hox proteins for the specificity of transcriptional regulation or what downstream targets and pathways are critical for patterning events, though there are notable exceptions. Current work in the field is demonstrating that Hox genes continue to function in many organs long after directing early patterning events. It is hopeful continued research will shed light on remaining questions regarding mechanisms used by this important and conserved set of transcriptional regulators.


Subject(s)
Body Patterning , Gene Expression Regulation, Developmental , Genes, Homeobox , Vertebrates , Animals , Body Patterning/genetics , Vertebrates/genetics , Vertebrates/embryology , Genes, Homeobox/genetics
14.
Curr Top Dev Biol ; 159: 372-405, 2024.
Article in English | MEDLINE | ID: mdl-38729682

ABSTRACT

The Segmentation Clock is a tissue-level patterning system that enables the segmentation of the vertebral column precursors into transient multicellular blocks called somites. This patterning system comprises a set of elements that are essential for correct segmentation. Under the so-called "Clock and Wavefront" model, the system consists of two elements, a genetic oscillator that manifests itself as traveling waves of gene expression, and a regressing wavefront that transforms the temporally periodic signal encoded in the oscillations into a permanent spatially periodic pattern of somite boundaries. Over the last twenty years, every new discovery about the Segmentation Clock has been tightly linked to the nomenclature of the "Clock and Wavefront" model. This constrained allocation of discoveries into these two elements has generated long-standing debates in the field as what defines molecularly the wavefront and how and where the interaction between the two elements establishes the future somite boundaries. In this review, we propose an expansion of the "Clock and Wavefront" model into three elements, "Clock", "Wavefront" and signaling gradients. We first provide a detailed description of the components and regulatory mechanisms of each element, and we then examine how the spatiotemporal integration of the three elements leads to the establishment of the presumptive somite boundaries. To be as exhaustive as possible, we focus on the Segmentation Clock in zebrafish. Furthermore, we show how this three-element expansion of the model provides a better understanding of the somite formation process and we emphasize where our current understanding of this patterning system remains obscure.


Subject(s)
Body Patterning , Gene Expression Regulation, Developmental , Mesoderm , Somites , Animals , Body Patterning/genetics , Somites/embryology , Somites/metabolism , Mesoderm/embryology , Mesoderm/metabolism , Mesoderm/cytology , Zebrafish/embryology , Zebrafish/genetics , Signal Transduction , Biological Clocks/genetics
15.
Curr Top Dev Biol ; 159: 272-308, 2024.
Article in English | MEDLINE | ID: mdl-38729678

ABSTRACT

Although vertebrates display a large variety of forms and sizes, the mechanisms controlling the layout of the basic body plan are substantially conserved throughout the clade. Following gastrulation, head, trunk, and tail are sequentially generated through the continuous addition of tissue at the caudal embryonic end. Development of each of these major embryonic regions is regulated by a distinct genetic network. The transitions from head-to-trunk and from trunk-to-tail development thus involve major changes in regulatory mechanisms, requiring proper coordination to guarantee smooth progression of embryonic development. In this review, we will discuss the key cellular and embryological events associated with those transitions giving particular attention to their regulation, aiming to provide a cohesive outlook of this important component of vertebrate development.


Subject(s)
Body Patterning , Gene Expression Regulation, Developmental , Animals , Humans , Embryonic Development , Gastrulation , Vertebrates/embryology
16.
BMC Genomics ; 25(1): 438, 2024 May 02.
Article in English | MEDLINE | ID: mdl-38698322

ABSTRACT

BACKGROUND: Nutrient availability during early stages of development (embryogenesis and the first week post-hatch) can have long-term effects on physiological functions and bird metabolism. The embryo develops in a closed structure and depends entirely on the nutrients and energy available in the egg. The aim of this study was to describe the ontogeny of pathways governing hepatic metabolism that mediates many physiological functions in the pHu + and pHu- chicken lines, which are divergently selected for the ultimate pH of meat, a proxy for muscle glycogen stores, and which differ in the nutrient content and composition of eggs. RESULTS: We identified eight clusters of genes showing a common pattern of expression between embryonic day 12 (E12) and day 8 (D8) post-hatch. These clusters were not representative of a specific metabolic pathway or function. On E12 and E14, the majority of genes differentially expressed between the pHu + and pHu- lines were overexpressed in the pHu + line. Conversely, the majority of genes differentially expressed from E18 were overexpressed in the pHu- line. During the metabolic shift at E18, there was a decrease in the expression of genes linked to several metabolic functions (e.g. protein synthesis, autophagy and mitochondrial activity). At hatching (D0), there were two distinct groups of pHu + chicks based on hierarchical clustering; these groups also differed in liver weight and serum parameters (e.g. triglyceride content and creatine kinase activity). At D0 and D8, there was a sex effect for several metabolic pathways. Metabolism appeared to be more active and oriented towards protein synthesis (RPS6) and fatty acid ß-oxidation (ACAA2, ACOX1) in males than in females. In comparison, the genes overexpressed in females were related to carbohydrate metabolism (SLC2A1, SLC2A12, FoxO1, PHKA2, PHKB, PRKAB2 and GYS2). CONCLUSIONS: Our study provides the first detailed description of the evolution of different hepatic metabolic pathways during the early development of embryos and post-hatching chicks. We found a metabolic orientation for the pHu + line towards proteolysis, glycogen degradation, ATP synthesis and autophagy, likely in response to a higher energy requirement compared with pHu- embryos. The metabolic orientations specific to the pHu + and pHu- lines are established very early, probably in relation with their different genetic background and available nutrients.


Subject(s)
Chickens , Liver , Animals , Chickens/genetics , Chickens/growth & development , Chickens/metabolism , Liver/metabolism , Liver/growth & development , Hydrogen-Ion Concentration , Female , Pectoralis Muscles/metabolism , Pectoralis Muscles/growth & development , Male , Gene Expression Profiling , Chick Embryo , Gene Expression Regulation, Developmental
17.
Open Biol ; 14(5): 230358, 2024 May.
Article in English | MEDLINE | ID: mdl-38689555

ABSTRACT

The nucleolus is the most prominent liquid droplet-like membrane-less organelle in mammalian cells. Unlike the nucleolus in terminally differentiated somatic cells, those in totipotent cells, such as murine zygotes or two-cell embryos, have a unique nucleolar structure known as nucleolus precursor bodies (NPBs). Previously, it was widely accepted that NPBs in zygotes are simply passive repositories of materials that will be gradually used to construct a fully functional nucleolus after zygotic genome activation (ZGA). However, recent research studies have challenged this simplistic view and demonstrated that functions of the NPBs go beyond ribosome biogenesis. In this review, we provide a snapshot of the functions of NPBs in zygotes and early two-cell embryos in mice. We propose that these membrane-less organelles function as a regulatory hub for chromatin organization. On the one hand, NPBs provide the structural platform for centric and pericentric chromatin remodelling. On the other hand, the dynamic changes in nucleolar structure control the release of the pioneer factors (i.e. double homeobox (Dux)). It appears that during transition from totipotency to pluripotency, decline of totipotency and initiation of fully functional nucleolus formation are not independent events but are interconnected. Consequently, it is reasonable to hypothesize that dissecting more unknown functions of NPBs may shed more light on the enigmas of early embryonic development and may ultimately provide novel approaches to improve reprogramming efficiency.


Subject(s)
Cell Nucleolus , Chromatin , Embryonic Development , Animals , Cell Nucleolus/metabolism , Chromatin/metabolism , Mice , Zygote/metabolism , Zygote/cytology , Gene Expression Regulation, Developmental , Chromatin Assembly and Disassembly , Humans
18.
Nat Commun ; 15(1): 3873, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38719882

ABSTRACT

Human glial progenitor cells (hGPCs) exhibit diminished expansion competence with age, as well as after recurrent demyelination. Using RNA-sequencing to compare the gene expression of fetal and adult hGPCs, we identify age-related changes in transcription consistent with the repression of genes enabling mitotic expansion, concurrent with the onset of aging-associated transcriptional programs. Adult hGPCs develop a repressive transcription factor network centered on MYC, and regulated by ZNF274, MAX, IKZF3, and E2F6. Individual over-expression of these factors in iPSC-derived hGPCs lead to a loss of proliferative gene expression and an induction of mitotic senescence, replicating the transcriptional changes incurred during glial aging. miRNA profiling identifies the appearance of an adult-selective miRNA signature, imposing further constraints on the expansion competence of aged GPCs. hGPC aging is thus associated with acquisition of a MYC-repressive environment, suggesting that suppression of these repressors of glial expansion may permit the rejuvenation of aged hGPCs.


Subject(s)
Aging , MicroRNAs , Neuroglia , Transcription Factors , Humans , Neuroglia/metabolism , Neuroglia/cytology , Aging/genetics , Aging/metabolism , Transcription Factors/metabolism , Transcription Factors/genetics , MicroRNAs/genetics , MicroRNAs/metabolism , Cellular Senescence/genetics , Induced Pluripotent Stem Cells/metabolism , Induced Pluripotent Stem Cells/cytology , Stem Cells/metabolism , Stem Cells/cytology , Proto-Oncogene Proteins c-myc/metabolism , Proto-Oncogene Proteins c-myc/genetics , Adult , Gene Regulatory Networks , Cell Proliferation/genetics , Gene Expression Regulation, Developmental , Gene Expression Profiling
19.
Neural Dev ; 19(1): 5, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38720353

ABSTRACT

BACKGROUND: Chaetognaths are a clade of marine worm-like invertebrates with a heavily debated phylogenetic position. Their nervous system superficially resembles the protostome type, however, knowledge regarding the molecular processes involved in neurogenesis is lacking. To better understand these processes, we examined the expression profiles of marker genes involved in bilaterian neurogenesis during post-embryonic stages of Spadella cephaloptera. We also investigated whether the transcription factor encoding genes involved in neural patterning are regionally expressed in a staggered fashion along the mediolateral axis of the nerve cord as it has been previously demonstrated in selected vertebrate, insect, and annelid models. METHODS: The expression patterns of genes involved in neural differentiation (elav), neural patterning (foxA, nkx2.2, pax6, pax3/7, and msx), and neuronal function (ChAT and VAChT) were examined in S. cephaloptera hatchlings and early juveniles using whole-mount fluorescent in situ hybridization and confocal microscopy. RESULTS: The Sce-elav + profile of S. cephaloptera hatchlings reveals that, within 24 h of post-embryonic development, the developing neural territories are not limited to the regions previously ascribed to the cerebral ganglion, the ventral nerve center (VNC), and the sensory organs, but also extend to previously unreported CNS domains that likely contribute to the ventral cephalic ganglia. In general, the neural patterning genes are expressed in distinct neural subpopulations of the cerebral ganglion and the VNC in hatchlings, eventually becoming broadly expressed with reduced intensity throughout the CNS in early juveniles. Neural patterning gene expression domains are also present outside the CNS, including the digestive tract and sensory organs. ChAT and VAChT domains within the CNS are predominantly observed in specific subpopulations of the VNC territory adjacent to the ventral longitudinal muscles in hatchlings. CONCLUSIONS: The observed spatial expression domains of bilaterian neural marker gene homologs in S. cephaloptera suggest evolutionarily conserved roles in neurogenesis for these genes among bilaterians. Patterning genes expressed in distinct regions of the VNC do not show a staggered medial-to-lateral expression profile directly superimposable to other bilaterian models. Only when the VNC is conceptually laterally unfolded from the longitudinal muscle into a flat structure, an expression pattern bearing resemblance to the proposed conserved bilaterian mediolateral regionalization becomes noticeable. This finding supports the idea of an ancestral mediolateral patterning of the trunk nervous system in bilaterians.


Subject(s)
Gene Expression Regulation, Developmental , Neurogenesis , Animals , Neurogenesis/physiology , Invertebrates/genetics , Body Patterning/genetics , Body Patterning/physiology , Transcription Factors/genetics , Transcription Factors/metabolism
20.
Nat Commun ; 15(1): 3809, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38714644

ABSTRACT

Mammalian sex determination is controlled by antagonistic gene cascades operating in embryonic undifferentiated gonads. The expression of the Y-linked gene SRY is sufficient to trigger the testicular pathway, whereas its absence in XX embryos leads to ovarian differentiation. Yet, the potential involvement of non-coding regulation in this process remains unclear. Here we show that the deletion of a single microRNA cluster, miR-17~92, induces complete primary male-to-female sex reversal in XY mice. Sry expression is delayed in XY knockout gonads, which develop as ovaries. Sertoli cell differentiation is reduced, delayed and unable to sustain testicular development. Pre-supporting cells in mutant gonads undergo a transient state of sex ambiguity which is subsequently resolved towards the ovarian fate. The miR-17~92 predicted target genes are upregulated, affecting the fine regulation of gene networks controlling gonad development. Thus, microRNAs emerge as key components for mammalian sex determination, controlling Sry expression timing and Sertoli cell differentiation.


Subject(s)
Cell Differentiation , MicroRNAs , Ovary , Sertoli Cells , Sex Determination Processes , Sex-Determining Region Y Protein , Testis , Animals , MicroRNAs/genetics , MicroRNAs/metabolism , Female , Male , Sertoli Cells/metabolism , Sertoli Cells/cytology , Mice , Ovary/metabolism , Testis/metabolism , Sex-Determining Region Y Protein/genetics , Sex-Determining Region Y Protein/metabolism , Cell Differentiation/genetics , Sex Determination Processes/genetics , Gene Expression Regulation, Developmental , Mice, Knockout , Sex Differentiation/genetics , Disorders of Sex Development/genetics , Gonads/metabolism
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