Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 20 de 29.841
Filtrar
1.
Elife ; 122024 May 09.
Artículo en Inglés | MEDLINE | ID: mdl-38722314

RESUMEN

Retinal pigment epithelium (RPE) cells show heterogeneous levels of pigmentation when cultured in vitro. To know whether their color in appearance is correlated with the function of the RPE, we analyzed the color intensities of human-induced pluripotent stem cell-derived RPE cells (iPSC-RPE) together with the gene expression profile at the single-cell level. For this purpose, we utilized our recent invention, Automated Live imaging and cell Picking System (ALPS), which enabled photographing each cell before RNA-sequencing analysis to profile the gene expression of each cell. While our iPSC-RPE were categorized into four clusters by gene expression, the color intensity of iPSC-RPE did not project any specific gene expression profiles. We reasoned this by less correlation between the actual color and the gene expressions that directly define the level of pigmentation, from which we hypothesized the color of RPE cells may be a temporal condition not strongly indicating the functional characteristics of the RPE.


The backs of our eyes are lined with retinal pigment epithelial cells (or RPE cells for short). These cells provide nutrition to surrounding cells and contain a pigment called melanin that absorbs excess light that might interfere with vision. By doing so, they support the cells that receive light to enable vision. However, with age, RPE cells can become damaged and less able to support other cells. This can lead to a disease called age-related macular degeneration, which can cause blindness. One potential way to treat this disease is to transplant healthy RPE cells into eyes that have lost them. These healthy cells can be grown in the laboratory from human pluripotent stem cells, which have the capacity to turn into various specialist cells. Stem cell-derived RPE cells growing in a dish contain varying amounts of melanin, resulting in some being darker than others. This raised the question of whether pigment levels affect the function of RPE cells. However, it was difficult to compare single cells containing various amounts of pigment as most previous studies only analyzed large numbers of RPE cells mixed together. Nakai-Futatsugi et al. overcame this hurdle using a technique called Automated Live imaging and cell Picking System (also known as ALPS). More than 2300 stem cell-derived RPE cells were photographed individually and the color of each cell was recorded. The gene expression of each cell was then measured to investigate whether certain genes being switched on or off affects pigment levels and cell function. Analysis did not find a consistent pattern of gene expression underlying the pigmentation of RPE cells. Even gene expression related to the production of melanin was only slightly linked to the color of the cells. These findings suggests that the RPE cell color fluctuates and is not primarily determined by which genes are switched on or off. Future experiments are required to determine whether the findings are the same for RPE cells grown naturally in the eyes and whether different pigment levels affect their capacity to protect the rest of the eye.


Asunto(s)
Células Madre Pluripotentes Inducidas , Pigmentación , Epitelio Pigmentado de la Retina , Transcriptoma , Humanos , Epitelio Pigmentado de la Retina/metabolismo , Epitelio Pigmentado de la Retina/citología , Epitelio Pigmentado de la Retina/fisiología , Células Madre Pluripotentes Inducidas/metabolismo , Pigmentación/genética , Perfilación de la Expresión Génica , Células Cultivadas , Diferenciación Celular/genética
2.
PLoS One ; 19(5): e0298827, 2024.
Artículo en Inglés | MEDLINE | ID: mdl-38722949

RESUMEN

Glutathione peroxidase 2 (GPX2) is a selenium-dependent enzyme and protects cells against oxidative damage. Recently, GPX2 has been identified as a candidate gene for backfat and feed efficiency in pigs. However, it is unclear whether GPX2 regulates the development of porcine preadipocytes and skeletal muscle cells. In this study, adenoviral gene transfer was used to overexpress GPX2. Our findings suggest that overexpression of GPX2 gene inhibited proliferation of porcine preadipocytes. And the process is accompanied by the reduction of the p-p38. GPX2 inhibited adipogenic differentiation and promoted lipid degradation, while ERK1/2 was reduced and p-p38 was increased. Proliferation of porcine skeletal muscle cells was induced after GPX2 overexpression, was accompanied by activation in JNK, ERK1/2, and p-p38. Overexpression methods confirmed that GPX2 has a promoting function in myoblastic differentiation. ERK1/2 pathway was activated and p38 was suppressed during the process. This study lays a foundation for the functional study of GPX2 and provides theoretical support for promoting subcutaneous fat reduction and muscle growth.


Asunto(s)
Adipocitos , Glutatión Peroxidasa , Sistema de Señalización de MAP Quinasas , Animales , Glutatión Peroxidasa/metabolismo , Glutatión Peroxidasa/genética , Adipocitos/metabolismo , Adipocitos/citología , Porcinos , Diferenciación Celular/genética , Proliferación Celular , Adipogénesis/genética , Proteínas Quinasas p38 Activadas por Mitógenos/metabolismo , Proteínas Quinasas p38 Activadas por Mitógenos/genética , Fibras Musculares Esqueléticas/metabolismo , Fibras Musculares Esqueléticas/citología , Músculo Esquelético/metabolismo , Músculo Esquelético/citología
3.
Cells ; 13(9)2024 Apr 24.
Artículo en Inglés | MEDLINE | ID: mdl-38727278

RESUMEN

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


Asunto(s)
Espermatogonias , Humanos , Animales , Masculino , Espermatogonias/citología , Espermatogonias/metabolismo , Células Madre Germinales Adultas/metabolismo , Células Madre Germinales Adultas/citología , Diferenciación Celular/genética , Espermatogénesis/genética , Transcriptoma/genética , Adulto , Ratones , Feto/citología , Testículo/citología , Testículo/metabolismo , Roedores , Ratas , Análisis de la Célula Individual
4.
Cells ; 13(9)2024 May 02.
Artículo en Inglés | MEDLINE | ID: mdl-38727314

RESUMEN

During the secretory phase of the menstrual cycle, endometrial fibroblast cells begin to change into large epithelial-like cells called decidual cells in a process called decidualization. This differentiation continues more broadly in the endometrium and forms the decidual tissue during early pregnancy. The cells undergoing decidualization as well as the resulting decidual cells, support successful implantation and placentation during early pregnancy. This study was carried out to identify new potentially important long non-coding RNA (lncRNA) genes that may play a role in human endometrial stromal fibroblast cells (hESF) undergoing decidualization in vitro, and several were found. The expression of nine was further characterized. One of these, AC027288.3, showed a dramatic increase in the expression of hESF cells undergoing decidualization. When AC027288.3 expression was targeted, the ability of the cells to undergo decidualization as determined by the expression of decidualization marker protein-coding genes was significantly altered. The most affected markers of decidualization whose expression was significantly reduced were FOXO1, FZD4, and INHBA. Therefore, AC027288.3 may be a major upstream regulator of the WNT-FOXO1 pathway and activin-SMAD3 pathways previously shown as critical for hESF decidualization. Finally, we explored possible regulators of AC027288.3 expression during human ESF decidualization. Expression was regulated by cAMP and progesterone. Our results suggest that AC027288.3 plays a role in hESF decidualization and identifies several other lncRNA genes that may also play a role.


Asunto(s)
Decidua , Endometrio , Fibroblastos , ARN Largo no Codificante , Células del Estroma , Humanos , Femenino , ARN Largo no Codificante/genética , ARN Largo no Codificante/metabolismo , Fibroblastos/metabolismo , Fibroblastos/citología , Decidua/metabolismo , Decidua/citología , Endometrio/citología , Endometrio/metabolismo , Células del Estroma/metabolismo , Células del Estroma/citología , Proteína Forkhead Box O1/metabolismo , Proteína Forkhead Box O1/genética , Embarazo , Adulto , Diferenciación Celular/genética
5.
Nat Commun ; 15(1): 3946, 2024 May 10.
Artículo en Inglés | MEDLINE | ID: mdl-38729950

RESUMEN

Disease modeling with isogenic Induced Pluripotent Stem Cell (iPSC)-differentiated organoids serves as a powerful technique for studying disease mechanisms. Multiplexed coculture is crucial to mitigate batch effects when studying the genetic effects of disease-causing variants in differentiated iPSCs or organoids, and demultiplexing at the single-cell level can be conveniently achieved by assessing natural genetic barcodes. Here, to enable cost-efficient time-series experimental designs via multiplexed bulk and single-cell RNA-seq of hybrids, we introduce a computational method in our Vireo Suite, Vireo-bulk, to effectively deconvolve pooled bulk RNA-seq data by genotype reference, and thereby quantify donor abundance over the course of differentiation and identify differentially expressed genes among donors. Furthermore, with multiplexed scRNA-seq and bulk RNA-seq, we demonstrate the usefulness and necessity of a pooled design to reveal donor iPSC line heterogeneity during macrophage cell differentiation and to model rare WT1 mutation-driven kidney disease with chimeric organoids. Our work provides an experimental and analytic pipeline for dissecting disease mechanisms with chimeric organoids.


Asunto(s)
Diferenciación Celular , Células Madre Pluripotentes Inducidas , Organoides , RNA-Seq , Análisis de la Célula Individual , Organoides/metabolismo , Análisis de la Célula Individual/métodos , Células Madre Pluripotentes Inducidas/metabolismo , Células Madre Pluripotentes Inducidas/citología , Humanos , Diferenciación Celular/genética , RNA-Seq/métodos , Análisis de Secuencia de ARN/métodos , Macrófagos/metabolismo , Macrófagos/citología , Animales , Análisis de Expresión Génica de una Sola Célula
6.
Int J Mol Sci ; 25(9)2024 Apr 23.
Artículo en Inglés | MEDLINE | ID: mdl-38731807

RESUMEN

Fat tissue-a vital energy storage organ-is intricately regulated by various factors, including circular RNA, which plays a significant role in modulating fat development and lipid metabolism. Therefore, this study aims to clarify the regulatory mechanism of sheep adipocyte proliferation and differentiation by investigating the involvement of circTIAM1, miR-485-3p, and its target gene PLCB1. Through previous sequencing data, circTIAM1 was identified in sheep adipocytes, with its circularization mechanism elucidated, confirming its cytoplasmic localization. Experimental evidence from RNase R treatment and transcription inhibitors highlighted that circTIAM1 is more stable than linear RNA. Additionally, circTIAM1 promoted sheep adipocyte proliferation and differentiation. Furthermore, bioinformatic analysis demonstrated a robust interaction between miR-485-3p and circTIAM1. Further experiments revealed that miR-485-3p inhibits fat cell proliferation and differentiation by inhibiting PLCB1, with circTIAM1 alleviating the inhibitory effect via competitive binding. In summary, our findings elucidate the mechanism through which circTIAM1 regulates Guangling Large-Tailed sheep adipocyte proliferation and differentiation via the miR-485-3p-PLCB1 pathway, offering a novel perspective for further exploring fat metabolism regulation.


Asunto(s)
Adipocitos , Diferenciación Celular , Proliferación Celular , MicroARNs , Fosfolipasa C beta , ARN Circular , Animales , MicroARNs/genética , MicroARNs/metabolismo , Adipocitos/metabolismo , Adipocitos/citología , Proliferación Celular/genética , ARN Circular/genética , ARN Circular/metabolismo , Ovinos , Diferenciación Celular/genética , Fosfolipasa C beta/metabolismo , Fosfolipasa C beta/genética , Transducción de Señal
7.
Int J Mol Sci ; 25(9)2024 Apr 28.
Artículo en Inglés | MEDLINE | ID: mdl-38732031

RESUMEN

Skeletal muscle myogenesis hinges on gene regulation, meticulously orchestrated by molecular mechanisms. While the roles of transcription factors and non-coding RNAs in myogenesis are widely known, the contribution of RNA-binding proteins (RBPs) has remained unclear until now. Therefore, to investigate the functions of post-transcriptional regulators in myogenesis and uncover new functional RBPs regulating myogenesis, we employed CRISPR high-throughput RBP-KO (RBP-wide knockout) library screening. Through this approach, we successfully identified Eef1a1 as a novel regulatory factor in myogenesis. Using CRISPR knockout (CRISPRko) and CRISPR interference (CRISPRi) technologies, we successfully established cellular models for both CRISPRko and CRISPRi. Our findings demonstrated that Eef1a1 plays a crucial role in promoting proliferation in C2C12 myoblasts. Through siRNA inhibition and overexpression methods, we further elucidated the involvement of Eef1a1 in promoting proliferation and suppressing differentiation processes. RIP (RNA immunoprecipitation), miRNA pull-down, and Dual-luciferase reporter assays confirmed that miR-133a-3p targets Eef1a1. Co-transfection experiments indicated that miR-133a-3p can rescue the effect of Eef1a1 on C2C12 myoblasts. In summary, our study utilized CRISPR library high-throughput screening to unveil a novel RBP, Eef1a1, involved in regulating myogenesis. Eef1a1 promotes the proliferation of myoblasts while inhibiting the differentiation process. Additionally, it acts as an antagonist to miR-133a-3p, thus modulating the process of myogenesis.


Asunto(s)
Diferenciación Celular , Proliferación Celular , Desarrollo de Músculos , Mioblastos , Factor 1 de Elongación Peptídica , Desarrollo de Músculos/genética , Factor 1 de Elongación Peptídica/genética , Factor 1 de Elongación Peptídica/metabolismo , Animales , Ratones , Proliferación Celular/genética , Diferenciación Celular/genética , Mioblastos/metabolismo , Mioblastos/citología , Sistemas CRISPR-Cas , Línea Celular , MicroARNs/genética , MicroARNs/metabolismo , Humanos , Proteínas de Unión al ARN/metabolismo , Proteínas de Unión al ARN/genética
8.
Mol Biol Rep ; 51(1): 632, 2024 May 09.
Artículo en Inglés | MEDLINE | ID: mdl-38724827

RESUMEN

BACKGROUND: MicroRNAs (miRNAs) play critical roles in the osteogenic differentiation of human bone mesenchymal stem cells (hBMSCs), but the mechanism by which miRNAs indirectly modulate osteogenesis remains unclear. Here, we explored the mechanism by which miRNAs indirectly modulate gene expression through histone demethylases to promote bone regeneration. METHODS AND RESULTS: Bioinformatics analysis was performed on hBMSCs after 7 days of osteogenic induction. The differentially expressed miRNAs were screened, and potential target mRNAs were identified. To determine the bioactivity and stemness of hBMSCs and their potential for bone repair, we performed wound healing, Cell Counting Kit-8 (CCK-8), real-time reverse transcription quantitative polymerase chain reaction (RT‒qPCR), alkaline phosphatase activity, alizarin red S (ARS) staining and radiological and histological analyses on SD rats with calvarial bone defects. Additionally, a dual-luciferase reporter assay was utilized to investigate the interaction between miR-26b-5p and ten-eleven translocation 3 (TET3) in human embryonic kidney 293T cells. The in vitro and in vivo results suggested that miR-26b-5p effectively promoted the migration, proliferation and osteogenic differentiation of hBMSCs, as well as the bone reconstruction of calvarial defects in SD rats. Mechanistically, miR-26b-5p bound to the 3' untranslated region of TET3 mRNA to mediate gene silencing. CONCLUSIONS: MiR-26b-5p downregulated the expression of TET3 to increase the osteogenic differentiation of hBMSCs and bone repair in rat calvarial defects. MiR-26b-5p/TET3 crosstalk might be useful in large-scale critical bone defects.


Asunto(s)
Regeneración Ósea , Diferenciación Celular , Dioxigenasas , Células Madre Mesenquimatosas , MicroARNs , Osteogénesis , Ratas Sprague-Dawley , Cráneo , MicroARNs/genética , MicroARNs/metabolismo , Animales , Células Madre Mesenquimatosas/metabolismo , Humanos , Osteogénesis/genética , Diferenciación Celular/genética , Ratas , Cráneo/patología , Cráneo/metabolismo , Femenino , Regeneración Ósea/genética , Dioxigenasas/genética , Dioxigenasas/metabolismo , Proliferación Celular/genética , Células HEK293
9.
Nat Commun ; 15(1): 3821, 2024 May 07.
Artículo en Inglés | MEDLINE | ID: mdl-38714702

RESUMEN

Differentiation of stem and progenitor cells is a highly regulated process that involves the coordinated action of multiple layers of regulation. Here we show how the post-transcriptional regulatory layer instructs the level of chromatin regulation via miR-144 and its targets to orchestrate chromatin condensation during erythropoiesis. The loss of miR-144 leads to impaired chromatin condensation during erythrocyte maturation. Among the several targets of miR-144 that influence chromatin organization, the miR-144-dependent regulation of Hmgn2 is conserved from fish to humans. Our genetic probing of the miR-144/Hmgn2 regulatory axis establish that intact miR-144 target sites in the Hmgn2 3'UTR are necessary for the proper maturation of erythrocytes in both zebrafish and human iPSC-derived erythroid cells while loss of Hmgn2 rescues in part the miR-144 null phenotype. Altogether, our results uncover miR-144 and its target Hmgn2 as the backbone of the genetic regulatory circuit that controls the terminal differentiation of erythrocytes in vertebrates.


Asunto(s)
Cromatina , Eritropoyesis , MicroARNs , Pez Cebra , MicroARNs/metabolismo , MicroARNs/genética , Eritropoyesis/genética , Pez Cebra/genética , Pez Cebra/metabolismo , Humanos , Animales , Cromatina/metabolismo , Cromatina/genética , Eritrocitos/metabolismo , Regiones no Traducidas 3'/genética , Células Madre Pluripotentes Inducidas/metabolismo , Células Madre Pluripotentes Inducidas/citología , Diferenciación Celular/genética
10.
Cell Mol Life Sci ; 81(1): 208, 2024 May 06.
Artículo en Inglés | MEDLINE | ID: mdl-38710919

RESUMEN

Trophoblast stem cells (TSCs) can be chemically converted from embryonic stem cells (ESCs) in vitro. Although several transcription factors (TFs) have been recognized as essential for TSC formation, it remains unclear how differentiation cues link elimination of stemness with the establishment of TSC identity. Here, we show that PRDM14, a critical pluripotent circuitry component, is reduced during the formation of TSCs. The reduction is further shown to be due to the activation of Wnt/ß-catenin signaling. The extinction of PRDM14 results in the erasure of H3K27me3 marks and chromatin opening in the gene loci of TSC TFs, including GATA3 and TFAP2C, which enables their expression and thus the initiation of the TSC formation process. Accordingly, PRDM14 reduction is proposed here as a critical event that couples elimination of stemness with the initiation of TSC formation. The present study provides novel insights into how induction signals initiate TSC formation.


Asunto(s)
Diferenciación Celular , Proteínas de Unión al ADN , Factores de Transcripción , Trofoblastos , Vía de Señalización Wnt , Trofoblastos/metabolismo , Trofoblastos/citología , Animales , Ratones , Factores de Transcripción/metabolismo , Factores de Transcripción/genética , Diferenciación Celular/genética , Proteínas de Unión al ADN/metabolismo , Proteínas de Unión al ADN/genética , Factor de Transcripción GATA3/metabolismo , Factor de Transcripción GATA3/genética , Factor de Transcripción AP-2/metabolismo , Factor de Transcripción AP-2/genética , Células Madre/metabolismo , Células Madre/citología , Proteínas de Unión al ARN/metabolismo , Proteínas de Unión al ARN/genética , Histonas/metabolismo , Histonas/genética
11.
Sci Rep ; 14(1): 10983, 2024 05 14.
Artículo en Inglés | MEDLINE | ID: mdl-38744869

RESUMEN

Parkinson's disease (PD) is a complex neurodegenerative disorder without a cure. The onset of PD symptoms corresponds to 50% loss of midbrain dopaminergic (mDA) neurons, limiting early-stage understanding of PD. To shed light on early PD development, we study time series scRNA-seq datasets of mDA neurons obtained from patient-derived induced pluripotent stem cell differentiation. We develop a new data integration method based on Non-negative Matrix Tri-Factorization that integrates these datasets with molecular interaction networks, producing condition-specific "gene embeddings". By mining these embeddings, we predict 193 PD-related genes that are largely supported (49.7%) in the literature and are specific to the investigated PINK1 mutation. Enrichment analysis in Kyoto Encyclopedia of Genes and Genomes pathways highlights 10 PD-related molecular mechanisms perturbed during early PD development. Finally, investigating the top 20 prioritized genes reveals 12 previously unrecognized genes associated with PD that represent interesting drug targets.


Asunto(s)
Neuronas Dopaminérgicas , Enfermedad de Parkinson , Enfermedad de Parkinson/genética , Enfermedad de Parkinson/patología , Humanos , Neuronas Dopaminérgicas/metabolismo , Neuronas Dopaminérgicas/patología , RNA-Seq/métodos , Células Madre Pluripotentes Inducidas/metabolismo , Mesencéfalo/metabolismo , Mesencéfalo/patología , Redes Reguladoras de Genes , Mutación , Diferenciación Celular/genética , Multiómica , Análisis de Expresión Génica de una Sola Célula
12.
Mol Med Rep ; 29(6)2024 06.
Artículo en Inglés | MEDLINE | ID: mdl-38695236

RESUMEN

During hematopoiesis, megakaryocytic erythroid progenitors (MEPs) differentiate into megakaryocytic or erythroid lineages in response to specific transcriptional factors, yet the regulatory mechanism remains to be elucidated. Using the MEP­like cell line HEL western blotting, RT­qPCR, lentivirus­mediated downregulation, flow cytometry as well as chromatin immunoprecipitation (ChIp) assay demonstrated that the E26 transformation­specific (ETS) transcription factor friend leukemia integration factor 1 (Fli­1) inhibits erythroid differentiation. The present study using these methods showed that while FLI1­mediated downregulation of GATA binding protein 1 (GATA1) suppresses erythropoiesis, its direct transcriptional induction of GATA2 promotes megakaryocytic differentiation. GATA1 is also involved in megakaryocytic differentiation through regulation of GATA2. By contrast to FLI1, the ETS member erythroblast transformation­specific­related gene (ERG) negatively controls GATA2 and its overexpression through exogenous transfection blocks megakaryocytic differentiation. In addition, FLI1 regulates expression of LIM Domain Binding 1 (LDB1) during erythroid and megakaryocytic commitment, whereas shRNA­mediated depletion of LDB1 downregulates FLI1 and GATA2 but increases GATA1 expression. In agreement, LDB1 ablation using shRNA lentivirus expression blocks megakaryocytic differentiation and modestly suppresses erythroid maturation. These results suggested that a certain threshold level of LDB1 expression enables FLI1 to block erythroid differentiation. Overall, FLI1 controlled the commitment of MEP to either erythroid or megakaryocytic lineage through an intricate regulation of GATA1/GATA2, LDB1 and ERG, exposing multiple targets for cell fate commitment and therapeutic intervention.


Asunto(s)
Diferenciación Celular , Factor de Transcripción GATA1 , Factor de Transcripción GATA2 , Megacariocitos , Proteína Proto-Oncogénica c-fli-1 , Regulador Transcripcional ERG , Proteína Proto-Oncogénica c-fli-1/metabolismo , Proteína Proto-Oncogénica c-fli-1/genética , Factor de Transcripción GATA1/metabolismo , Factor de Transcripción GATA1/genética , Humanos , Diferenciación Celular/genética , Factor de Transcripción GATA2/metabolismo , Factor de Transcripción GATA2/genética , Megacariocitos/metabolismo , Megacariocitos/citología , Regulador Transcripcional ERG/metabolismo , Regulador Transcripcional ERG/genética , Células Eritroides/metabolismo , Células Eritroides/citología , Proteínas con Dominio LIM/metabolismo , Proteínas con Dominio LIM/genética , Regulación de la Expresión Génica , Línea Celular
13.
Brief Bioinform ; 25(3)2024 Mar 27.
Artículo en Inglés | MEDLINE | ID: mdl-38739758

RESUMEN

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.


Asunto(s)
Biomarcadores , Encéfalo , Redes Reguladoras de Genes , Células Madre Embrionarias Humanas , Análisis de la Célula Individual , Humanos , Análisis de la Célula Individual/métodos , Células Madre Embrionarias Humanas/metabolismo , Células Madre Embrionarias Humanas/citología , Encéfalo/metabolismo , Encéfalo/embriología , Encéfalo/citología , Biomarcadores/metabolismo , Neuronas/metabolismo , Neuronas/citología , Diferenciación Celular/genética , RNA-Seq , Neurogénesis/genética , Regulación del Desarrollo de la Expresión Génica , Perfilación de la Expresión Génica , Análisis de Secuencia de ARN/métodos , Análisis de Expresión Génica de una Sola Célula
14.
Development ; 151(9)2024 May 01.
Artículo en Inglés | MEDLINE | ID: mdl-38727565

RESUMEN

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.


Asunto(s)
Desarrollo Embrionario , Regulación del Desarrollo de la Expresión Génica , Somitos , Animales , Desarrollo Embrionario/genética , Humanos , Somitos/metabolismo , Somitos/embriología , Desarrollo de Músculos/genética , Neurogénesis/genética , Neurogénesis/fisiología , Páncreas/embriología , Páncreas/metabolismo , Diferenciación Celular/genética
15.
Mol Biol Rep ; 51(1): 636, 2024 May 10.
Artículo en Inglés | MEDLINE | ID: mdl-38727863

RESUMEN

BACKGROUND: Osteoporosis (OP), characterized by compromised bone integrity and increased fracture risk, poses a significant health challenge. Circular RNAs (circRNAs) have emerged as crucial regulators in various pathophysiological processes, prompting investigation into their role in osteoporosis. This study aimed to elucidate the involvement of circCOX6A1 in OP progression and understand its underlying molecular mechanisms. The primary objective was to explore the impact of circCOX6A1 on bone marrow-derived mesenchymal stem cells (BMSCs) and its potential interactions with miR-512-3p and DYRK2. METHODS: GSE161361 microarray analysis was employed to assess circCOX6A1 expression in OP patients. We utilized in vitro and in vivo models, including BMSC cultures, osteogenic differentiation assays, and an OVX-induced mouse model of OP. Molecular techniques such as quantitative RT-PCR, western blotting, and functional assays like alizarin red staining (ARS) were employed to evaluate circCOX6A1 effects on BMSC proliferation, apoptosis, and osteogenic differentiation. The interaction between circCOX6A1, miR-512-3p, and DYRK2 was investigated through dual luciferase reporter assays, RNA immunoprecipitation, and RNA pull-down assays. RESULTS: CircCOX6A1 was found to be upregulated in osteoporosis patients, and its expression inversely correlated with osteogenic differentiation of BMSCs. CircCOX6A1 knockdown enhanced osteogenic differentiation, as evidenced by increased mineralized nodule formation and upregulation of osteogenic markers. In vivo, circCOX6A1 knockdown ameliorated osteoporosis progression in OVX mice. Mechanistically, circCOX6A1 acted as a sponge for miR-512-3p, subsequently regulating DYRK2 expression. CONCLUSION: This study provides compelling evidence for the role of circCOX6A1 in osteoporosis pathogenesis. CircCOX6A1 negatively regulates BMSC osteogenic differentiation through the miR-512-3p/DYRK2 axis, suggesting its potential as a therapeutic target for mitigating OP progression.


Asunto(s)
Diferenciación Celular , Quinasas DyrK , Células Madre Mesenquimatosas , MicroARNs , Osteogénesis , Osteoporosis , Proteínas Serina-Treonina Quinasas , Proteínas Tirosina Quinasas , ARN Circular , Osteoporosis/genética , Osteoporosis/metabolismo , Osteoporosis/patología , Osteogénesis/genética , MicroARNs/genética , MicroARNs/metabolismo , Animales , Diferenciación Celular/genética , Proteínas Serina-Treonina Quinasas/genética , Proteínas Serina-Treonina Quinasas/metabolismo , Humanos , Proteínas Tirosina Quinasas/genética , Proteínas Tirosina Quinasas/metabolismo , Ratones , Células Madre Mesenquimatosas/metabolismo , ARN Circular/genética , ARN Circular/metabolismo , Femenino , Proliferación Celular/genética , Modelos Animales de Enfermedad , Apoptosis/genética , Persona de Mediana Edad
16.
Nat Commun ; 15(1): 3809, 2024 May 07.
Artículo en Inglés | MEDLINE | ID: mdl-38714644

RESUMEN

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.


Asunto(s)
Diferenciación Celular , MicroARNs , Ovario , Células de Sertoli , Procesos de Determinación del Sexo , Proteína de la Región Y Determinante del Sexo , Testículo , Animales , MicroARNs/genética , MicroARNs/metabolismo , Femenino , Masculino , Células de Sertoli/metabolismo , Células de Sertoli/citología , Ratones , Ovario/metabolismo , Testículo/metabolismo , Proteína de la Región Y Determinante del Sexo/genética , Proteína de la Región Y Determinante del Sexo/metabolismo , Diferenciación Celular/genética , Procesos de Determinación del Sexo/genética , Regulación del Desarrollo de la Expresión Génica , Ratones Noqueados , Diferenciación Sexual/genética , Trastornos del Desarrollo Sexual/genética , Gónadas/metabolismo
17.
NPJ Syst Biol Appl ; 10(1): 47, 2024 May 06.
Artículo en Inglés | MEDLINE | ID: mdl-38710700

RESUMEN

Understanding and manipulating cell fate determination is pivotal in biology. Cell fate is determined by intricate and nonlinear interactions among molecules, making mathematical model-based quantitative analysis indispensable for its elucidation. Nevertheless, obtaining the essential dynamic experimental data for model development has been a significant obstacle. However, recent advancements in large-scale omics data technology are providing the necessary foundation for developing such models. Based on accumulated experimental evidence, we can postulate that cell fate is governed by a limited number of core regulatory circuits. Following this concept, we present a conceptual control framework that leverages single-cell RNA-seq data for dynamic molecular regulatory network modeling, aiming to identify and manipulate core regulatory circuits and their master regulators to drive desired cellular state transitions. We illustrate the proposed framework by applying it to the reversion of lung cancer cell states, although it is more broadly applicable to understanding and controlling a wide range of cell-fate determination processes.


Asunto(s)
Redes Reguladoras de Genes , Análisis de la Célula Individual , Humanos , Redes Reguladoras de Genes/genética , Análisis de la Célula Individual/métodos , Neoplasias Pulmonares/genética , Neoplasias Pulmonares/patología , Diferenciación Celular/genética , Modelos Biológicos , Biología Computacional/métodos
18.
Sci Rep ; 14(1): 10420, 2024 05 07.
Artículo en Inglés | MEDLINE | ID: mdl-38710730

RESUMEN

In the mouse embryo, the transition from the preimplantation to the postimplantation epiblast is governed by changes in the gene regulatory network (GRN) that lead to transcriptional, epigenetic, and functional changes. This transition can be faithfully recapitulated in vitro by the differentiation of mouse embryonic stem cells (mESCs) to epiblast-like cells (EpiLCs), that reside in naïve and formative states of pluripotency, respectively. However, the GRN that drives this conversion is not fully elucidated. Here we demonstrate that the transcription factor OCT6 is a key driver of this process. Firstly, we show that Oct6 is not expressed in mESCs but is rapidly induced as cells exit the naïve pluripotent state. By deleting Oct6 in mESCs, we find that knockout cells fail to acquire the typical morphological changes associated with the formative state when induced to differentiate. Additionally, the key naïve pluripotency TFs Nanog, Klf2, Nr5a2, Prdm14, and Esrrb were expressed at higher levels than in wild-type cells, indicating an incomplete dismantling of the naïve pluripotency GRN. Conversely, premature expression of Oct6 in naïve cells triggered a rapid morphological transformation mirroring differentiation, that was accompanied by the upregulation of the endogenous Oct6 as well as the formative genes Sox3, Zic2/3, Foxp1, Dnmt3A and FGF5. Strikingly, we found that OCT6 represses Nanog in a bistable manner and that this regulation is at the transcriptional level. Moreover, our findings also reveal that Oct6 is repressed by NANOG. Collectively, our results establish OCT6 as a key TF in the dissolution of the naïve pluripotent state and support a model where Oct6 and Nanog form a double negative feedback loop which could act as an important toggle mediating the transition to the formative state.


Asunto(s)
Diferenciación Celular , Redes Reguladoras de Genes , Células Madre Embrionarias de Ratones , Proteína Homeótica Nanog , Animales , Ratones , Proteína Homeótica Nanog/metabolismo , Proteína Homeótica Nanog/genética , Diferenciación Celular/genética , Células Madre Embrionarias de Ratones/metabolismo , Células Madre Embrionarias de Ratones/citología , Células Madre Pluripotentes/metabolismo , Células Madre Pluripotentes/citología , Regulación del Desarrollo de la Expresión Génica , Factor 3 de Transcripción de Unión a Octámeros/metabolismo , Factor 3 de Transcripción de Unión a Octámeros/genética , Estratos Germinativos/metabolismo , Estratos Germinativos/citología , Ratones Noqueados
19.
Cell Stem Cell ; 31(5): 754-771.e6, 2024 May 02.
Artículo en Inglés | MEDLINE | ID: mdl-38701759

RESUMEN

Development of embryonic stem cells (ESCs) into neurons requires intricate regulation of transcription, splicing, and translation, but how these processes interconnect is not understood. We found that polypyrimidine tract binding protein 1 (PTBP1) controls splicing of DPF2, a subunit of BRG1/BRM-associated factor (BAF) chromatin remodeling complexes. Dpf2 exon 7 splicing is inhibited by PTBP1 to produce the DPF2-S isoform early in development. During neuronal differentiation, loss of PTBP1 allows exon 7 inclusion and DPF2-L expression. Different cellular phenotypes and gene expression programs were induced by these alternative DPF2 isoforms. We identified chromatin binding sites enriched for each DPF2 isoform, as well as sites bound by both. In ESC, DPF2-S preferential sites were bound by pluripotency factors. In neuronal progenitors, DPF2-S sites were bound by nuclear factor I (NFI), while DPF2-L sites were bound by CCCTC-binding factor (CTCF). DPF2-S sites exhibited enhancer modifications, while DPF2-L sites showed promoter modifications. Thus, alternative splicing redirects BAF complex targeting to impact chromatin organization during neuronal development.


Asunto(s)
Empalme Alternativo , Diferenciación Celular , Cromatina , Ribonucleoproteínas Nucleares Heterogéneas , Neuronas , Proteína de Unión al Tracto de Polipirimidina , Factores de Transcripción , Empalme Alternativo/genética , Proteína de Unión al Tracto de Polipirimidina/metabolismo , Proteína de Unión al Tracto de Polipirimidina/genética , Animales , Diferenciación Celular/genética , Cromatina/metabolismo , Ratones , Neuronas/metabolismo , Neuronas/citología , Factores de Transcripción/metabolismo , Factores de Transcripción/genética , Ribonucleoproteínas Nucleares Heterogéneas/metabolismo , Ribonucleoproteínas Nucleares Heterogéneas/genética , Proteínas de Unión al ADN/metabolismo , Proteínas de Unión al ADN/genética , Transcripción Genética , Células Madre Embrionarias/metabolismo , Células Madre Embrionarias/citología , Exones/genética , Humanos , Autorrenovación de las Células/genética
20.
Anim Sci J ; 95(1): e13951, 2024.
Artículo en Inglés | MEDLINE | ID: mdl-38703069

RESUMEN

Intramuscular fat (IMF) is a crucial determinant of meat quality and is influenced by various regulatory factors. Despite the growing recognition of the important role of long noncoding RNAs (lncRNAs) in IMF deposition, the mechanisms underlying buffalo IMF deposition remain poorly understood. In this study, we identified and characterized a lncRNA, lncFABP4, which is transcribed from the antisense strand of fatty acid-binding protein 4 (FABP4). lncFABP4 inhibited cell proliferation in buffalo intramuscular preadipocytes. Moreover, lncFABP4 significantly increased intramuscular preadipocyte differentiation, as indicated by an increase in the expression of the adipogenic markers peroxisome proliferator-activated receptor gamma (PPARG), CCAAT enhancer binding protein alpha (C/EBPα), and FABP4. Mechanistically, lncFABP4 was found to have the potential to regulate downstream gene expression by participating in protein-protein interaction pathways. These findings contribute to further understanding of the intricate mechanisms through which lncRNAs modulate intramuscular adipogenesis in buffaloes.


Asunto(s)
Adipocitos , Adipogénesis , Búfalos , Diferenciación Celular , Proliferación Celular , Proteínas de Unión a Ácidos Grasos , PPAR gamma , ARN Largo no Codificante , Animales , Búfalos/genética , Búfalos/metabolismo , Adipogénesis/genética , Adipocitos/metabolismo , Adipocitos/citología , Proteínas de Unión a Ácidos Grasos/metabolismo , Proteínas de Unión a Ácidos Grasos/genética , ARN Largo no Codificante/genética , ARN Largo no Codificante/metabolismo , Diferenciación Celular/genética , PPAR gamma/metabolismo , PPAR gamma/genética , Expresión Génica , Células Cultivadas , Proteína alfa Potenciadora de Unión a CCAAT/metabolismo , Proteína alfa Potenciadora de Unión a CCAAT/genética , Calidad de los Alimentos
SELECCIÓN DE REFERENCIAS
DETALLE DE LA BÚSQUEDA