共查询到20条相似文献,搜索用时 15 毫秒
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Yuping Luo Ge Shan Weixiang Guo Richard D. Smrt Eric B. Johnson Xuekun Li Rebecca L. Pfeiffer Keith E. Szulwach Ranhui Duan Basam Z. Barkho Wendi Li Changmei Liu Peng Jin Xinyu Zhao 《PLoS genetics》2010,6(4)
Fragile X syndrome (FXS), the most common form of inherited mental retardation, is caused by the loss of functional fragile X mental retardation protein (FMRP). FMRP is an RNA–binding protein that can regulate the translation of specific mRNAs. Adult neurogenesis, a process considered important for neuroplasticity and memory, is regulated at multiple molecular levels. In this study, we investigated whether Fmrp deficiency affects adult neurogenesis. We show that in a mouse model of fragile X syndrome, adult neurogenesis is indeed altered. The loss of Fmrp increases the proliferation and alters the fate specification of adult neural progenitor/stem cells (aNPCs). We demonstrate that Fmrp regulates the protein expression of several components critical for aNPC function, including CDK4 and GSK3β. Dysregulation of GSK3β led to reduced Wnt signaling pathway activity, which altered the expression of neurogenin1 and the fate specification of aNPCs. These data unveil a novel regulatory role for Fmrp and translational regulation in adult neurogenesis. 相似文献
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The control of new protein synthesis provides a means to locally regulate the availability of synaptic components necessary
for dynamic neuronal processes. The fragile X mental retardation protein (FMRP), an RNA-binding translational regulator, is
a key player mediating appropriate synaptic protein synthesis in response to neuronal activity levels. Loss of FMRP causes
fragile X syndrome (FraX), the most commonly inherited form of mental retardation and autism spectrum disorders. FraX-associated
translational dysregulation causes wide-ranging neurological deficits including severe impairments of biological rhythms,
learning processes, and memory consolidation. Dysfunction in cytoskeletal regulation and synaptic scaffolding disrupts neuronal
architecture and functional synaptic connectivity. The understanding of this devastating disease and the implementation of
meaningful treatment strategies require a thorough exploration of the temporal and spatial requirements for FMRP in establishing
and maintaining neural circuit function. 相似文献
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Abscission is the final event of cytokinesis that leads to the physical separation of the two daughter cells. Recent technical advances have allowed a better understanding of the cellular and molecular events leading to abscission in isolated yeast or mammalian cells. However, how abscission is regulated in different cell types or in a developing organism remains poorly understood. Here, we characterized the function of the ESCRT-III protein Shrub during cytokinesis in germ cells undergoing a series of complete and incomplete divisions. We found that Shrub is required for complete abscission, and that levels of Shrub are critical for proper timing of abscission. Loss or gain of Shrub delays abscission in germline stem cells (GSCs), and leads to the formation of stem-cysts, where daughter cells share the same cytoplasm as the mother stem cell and cannot differentiate. In addition, our results indicate a negative regulation of Shrub by the Aurora B kinase during GSC abscission. Finally, we found that Lethal giant discs (lgd), known to be required for Shrub function in the endosomal pathway, also regulates the duration of abscission in GSCs. 相似文献
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The Slit-Robo GTPase-activating proteins (srGAPs) are important multifunctional adaptor proteins involved in various aspects
of neuronal development, including axon guidance, neuronal migration, neurite outgrowth, dendritic morphology and synaptic
plasticity. Among them, srGAP3, also named MEGAP (Mental disorder-associated GTPase-activating protein), plays a putative
role in severe mental retardation. SrGAP3 expression in ventricular zones of neurogenesis indicates its involvement in early
stage of neuronal development and differentiation. Here, we show that overexpression of srGAP3 inhibits VPA (valproic acid)-induced
neurite initiation and neuronal differentiation in Neuro2A neuroblastoma cells, whereas knockdown of srGAP3 facilitates the
neuronal differentiation in this cell line. In contrast to the wild type, overexpression of srGAP3 harboring an artificially
mutation R542A within the functionally important RhoGAP domain does not exert a visible inhibitory effect on neuronal differentiation.
The endogenous srGAP3 selectively binds to activated form of Rac1 in a RhoGAP pull-down assay. We also show that constitutively
active (CA) Rac1 can rescue the effect of srGAP3 on attenuating neuronal differentiation. Furthermore, change in expression
and localization of endogenous srGAP3 is observed in neuronal differentiated Neuro2A cells. Together, our data suggest that
srGAP3 could regulate neuronal differentiation in a Rac1-dependent manner. 相似文献
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Roman Alpatov Bluma J. Lesch Mika Nakamoto-Kinoshita Andres Blanco Shuzhen Chen Alexandra Stützer Karim J. Armache Matthew D. Simon Chao Xu Muzaffar Ali Jernej Murn Sladjana Prisic Tatiana G. Kutateladze Christopher R. Vakoc Jinrong Min Robert E. Kingston Wolfgang Fischle Stephen T. Warren David C. Page Yang Shi 《Cell》2014
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Marie-Ccile Didiot Murugan Subramanian Eric Flatter Jean-Louis Mandel Herv Moine 《Molecular biology of the cell》2009,20(1):428-437
The fragile X mental retardation protein (FMRP) is an RNA-binding protein involved in the mRNA metabolism. The absence of FMRP in neurons leads to alterations of the synaptic plasticity, probably as a result of translation regulation defects. The exact molecular mechanisms by which FMRP plays a role in translation regulation have remained elusive. The finding of an interaction between FMRP and the RNA interference silencing complex (RISC), a master of translation regulation, has suggested that both regulators could be functionally linked. We investigated here this link, and we show that FMRP exhibits little overlap both physically and functionally with the RISC machinery, excluding a direct impact of FMRP on RISC function. Our data indicate that FMRP and RISC are associated to distinct pools of mRNAs. FMRP, unlike RISC machinery, associates with the pool of mRNAs that eventually goes into stress granules upon cellular stress. Furthermore, we show that FMRP plays a positive role in this process as the lack of FMRP or a point mutant causing a severe fragile X alter stress granule formation. Our data support the proposal that FMRP plays a role in controlling the fate of mRNAs after translation arrest. 相似文献
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E-Cadherin Is Required for Centrosome and Spindle Orientation in Drosophila Male Germline Stem Cells
Many adult stem cells reside in a special microenvironment known as the niche, where they receive essential signals that specify stem cell identity. Cell-cell adhesion mediated by cadherin and integrin plays a crucial role in maintaining stem cells within the niche. In Drosophila melanogaster, male germline stem cells (GSCs) are attached to niche component cells (i.e., the hub) via adherens junctions. The GSC centrosomes and spindle are oriented toward the hub-GSC junction, where E-cadherin-based adherens junctions are highly concentrated. For this reason, adherens junctions are thought to provide a polarity cue for GSCs to enable proper orientation of centrosomes and spindles, a critical step toward asymmetric stem cell division. However, understanding the role of E-cadherin in GSC polarity has been challenging, since GSCs carrying E-cadherin mutations are not maintained in the niche. Here, we tested whether E-cadherin is required for GSC polarity by expressing a dominant-negative form of E-cadherin. We found that E-cadherin is indeed required for polarizing GSCs toward the hub cells, an effect that may be mediated by Apc2. We also demonstrated that E-cadherin is required for the GSC centrosome orientation checkpoint, which prevents mitosis when centrosomes are not correctly oriented. We propose that E-cadherin orchestrates multiple aspects of stem cell behavior, including polarization of stem cells toward the stem cell-niche interface and adhesion of stem cells to the niche supporting cells. 相似文献
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Maija Castrén Annakaisa Haapasalo Ben A. Oostra Eero Castrén 《Cellular and molecular neurobiology》2001,21(1):29-38
1. Fragile X syndrome, the most common form of inherited mental retardation,iscaused by the lack or dysfunction of fragile X mental retardationprotein (FMRP). The I304N mutation in the RNA-binding domain of FMRP results in an exceptionally severe form of mental retardation.2. We have investigated the subcellular localization of FMRP and its I304N-mutated form in cultured hippocampal neurons and PC12 cells, using immunofluorescence microscopy. In PC12 cells, FMRP was predominantly localized to the cytoplasm and also to the processes after differentiation by NGF.3. In cultured hippocampal neurons, granular labeling was detected along the neuronal processes.4. Double-labeling with synaptophysin antibody revealed FMRP at synaptic sites in neurons.5. The I304N mutation did not appear to affect the transport of FMRP to dendrites or its localization at synaptic sites. Thus, FMRP is a synaptic protein and the severe phenotype observed in the patient with the I304N mutation is not produced by alterations in dendritic transport. 相似文献
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In the Drosophila oogenesis, germline stem cells (GSCs) continuously self-renew and differentiate into daughter cells for consecutive germline lineage commitment. This developmental process has become an in vivo working platform for studying adult stem cell fate regulation. An increasing number of studies have shown that while concerted actions of extrinsic signals from the niche and intrinsic regulatory machineries control GSC self-renewal and germline differentiation, epigenetic regulation is implicated in the process. Here, we report that Brahma (Brm), the ATPase subunit of the Drosophila SWI/SNF chromatin-remodeling complexes, is required for maintaining GSC fate. Removal or knockdown of Brm function in either germline or niche cells causes a GSC loss, but does not disrupt normal germline differentiation within the germarium evidenced at the molecular and morphological levels. There are two Drosophila SWI/SNF complexes: the Brm-associated protein (BAP) complex and the polybromo-containing BAP (PBAP) complex. More genetic studies reveal that mutations in polybromo/bap180, rather than gene encoding Osa, the BAP complex-specific subunit, elicit a defect in GSC maintenance reminiscent of the brm mutant phenotype. Further genetic interaction test suggests a functional association between brm and polybromo in controlling GSC self-renewal. Taken together, studies in this paper provide the first demonstration that Brm in the form of the PBAP complex functions in the GSC fate regulation. 相似文献
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Changliang Hou Xinyan Zhao Geng G. Tian Ji Wu 《International journal of biological sciences》2022,18(7):3006
Female germline stem cells (FGSCs) have the ability to self-renew and differentiate into oocytes. Stella, encoded by a maternal effect gene, plays an important role in oogenesis and early embryonic development. However, its function in FGSCs remains unclear. In this study, we showed that CRISPR/Cas9-mediated knockout of Stella promoted FGSC proliferation and reduced the level of genome-wide DNA methylation of FGSCs. Conversely, Stella overexpression led to the opposite results, and enhanced FGSC differentiation. We also performed an integrative analysis of chromatin immunoprecipitation followed by high-throughput sequencing (ChIP-seq), high-throughput genome-wide chromosome conformation capture (Hi-C), and use of our published epigenetic data. Results indicated that the binding sites of STELLA and active histones H3K4me3 and H3K27ac were enriched near the TAD boundaries. Hi-C analysis showed that Stella overexpression attenuated the interaction within TADs, and interestingly enhanced the TAD boundary strength in STELLA-associated regions. Taking these findings together, our study not only reveals the role of Stella in regulating DNA methylation and chromatin structure, but also provides a better understanding of FGSC development. 相似文献
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果蝇精巢生殖干细胞(Germline stem cells,GSCs)的数量伴随衰老呈现递减趋势。本文以两种野生型果蝇品系Oregon、W1118以及Stat基因突变体的精巢为研究材料,采用免疫荧光染色技术,标记果蝇精巢Hub组织及生殖干细胞,研究了室温(25℃)条件下三种果蝇羽化后六个时间点(第1、15、30、45、60、75 d)精巢GSC的数量。结果表明,两种野生型Oregon、W1118与stat突变体果蝇羽化后第1 d的GSC平均数分别为8.55、8.60与8.15,根据曲线图得到,两种野生型果蝇GSCs半衰期均为60 d左右,而stat突变体果蝇约为30 d,两者存在显著差异,表明stat基因突变加速了果蝇精巢GSCs的衰老。 相似文献
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《遗传学报》2015,42(1)
Tissue homeostasis,accomplished through the self-renewal and differentiation of resident stem cells,is critical for the maintenance of adult tissues throughout an animal's lifetime.Adult Drosoplula Malpighian tubules(MTs or fly kidney) are maintained by renal and nephric stem cells(RNSCs) via self-renewing divisions,however,it is unclear how RNSC proliferation and differentiation are regulated.Here we show that EGFR/MAPK signaling is dispensable for RNSC maintenance,but required for RNSC proliferation in vivo.Inactivation of the EGFR/MAPK pathway blocks or greatly retards RNSC cell cycle progression:conversely,over-activation of EGFR/MAPK signaling results in RNSC over-proliferation and disrupts the normal differentiation of renablasts(RBs),the immediate daughters of RNSC divisions.Our data further suggest that EGFR/MAPK signaling functions independently of JAK/STAT signaling and that dMyc and CycE partially mediate EGFR/MAPK signaling in MTs.Together,our data suggest a principal role of EGFR/MAPK signaling in regulating RNSC proliferation,which may provide important clues for understanding mammalian kidney repair and regeneration following injury. 相似文献