organizer

组织者
  • 文章类型: Journal Article
    眼点专注于蝴蝶翅膀,在发育过程中充当眼点颜色图案的组织者。尽管它们很重要,焦点结构尚未详细检查。这里,我们用显微镜检查了尺度,插座,以及使用BluePansy蝴蝶Junoniaorithya展开和未展开机翼的蝴蝶眼点焦点中的机翼膜。来自高分辨率光学显微镜的图像显示,虽然并非总是如此,眼点病灶的鳞片具有无序的平面极性。除垢后的扫描电子显微镜(SEM)图像显示,插座的位置不规则,并且翼膜在物理上变形,就好像焦点部位从周围环境中被机械挤压一样。没有眼点的焦点区域也有插座阵列不规则,但不那么频繁和严重。背景区域的物理损伤会引起异位图案,具有插座阵列不规则和机翼膜变形,类似于自然眼点焦点。这些结果表明,确定眼点焦点的过程或眼点组织者的功能可能与在物理上破坏插座细胞的机翼力学有关,规模细胞,和机翼膜,支持蝴蝶翅膀颜色模式确定的感应模型的物理失真假设。
    Eyespot foci on butterfly wings function as organizers of eyespot color patterns during development. Despite their importance, focal structures have not been examined in detail. Here, we microscopically examined scales, sockets, and the wing membrane in the butterfly eyespot foci of both expanded and unexpanded wings using the Blue Pansy butterfly Junonia orithya. Images from a high-resolution light microscope revealed that, although not always, eyespot foci had scales with disordered planar polarity. Scanning electron microscopy (SEM) images after scale removal revealed that the sockets were irregularly positioned and that the wing membrane was physically distorted as if the focal site were mechanically squeezed from the surroundings. Focal areas without eyespots also had socket array irregularities, but less frequently and less severely. Physical damage in the background area induced ectopic patterns with socket array irregularities and wing membrane distortions, similar to natural eyespot foci. These results suggest that either the process of determining an eyespot focus or the function of an eyespot organizer may be associated with wing-wide mechanics that physically disrupt socket cells, scale cells, and the wing membrane, supporting the physical distortion hypothesis of the induction model for color pattern determination in butterfly wings.
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  • 文章类型: Journal Article
    在早期脊椎动物发育中,组织者区域-通过分泌的形态发生素向相邻细胞发出信号并由此影响相邻细胞的细胞群-在确定的组织区域内细胞身份的建立和维持中起关键作用。中脑-后脑组织者将神经组织区域化为中脑和后脑区域,成纤维细胞生长因子8(FGF8)作为关键形态发生原。这个组织者已经在鸡肉中进行了广泛的研究,鼠标,还有斑马鱼.这里,我们证明了从人类多能干细胞(hPSC)中富集表达FGF8的细胞,使用识别“与Fgf相似表达”(SEF)和Frizzled蛋白的抗体作为附着的胚状体进行培养。这些培养物的胚状体亚群中的细胞排列以及FGF8表达群体的基因表达谱显示出与动物模型中的中脑-后脑组织者的某些相似性。在胚胎小鸡的大脑中,富集的细胞群诱导中脑结构的形成,与FGF8组织能力一致。
    In early vertebrate development, organizer regions-groups of cells that signal to and thereby influence neighboring cells by secreted morphogens-play pivotal roles in the establishment and maintenance of cell identities within defined tissue territories. The midbrain-hindbrain organizer drives regionalization of neural tissue into midbrain and hindbrain territories with fibroblast growth factor 8 (FGF8) acting as a key morphogen. This organizer has been extensively studied in chicken, mouse, and zebrafish. Here, we demonstrate the enrichment of FGF8-expressing cells from human pluripotent stem cells (hPSCs), cultured as attached embryoid bodies using antibodies that recognize \"Similar Expression to Fgf\" (SEF) and Frizzled proteins. The arrangement of cells in embryoid body subsets of these cultures and the gene expression profile of the FGF8-expressing population show certain similarities to the midbrain-hindbrain organizer in animal models. In the embryonic chick brain, the enriched cell population induces formation of midbrain structures, consistent with FGF8-organizing capability.
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  • 文章类型: Journal Article
    两个信号中心之间的相互抑制,Spemann组织者(背侧中胚层)和腹侧区域(中胚层和外胚层),共同调节脊椎动物胚胎的整体发育。每个中心表达直接控制靶基因转录的关键同源盒转录因子(TF)。Goosecoid(Gsc)是一种组织者(背侧中胚层)特异性TF,已知可诱导背侧命运并抑制腹侧/外胚层规格。Ventx1.1(Bmp信号的下游)诱导表皮谱系并抑制腹侧区域的背侧组织者特异性基因。Chordin(Chrd)是一种组织者特异性分泌的Bmp拮抗剂,其表达主要由Gsc激活。或者,在腹侧/表皮区域中,Bmp/Ventx1.1抑制了chrd表达。然而,Gsc和Ventx1.1介导的转录调控机制仍然难以捉摸。这里,我们发现,chrd启动子含有两个顺式作用反应元件,对Ventx1.1负反应,对Gsc正反应。在腹侧/外胚层区域,Ventx1.1直接与Ventx1.1反应元件(VRE)结合并抑制chrd转录。在组织者区域中,Gsc与Gsc反应元件(GRE)结合以激活chrd转录。Gsc介导的对chrd启动子的阳性反应完全依赖于另一个相邻的Wnt反应顺式作用元件(WRE),即TCF7(也称为Tcf1)结合元件。VRE的定点诱变,GRE,或WRE完全废除了Ventx1.1和GSC的抑制或激活活性,分别。ChIP-PCR结果证实了Ventx1.1和Gsc/Tcf7与VRE和GRE/WRE的直接结合,分别。这些结果表明,chrd表达被同源异型盒TFs相反地调节,非洲爪狼胚胎形成过程中的Ventx1.1和Gsc/Tcf7。
    The reciprocal inhibition between two signaling centers, the Spemann organizer (dorsal mesoderm) and ventral region (mesoderm and ectoderm), collectively regulate the overall development of vertebrate embryos. Each center expresses key homeobox transcription factors (TFs) that directly control target gene transcription. Goosecoid (Gsc) is an organizer (dorsal mesoderm)-specific TF known to induce dorsal fate and inhibit ventral/ectodermal specification. Ventx1.1 (downstream of Bmp signaling) induces the epidermal lineage and inhibits dorsal organizer-specific genes from the ventral region. Chordin (Chrd) is an organizer-specific secreted Bmp antagonist whose expression is primarily activated by Gsc. Alternatively, chrd expression is repressed by Bmp/Ventx1.1 in the ventral/epidermal region. However, the regulatory mechanisms underlying the transcription mediated by Gsc and Ventx1.1 remain elusive. Here, we found that the chrd promoter contained two cis-acting response elements that responded negatively to Ventx1.1 and positively to Gsc. In the ventral/ectodermal region, Ventx1.1 was directly bound to the Ventx1.1 response element (VRE) and inhibited chrd transcription. In the organizer region, Gsc was bound to the Gsc response elements (GRE) to activate chrd transcription. The Gsc-mediated positive response on the chrd promoter completely depended on another adjacent Wnt response cis-acting element (WRE), which was the TCF7 (also known as Tcf1) binding element. Site-directed mutagenesis of VRE, GRE, or WRE completely abolished the repressive or activator activity of Ventx1.1 and Gsc, respectively. The ChIP-PCR results confirmed the direct binding of Ventx1.1 and Gsc/Tcf7 to VRE and GRE/WRE, respectively. These results demonstrated that chrd expression is oppositely modulated by homeobox TFs, Ventx1.1, and Gsc/Tcf7 during the embryonic patterning of Xenopus gastrula.
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  • 文章类型: Journal Article
    Germ layer specification and axis formation are crucial events in embryonic development. The Spemann organizer regulates the early developmental processes by multiple regulatory mechanisms. This review focuses on the responsive signaling in organizer formation and how the organizer orchestrates the germ layer specification in vertebrates. Accumulated evidence indicates that the organizer influences embryonic development by dual signaling. Two parallel processes, the migration of the organizer\'s cells, followed by the transcriptional activation/deactivation of target genes, and the diffusion of secreting molecules, collectively direct the early development. Finally, we take an in-depth look at active signaling that originates from the organizer and involves germ layer specification and patterning.
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  • 文章类型: Journal Article
    During vertebrate gastrulation, mesoderm is induced in pluripotent cells, concomitant with dorsal-ventral patterning and establishing of the dorsal axis. We applied single-cell chromatin accessibility and transcriptome analyses to explore the emergence of cellular heterogeneity during gastrulation in Xenopus tropicalis. Transcriptionally inactive lineage-restricted genes exhibit relatively open chromatin in animal caps, whereas chromatin accessibility in dorsal marginal zone cells more closely reflects transcriptional activity. We characterized single-cell trajectories and identified head and trunk organizer cell clusters in early gastrulae. By integrating chromatin accessibility and transcriptome data, we inferred the activity of transcription factors in single-cell clusters and tested the activity of organizer-expressed transcription factors in animal caps, alone or in combination. The expression profile induced by a combination of Foxb1 and Eomes most closely resembles that observed in the head organizer. Genes induced by Eomes, Otx2, or the Irx3-Otx2 combination are enriched for maternally regulated H3K4me3 modifications, whereas Lhx8-induced genes are marked more frequently by zygotically controlled H3K4me3. Taken together, our results show that transcription factors cooperate in a combinatorial fashion in generally open chromatin to orchestrate zygotic gene expression.
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  • 文章类型: Journal Article
    The nymphalid groundplan is an archetypical color pattern of nymphalid butterflies involving three major symmetry systems and a discal symmetry system, which share the basic morphogenesis unit. Here, the morphological and spatial relationships among these symmetry systems were studied based on cross-species comparisons of nymphalid hindwings. Based on findings in Neope and Symbrenthia, all three major symmetry systems can be expressed as bands, spots, or eyespot-like structures, suggesting equivalence (homology) of these systems in developmental potential. The discal symmetry system can also be expressed as various structures. The discal symmetry system is circularly surrounded by the central symmetry system, which may then be surrounded by the border and basal symmetry systems, based mainly on findings in Agrias, indicating a unified supersymmetry system covering the entire wing. The border symmetry system can occupy the central part of the wing when the central symmetry system is compromised, as seen in Callicore. These results suggest that butterfly color patterns are hierarchically constructed in a self-similar fashion, as the fractal geometry of the nymphalid groundplan. This self-similarity is likely mediated by the serial induction of organizers, and symmetry breaking of the system morphology may be generated by the collision of opposing signals during development.
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  • 文章类型: Journal Article
    来自脊椎动物胚胎的移植组织在培养中可靠地发育,并为理解胚胎发生提供了必要的范例。从诱导的早期胚胎学研究中,对非洲爪狼动物帽的广泛研究,目前对哺乳动物类动物的研究。非洲爪狼背边缘区的培养外植体(“凯勒”外植体)是研究收敛延伸细胞运动的中心范例,然而,我们对这些外植体中基因表达的整体模式知之甚少。
    为了更彻底地开发这个重要的模型系统,我们在这里提供了一个时间分辨的批量转录组,用于开发凯勒外植体。
    这里报道的数据集为那些使用凯勒外植体进行形态发生研究的人提供了有用的资源,并提供了基因组规模的见解,以了解重要组织中外植和培养时基因表达的时间模式。
    Explanted tissues from vertebrate embryos reliably develop in culture and have provided essential paradigms for understanding embryogenesis, from early embryological investigations of induction, to the extensive study of Xenopus animal caps, to the current studies of mammalian gastruloids. Cultured explants of the Xenopus dorsal marginal zone (\"Keller\" explants) serve as a central paradigm for studies of convergent extension cell movements, yet we know little about the global patterns of gene expression in these explants.
    In an effort to more thoroughly develop this important model system, we provide here a time-resolved bulk transcriptome for developing Keller explants.
    The dataset reported here provides a useful resource for those using Keller explants for studies of morphogenesis and provide genome-scale insights into the temporal patterns of gene expression in an important tissue when explanted and grown in culture.
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  • 文章类型: Journal Article
    称为Spiralia的原生动物进化枝(例如,软体动物,环节动物,nemerteans和多晶flat虫)共享一个高度保守的早期发展计划。这包括早期胚胎中细胞的共享排列和后代细胞进入胚胎象限的命运。在螺旋体胚胎中,D象限中的单个细胞充当胚胎组织者,以图案化身体轴。组织信号的精确时间及其细胞身份在螺旋体中有所不同。先前在恒河白翅目居维耶的实验,1830年证明了D象限在身体轴形成中具有组织作用;然而,组织者的分子信号和确切的细胞身份未知。
    在这项研究中,通过在早期裂解阶段短暂暴露于化学抑制剂,研究了信号的时机和介导C中组织活性的特定信号通路。活化素/节点途径而不是BMP或MAPK途径的化学干扰导致幼虫缺乏可检测的背-腹轴。此外,这些数据表明,组织活动的持续时间包括16个细胞阶段,并且在32个细胞阶段之前完成。
    C.pergamentaceus组织者的时间和分子信号通路与另一种环形动物相当,Capitellateleta,其组织信号在16细胞阶段是必需的,并定位到微绒2d。由于C.pergamentaceus是一种早期分支环节动物,这些数据与C.teleta中的功能基因组研究相结合,提示无关节背腹轴模式的祖先状态涉及组织信号,该组织信号比软体动物中识别的组织信号早发生一到两个细胞分裂,并且该信号由激活素/节点信号介导。我们的发现在Spiralia中具有重要的进化意义,并进一步表明,全球身体模式机制可能不像以前认为的那样保守。
    BACKGROUND: The clade of protostome animals known as the Spiralia (e.g., mollusks, annelids, nemerteans and polyclad flatworms) shares a highly conserved program of early development. This includes shared arrangement of cells in the early-stage embryo and fates of descendant cells into embryonic quadrants. In spiralian embryos, a single cell in the D quadrant functions as an embryonic organizer to pattern the body axes. The precise timing of the organizing signal and its cellular identity varies among spiralians. Previous experiments in the annelid Chaetopterus pergamentaceus Cuvier, 1830 demonstrated that the D quadrant possesses an organizing role in body axes formation; however, the molecular signal and exact cellular identity of the organizer were unknown.
    RESULTS: In this study, the timing of the signal and the specific signaling pathway that mediates organizing activity in C. pergamentaceus was investigated through short exposures to chemical inhibitors during early cleavage stages. Chemical interference of the Activin/Nodal pathway but not the BMP or MAPK pathways results in larvae that lack a detectable dorsal-ventral axis. Furthermore, these data show that the duration of organizing activity encompasses the 16 cell stage and is completed before the 32 cell stage.
    CONCLUSIONS: The timing and molecular signaling pathway of the C. pergamentaceus organizer is comparable to that of another annelid, Capitella teleta, whose organizing signal is required through the 16 cell stage and localizes to micromere 2d. Since C. pergamentaceus is an early branching annelid, these data in conjunction with functional genomic investigations in C. teleta hint that the ancestral state of annelid dorsal-ventral axis patterning involved an organizing signal that occurs one to two cell divisions earlier than the organizing signal identified in mollusks, and that the signal is mediated by Activin/Nodal signaling. Our findings have significant evolutionary implications within the Spiralia, and furthermore suggest that global body patterning mechanisms may not be as conserved across bilaterians as was previously thought.
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  • 文章类型: Journal Article
    BACKGROUND: Progesterone receptor membrane component 1 (PGRMC1) is often elevated in cancers, and exists in alternative states of phosphorylation. A motif centered on PGRMC1 Y180 was evolutionarily acquired concurrently with the embryological gastrulation organizer that orchestrates vertebrate tissue differentiation.
    RESULTS: Here, we show that mutagenic manipulation of PGRMC1 phosphorylation alters cell metabolism, genomic stability, and CpG methylation. Each of several mutants elicited distinct patterns of genomic CpG methylation. Mutation of S57A/Y180/S181A led to increased net hypermethylation, reminiscent of embryonic stem cells. Pathways enrichment analysis suggested modulation of processes related to animal cell differentiation status and tissue identity, as well as cell cycle control and ATM/ATR DNA damage repair regulation. We detected different genomic mutation rates in culture.
    CONCLUSIONS: A companion manuscript shows that these cell states dramatically affect protein abundances, cell and mitochondrial morphology, and glycolytic metabolism. We propose that PGRMC1 phosphorylation status modulates cellular plasticity mechanisms relevant to early embryological tissue differentiation.
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  • 文章类型: Journal Article
    The membrane-associated progesterone receptor (MAPR) family consists of heme-binding proteins containing a cytochrome b5 (cytb5) domain characterized by the presence of a MAPR-specific interhelical insert region (MIHIR) between helices 3 and 4 of the canonical cytb5-domain fold. Animals possess three MAPR genes (PGRMC-like, Neuferricin and Neudesin). Here we show that all three animal MAPR genes were already present in the common ancestor of the opisthokonts (comprising animals and fungi as well as related single-celled taxa). All three MAPR genes acquired extensions C-terminal to the cytb5 domain, either before or with the evolution of animals. The archetypical MAPR protein, progesterone receptor membrane component 1 (PGRMC1), contains phosphorylated tyrosines Y139 and Y180. The combination of Y139/Y180 appeared in the common ancestor of cnidarians and bilaterians, along with an early embryological organizer and synapsed neurons, and is strongly conserved in all bilaterian animals. A predicted protein interaction motif in the PGRMC1 MIHIR is potentially regulated by Y139 phosphorylation. A multilayered model of animal MAPR function acquisition includes some pre-metazoan functions (e.g., heme binding and cytochrome P450 interactions) and some acquired animal-specific functions that involve regulation of strongly conserved protein interaction motifs acquired by animals (Metazoa). This study provides a conceptual framework for future studies, against which especially PGRMC1\'s multiple functions can perhaps be stratified and functionally dissected.
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