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1.
目的:如何建立和维持体轴是一个基本的发育生物学问题,而淡水水螅是适合进行形态发生和个体发育调控机制研究的重要模式生物。本文观察了大乳头水螅异常极性体轴的形成及矫正进程,初步探讨水螅极性体轴的维持和调控机制。方法:先切取水螅的整个头部,再获得带二根触手的口区组织。通过ABTS细胞化学染色法检测水螅基盘分子标志物过氧化物酶的表达,判别水螅基盘组织(水螅足区的末端)是否形成。结果:从40块口区组织再生得到的水螅个体中有1例极性体轴发育异常的个体,其身体两端均发育成头区,且两端的头区均具有捕食能力。随后水螅其中一端头区的触手逐渐萎缩、退化,最终该端头区转化成具有吸附能力的基盘组织。结论:水螅组织的再生涉及极性体轴的重建,而一些特殊因素可能造成临时性的水螅极性体轴调控紊乱。本研究表明水螅具备自我矫正异常极性体轴的能力。另外,本研究结果显示水螅触手可以萎缩直至退化,该现象涉及的细胞学过程可能是非常复杂的,有可能涉及到触手细胞的凋亡转化过程,也可能是触手的高度分化细胞仍然具备去分化能力、去分化后再转移到身体其他地方,其具体机制值得进一步探究。  相似文献   

2.
脊椎动物胚胎发育起始于体轴的建立,是胚胎早期发育过程中最重要的事件之一。Wnt、BMP、Nodal和FGF等多个信号通路协同调控细胞分化和细胞运动,促进胚胎胚层的形成和空间上的分离,调控胚胎背腹轴、前后轴和左右轴线的分化,为胚胎进一步发育勾勒出蓝图。本文主要综述斑马鱼胚胎背腹轴建立的分子机制,包括背部组织中心简介;母源Wnt/β-catenin信号调控背部组织中心形成的分子机制;BMP信号调控背腹轴建立的分子机制。  相似文献   

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斑马鱼是一种相对新颖的模式脊椎动物,具有脊椎动物保守的神经系统构造和丰富的行为模式.近年来随着在体电生理、光学成像、遗传工程等方法的建立和完善,幼龄斑马鱼因其脑部透明、结构简单的特点,日益成为从突触、神经元、环路到行为等多层次,在全脑尺度上探究神经系统功能机制的理想动物模型.本文综述了近年来利用斑马鱼在感觉信息处理、运动控制、学习与神经可塑性等方向上所取得的重要研究进展,并对新技术的开发提出了展望.随着研究思路的深化和实验手段的推陈出新,斑马鱼模式动物必将成为探索脑工作原理之利器,为神经科学研究带来更多的突破.  相似文献   

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体细胞核移植技术是指将一个分化的体细胞核置入去核的卵母细胞中,并发育产生与供体细胞遗传背景一致的克隆后代的技术。目前,世界上通过体细胞核移植技术已经产生了许多的克隆动物。但克隆过程中还存在着很多问题,比如,克隆效率太低、克隆个体常伴有表型异常和早亡等,从而使该技术应有的应用潜力不能得到充分的发挥。体细胞表观遗传学重编程的不完全或紊乱是造成核移植诸多问题的主要原因。近十多年来,人们对体细胞核移植后的重编程进行了广泛的研究,其核心内容包括核及核外结构的重塑、DNA甲基化模式的重建、基因印迹和x染色体失活、组蛋白乙酰化模式的重建、端粒长度恢复等,以期能够对其重编程加以人为干预,从而提高动物克隆效率。本文拟对体细胞核移植诱导的重编程研究进展加以综述,希望对体细胞重编程机制的阐明有所启发。  相似文献   

5.
昆虫的体向     
在动物分类学和形态学上记述动物身体各部的位置和方向时,一般都用前、后、左、右、上、下、内、外等字样,事实上这些字样很不能表达实际情况。一般动物的体轴都是同地面平行的,但是人的体轴就同地面成垂直方向,而且许  相似文献   

6.
Wnt信号通路与后口动物体轴的进化发育   总被引:2,自引:0,他引:2  
Qian GH  Wang YQ 《遗传》2011,33(7):684-694
动物体轴极性的建立和最初胚轴的形成涉及到一系列信号通路的调控,Wnt信号通路是其中一条十分保守的信号通路,并且Wnt/β-catenin信号通路中的关键成员早在海绵动物中就有发现,暗示这一信号通路相对于其他信号路径来说可能是最早参与原始后生动物体轴发育的信号通路之一,并且在体轴后端和腹部的发育及命运分化方面发挥着重要作用。近年来,随着体外功能实验体系的建立,人们发现Wnt信号通路中很多基因都不同程度地影响了早期胚轴的形成,例如wnt基因、母源性基因β-catenin以及一系列转录因子等。文章首先对参与后生动物体轴发育的wnt基因家族的起源与进化关系做一简要分析,并进一步就经典的Wnt/β-catenin通路与后口动物的海胆、文昌鱼、斑马鱼、爪蟾和小鼠等类群体轴极性的建立乃至整个体轴形成方面的研究进展做一综述。  相似文献   

7.
石伟雄  李雪  朱华  苏磊  秦川 《微生物学报》2023,63(10):3773-3783
无菌动物是指通过现代技术手段在其体内外的任何部位均检测不出细菌、真菌、放线菌、支原体、衣原体、螺旋体、立克次氏体、病毒、原生动物和寄生虫的动物。无菌动物因其不携带任何微生物,可转化为携带特定微生物的动物,同时因其免疫系统处于休眠状态,对微生物感染异常敏感,可建立多种悉生动物模型,用于特定微生物感染实验和致病机制研究。此外,无菌动物作为关键工具,是研究菌群与疾病关系的核心,在微生物与宿主健康、疾病和感染机制研究过程中,起着不可替代的作用。本文将对无菌动物及其在微生物与宿主互作机制研究中的应用进行简要综述。  相似文献   

8.
肠脑轴是由中枢系统、胃肠道系统共同构成的双向通信系统,其主要通过下丘脑食欲中枢和胃肠道食欲激素来调节动物的食欲,控制其体重,参与能量稳态的调节,是研究动物肥胖和2型糖尿病等代谢疾病的重要轴系.本文综述了肠脑轴对动物食欲、能量平衡和体重的调节作用,展望了肠脑轴在肥胖等相关代谢疾病治疗中的研究前景.  相似文献   

9.
李礼  罗凌飞 《遗传》2013,35(4):421-432
斑马鱼因其受精卵体外发育、胚胎透明、具有较强的再生能力以及适于大规模遗传筛选的优势, 成为研究脊椎动物器官发育与再生的新兴模式动物。通过数十年的探索, 科研工作者已经在斑马鱼中建立了一套成熟的研究方法, 并对斑马鱼胚胎发育早期的细胞命运决定和分化、组织器官的形态建成以及受损后的再生过程有了初步的认识。近年来, 随着遗传筛选技术的大规模开展和活体成像技术在斑马鱼中的深入应用, 许多在小鼠等模式动物中悬而未决的问题开始得到充分解答。随着研究的不断深化和技术的不断更新, 以斑马鱼为模式动物, 对脊椎动物器官发育与再生的研究将会更加深入, 相关的调控机制也会被逐步探明, 从而为临床相关疾病的防治提供富有价值的参考。文章通过对近年来发表的文章进行回顾, 总结了斑马鱼作为模式动物研究中枢神经系统、肝脏和胰腺、血液细胞和血管等重要器官早期发育过程及其调控机制的进展, 并阐述了以斑马鱼研究尾鳍、心脏、肝脏等器官再生的优势和初步发现。  相似文献   

10.
胚珠发育的分子机理   总被引:4,自引:1,他引:3  
胚珠是研究器官形态发生和模式建成遗传分子机理的一个理想系统.近年来,关于胚珠特征的决定、模式建成、珠被形态建成和胚囊形成等发育事件分子机理的研究取得了重要进展,初步建立了胚珠发育的基因调控模型.同时,离体花器官再生系统为研究激素调控胚珠发育的机理提供了有效途径.本文对拟南芥(Arabidopsis thaliana)胚珠发育的分子调控机制进行了综述.  相似文献   

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Transient asymmetric Nodal signaling in the left lateral plate mesoderm (L LPM) during tailbud/early somitogenesis stages is associated in all vertebrates examined with the development of stereotypical left-right (L-R) organ asymmetry. In Xenopus, asymmetric expression of Nodal-related 1 (Xnr1) begins in the posterior L LPM shortly after the initiation of bilateral perinotochordal expression in the posterior tailbud. The L LPM expression domain rapidly shifts forward to cover much of the flank of the embryo before being progressively downregulated, also in a posterior-to-anterior direction. The mechanisms underlying the initiation and propagation of Nodal/Xnr1 expression in the L LPM, and its transient nature, are not well understood. Removing the posterior tailbud domain prevents Xnr1 expression in the L LPM, consistent with the idea that normal embryos respond to a posteriorly derived asymmetrically acting positive inductive signal. The forward propagation of asymmetric Xnr1 expression occurs LPM-autonomously via planar tissue communication. The shifting is prevented by Nodal signaling inhibitors, implicating an underlying requirement for Xnr1-to-Xnr1 induction. It is also unclear how asymmetric Nodal signals are modulated during L-R patterning. Small LPM grafts overexpressing Xnr1 placed into the R LPM of tailbud embryos induced the expression of the normally L-sided genes Xnr1, Xlefty, and XPitx2, and inverted body situs, demonstrating the late-stage plasticity of the LPM. Orthogonal Xnr1 signaling from the LPM strongly induced Xlefty expression in the midline, consistent with recent findings in the mouse and demonstrating for the first time in another species conservation in the mechanism that induces and maintains the midline barrier. Our findings suggest that there is long-range contralateral communication between L and R LPM, involving Xlefty in the midline, over a substantial period of tailbud embryogenesis, and therefore lend further insight into how, and for how long, the midline maintains a L versus R status in the LPM.  相似文献   

13.
The genetic cascade that governs left-right (L-R) specification is starting to be elucidated. In the mouse, the lateral asymmetry of the body axis is revealed first by the asymmetric expression of nodal, lefty2 and pitx2 in the left lateral plate mesoderm of the neurulating embryo. Here we describe a novel gene, rotatin, essential for the correct expression of the key L-R specification genes nodal, lefty and Pitx2. Embryos deficient in rotatin show also randomized heart looping and delayed neural tube closure, and fail to undergo the critical morphogenetic step of axial rotation. The amino acid sequence deduced from the cDNA is predicted to contain at least three transmembrane domains. Our results show a novel key player in the genetic cascade that determines L-R specification, and suggest a causal link between this process and axial rotation.  相似文献   

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The asymmetric positioning of internal organs on the left or right side of the body is highly conserved in vertebrates and relies on a Nodal signaling pathway acting on the left side of the embryo. Whether the same pathway also regulates left-right asymmetry in invertebrates and what is the evolutionary origin of the mechanisms controlling left-right determination are not known. Here, we show that nodal regulates left-right asymmetry in the sea urchin but that, intriguingly, its expression is reversed compared to vertebrates. Nodal signals emitted from the right side of the larva prevent the right coelomic pouch from forming the imaginal rudiment. Inhibition of Nodal signaling after gastrulation causes formation of an ectopic rudiment on the right side, leading to twinned urchins after metamorphosis. In contrast, ectopic activation of the pathway prevents formation of the rudiment. Our results show that the mechanisms responsible for left-right determination are conserved within basal deuterostomes.  相似文献   

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During vertebrate development, signaling by the TGFbeta ligand Nodal is critical for mesoderm formation, correct positioning of the anterior-posterior axis, normal anterior and midline patterning, and left-right asymmetric development of the heart and viscera. Stimulation of Alk4/EGF-CFC receptor complexes by Nodal activates Smad2/3, leading to left-sided expression of target genes that promote asymmetric placement of certain internal organs. We identified Ttrap as a novel Alk4- and Smad3-interacting protein that controls gastrulation movements and left-right axis determination in zebrafish. Morpholino-mediated Ttrap knockdown increases Smad3 activity, leading to ectopic expression of snail1a and apparent repression of e-cadherin, thereby perturbing cell movements during convergent extension, epiboly and node formation. Thus, although the role of Smad proteins in mediating Nodal signaling is well-documented, the functional characterization of Ttrap provides insight into a novel Smad partner that plays an essential role in the fine-tuning of this signal transduction cascade.  相似文献   

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Initial determination of left-right (L-R) polarity in mammalian embryos takes place in the node. However, it is not known how asymmetric signals are generated in the node and transferred to the lateral plate mesoderm (LPM). Mice homozygous for a hypomorphic Nodal allele (Nodal(neo)) were generated and found to exhibit L-R defects, including right isomerism. Although the mutant embryos express Nodal at gastrulation stages, the subsequent expression of this gene in the node and left LPM is lost. A transgene that conferred Nodal expression specifically in the node rescued the L-R defects of the Nodal(neo/neo) embryos. Conversely, ectopic expression of the Nodal inhibitor Lefty2 in the node of Nodal(neo/+) embryos resulted in a phenotype similar to that of the Nodal(neo/neo) mutant. These results indicate that Nodal produced in the node is required for expression of Nodal and other left side-specific genes in the LPM.  相似文献   

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