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1.
Wnt5a是一种分泌型糖蛋白,是高度保守的Wnts蛋白家族成员之一。在生物体内Wnts家族参与调控细胞命运、胚胎发育、细胞增殖、迁移和分化等重要过程。研究表明,Wnt5a的表达调控及其信号转导与炎症应答密切相关,提示Wnt5a及其信号通路在炎症性疾病的发生、发展中发挥着重要作用。本文从Wnt5a与炎症因子、炎症信号转导通路以及炎症疾病等方面进行阐述和展望,旨在为以Wnt5a为靶点进行炎症性疾病的防治提供理论依据。  相似文献   

2.
Wnt信号通路:调控机理和生物学意义   总被引:1,自引:0,他引:1  
Wnt信号通路作为一种在进化中高度保守的信号通路,在生长、发育、代谢和干细胞维持等多种生物学过程中发挥重要作用。而Wnt通路的失控与癌症、肥胖和糖尿病等疾病的发生有密切联系。经典Wnt通路的调控过程,主要围绕beta-Catenin和TCF这两个关键调节因子进行,从而在转录水平上影响着大量与生长和代谢相关的靶基因的表达。本文将综合介绍近年来针对经典Wnt通路调控机理的研究进展,以及Wnt通路与疾病发生的关系。  相似文献   

3.
目的:探讨了Wnt信号通路相关蛋白在胃癌组织中的表达及与肿瘤转移的关系。方法:选取2011年6月到2012年6月我院胃癌术后47例肿瘤标本作为研究对象,并选取同一患者的正常胃组织作为对照研究。采用实时荧光定量PCR和Western blot对胃癌组织和正常胃组织Wnt信号通路相关蛋白进行分析,并分析了肿瘤转移和非转移患者Wnt信号通路相关蛋白的变化。结果:与正常胃组织比较,胃癌组织中Wnt1、Wnt3、Wnt3a、β-catenin、CyclinD1和c-Myc等分子的mRNA水平明显上调,差异有显著统计学意义(P0.05)。胃癌组织中总β-catenin和核内β-catenin蛋白较正常胃组织明显增加,而磷酸化β-catenin较正常组明显下降、差异有显著统计学意义(P0.05)。与非转移组比较,转移组患者胃癌组织中Wnt1、Wnt3、Wnt3a等分子mRNA水平显著上调,差异有统计学意义(P0.05)。结论:Wnt信号通路异常激活在胃癌发生和癌细胞转移中发挥着重要的作用,为临床治疗提供了一定靶点。  相似文献   

4.
Wnt信号通路包括经典通路和非经典通路两种,其中Wnt经典通路又称为Wnt/β-catenin通路,其在成骨细胞的分化、增殖过程中发挥这重要的作用。Wnt信号通路实现过程中有多种因子参与,包括Wnt蛋白、β-catenin、蛋白激酶GSK-3β以及APC蛋白等多种。Wnt蛋白家族是由19种Wnt蛋白组成的,主要分为经典Wnt蛋白和非经典Wnt蛋白,其本质是一系列高度保守的分泌性糖蛋白,并且不同的Wnt蛋白对成骨细胞发挥着不同的作用,其中经典Wnt蛋白通过经典Wnt信号作用于成骨细胞对成骨细胞的增殖、分化有着重要的影响。本综述通过对Wnt经典信号通路过程中的多种因子与成骨细胞分化、增殖的关系进行分析总结,了解Wnt/β-catenin通路对成骨细胞的作用。  相似文献   

5.
张杰  李焱  龚婧  杨劲  杨珂  郭海英 《生物磁学》2013,(36):7013-7016
目的:研究WntSa对Wnt3a处理过的melan—a细胞分泌黑色素的影响。方法:体外培养黑色素细胞(melan-a细胞),分别进行GFP、Wnt3a、Wnt3a+WntSa处理,比较细胞的突起,酪氨酸酶的活性以及黑素合成相关基因(TYR、TRP2、MITF)表达情况。结果:Wnt3a促进黑色素细胞突起的生长和TYR、TRP2、MITF的表达,而Wnt5a逆转了Wnt3a对黑色素细胞的作用。结论:Wnt5a抑制Wnt3a促黑素细胞黑素生成的作用,表明在melan.a黑素细胞中Wnt5a可有效抑制wnt经典通路。  相似文献   

6.
Wnt信号通路包括经典通路和非经典通路两种,其中Wnt经典通路又称为Wnt/β-catenin通路,其在成骨细胞的分化、增殖过程中发挥这重要的作用。Wnt信号通路实现过程中有多种因子参与,包括Wnt蛋白、β-catenin、蛋白激酶GSK-3β以及APC蛋白等多种。Wnt蛋白家族是由19种Wnt蛋白组成的,主要分为经典Wnt蛋白和非经典Wnt蛋白,其本质是一系列高度保守的分泌性糖蛋白,并且不同的Wnt蛋白对成骨细胞发挥着不同的作用,其中经典Wnt蛋白通过经典Wnt信号作用于成骨细胞对成骨细胞的增殖、分化有着重要的影响。本综述通过对Wnt经典信号通路过程中的多种因子与成骨细胞分化、增殖的关系进行分析总结,了解Wnt/β-catenin通路对成骨细胞的作用。  相似文献   

7.
目的:探讨了Wnt信号通路相关蛋白在胃癌组织中的表达及与肿瘤转移的关系。方法:选取2011 年6 月到2012 年6 月我 院胃癌术后47 例肿瘤标本作为研究对象,并选取同一患者的正常胃组织作为对照研究。采用实时荧光定量PCR 和Western blot 对胃癌组织和正常胃组织Wnt 信号通路相关蛋白进行分析,并分析了肿瘤转移和非转移患者Wnt信号通路相关蛋白的变化。结 果:与正常胃组织比较,胃癌组织中Wnt1、Wnt3、Wnt3a、beta-catenin、CyclinD1 和c-Myc 等分子的mRNA 水平明显上调,差异有显 著统计学意义(P<0.05)。胃癌组织中总beta-catenin 和核内beta-catenin蛋白较正常胃组织明显增加,而磷酸化beta-catenin 较正常组明显 下降、差异有显著统计学意义(P<0.05)。与非转移组比较,转移组患者胃癌组织中Wnt1、Wnt3、Wnt3a 等分子mRNA水平显著上 调,差异有统计学意义(P<0.05)。结论:Wnt信号通路异常激活在胃癌发生和癌细胞转移中发挥着重要的作用,为临床治疗提供了 一定靶点。  相似文献   

8.
Notch和Wnt信号通路能够调控细胞的分化、增殖、迁移和粘附等多种行为,在胚胎发育、干细胞分化及肿瘤生长等方面发挥多样性的调控作用.血管形成过程中的典型事件包括尖端细胞(tipcell)和柄细胞(stalkcell)分化、柄细胞增殖、内皮细胞迁移和粘附、血管重塑以及动静脉分化等.本文对Notch和Wnt信号通路在血管形成不同阶段的功能作一综述,以期描述Notch和Wnt是怎样在分子水平上协同作用进而调控血管的形成.从两条信号通路的分子水平及复杂信号网络中众多成员协调作用的角度了解血管形成的机制,对于调整肿瘤等涉及血管形成的相关疾病的治疗策略具有一定意义.  相似文献   

9.
创面愈合是由炎性细胞、细胞因子等多种因素共同参与,涉及组织修复、再生、重建的一个复杂有序的病理生理过程。皮肤慢性创面的愈合仍然是临床研究的重点与热点,随着分子生物学的发展,对皮肤创面愈合机制的认识也逐渐深入。Wnt信号通路是一条由Wnt蛋白及其受体、调节蛋白等组成的高度保守的信号通路,参与细胞增殖、凋亡、分化等多种生物学过程。Wnt信号通路作为参与皮肤愈合的信号通路之一,被认为具有调控皮肤及其附属器的发育、诱导皮肤附件的形态发生、调节毛囊的周期生长、促进创面血管新生及上皮重塑等多方面的功能。因此本文试从炎性细胞、成纤维细胞、干细胞、血管新生、表皮新生与毛囊新生等方面对Wnt信号通路与皮肤创面愈合的关系作一综述。  相似文献   

10.
小鼠胚胎发育过程中Brachyury对Wnt信号通路的作用研究   总被引:1,自引:0,他引:1  
Brachyury对调控小鼠胚胎发育起着至关重要的作用,缺乏Brachyury蛋白的小鼠胚胎不能正常发育。Wnt信号通路在小鼠胚胎发育中可控制胚胎的轴向发育等重要的生理过程,Brachyury可能通过与Wnt信号通路的相互作用导致短尾表型的产生。为了揭示Brachyury与Wnt信号通路相互作用关系,本研究制作了Brachyury突变小鼠,通过提取不同时期的胚胎并提取总RNA,经反转录进行qPCR检测Brachyury与Wnt信号通路相关成分的表达关系。结果显示,Brachyury、Axin2、Dkk1及Wnt3a的表达在突变胚胎和野生胚胎中的表达有显著差异。因此,Brachyury作为转录因子对上述Wnt信号通路成分的表达有调节作用,它们形成一个调控网络调控小鼠胚胎的正常发育。本研究为小鼠胚胎发育期间Brachyury (T)的功能作用提供了理论基础。  相似文献   

11.
Wnt signaling plays a central role in many processes during embryonic development and in later stages of life. At least three distinct wnt signaling pathways have been described. In 2001, evidence was obtained from genetic studies on some rare hereditary conditions, that the canonical wnt signaling pathway plays an important role in bone formation. Functional studies and experimental analysis of relevant animal models confirmed the anabolic effect of wnt signaling by modulating the differentiation, the proliferation, the activity and finally the apoptosis of (pre)osteoblasts and osteocytes. More recently, also non-canonical wnt signaling was shown to play a role in bone formation. Since there is currently a major lack of anabolic therapeutic agents for the prevention and treatment of osteoporosis this signaling pathway deserves major attention. A big concern, however, is the pleiotropic function of the pathway that needs to be taken into account in order to avoid unwanted side-effects. Preliminary data are already indicating that this might be achieved by targeting sclerostin, a bone-specific extracellular antagonist of canonical wnt signaling.  相似文献   

12.
Rspo1 (R-spondin 1)是分泌型Rspos (R-spondins)蛋白家族的成员,在雌性发育、血管生成和癌症等多个方面具有调控作用。为了研究Rspo1在早期胚胎发育中的功能,以斑马鱼(Danio rerio)作为模式生物,利用反转录PCR及原位杂交技术检测rspo1基因的时空表达模式;通过显微注射rspo1 mRNA或rspo1反义寡核苷酸(Morpholino, MO)对rspo1进行过表达或敲降;通过形态观察及原位杂交技术检测胚胎汇聚延伸(Convergence and extension, CE)运动是否正常;利用荧光素酶活性检测实验测定Wnt/PCP信号通路活性水平;通过蛋白印迹法检测表征Wnt/PCP信号通路活性的磷酸化JNK (Jun N-terminal kinase)蛋白的水平。结果显示:rspo1为母源基因,在12hpf前胚胎中呈全身性表达, rspo1的过表达或敲降均影响胚胎的CE运动;过表达rspo1降低Wnt/PCP信号通路报告质粒的活性,而敲降rspo1则增加其活性,与之相一致, rspo1敲降的胚胎中磷酸化JNK的水平显著升高;此外, rsp...  相似文献   

13.
In contrast to mammals, lower vertebrates have a remarkable capacity to regenerate complex structures damaged by injury or disease. This process, termed epimorphic regeneration, involves progenitor cells created through the reprogramming of differentiated cells or through the activation of resident stem cells. Wnt/beta-catenin signaling regulates progenitor cell fate and proliferation during embryonic development and stem cell function in adults, but its functional involvement in epimorphic regeneration has not been addressed. Using transgenic fish lines, we show that Wnt/beta-catenin signaling is activated in the regenerating zebrafish tail fin and is required for formation and subsequent proliferation of the progenitor cells of the blastema. Wnt/beta-catenin signaling appears to act upstream of FGF signaling, which has recently been found to be essential for fin regeneration. Intriguingly, increased Wnt/beta-catenin signaling is sufficient to augment regeneration, as tail fins regenerate faster in fish heterozygous for a loss-of-function mutation in axin1, a negative regulator of the pathway. Likewise, activation of Wnt/beta-catenin signaling by overexpression of wnt8 increases proliferation of progenitor cells in the regenerating fin. By contrast, overexpression of wnt5b (pipetail) reduces expression of Wnt/beta-catenin target genes, impairs proliferation of progenitors and inhibits fin regeneration. Importantly, fin regeneration is accelerated in wnt5b mutant fish. These data suggest that Wnt/beta-catenin signaling promotes regeneration, whereas a distinct pathway activated by wnt5b acts in a negative-feedback loop to limit regeneration.  相似文献   

14.
The zic1 gene is an activator of Wnt signaling   总被引:1,自引:0,他引:1  
The zic1 gene plays an important role in early patterning of the Xenopus neurectoderm. While Zic1 does not act as a neural inducer, it synergizes with the neural inducing factor Noggin to activate expression of posterior neural genes, including the midbrain/hindbrain boundary marker engrailed-2. Since the Drosophila homologue of zic1, odd-paired (opa), regulates expression of the wingless and engrailed genes and since Wnt proteins posteriorize neural tissue in Xenopus, we asked whether Xenopus Zic1 acted through the Wnt pathway. Using Wnt signaling inhibitors, we demonstrate that an active Wnt pathway is required for activation of en-2 expression by zic1. Consistent with this result, Zic1 induces expression of several wnt genes, including wnt1, wnt4 and wnt8b. wnt1 gene expression activates expression of engrailed in various organisms, including Xenopus, as demonstrated here. Together, our data suggest that zic1 is an upstream regulator of several wnt genes and that the regulatory relationships between opa, wingless and engrailed seen in Drosophila are also present in vertebrates.  相似文献   

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17.
Wnt signaling plays a key role in several physiological and pathological aspects. Even if Wnt signal was first described more than 20 years ago, its role in systemic effects, such as angiogenesis and vascular disorders, bone biology, autoimmune diseases, neurological diseases, and neoplastic disorders, was only recently emerged through the use of animal and in vitro models. Moreover, Wnt signaling inhibitors, such as DKK‐1, may be advantageously considered targets for the treatment of several diseases, including osteoporosis, vascular diseases, inflammatory diseases, neurological diseases, and cancer. Nevertheless, further studies are required to provide a complete understanding of this complex signaling pathway, and especially of its role in human diseases, considering the possible advantageous effects of Wnt signaling inhibitors on the progression of disease conditions. J. Cell. Physiol. 228: 1428–1432, 2013. © 2013 Wiley Periodicals, Inc.  相似文献   

18.
The Wnt signaling pathway is highly conserved across metazoa and has pleiotropic functions in the development of many animals. Binding of a secreted Wnt ligand to its Frizzled (Fz) receptor activates Dishevelled, which then drives one of three major signaling cascades, canonical (β-catenin), calcium, or planar cell polarity signaling. These pathways have distinct developmental effects and function in different processes in different organisms. Here we report the expression of six wnt and three fz genes during embryogenesis of the sea star, Patiria miniata, as a first step in uncovering the roles of Wnt signaling in the development of this organism. wnt3, wnt4, wnt8, and wnt16 are expressed in nested domains in the endoderm and lateral ectoderm from blastula through late gastrula stages; wnt2 and wnt5 are expressed in the mesoderm and anterior endoderm. Expression of different fz paralogs is detected in the mesoderm; posterior endoderm and ectoderm; and anterior ectoderm. Taken together, this suggests that Wnt signaling can occur throughout most of the embryo and may therefore play multiple roles during sea star development.  相似文献   

19.
The Wnt signaling pathway is highly conserved across metazoa and has pleiotropic functions in the development of many animals. Binding of a secreted Wnt ligand to its Frizzled (Fz) receptor activates Dishevelled, which then drives one of three major signaling cascades, canonical (β-catenin), calcium, or planar cell polarity signaling. These pathways have distinct developmental effects and function in different processes in different organisms. Here we report the expression of six wnt and three fz genes during embryogenesis of the sea star, Patiria miniata, as a first step in uncovering the roles of Wnt signaling in the development of this organism. wnt3, wnt4, wnt8, and wnt16 are expressed in nested domains in the endoderm and lateral ectoderm from blastula through late gastrula stages; wnt2 and wnt5 are expressed in the mesoderm and anterior endoderm. Expression of different fz paralogs is detected in the mesoderm; posterior endoderm and ectoderm; and anterior ectoderm. Taken together, this suggests that Wnt signaling can occur throughout most of the embryo and may therefore play multiple roles during sea star development.  相似文献   

20.
WNTs are secreted signaling molecules which control cell differentiation and proliferation. They are known to play essential roles in various developmental processes. Wnt genes have been identified in a variety of animals, and it has been shown that their amino acid sequences are highly conserved throughout evolution. To investigate the role of wnt genes during fish development from the evolutionary viewpoint, six medaka wnt genes (wnt4, wnt5a, wnt6, wnt7b, wnt8b and wnt8-like) were isolated and their embryonic expression was examined. These wnt genes were expressed in various tissues during embryonic development, and most of their expression patterns were conserved or comparable to those of other vertebrates. Thus, these wnt genes may be useful as molecular markers to investigate development and organogenesis using the medaka. Focus was on wnt5a, which was expressed in the pectoral fin buds, because its expression pattern was particularly comparable to that in tetrapod limbs. Its detailed expression pattern was further examined during pectoral fin bud development. The conservation and diversification of Wnt5a expression through the evolutionary transition from fish fins to tetrapod limbs is discussed.  相似文献   

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