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1.
气孔广泛存在于植物地上组织和器官的表皮,是植物与外界环境进行气体交换的主要门户,调节光合作用和蒸腾作用等生理活动.原表皮细胞经过一系列固定的分裂和分化,最终产生成熟气孔.在气孔发育过程中,bHLH转录因子调控气孔细胞的起始、扩增和分化,受体-配体、MAPK信号级联介导的细胞间通讯确保正确的气孔发育图式的形成,极性蛋白调节气孔细胞不均等分裂的方向.此外,植物激素和环境因子也影响气孔发育.这些因子共同构建出植物气孔发育的分子遗传调控网络.本文综述了该网络及其最新研究进展  相似文献   

2.
陈青云  李有志  樊宪伟 《遗传》2017,39(4):302-312
气孔是陆生植物表皮上可以调节的小孔,也是植物进行气体交换的主要通道。气孔不仅对植物的光合作用起着非常关键的作用,而且对全球的碳循环和水循环具有重要的影响。气孔分布和形态结构在单、双子叶植物间也有较大的差异,这些差异因植物种类不同影响着气孔发育的精细调控。本文综述了调控气孔前体细胞命运的分子网络、细胞极性分裂和表观遗传机制,归纳了外界环境信号通过与内源信号通路互作介导气孔发育的过程,提出了气孔发育基于多水平控制的气孔发育模型。  相似文献   

3.
《生命科学研究》2019,(6):479-486
中枢神经系统由数量庞大、类型多样的神经细胞和神经胶质细胞组成,它调节生物体各种生理活动以及学习、记忆和思维等认知功能。神经细胞和神经胶质细胞由神经干细胞产生,所以对神经干细胞的研究有十分重要的意义。果蝇作为一种经典模式生物,长期被用于神经干细胞增殖、分化、凋亡等方面的研究。本文阐述了果蝇神经干细胞的最新研究进展,包括神经干细胞的类型和起源,参与神经干细胞不对称分裂的关键蛋白质,神经干细胞的静息、激活和最终的分化或凋亡,以及神经元多样性产生的机制,希望对神经生物学的基础研究有所帮助。  相似文献   

4.
植物根系最主要的作用之一是从土壤中获取养分并将其运输至地上部。水和营养物质径向穿过根的表皮、皮层、内皮层等所有外部细胞层,才能到达中柱,以供地上部代谢所需。其中,内皮层细胞在发育过程中会经历两个特殊的分化阶段,分别形成凯氏带和木栓层两种扩散屏障,二者在控制养分获取与流失方面起着重要的作用。该文就近年来国内外有关植物内皮层分化过程及其屏障功能方面的研究进展进行了综述,以期对深入探索内皮层屏障在植物生长发育和逆境适应中的作用提供参考,为植物育种工作开辟新的思路。  相似文献   

5.
利用激光扫描共聚焦显微镜研究植物细胞发育形态学变化   总被引:2,自引:0,他引:2  
通过激光扫描共聚焦显微镜,利用不同种类(波长)的激光研究植物细胞发育形态学变化。结果表明,利用紫外激光(351 nm)扫描可以清楚地观察到拟南芥叶片表皮细胞的形态及其变化,在已分化的叶片表皮上可观察到包括“铺垫”表皮细胞(epidermal pavement cells)、气孔保卫细胞(guard cell)、气孔伴胞(subsidiarycells)、表皮毛细胞(trichomes)和表皮毛的足细胞(socket cells)等多种形态不同的细胞种类;利用蓝光激光(488nm)辅助曙红浅染,可清晰地显示出拟南芥根生长区内部的各种原始细胞,包括静止区(quiescent center)细胞、皮层/内皮层原始细胞(cortex/endodermal initial cell)、表皮/根冠原始细胞(epidermal/root cap initial cell)和中柱/根冠原始细胞(columella/root cap initial cell)等。利用双光子激光(800 nm)连续扫描30 s可以诱发叶绿体产生自发荧光,并可观察到叶绿体在叶肉细胞中的运动轨迹。结果说明激光扫描共聚焦显微镜在植物细胞形态及发育研究上具有独特的功能。  相似文献   

6.
不对称细胞分裂是果蝇等无脊椎动物以及脊椎动物神经发生过程中神经干细胞分化的基本机制.命运决定子的极性定位及其选择性分配,作为不对称细胞分裂中的重要环节,在子细胞命运决定方面发挥至关重要的作用.本文综述了在中枢及外周神经系统发育期间,不对称分裂中调节Numb等命运决定子靶向定位的影响因素及命运决定子的效应机制,并简要探讨命运决定子调节机制的进化保守性.  相似文献   

7.
编委推荐     
《遗传》2024,(1):1-2
<正>Developmental Cell|蜕皮激素信号引发果蝇肠道干细胞的不对称分裂在器官发育过程中,干细胞先进行对称分裂形成干细胞池,再通过不对称分裂产生分化的子细胞,进而促进组织功能的成熟。然而,在发育过程中不对称分裂信号的起始是如何被触发的目前知之甚少。近日,华中科技大学郭峥实验室利用果蝇肠道模型,发现背侧内斜肌(dorsal internal oblique muscles,  相似文献   

8.
狭基巢蕨叶表皮的结构和气孔器发育的观察   总被引:2,自引:0,他引:2  
周云龙  陈焱   《广西植物》1997,17(2):158-161
狭基巢蕨Neotopterisantrophyoides(Christ)Ching叶片的上表皮无气孔器,仅具表皮细胞,下表皮由表皮细胞和气孔器组成,气孔指数为2.5。上下表皮细胞和气孔器的细胞中均含有叶绿体。每个气孔器由2个肾形的保卫细胞和2~6个副卫细胞组成,其中以3个和4个副卫细胞的占绝大多数(3细胞的占45.1%,4细胞的占43.5%)。从发育上看,气孔器原始细胞进行2次分裂,产生2个保卫细胞和1个同源的副卫细胞。气孔器的发育过程大体可分为4个时期:(1)气孔器原始细胞的分化和分裂期;(2)保卫细胞母细胞成熟期;(3)保卫细胞母细胞分裂和气孔器幼期;(4)气孔器成熟期。狭基巢蕨的气孔器属于中周型  相似文献   

9.
通过激光扫描共聚焦显微镜,利用不同种类(波长)的激光研究拟南芥叶片气孔发生与发育。结果表明,利用紫外激光(351nm)扫描可以清楚观察到拟南芥表皮各种细胞及其发生发育的形态变化,包括表皮毛细胞、副卫细胞、保卫细胞、铺垫表皮细胞等。气孔发生过程中,首先原表皮细胞不对称分裂产生拟分生组织和副卫细胞,接着分化出保卫细胞母细胞,进一步发育形成保卫细胞,最终形成气孔器。气孔分化完成后,保卫细胞在紫外激光下不产生荧光,但利用蓝光激发(488nm)辅助荧光素染色,可清晰地看到保卫细胞。结果表明,激光扫描共聚焦显微镜在拟南芥叶表皮细胞形态研究上有独特的功能。  相似文献   

10.
Ju XF  An TZ  Teng CB 《生理科学进展》2007,38(3):213-218
干细胞巢即干细胞周围的微环境构成,一般包括干细胞的相邻细胞、粘附分子及基质等,但不同的干细胞有不同的巢结构。干细胞巢通过不同信号途径调控着干细胞的行为,使干细胞的自我更新和分化处于平衡状态。根据近年来有关干细胞巢的研究,本文从果蝇生殖系干细胞巢、哺乳动物造血干细胞巢、肠干细胞巢、毛囊表皮干细胞巢和神经干细胞巢等五个系统分别综述了干细胞巢的构成及其对干细胞的调节作用,探讨了干细胞巢作用于干细胞的内在机制。  相似文献   

11.
Balancing self-renewal and differentiation of stem cells is an important issue in stem cell and cancer biology. Recently, the Drosophila neuroblast (NB), neural stem cell has emerged as an excellent model for stem cell self-renewal and tumorigenesis. It is of great interest to understand how defects in the asymmetric division of neural stem cells lead to tumor formation. Here, we review recent advances in asymmetric division and the self-renewal control of Drosophila NBs. We summarize molecular mechanisms of asymmetric cell division and discuss how the defects in asymmetric division lead to tumor formation. Gain-of-function or loss-of-function of various proteins in the asymmetric machinery can drive NB overgrowth and tumor formation. These proteins control either the asymmetric protein localization or mitotic spindle orientation of NBs. We also discuss other mechanisms of brain tumor suppression that are beyond the control of asymmetric division.  相似文献   

12.
The SCARECROW gene's role in asymmetric cell divisions in rice plants   总被引:6,自引:0,他引:6  
Asymmetric cell division is one of the most important mechanisms in the diversification of cell function and fate. In Arabidopsis, SCARECROW (SCR) is essential for the asymmetric division of the cortex/endodermis progenitor cell in the root. To learn more about how SCR is involved in asymmetric division, we analyzed the rice SCR (OsSCR) expression. In the root tip, OsSCR expression was observed in the endodermal cell layer and downregulated in the daughter cortex cell after asymmetric division, just as with Arabidopsis SCR. In leaf primordia, expression of OsSCR was observed in stomatal and ligule formation. In stomatal development, OsSCR was specifically expressed in the stomatal cell files before formation of guard mother cells (GMCs), and then, its expression was localized in GMCs, when the first asymmetric division occurred to generate the GMCs. Before the second asymmetric division of subsidiary mother cells (SMCs), localized OsSCR expression was observed in SMCs in the area close to the GMCs. Before these asymmetric divisions, the localization of OsSCR mRNA in GMC-forming cells and SMCs was observed in the area of the daughter GMC and subsidiary cells. OsSCR expression was also observed in the initiation area of ligule formation, and its downregulation occurred in the inner L2 cells generated by asymmetric division. Based on these observations, we proposed that OsSCR is involved not only in the asymmetric division of the cortex/endodermis progenitor cell but also during stomata and ligule formation by establishing the polarization of cytoplasm.  相似文献   

13.
不对称分裂是干/祖细胞发育分化中的基本过程,膜相关蛋白Numb在其中发挥重要作用.Numb极性分布于细胞一侧,在干/祖细胞有丝分裂时不对等分配至两个子代细胞,使子代细胞产生不同分化命运.如一个保持在干/祖细胞状态,而另一个发育为神经元,这一过程主要通过抑制Notch信号通路发挥作用.近年在哺乳动物中的研究中发现,高强度Notch信号又能够反馈抑制Numb活性.Numb具有维持神经干/祖细胞增殖与促进分化的双重作用,Numb的命运决定作用还与Shh信号通路和p53蛋白等相关.另外,Numb参与调控细胞的粘连、迁移以及神经元轴突的分支与延长.本文主要对Numb在果蝇及哺乳动物神经干/祖细胞中的定位以及其在决定细胞命运和分化中的调控作用进行综述.  相似文献   

14.
In the Arabidopsis root, asymmetric stem-cell divisions produce daughters that form the different root cell types. Here we report the establishment of a confocal tracking system that allows the analysis of numbers and orientations of cell divisions in root stem cells. The system provides direct evidence that stem cells have lower division rates than cells in the proximal meristem. It also allows tracking of cell division timing, which we have used to analyse the synchronization of root cap divisions. Finally, it gives new insights into lateral root cap formation: epidermal stem-cell daughters can rotate the orientation of the division plane like the stem cell.  相似文献   

15.
Asymmetric cell division generates cell types with different fates. Recent studies have improved our understanding of the molecular mechanisms involved in asymmetric cell division in Arabidopsis thaliana. Genetic approaches have identified candidate intrinsic factors and signaling components that mediate extrinsic cues. WOX genes appear to be putative intrinsic determinants acting in early embryonic asymmetric divisions. A non-canonical mechanism involving specific SHORT ROOT (SHR)-SCARECROW (SCR) nuclear complexes is implicated in ground tissue asymmetric divisions. Asymmetric stem cell division requires extrinsic organizer signaling, whereas the involvement of intrinsic stem cell segregants is unknown. Finally, new studies on stomatal development have identified several intrinsic acting factors that specify cell fate and an extrinsic signaling cascade that controls the number and plane of asymmetric divisions.  相似文献   

16.
Munn K  Steward R 《Genetics》2000,156(1):245-256
In Drosophila melanogaster, the process of oogenesis is initiated with the asymmetric division of a germline stem cell. This division results in the self-renewal of the stem cell and the generation of a daughter cell that undergoes four successive mitotic divisions to produce a germline cyst of 16 cells. Here, we show that shut-down is essential for the normal function of the germline stem cells. Analysis of weak loss-of-function alleles confirms that shut-down is also required at later stages of oogenesis. Clonal analysis indicates that shut-down functions autonomously in the germline. Using a positional cloning approach, we have isolated the shut-down gene. Consistent with its function, the RNA and protein are strongly expressed in the germline stem cells and in 16-cell cysts. The RNA is also present in the germ cells throughout embryogenesis. shut-down encodes a novel Drosophila protein similar to the heat-shock protein-binding immunophilins. Like immunophilins, Shut-down contains an FK506-binding protein domain and a tetratricopeptide repeat. In plants, high-molecular-weight immunophilins have been shown to regulate cell divisions in the root meristem in response to extracellular signals. Our results suggest that shut-down may regulate germ cell divisions in the germarium.  相似文献   

17.
The Drosophila dorsal vessel consists of two cell types, contractile cardiomyoblasts that form a linear tube-like structure, and the loosely associated pericardial cells. All heart cells originate during embryogenesis from the early dorsal mesoderm under the influence of external and internal signals. Recently, it was shown that a subset of heart cells arise throughout asymmetric cell division, dependent on the function of Notch, Sanpodo, and Numb. Here, we show that Inscuteable, a multiadapter protein required for asymmetric cell division, participates in the formation of specific heart cells to distinguish between a myogenic (cardiomyoblast) and a nonmyogenic (pericardial cell) fate.  相似文献   

18.
Stem cells are a promising cell source for regenerative medicine due to their characteristics of self‐renewal and differentiation. The intricate balance between these two cell fates is maintained by precisely controlled symmetric and asymmetric cell divisions. Asymmetric division has a fundamental importance in maintaining tissue homeostasis and in the development of multi‐cellular organisms. For example, during development, asymmetric cell divisions are responsible for the formation of the body axis. Mechanistically, mitotic spindle dynamics determine the assembly and separation of chromosomes and regulate the orientation of cell division. Interestingly, symmetric and asymmetric cell division is not mutually exclusive and a range of factors are involved in such cell‐fate decisions, the measurement of which can provide efficient and reliable information on the regenerative potential of a cell. The balance between self‐renewal and differentiation in stem cells is controlled by various biophysical and biochemical cues. Although the role of biochemical factors in asymmetric stem cell division has been widely studied, the effect of biophysical cues in stem‐cell self‐renewal is not comprehensively understood. Herein, we review the biological relevance of stem‐cell asymmetric division to regenerative medicine and discuss the influences of various intrinsic and extrinsic biophysical cues in stem‐cell self‐renewal. This review particularly aims to inform the clinical translation of efforts to control the self‐renewal ability of stem cells through the tuning of various biophysical cues.  相似文献   

19.
The plant basic body plan is laid down during embryogenesis. All post-embryonic development has its origin in the stem cells located in niches in the heart of the shoot and root meristems. Creating the root niche requires auxin dependent patterning cues that provide positional information in combination with parallel inputs to specify and maintain the root stem cell niche from embryogenesis onwards. Once established, the architecture of the root niche differs from that in the shoot but recent findings reveal a conserved module for stem cell control. Important for stem cell maintenance is the balance between cell division and differentiation. Dealing with the environment is the biggest challenge for plants and that includes complete regeneration of stem cell systems upon damage. Here we will address these issues as we follow the formation, function and maintenance of the root stem cell niche during development.  相似文献   

20.
The asymmetric segregation of cell-fate determinants and the generation of daughter cells of different sizes rely on the correct orientation and position of the mitotic spindle. In the Drosophila embryo, the determinant Prospero is localized basally and is segregated equally to daughters of similar cell size during epidermal cell division. In contrast, during neuroblast division Prospero is segregated asymmetrically to the smaller daughter cell. This simple switch between symmetric and asymmetric segregation is achieved by changing the orientation of cell division: neural cells divide in a plane perpendicular to that of epidermoblast division. Here, by labelling mitotic spindles in living Drosophila embryos, we show that neuroblast spindles are initially formed in the same axis as epidermal cells, but rotate before cell division. We find that daughter cells of different sizes arise because the spindle itself becomes asymmetric at anaphase: apical microtubules elongate, basal microtubules shorten, and the midbody moves basally until it is positioned asymmetrically between the two spindle poles. This observation contradicts the widely held hypothesis that the cleavage furrow is always placed midway between the two centrosomes.  相似文献   

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