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1.
赵越  张建法 《生物磁学》2011,(20):3958-3960
自然界中生物体的生命活动、生活习性都存在着一定的周期性变化。生物昼夜节律的产生是以内源性的生物钟系统为基础的。生物钟不仅易受到外界环境的影响,而且可以通过调控一系列特定的下游基因的表达,影响生物体的生理生化过程。巨核细胞是生成血小板的前体细胞,经过分化、增殖、成熟和裂解,最终生成血小板。血小板是一种没有细胞核的特殊细胞,在生理性止血和器官修复上发挥着重要作用,同时参与血栓等多种疾病的发生。近几年借助现代分子生物学和细胞生物学手段。证实了哺乳动物的巨核细胞和血小板的生成呈现明显的周期性的变化,利用生物钟基因缺失模型进一步发现了生物钟基因对巨核细胞和血小板的影响。本文概述了生物节律对巨核细胞和血小板的影响,为进一步研究巨核细胞的发育和血小板生成机制提供了参考。  相似文献   

2.
众所周知 ,生物体的新陈代谢过程 ,细胞和细胞器官的生理功能 ,以及心理行为等生命活动往往随着昼夜循环而发生规律性的变化。就是在实验室恒定的条件下 ,消除一切环境因子的影响 ,生命活动仍表现出昼夜节律性的变化。这说明昼夜节律受体内的测时系统——生物钟的控制。从 5 0年代至今 ,人们对生物的昼夜节律及其调控机制进行了深入地研究 ,特别是应用生物化学和分子生物学的方法 ,使人们逐步了解了生物节律的特点 ,生物钟基因及其表达的调控机制。1 生物钟基因存在于不同生物体中的昼夜节律时钟都表现出 3个共同的特点 :1 )在恒定的环境条…  相似文献   

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涂强  张卿西 《生理学报》1990,42(4):363-367
本文应用血小板生成液体培养体系,检测了重组人红细胞生成素(r-EPO)对巨核细胞成熟及血小板生成的影响。r-EPO 能在1U 至6~U/ml 浓度范围内增加体系血小板数,r-EPO剂量与血小板数之间呈线性关系。r-EPO 还能促进巨核细胞 DNA 合成,并使 Ⅱ、Ⅳ 期巨核细胞比例增加,Ⅰ、Ⅱ 期巨核细胞比例减少。结果表明:r-EPO 可以促进巨核细胞成熟,并作为一种主要刺激因子,以增加血小板数的方式促进血小板生成。  相似文献   

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生物钟基因及其表达的调节机制   总被引:1,自引:0,他引:1  
众所周知,生物体的新陈代谢过程,细胞和细胞器官的生理功能,以及心理行为等生命活动往往随着昼夜循环而发生规律性的变化.就是在实验室恒定的条件下,消除一切环境因子的影响,生命活动仍表现出昼夜节律性的变化.这说明昼夜节律受体内的测时系统--生物钟的控制.从50年代至今,人们对生物的昼夜节律及其调控机制进行了深入地研究,特别是应用生物化学和分子生物学的方法,使人们逐步了解了生物节律的特点,生物钟基因及其表达的调控机制.  相似文献   

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涂强  张卿西 《生理学报》1990,42(4):368-373
本 文应用血小板生成液体培养体系及纯化的血小板生成刺激因子(TSF)研究了 TSF对巨核细胞成熟及血小板生成的作用。TSF 在0.5—2U/ml 浓度范围内能够刺激巨核细胞DNA 合成,胞浆成熟,胞体直径增加以及血小板直径增加,但对巨核细胞与血小板计数没有影响。实验表明 TSF 作为一种血小板生成素,通过促进巨核细胞分化成熟,以增加血小板体积的方式,促进血板小生成。  相似文献   

6.
体外液体培养体系中生成的血小板性能观察   总被引:1,自引:0,他引:1  
涂强  张卿西 《生理学报》1988,40(3):258-264
应用液体培养法培养小鼠骨髓细胞获得了比较稳定且有一定数量血小板生成的培养体系。培养3、5、7、9d时体系中的血小板数均高于接种时。在培养7d时可见巨核细胞生成血小板的现象,~(35)S掺入也证实体外有血小板生成。这些体外生成的血小板形态功能基本正常,其直径为1—5μm,新生成的血小板体积较大。无论体积大小,其活动性均稍强于正常。这些体外生成的血小板具有正常粘附功能,2×10~(-4)mol/L ADP可诱导出单波聚集。体系中血小板及巨核细胞生成量稳定且与接种细胞数呈正相关,提示可将其应用于巨核系生成调控的研究。进一步增加并稳定血小板生成量可使此体系更有效地应用于血小板形态、功能及生成调控的研究。  相似文献   

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地球的自转产生了以24 h为周期的昼夜节律,因此生物的生理过程和行为活动大都呈现一个近似24 h的周期节律改变,以适应环境的不断变化。昼夜节律在整体水平是一个系统性的调控,它的产生、维持和调控依赖于细胞内生物钟基因的震荡型转录翻译负反馈环路。研究表明,生物钟在卵巢动情周期和生殖系统发育过程中发挥重要作用。本篇综述主要阐述了自卵巢生物钟发现后的种种研究成果,包括卵巢生物钟对类固醇激素生成及排卵的影响,生物钟基因对生育能力的影响,以及生物钟调控与女性生殖系统疾病的相关性。  相似文献   

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为探究人类不同发育时期巨核细胞的分子特征,基于人类胚胎期卵黄囊、胎肝和成年骨髓巨核细胞的单细胞转录组测序数据,从分子特征、基因调控网络等方面分别对其分子差异进行生物信息学分析。结果表明,胚胎期巨核细胞具有较强的增殖特征,高表达细胞增殖相关的转录因子;而成年期巨核细胞具有较强的血小板生成特征,高表达与巨核细胞分化成熟相关的转录因子。研究结果为研究不同发育阶段巨核细胞及其子代血小板的功能差异提供了理论依据。  相似文献   

9.
岳敏  杨禹  郭改丽  秦曦明 《遗传》2017,39(12):1122-1137
生物钟对生物机体的生存与环境适应具有着重要意义,其相关研究近年来受到人们的广泛关注。生物钟的重要性质之一是内源节律的周期性,当前的研究认为这种周期性是由生物钟相关基因转录翻译的多反馈环路构成核心机制调控着近似24 h的节律振荡。哺乳动物的生物钟系统存在一个多层次的结构,包括位于视交叉上核的主时钟和外周器官和组织的子时钟。虽然主时钟和子时钟存在的组织不同,但是参与调节生物钟的分子机制是一致的。近年来,通过正向、反向遗传学方法和表观遗传学的研究方法,对生物钟的分子机制的解析和认知愈发深入。本文在简单回顾生物钟基因发现历史的基础上,重点从遗传学和表观遗传学两个方面,从振荡周期的角度,对哺乳动物生物钟分子机制的研究进展进行了综述性介绍,以期为靶向调节生物钟来改善机体的稳态系统的研究提供参考,同时希望能促进时间生物学领域与更多其他领域形成交叉研究。  相似文献   

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众所周知,从单细胞生物到人,几乎所有生物体在生理和行为上都表现出昼夜节律。内源性生物钟是产生昼夜节律的物质基础,由母钟和子钟组成,母钟位于下丘脑视交叉上核(SCN),子钟位于各个外周组织(肝脏、心脏等)。随着机体的逐渐衰老,反应生物钟输出信号的生理昼夜节律在振荡幅度、振荡周期和表达时相等方面发生了相应的变化。另一方面,生物钟控制的生理昼夜节律影响衰老的进程,生物钟功能紊乱会严重加速机体的衰老。本文概述了衰老与生物钟之间的相关研究进展,为进一步认识衰老机制及其对机体的影响提供了线索。  相似文献   

11.
Chlamydomonas reinhardtii has been used as an experimental model organism for circadian rhythm research for more than 30 yr. Some of the physiological rhythms of this alga are well established, and several clock mutants have been isolated. The cloning of clock genes from these mutant strains by positional cloning is under way and should give new insights into the mechanism of the circadian clock. In a spectacular space experiment, the question of the existence of an endogenous clock vs. an exogenous mechanism has been studied in this organism. With the emergence of molecular analysis of circadian rhythms in plants in 1985, a circadian gene expression pattern of several nuclear and chloroplast genes was detected. Evidence is now accumulating that shows circadian control at the translational level. In addition, the gating of the cell cycle by the circadian clock has been analyzed. This review focuses on the different aspects of circadian rhythm research in C. reinhardtii over the past 30 yr. The suitability of Chlamydomonas as a model system in chronobiology research and the adaptive significance of the observed rhythms will be discussed.  相似文献   

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Chlamydomonas reinhardtii has been used as an experimental model organism for circadian rhythm research for more than 30 yr. Some of the physiological rhythms of this alga are well established, and several clock mutants have been isolated. The cloning of clock genes from these mutant strains by positional cloning is under way and should give new insights into the mechanism of the circadian clock. In a spectacular space experiment, the question of the existence of an endogenous clock vs. an exogenous mechanism has been studied in this organism. With the emergence of molecular analysis of circadian rhythms in plants in 1985, a circadian gene expression pattern of several nuclear and chloroplast genes was detected. Evidence is now accumulating that shows circadian control at the translational level. In addition, the gating of the cell cycle by the circadian clock has been analyzed. This review focuses on the different aspects of circadian rhythm research in C. reinhardtii over the past 30 yr. The suitability of Chlamydomonas as a model system in chronobiology research and the adaptive significance of the observed rhythms will be discussed.  相似文献   

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Circadian rhythms are ubiquitous in living organisms, synchronizing life functions at the biochemical, physiological, and behavioral levels. The rhythm-generating mechanisms, collectively known as circadian clocks, are not fully understood in any organism. Research in the fruit fly Drosophila has led to the identification of several clock genes that are involved in the function of the brain-centered clock, which controls behavioral rhythms of adult flies. With the use of clock genes as markers, putative circadian clocks were mapped in the fly peripheral organs and shown to be independent from clocks located in the brain. A homologue of fruit fly period gene has been identified in moths and other insects, allowing investigations of this gene's role in known insect rhythms. This approach may increase our understanding of how circadian clocks are organized into the circadian system that orchestrates temporal integration of life processess in insects.  相似文献   

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The circadian clock acts as the timekeeping mechanism in photoperiodism. In Arabidopsis thaliana, a circadian clock-controlled flowering pathway comprising the genes GIGANTEA (GI), CONSTANS (CO), and FLOWERING LOCUS T (FT) promotes flowering specifically under long days. Within this pathway, GI regulates circadian rhythms and flowering and acts earlier in the hierarchy than CO and FT, suggesting that GI might regulate flowering indirectly by affecting the control of circadian rhythms. We studied the relationship between the roles of GI in flowering and the circadian clock using late elongated hypocotyl circadian clock associated1 double mutants, which are impaired in circadian clock function, plants overexpressing GI (35S:GI), and gi mutants. These experiments demonstrated that GI acts between the circadian oscillator and CO to promote flowering by increasing CO and FT mRNA abundance. In addition, circadian rhythms in expression of genes that do not control flowering are altered in 35S:GI and gi mutant plants under continuous light and continuous darkness, and the phase of expression of these genes is changed under diurnal cycles. Therefore, GI plays a general role in controlling circadian rhythms, and this is different from its effect on the amplitude of expression of CO and FT. Functional GI:green fluorescent protein is localized to the nucleus in transgenic Arabidopsis plants, supporting the idea that GI regulates flowering in the nucleus. We propose that the effect of GI on flowering is not an indirect effect of its role in circadian clock regulation, but rather that GI also acts in the nucleus to more directly promote the expression of flowering-time genes.  相似文献   

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