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1.
线粒体蛋白质组学   总被引:1,自引:0,他引:1  
线粒体作为真核细胞内一种重要的细胞器,在许多生理病理过程中发挥重要作用。蛋白质组学研究技术的不断发展推动了线粒体蛋白质组的研究。本文对近年来线粒体蛋白质组学的研究现状、存在的影响因素及发展前景进行了综述。  相似文献   

2.
Xu FF  Liu XH 《生理科学进展》2010,41(6):429-434
微循环遍及全身,直接参与机体物质、能量与信息传递,与心、脑及外周血管疾病、糖尿病、结缔组织病及创伤、感染、休克等病理过程的发生、发展、疗效及预后判断关系密切,其功能改变涉及多种细胞因子与蛋白质组分之间动态、复杂、精细的相互作用。蛋白质组学作为一门研究细胞蛋白质的组成及其活动规律的新兴学科,有助于阐明生理或病理条件下的微循环改变的分子机制。本文综述近年来蛋白质组学技术进展及其在微循环研究中的应用。  相似文献   

3.
蛋白质组学是对细胞或生物体全部蛋白质的系统鉴定、定量并阐释其生物学功能的学科.自21世纪初期开始,随着高精度、高灵敏度和快速扫描质谱仪的出现和快速发展以及微量蛋白质组样品高效分离技术的进步,蛋白质组学获得了快速发展,并在生理过程与病理机制研究等几乎所有生命科学研究领域得到了广泛的应用.过去10年,中国蛋白质组学研究在政府的支持和广大蛋白质组学研究人员的努力下呈现出腾飞式的发展态势.本文综述了人类肝脏蛋白质组计划和2010~2013年中国蛋白质组学技术的发展.  相似文献   

4.
线粒体是真核生物中重要的细胞器,其包含的全部蛋白质称为线粒体蛋白质组。人类线粒体大约包含1500多种蛋白质,由核基因和线粒体基因共同编码。线粒体是细胞能量合成和物质代谢的中心,其功能障碍将直接或问接引起许多疾病。目前线粒体蛋白质组学正是系统性地研究线粒体在生理、病理过程中的功能变化以及研究疾病发生机制的重要方法。将线粒体蛋白质组的研究方法、研究进展、线粒体蛋白质组的性质及其在相关疾病研究中的作用进行综述,并对线粒体蛋白质组学在疾病发生机制和诊断治疗中的发展前景进行展望。  相似文献   

5.
肝脏是哺乳动物体内的代谢中枢,系统性研究肝脏蛋白质组在不同的生理和病理状态下的表达情况有助于我们理解肝脏的功能机理。随着高精度质谱技术的不断发展,众多小鼠肝脏生理病理研究产生了大量蛋白质组学数据。文中系统性整理了834例小鼠肝脏的蛋白质组学实验,建立了小鼠肝脏蛋白质组数据门户(Mouse Liver Portal,http://mouseliver.com),该门户中包含了肝脏在不同生理和病理状态下的蛋白质组学数据,如不同性别、年龄、昼夜节律、细胞类型和不同时间阶段的部分肝切除、非酒精性脂肪肝等状态。该门户能够提供肝脏在不同状态下蛋白的表达变化情况、差异显著的蛋白质和它们参与的生物学过程以及潜在的信号转导和调控网络。作为目前最全面的小鼠肝脏蛋白质组数据门户,该数据库能够给肝脏生物学研究提供重要的资源和参考。  相似文献   

6.
蛋白质磷酸化是最常见的蛋白质翻译后修饰形式。由于蛋白质的磷酸化形式可以被磷酸酶和磷酸激酶进行可逆的调控,所以在众多的生命活动过程中蛋白质的磷酸化修饰起着重要的调控作用,因此对生物体内蛋白质磷酸化修饰的系统研究对于揭示生命科学的奥秘显得十分重要。近年来,随着质谱技术和生物信息学软件以及磷酸化肽段富集方法的发展,利用质谱对生物体内蛋白质磷酸化修饰研究的技术逐渐成熟。肝脏作为人体最重要的代谢和免疫器官,深入研究肝脏细胞内蛋白质磷酸化修饰形式对于理解其功能具有重要指导意义。目前,迅速发展的磷酸化蛋白质组学技术已经被广泛应用到肝脏功能的生物学研究中。这些研究加深了人们对肝脏的生理及病理状态的分子生物学机制的了解。本文综述了当前磷酸化蛋白质组学的研究进展和磷酸化蛋白质组学在肝脏中的研究。  相似文献   

7.
快速发展的亚细胞蛋白质组学   总被引:3,自引:1,他引:3  
亚细胞蛋白质组是蛋白质组学领域中的一支新生力量 ,已成为蛋白质组学新的主流方向 ,通过多种策略和技术方法 ,一些重要的亚细胞结构的蛋白质组不断的得到分析 ,到目前为止 ,几乎所有亚细胞结构的蛋白质组学研究都有报道 ,而且已经深入到亚细胞器和复合体水平 ;另外 ,不仅局限于对亚细胞结构的蛋白组成进行简单分析 ,而且更注重功能性分析 ,将定量技术和差异分析引入亚细胞蛋白质组学 ,来观察此亚细胞结构的蛋白质组在某些生理或病理条件下的变化 ,这已经成为亚细胞蛋白质组学新的发展方向 .亚细胞蛋白质组学最大的困难在于怎样确认鉴定出来蛋白质的定位 ,是在提取过程中的污染还是真正在此亚细胞结构中有定位 ?这将是亚细胞蛋白质组学需要努力解决的挑战 .文章全面介绍了亚细胞蛋白质组学的最新研究进展 ,阐述了亚细胞蛋白质组学面临的挑战 ,并对亚细胞蛋白质组学的发展方向作了展望 .  相似文献   

8.
蛋白质组学技术在神经系统疾病研究中的作用   总被引:1,自引:0,他引:1  
Li CY  Li L 《生理科学进展》2005,36(3):286-289
双向凝胶电泳和质谱等方法都是蛋白质组学(Proteomics)技术的重要方法。应用蛋白质组学技术可以同时研究大量蛋白质的功能、组成,多样性及其动态变化。神经科学的许多问题可以借助于这个新的工具平台获得解决,因此,蛋白质组学的发展,将为神经疾病发病机制的深入研究,以及相关的药物开发提供一个崭新的发展机遇。  相似文献   

9.
脂肪组织不仅是机体的能量储存库,而且也是重要的内分泌器官。脂肪组织分泌多种激素和细胞因子,参与调节机体多种生理和病理过程。目前飞速发展的蛋白质组学技术,为深入研究脂肪发育的分子机制及其代谢紊乱发生的遗传机理提供了有力的工具。对蛋白质组学在脂肪组织中的研究进展进行了综述,为脂肪组织的发育调控及代谢疾病的治疗提供了新的思路。  相似文献   

10.
糖尿病肾病作为糖尿病的主要并发症之一,是导致终末期肾功能衰竭(end-stage renal disease,ERSD)的最主要原因之一。目前,人们对糖尿病肾病的发病机制尚不完全清楚。近年来蛋白质组学技术逐渐被应用于这一疾病发病机制的研究中,为人们探索糖尿病肾病的发病机制提供了有力的实验依据。本文对蛋白质组学在糖尿病肾病研究中的新近进展进行了综述和讨论,并通过具体实例介绍了如何对蛋白质组学数据进行系统分析,揭示潜在的新调控网络及其生理与病理生理意义,为糖尿病肾病的研究与治疗提供新的思路。  相似文献   

11.
Chronic kidney disease (CKD) is the gradual decrease in renal function. Currently available biomarkers are effective only in detecting late stage CKD. Biomarkers of early stage CKD and prognostic biomarkers are required. We review the major findings in urinary proteomics in CKD during the last five years. Significant progress has been made and today urinary proteomics is applied in large randomized trials, and in patient management. Many of the biomarkers indicate altered protease activity. We therefore also review the literature on proteases associated with renal function loss. We anticipate in silico prediction tools of protease activity and additional system biology studies may contribute to biomarker discovery and elucidate the role of proteases in CKD development and progression. These approaches will enable the deciphering of the molecular pathophysiology of CKD, and hence definition of the most appropriate therapeutic targets in the future. Together with stable biomarker panels available today, this will significantly improve patient management.  相似文献   

12.
Urinary proteomics: a tool to discover biomarkers of kidney diseases   总被引:1,自引:0,他引:1  
There is intense interest in applying proteomics to urine analysis in order to promote a better understanding of kidney disease processes, develop new biomarkers for diagnosis and detect early factors that contribute to end-stage renal diseases. This interest creates numerous opportunities as well as challenges. To fulfill this task, proteomics requires, in its different stages of realization, various technological platforms with high sensitivity, high throughput and large automation ability. In this review, we will give an overview of promising proteomic methods that can be used for analyzing urinary proteome and detecting biomarkers for different kidney diseases. Furthermore, we will focus on the current status and future directions in investigating kidney diseases using urinary proteomics.  相似文献   

13.
There is intense interest in applying proteomics to urine analysis in order to promote a better understanding of kidney disease processes, develop new biomarkers for diagnosis and detect early factors that contribute to end–stage renal diseases. This interest creates numerous opportunities as well as challenges. To fulfill this task, proteomics requires, in its different stages of realization, various technological platforms with high sensitivity, high throughput and large automation ability. In this review, we will give an overview of promising proteomic methods that can be used for analyzing urinary proteome and detecting biomarkers for different kidney diseases. Furthermore, we will focus on the current status and future directions in investigating kidney diseases using urinary proteomics.  相似文献   

14.
Ultrasound was used to measure echogenesis, renal cortex thickness and kidney length in 59 patients with various types of the primary glomerulonephritis. The obtained results have shown that the measured parameters correlated with the progress in renal failure. An increase in the intensity of echo from the cortex, thinning of the renal cortex, and the decrease in renal length are typical signs of the advancement of renal failure. As renal function deteriorates in the consequence of destruction of its parenchyma, ultrasound examination might be an illustration of the pathological changes in the kidney. Considering the fact that ultrasound is perfectly safe, it may be used in monitoring of the disease progress and the results of treatment.  相似文献   

15.
The discovery of microRNAs has brought in another level of intricacy in gene regulation. These microRNAs are small non-coding RNAs that have dual ability to act as repressors or inducers of gene activity. MicroRNAs have been implicated in a wide spectrum of biological processes and their expressions have been found to be dysregulated in several diseases. Recently, microRNAs have emerged as a new area of interest in renal development and pathology. MicroRNA profilings have revealed a number of microRNAs that are specific to the kidney or restricted to certain regions of the organ suggesting possible exclusive roles therein. Recently, knockout studies have shown that these riboregulators are critical for normal renal growth and functional renal system. Individual microRNAs have also been identified in renal disease models including kidney cancers, diabetic nephropathy and polycystic kidney disease. Several mechanisms of modulating microRNA activity have also been introduced in recent years. Further progress in the understanding of microRNA activity, identification of microRNA signatures in different states as well as advancement of microRNA manipulation techniques will be valuable for kidney research.  相似文献   

16.
慢性肾脏疾病患者的肾功能会随时间的推移而进行性恶化,肾实质细胞进行性丧失及细胞外基质蛋白过度沉积将导致肾纤维化形成,肾纤维化进行性发展将最终走向终末期肾衰竭。肝细胞生长因子(HGF)及其受体c-Met对肾发育和急性肾损伤后的肾脏再生修复具有重要作用,在慢性肾衰竭及肾纤维化时,HGF还具有营养肾脏及抗肾纤维化的作用。简要综述了HGF抑制肾纤维化形成的细胞分子机制的研究进展,提示HGF在治疗肾纤维化方面所具有的前景。  相似文献   

17.
Kidney fibrosis (KF) is a common process that leads to the progression of various types of kidney disease including kidney‐yang deficiency syndrome, however, little is known regarding the underlying biology of this disorder. Fortunately, integrated omics approaches provide the molecule fingerprints related to the disease. In an attempt to address this issue, we integrated metabolomics–proteomics profiles analyzed pathogenic mechanisms of KF based on rat model. A total 37 serum differential metabolites were contributed to KF progress, involved several important metabolic pathways. Using iTRAQ‐based quantitative proteomics analysis, 126 differential serum proteins were identified and provide valuable insight into the underlying mechanisms of KF. These proteins appear to be involved in complement and coagulation cascades, regulation of actin cytoskeleton, MAPK signaling pathway, RNA transport, etc. Interestingly, pathway/network analysis of integrated proteomics and metabolomics data firstly reveals that these signaling pathways were closely related with KF. It further indicated that most of these proteins play a pivotal role in the regulation of metabolism pathways.  相似文献   

18.
Several studies show evidence for the genetic basis of renal disease, which renders some individuals more prone than others to accelerated renal aging. Studying the genetics of renal aging can help us to identify genes involved in this process and to unravel the underlying pathways. First, this opinion article will give an overview of the phenotypes that can be observed in age‐related kidney disease. Accurate phenotyping is essential in performing genetic analysis. For kidney aging, this could include both functional and structural changes. Subsequently, this article reviews the studies that report on candidate genes associated with renal aging in humans and mice. Several loci or candidate genes have been found associated with kidney disease, but identification of the specific genetic variants involved has proven to be difficult. CUBN, UMOD, and SHROOM3 were identified by human GWAS as being associated with albuminuria, kidney function, and chronic kidney disease (CKD). These are promising examples of genes that could be involved in renal aging, and were further mechanistically evaluated in animal models. Eventually, we will provide approaches for performing genetic analysis. We should leverage the power of mouse models, as testing in humans is limited. Mouse and other animal models can be used to explain the underlying biological mechanisms of genes and loci identified by human GWAS. Furthermore, mouse models can be used to identify genetic variants associated with age‐associated histological changes, of which Far2, Wisp2, and Esrrg are examples. A new outbred mouse population with high genetic diversity will facilitate the identification of genes associated with renal aging by enabling high‐resolution genetic mapping while also allowing the control of environmental factors, and by enabling access to renal tissues at specific time points for histology, proteomics, and gene expression.  相似文献   

19.
干细胞具有自我更新和多向分化潜能,在再生医学领域发挥着越来越大的作用。肾脏类器官是一种由干细胞分化而来具有一定肾脏功能的组织结构,可用于肾脏疾病的细胞修复治疗,也可以模拟肾脏发育和疾病发生及用于筛选改善肾功能的药物。肾脏类器官的体外培育成为了当前研究热点,其体外培育可分为几个阶段:干细胞-原始体节中胚层-中间中胚层-输尿管芽(后肾间质)-集合管(肾单位)。本文重点介绍了目前两种较为成熟的肾脏类器官体外诱导方法,并对肾脏类器官的应用前景进行了综述。  相似文献   

20.
The zebrafish model has emerged as a relevant system to study kidney development, regeneration and disease. Both the embryonic and adult zebrafish kidneys are composed of functional units known as nephrons, which are highly conserved with other vertebrates, including mammals. Research in zebrafish has recently demonstrated that two distinctive phenomena transpire after adult nephrons incur damage: first, there is robust regeneration within existing nephrons that replaces the destroyed tubule epithelial cells; second, entirely new nephrons are produced from renal progenitors in a process known as neonephrogenesis. In contrast, humans and other mammals seem to have only a limited ability for nephron epithelial regeneration. To date, the mechanisms responsible for these kidney regeneration phenomena remain poorly understood. Since adult zebrafish kidneys undergo both nephron epithelial regeneration and neonephrogenesis, they provide an outstanding experimental paradigm to study these events. Further, there is a wide range of genetic and pharmacological tools available in the zebrafish model that can be used to delineate the cellular and molecular mechanisms that regulate renal regeneration. One essential aspect of such research is the evaluation of nephron structure and function. This protocol describes a set of labeling techniques that can be used to gauge renal composition and test nephron functionality in the adult zebrafish kidney. Thus, these methods are widely applicable to the future phenotypic characterization of adult zebrafish kidney injury paradigms, which include but are not limited to, nephrotoxicant exposure regimes or genetic methods of targeted cell death such as the nitroreductase mediated cell ablation technique. Further, these methods could be used to study genetic perturbations in adult kidney formation and could also be applied to assess renal status during chronic disease modeling.  相似文献   

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