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1.
TAT蛋白能够介导多肽、蛋白质、基因等外源物质进入细胞 ,对机体没有毒性 ,对周围环境的影响也不敏感 ,因而可以直接应用于组织细胞。它能够引导外源基因定位于细胞核 ,具有其它介导方法所没有的优点。这些优点将使TAT蛋白在研究蛋白质功能、基因治疗等方面发挥极为重要的作用。TAT蛋白与细胞表面进行低亲和力的结合 ,以Caveolae途径进入细胞 ,将其与高亲和力配体结合可以有更大的功用  相似文献   

2.
TAT蛋白转导域:蛋白质治疗的新曙光   总被引:7,自引:0,他引:7  
TAT蛋白转导域是源自人类免疫缺陷病毒Tat蛋白的一段碱性氨基酸多肽,能够将与之共价连接的多肽、蛋白、核酸等生物大分子快速而高效地转导入细胞内部,在药物转运和疾病治疗等领域有着巨大的应用潜力.TAT蛋白转导域首先通过电荷相互作用吸附于细胞膜,然后通过脂筏介导的巨胞饮作用进入细胞.随着体外研究的不断成熟,应用TAT蛋白转导域治疗人类肿瘤、卒中、炎症等疾病的动物模型也获得了成功,TAT蛋白转导域进入临床指日可待.  相似文献   

3.
多肽TAT与核定位信号介导的蛋白质入核递送   总被引:3,自引:1,他引:3  
增强型绿色荧光蛋白与蛋白质转导结构域TAT、SV40大T抗原的核定位信号以融合蛋白的形式在大肠杆菌中表达 ,纯化后转导A431细胞 ,大部分细胞核内都可以观察到绿色荧光 ,说明TAT NLS可以有效介导蛋白质的入核递送。这种蛋白质递送系统可望用于转录治疗等研究领域。  相似文献   

4.
TAT蛋白转导肽是HIV-1病毒编码的一段富含碱性氨基酸序列的多肽,能够高效介导多种外源生物大分子通过多种膜性结构,如细胞质膜和血脑屏障等。为探索TAT蛋白转导肽介导的秀丽线虫体内外源蛋白跨膜转导作用,以EGFP为报告基因结合常规分子克隆技术构建了原核表达载体pET28b-EGFP和pET28-TAT-EGFP,继而利用诱导剂IPTG(终浓度1mmol/L)诱导表达了靶蛋白并结合荧光显微观察、SDS-PAGE和Western blot等鉴定技术获得表达靶蛋白的大肠杆菌BL21(DE3)细胞,最后将其涂布到含有Kana+的LB固体培养基上直接饲喂野生型N2株系线虫,利用荧光显微镜观察绿色荧光信号在线虫体内的分布。结果证明,TAT-EGFP融合蛋白较之于EGFP可高效、可溶性表达,而且通过直接饲喂秀丽线虫表达靶蛋白的大肠杆菌48小时后,TAT-EGFP荧光信号明显分布于线虫肠壁细胞,而EGFP荧光信号则分布在秀丽线虫肠腔,空载体对照组未见任何荧光信号,说明TAT蛋白转导肽能够高效介导外源蛋白在秀丽线虫体内跨膜转导。同时,通过比较空载体对照组与实验组线虫微分干涉图像,未见线虫出现明显的细胞形态变化,说明TAT蛋白转导肽介导的外源蛋白跨膜转导作用是安全的,为在秀丽线虫体内直接研究外源蛋白的功能以及进行蛋白药物的研发提供了重要参考。  相似文献   

5.
刘树滔  何火聪  陈菁  傅蓉  潘剑茹  饶平凡 《中国实验动物学报》2010,18(6):463-466,I0003,I0004
目的探讨跨膜递送短肽——TAT蛋白转导结构域(简称TAT)介导的与其融合的活性蛋白在活体的跨膜递送作用。方法以融合蛋白GST-TAT-GFP,GST-GFP-TAT和GST-GFP为研究模型蛋白,不经过蛋白质的变性处理、直接通过向小鼠腹腔注射和皮肤涂抹这两种含TAT的融合蛋白及作为对照的融合蛋白GST-GFP,一定时间作用后取体内器官和皮肤做冷冻切片,荧光显微镜检测这些融合蛋白的跨膜递送情况;并对分别融合在C端或者N端的TAT介导GFP在活体动物体内和皮肤的跨膜递送作用进行对比。结果腹腔注射实验结果表明,TAT可以介导不经过蛋白质的变性处理的融合蛋白GST-TAT-GFP和GST-GFP-TAT跨膜递送进入到小鼠的心脏、肝、肾、脾和肺,甚至脑组织;其中GST-GFP-TAT跨膜递送效率比GST-TAT-GFP更高。结构模拟分析提示GST-GFP-TAT与GST-TAT-GFP中的TAT的暴露情况不同可能是造成两种蛋白跨膜递送活性差异的重要因素。皮肤实验的结果则表明TAT不仅介导融合蛋白GST-TAT-GFP和GST-GFP-TAT进入小鼠表皮,而且使其进入小鼠皮肤的真皮层。结论 TAT可以跨膜递送不经过变性处理的融合蛋白进入小鼠皮肤和体内,递送效率可能与TAT的暴露程度相关;这些结果为在蛋白质疗法方面应用TAT提供了进一步的理论依据。  相似文献   

6.
汤莹  史道华 《生物磁学》2009,(14):2756-2758,2762
HIV-TAT蛋白转导域(Protein transduction domain,,PTD)是新近发现的一种在蛋白转导过程中能高效穿过生物膜的结构域,源自人类免疫缺陷病毒Tat蛋白的一段碱性氨基酸多肽,能与多肽、蛋白质及DNA等分子连接并跨膜导入绝大部分的组织细胞或透过血脑屏障,转导效率高且对细胞无损伤。TAT-PTD与细胞膜之间的电荷作用,吸附于膜表面,依赖脂筏介导的巨胞饮作用进入细胞。TAT融合蛋白系统是一种极有价值的运载工具,在基础医学研究和临床治疗方面有着广泛的应用前景。  相似文献   

7.
TAT蛋白介导外源物质进入细胞的作用机制探讨   总被引:1,自引:0,他引:1  
来源于人类免疫缺陷病毒HIV-1的反式激活因子(trans-activator,TAT)蛋白能够有效的介导多肽、蛋白质、基因以及一些其它的物质进入细胞。它以低亲和力与细胞上的受体相结合,通过破坏细胞质膜,以非内吞途径转导外源物质进入细胞内部。  相似文献   

8.
HIV 1编码的反式激活蛋白TAT具有将细胞外蛋白转导进入细胞的基序 ,称为蛋白转导结构域 (PTD) .为研究PTD介导的PTD Bcr Abl融合蛋白的跨膜转运 ,合成了编码PTD的基因片段 ,并与PCR扩增的慢性粒细胞白血病癌蛋白bcr abl基因片段融合 .在大肠杆菌中表达纯化了融合蛋白 ,将纯化的融合蛋白加入培养的HL60细胞和C2C12细胞后 ,发现PTD基序可以介导Bcr Abl蛋白自由从细胞外跨膜转导进入细胞内 .研究结果可能为用外源蛋白负载 (loading)免疫活性细胞如抗原提呈细胞提供新的途径 .  相似文献   

9.
HIV-Tat蛋白转导域在医学研究中的应用   总被引:4,自引:0,他引:4  
HIVTat蛋白转导域(proteintransductiondomain,PTD)是新近发现的一种在蛋白转导过程中能高效穿过生物膜的结构域,它能将与其共价连接的多肽、蛋白质及DNA等分子跨膜导入几乎所有的组织和细胞,甚至可以通过血脑屏障,转导效率很高而且对细胞没有损伤。TAT融合蛋白系统被认为是一种很有前途的运载工具,在基础医学研究和临床治疗方面都有着非常广泛的应用前景 。  相似文献   

10.
借助蛋白质转导技术,利用胰岛β细胞转录因子MafA诱导小肠细胞系IEC-6表达胰岛素,为糖尿病的治疗提供新的方法。将TAT基因与MafA基因一起插入p32a(+)载体中,构建TAT—MafA融合蛋白原核表达载体,转化BL21获得表达菌株,经IPTG诱导和Ni柱亲和层析纯化TAT-MafA融合蛋白,用1μM浓度的该融合蛋白孵育IEC-6细胞12h和24h后,分别进行进胞检测和胰岛素表迭检测。实验结果表明,细胞免疫荧光和Western-blot方法检测到经TAT—MafA融合蛋白作用12h后的IEC-6细胞中有该蛋白,并经细胞免疫荧光和RT—PCR的方法检测出TAT—MafA作用24h后的IEC-6细胞中有胰岛素的表达。因此,TAT—MafA融合蛋白可以高效进入小肠细胞系IEC-6细胞,并且进胞后仍保持MafA原有的生物学活性,能启动胰岛素基因的表达,诱导IEC-6成为胰岛素表达细胞。  相似文献   

11.
HIV-1 TAT蛋白转导肽的研究进展   总被引:3,自引:0,他引:3  
TAT蛋白转导肽是人类免疫缺陷病毒1型(human immunodeficiency virus type 1, HIV-1)编码的一段富含碱性氨基酸、带正电荷的多肽,属于蛋白转导域家族的一员。长期研究发现其全长及11个碱性氨基酸富集区的核心肽段(YGRKKRRQRRR)不仅能够在包括蛋白质、多肽及核酸等多种外源生物大分子的跨膜转导过程中具有重要作用,而且能够携带这些外源生物大分子通过活体细胞的各种生物膜性结构(如细胞膜和血脑屏障等)并发挥生理功能,但其跨膜转导机制仍不明确。新近研究还发现TAT核心肽段在促进外源蛋白高效表达过程中也具有重要作用,能够显著增加外源蛋白高效、可溶性表达的水平,显示了TAT蛋白转导肽的新功能。以TAT蛋白转导肽跨膜转导作用的长期研究背景为基础,分别从TAT蛋白转导肽的结构特点、其跨膜转导作用的影响因素及其作用机制等方面进行了系统综述,进一步结合TAT蛋白转导肽的最新研究进展分别从药物研发、机制探索及新功能的开发等方面展望了后续研究方向与应用价值,不仅为深入阐述TAT蛋白转导肽的跨膜转导作用的功能意义提供了参考依据,而且为TAT蛋白转导肽在微生物工程及蛋白质工程等领域的潜在应用价值提供了重要参考信息。  相似文献   

12.
Although some studies have shown that the cell penetrating peptide (CPP) TAT can enter a variety of cell lines with high efficiency, others have observed little or no transduction in vivo or in vitro under conditions mimicking the in vivo environment. The mechanisms underlying TAT‐mediated transduction have been investigated in cell lines, but not in primary brain cells. In this study we demonstrate that transduction of a green fluorescent protein (GFP)‐TAT fusion protein is dependent on glycosaminoglycan (GAG) expression in both the PC12 cell line and primary astrocytes. GFP‐TAT transduced PC12 cells and did so with even higher efficiency following NGF differentiation. In cultures of primary brain cells, TAT significantly enhanced GFP delivery into astrocytes grown under different conditions: (1) monocultures grown in serum‐containing medium; (2) monocultures grown in serum‐free medium; (3) cocultures with neurons in serum‐free medium. The efficiency of GFP‐TAT transduction was significantly higher in the monocultures than in the cocultures. The GFP‐TAT construct did not significantly enter neurons. Experimental modulation of GAG content correlated with alterations in TAT transduction in PC12 cells and astrocyte monocultures grown in the presence of serum. In addition, this correlation was predictive of TAT‐mediated transduction in astrocyte monocultures grown in serum free medium and in coculture. We conclude that culture conditions affect cellular GAG expression, which in turn dictates TAT‐mediated transduction efficiency, extending previous results from cell lines to primary cells. These results highlight the cell‐type and phenotype‐dependence of TAT‐mediated transduction, and underscore the necessity of controlling the phenotype of the target cell in future protein engineering efforts aimed at creating more efficacious CPPs. Biotechnol. Bioeng. 2009; 104: 10–19 © 2009 Wiley Periodicals, Inc.  相似文献   

13.
Lesch–Nyhan disease (LND) is a severe and incurable X-linked genetic syndrome caused by the deficiency of hypoxanthine–guanine phosphoribosyltransferase (HPRT), resulting in severe alterations of central nervous system, hyperuricemia and subsequent impaired renal functions. Therapeutic options consist in supportive care and treatments of complications, but the disease remains largely untreatable. Enzyme replacement of the malfunctioning cytosolic protein might represent a possible therapeutic approach for the LND treatment. Protein transduction domains, such as the TAT peptide derived from HIV TAT protein, have been used to transduce macromolecules into cells in vitro and in vivo. The present study was aimed to the generation of TAT peptide fused to human HPRT for cell transduction in enzyme deficient cells. Here we document the construction, expression and delivery of a functional HPRT enzyme into deficient cells by TAT transduction domain and by liposome mediated protein transfer. With this approach we demonstrate the correction of the enzymatic defect in HPRT deficient cells.  相似文献   

14.
15.
蛋白转导多肽本身或携带生物大分子能以一种不明机制的方式高效地穿过真核细胞质膜并且几乎没有组织选择性。这为生物药物研究、基因治疗等领域带来了新的希望。最近有研究表明:来源于HIV-1的TAT蛋白的蛋白转导结构域多肽可以显著地提高重组腺病毒感染细胞和实验动物的效率。在对。HeLa且和Vero-E62种具有不同病毒易感性的细胞进行重组腺病毒感染实验时发现TAT多肽可以明显地提高重组腺病毒对HeLa细胞的感染及在细胞中外源报道基因的表达,但是对Vero-E6细胞却没有效果,表明TAT多肽增强重组腺病毒的感染与靶细胞类型有关,而并不像转导现象那样没有组织差异。这为蛋白转导技术在病毒载体中的应用提供了参考,但其中涉及的蛋白转导的机制有待进一步实验研究。  相似文献   

16.
Delivery of macromolecules mediated by protein transduction domains (PTDs) attracts a lot of interest due to its therapeutic and biotechnological potential. A major reevaluation of the mechanism of PTD-mediated internalization and the role of endocytosis in this mechanism has been recently initiated. Here, we demonstrate that the entry of TAT peptide (one of the most widely used PTDs) into different primary cells is ATPand temperature-dependent, indicating the involvement of endocytosis. Specific inhibitors of clathrin-dependent endocytosis partially inhibit TAT peptide uptake, implicating this pathway in TAT peptide entry. In contrast, the caveolin-dependent pathway is not essential for the uptake of unconjugated TAT peptide as evidenced by the efficient internalization of TAT in the presence of the known inhibitors of raft/caveolin-dependent pathway and for cells lacking or deficient in caveolin-1 expression. Whereas a significant part of TAT peptide uptake involves heparan sulfate receptors, efficient internalization of peptide is observed even in their absence, indicating the involvement of other receptors. Our results suggest that unconjugated peptide might follow endocytic pathways different from those utilized by TAT peptide conjugated to different proteins.  相似文献   

17.
Transplantation of islets is becoming an established method for treating type 1 diabetes. However, viability of islets is greatly affected by necrosis/apoptosis induced by oxidative stress and other insults during isolation and subsequent in vitro culture. Expression of cytoprotective proteins, such as heme oxygenase-1 (HO-1), reduces the deleterious effects of oxidative stress in transplantable islets. We have generated a fusion protein composed of HO-1 and TAT protein transduction domain (TAT/PTD), an 11-aa cell penetrating peptide from the human immunodeficiency virus TAT protein. Transduction of TAT/PTD-HO-1 to insulin-producing cells protects against TNF-alpha-mediated cytotoxicity. TAT/PTD-HO-1 transduction to islets does not impair islet physiology, as assessed by reversion of chemically induced diabetes in immunodeficient mice. Finally, we report that transduction of HO-1 fusion protein into islets improves islet viability in culture. This approach might have a positive impact on the availability of islets for transplantation.  相似文献   

18.
Cellular uptake of the human immunodeficiency virus TAT protein transduction domain (PTD), or cell-penetrating peptide, has previously been surmised to occur in a manner dependent on the presence of heparan sulfate proteoglycans that are expressed ubiquitously on the cell surface. These acidic polysaccharides form a large pool of negative charge on the cell surface that TAT PTD binds avidly. Additionally, sulfated glycans have been proposed to aid in the interaction of TAT PTD and other arginine-rich PTDs with the cell membrane, perhaps aiding their translocation across the membrane. Surprisingly, however, TAT PTD-mediated induction of macropinocytosis and cellular transduction occurs in the absence of heparan sulfate and sialic acid. Using labeled TAT PTD peptides and fusion proteins, in addition to TAT PTD-Cre recombination-based phenotypic assays, we show that transduction occurs efficiently in mutant Chinese hamster ovary cell lines deficient in glycosaminoglycans and sialic acids. Similar results were obtained in cells where glycans were enzymatically removed. In contrast, enzymatic removal of proteins from the cell surface completely ablated TAT PTD-mediated transduction. Our findings support the hypothesis that acidic glycans form a pool of charge that TAT PTD binds on the cell surface, but this binding is independent of the PTD-mediated transduction mechanism and the induction of macropinocytotic uptake by TAT PTD.  相似文献   

19.
20.
Abscisic acid (ABA) and nitric oxide (NO) are both extremely important signalling molecules employed by plants to control many aspects of physiology. ABA has been extensively studied in the mechanisms which control stomatal movement as well as in seed dormancy and germination and plant development. The addition of either ABA or NO to plant cells is known to instigate the actions of many signal transduction components. Both may have an influence on the phosphorylation of proteins in cells mediated by effects on protein kinases and phosphatases, as well as recruiting a wide range of other signal transduction molecules to mediate the final effects. Both ABA and NO may also lead to the regulation of gene expression. However, it is becoming more apparent that NO may be acting downstream of ABA, with such action being mediated by reactive oxygen species such as hydrogen peroxide in some cases. However not all ABA responses require the action of NO. Here, examples of where ABA and NO have been put together into the same signal transduction pathways are discussed.  相似文献   

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