首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 171 毫秒
1.
本研究以野生型副溶血性弧菌(Vibrio parahaemolyticus)为免疫原制备单克隆抗体,并以组合胶体金纳米粒子(CP-AuNPs)为抗体标记探针,开发了一种基于双抗体夹心原理的可视化快速检测副溶血性弧菌的免疫层析试纸条方法。该方法被应用于梅子鱼、鲜虾、白蛤等海产品中副溶血性弧菌的检测,具有特异性强、检测时间短、灵敏度高的特点,其检测限可达4.77×103CFU/mL。结果表明该方法可作为海产品中副溶血性弧菌检测的一种有效、快速的诊断工具。  相似文献   

2.
周政 《生命科学》2009,(3):461-466
传统的核酸分析中常采用放射性元素、荧光色素以及酶标记等基因探针,这些探针都存在着一些不足之处。近年来,纳米金探针作为一种新型的基因探针,己引起了广泛的关注。该探针具有优良的光谱特征和光化学稳定性,对核酸的非特异吸附性小,与核酸等生物大分子结合后不改变生物分子的活性。将纳米金探针用于基因检测,具有操作简便、快速、安全、实验成本低等优点。本文就纳米金探针的发展过程、纳米金探针的制备、检测原理及其在基因分析中的应用等几个方面作了系统而全面地概述,同时介绍了纳米金探针的最新研究进展,并对其发展前景作了简要评述。  相似文献   

3.
银染增强的纳米金标记探针对微量核酸的检测   总被引:7,自引:3,他引:4  
本研究利用银染增强的纳米金技术建立了一种简单快速的核酸定量方法.该方法基于纳米金与烷巯基修饰的寡核苷酸分子共价键合作用,将纳米微粒报告基团标记在与靶核酸一端序列互补的寡核苷酸上,同时生物素化修饰另一端互补序列.靶核酸与两段寡核苷酸探针杂交后,借亲和素固定在酶标板孔内,通过纳米金催化的银染放大效应产生高灵敏的识别信号,适时记录其吸光度值从而实现核酸分子的定量.该检测方法检测单链核酸分子的灵敏度达0.1 fM,双链分子为10 fM.  相似文献   

4.
采用热压印光刻技术制备了一种多金属构成、带数字标识图形的悬浮微块,其中的镍层与金层可分别实现微块的磁控靶向与生物探针的联接。借助微块表面的数字微通孔标识符号,实现了微块的生物探针编码;用异硫氰酸荧光素荧光标记编码的悬浮微块,通过悬浮微块的多组分并行免疫荧光检测,实现了微块的生物探针解码及生物分子的定量检测。这种编码的地址数取决于微块表面的微通孔数,理论上可以成千上万。因此,表面经过生物探针修饰的悬浮微块是建立生物分子编码库的理想途径,可作为基于高通量悬浮阵列技术的免疫分析平台。  相似文献   

5.
寡核苷酸芯片技术是一种高通量发掘和采集生物信息的强大技术平台,目前已广泛应用于生物科学领域 . 为改善寡核苷酸芯片的分析性能,对影响芯片杂交结果的因素,如片基表面的化学处理、探针的长度、间隔臂的长度、杂交条件等,进行了深入的研究和优化 . 对寡核苷酸芯片而言,仍有待解决的问题是如何产生更强的荧光信号来改善其检测灵敏度 . 利用两种类型的多个荧光分子标记的引物,来增强二维寡核苷酸芯片平面上的荧光信号强度 . 两种引物分别命名为:多标记线性引物和多标记分支引物 . 通过增加标记在目标 DNA 片段上的荧光分子数,可以显著增强寡核苷酸芯片上相应捕获探针的信号强度 . 实验表明,使用多标记引物能将所用的寡核苷酸微阵列的检测限 ( 以能够检测的最低模板量计算 ) 降低至单荧光标记引物的 1/100 以下,多重标记技术是一种有效增强微型化探针矩阵检测灵敏度的信号放大方法 .  相似文献   

6.
利用生物条形码技术对蓝舌病毒VP7蛋白进行微量检测   总被引:1,自引:0,他引:1  
目的:建立高灵敏检测蓝舌病毒VP7蛋白的生物条形码检测方法。方法:制备VP7蛋白的多抗及特异DNA链标记的金纳米颗粒探针(NP)和VP7蛋白单抗标记的磁性微球探针(MMP),形成MMP-VP7蛋白-NP三明治复合物后,再利用去杂交将NP探针上标记的DNA链释放出来,通过PCR或芯片检测方法鉴定释放的DNA链,确定VP7蛋白的存在。结果:建立了蓝舌病毒VP7蛋白的生物条形码检测体系,检测灵敏度可达10fg/mL,为常规ELISA检测的106倍。结论:为发展高灵敏度的蓝舌病毒生物条形码检测试剂盒鉴定了基础。  相似文献   

7.
将纳米金探针应用于目的核酸的检测,具有与PCR相当的灵敏度和特异性.本研究建立了一种可以在微孔板上快速检测金黄色葡萄球菌的纳米金标记-逐步银染法.该方法利用已包被链霉亲和素的微孔板,将PCR扩增的金黄色葡萄球菌nuc基因与生物素探针、纳米金探针形成的三明治杂交结构锚定其上,然后在低温下逐步银染显色,通过酶标仪检测放大的银染信号.这种纳米金标记-逐步银染法可以在显著降低非特异性背景信号的同时放大银染信号,检测金黄色葡萄球菌nuc基因的灵敏度为1 pmol/L,比常温一步银染法的灵敏度提高约102倍. 51例临床标本的检测结果与PCR法一致,与培养生化鉴定法的检测结果之间无显著性差异(P >0.05). 综上所述,本研究成功构建了金黄色葡萄球菌的纳米金标记-逐步银染法,在病原微生物的快速检测领域表现出广阔的发展潜力.  相似文献   

8.
目的:设计对隐球菌荚膜特异性标记的靶向金纳米棒,研究靶向金纳米棒的体外光热作用对隐球菌活性的影响。方法晶种生长法制备金纳米棒,偶联隐球菌荚膜抗体,检测表征,与隐球菌体外孵育,近红外激光照射,检测隐球菌活性变化。结果成功制备与荚膜抗体偶联的金纳米棒,体外近红外照射后,隐球菌活性较未偶联抗体的金纳米棒组显著降低。结论靶向性金纳米棒显著增强了近红外激光对隐球菌的光热效应,可用于治疗隐球菌感染的新尝试。  相似文献   

9.
随着纳米技术的发展,运用纳米粒子检测核酸成为研究的热点.在众多检测方法中,基于纳米金的比色分析法操作较为简便,只需普通光学仪器甚至肉眼即可观察结果,从而表现出广阔的市场及临床应用前景.基于纳米金的比色分析法有多种,不同检测原理的方法在灵敏度和实用性上存在差异.根据纳米金是否经寡核苷酸探针修饰可将其分为基于功能化纳米金的比色分析法和基于未功能化纳米金的比色分析法,前者又分为利用纳米金颜色变化的聚集反应体系以及利用纳米金特殊氧化-还原能力的银染增强体系.  相似文献   

10.
建立了一种基于纳米金复合探针的基因芯片膜转印核酸检测新方法。首先,用纳米金颗粒同时标记检测探针P2和两种长短不同且生物素化的信号探针 (T10,T40),其中检测探针与靶DNA 5¢端互补,两种信号探针起信号放大作用。当靶DNA分子存在时,芯片表面捕捉探针P1 (与靶DNA分子3¢端互补) 通过碱基互补配对原则结合靶DNA分子,将其固定于芯片上,同时检测探针通过与靶DNA 5¢端互补配对将纳米金复合探针结合于芯片表面,结果在芯片表面形成“三明治”结构,后通过链霉亲和素-生物素反应,使芯片表面对应有靶DNA分子的部位结合上碱性磷酸酶,最后利用BCIP/NBT显色系统使芯片表面信号结果镜面转印至尼龙膜表面。当检测探针和信号探针摩尔比为1∶10,T10和T40摩尔比为9:1时可以检测1 pmol/L合成靶DNA分子或0.23 pmol/L结核分枝杆菌16S rDNA PCR扩增产物,检测结果通过普通的光学扫描仪读取或肉眼直接判读信号有无。本芯片检测系统灵敏度高,操作方法简单、快速,不需要特殊仪器设备,在生物分子的检测方面具有较高的应用价值。  相似文献   

11.
Kong XL  Qiao FY  Qi H  Li FR 《Biotechnology letters》2008,30(12):2071-2077
A novel method of one-step preparation of dual-labeled gold nanoparticle bio-probes was established by the electrostatic adsorption and the covalent bonding of gold nanoparticles with antibodies and thiol-modified oligonucleotides, respectively. Characterization of probes, the coverage and activity of antibodies and oligonucleotides on probe surfaces were detected. The results indicated that the gold nanoparticles labeled with antibodies and oligonucleotides possess good bioactivity and the coverage of oligonucleotide and antibody on a dual-labeled gold nanoparticle bio-probe was (92 ± 20) and (8 ± 3), respectively. The preparative method is simple and stable. The dual-labeled gold nanoparticle bio-probes have an application value in detection of ultramicro protein.  相似文献   

12.
Metallic nanoparticles of gold functionalized with oligonucleotides conventionally use a terminal thiol modification and have been used in a wide range of applications. Although readily available, the oligonucleotide–nanoparticle conjugates prepared in this way suffer from a lack of stability when exposed to a variety of small molecules or elevated temperatures. If silver is used in place of gold then this lack of stability is even more pronounced. In this study we report the synthesis of highly stabilized oligonucleotide–nanoparticle conjugates using a simple oligonucleotide modification. A modified solid support was used to generate 3′-thioctic acid modified oligonucleotides by treatment with an N-hydroxysuccimidyl ester of thioctic acid. Unusually, both gold and silver nanoparticles have been investigated in this study and show that these disulphide-modified oligonucleotide probes offer significant improvements in nanoparticle stability when treated with dithiothreitol (DTT) compared with monothiol analogues. This is a significant advance in oligonucleotide–nanoparticle conjugate stability and for the first time allows silver nanoparticles to be prepared that are more stable than standard gold-thiol functionalized nanoparticles. This opens up the possibility of using silver nanoparticles functionalized with oligonucleotides as an alternative to gold.  相似文献   

13.
The development of a nanoparticle-based detection methodology for sensitive and specific DNA-based diagnostic applications is described. The technology utilizes gold nanoparticles derivatized with thiol modified oligonucleotides that are designed to bind complementary DNA targets. A glass surface with arrays of immobilized oligonucleotide capture sequences is used to capture DNA targets, which are then detected via hybridization to the gold nanoparticle probes. Amplification with silver allows for detection and quantitation by measuring evanescent wave induced light scatter with low-cost optical detection systems. Compared to Cy3-based fluorescence, silver amplified gold nanoparticle probes provide for a approximately 1000-fold increase in sensitivity. Furthermore, direct detection of non-amplified genomic DNA from infectious agents is afforded through increased specificity and even identification of single nucleotide polymorphisms (SNP) in human genomic DNA appears feasible.  相似文献   

14.
A nanodiagnostic method using nucleic acid sequence-based amplification (NASBA) and gold nanoparticle probes (AuNP probes) was developed for colorimetric detection of Mycobacterium tuberculosis. The primers targeting 16S rRNA were used for the amplification of mycobacterial RNA by the isothermal NASBA process. The amplicons were hybridized with specific gold nanoparticle probes. The RNA–DNA hybrids were colorimetrically detected by the accumulation of gold nanoparticles. Using this method, 10 CFU ml?1 of M. tuberculosis was detected within less than 1 h. Results obtained from the clinical specimens showed 94.7% and 96% sensitivity and specificity, respectively. No interference was encountered in the amplification and detection of M. tuberculosis in the presence of non-target bacteria, confirming the specificity of the method.  相似文献   

15.
A new protocol for the covalent attachment of oligonucleotides to gold nanoparticles was developed. Base-modified nucleosides with thiooxo groups were acting as molecular surface anchor. Compared to already existing conjugation protocols, the new linker strategy simplifies the synthesis of DNA gold nanoparticle conjugates. The phosphoramidite of 7-deaza-6-thio-2'-deoxyguanosine (6) was used in solid-phase synthesis. Incorporation of the sulfur-containing nucleosides can be performed at any position of an oligonucleotide; even multiple incorporations are feasible, which will increase the binding stability of the corresponding oligonucleotides to the gold nanoparticles. Oligonucleotide strands immobilized at the end of a chain were easily accessible during hybridization leading to DNA gold nanoparticle network formation. On the contrary, oligonucleotides immobilized via a central position could not form a DNA-AuNP network. Melting studies of the DNA gold nanoparticle assemblies revealed sharp melting profiles with a very narrow melting transition.  相似文献   

16.
Here we report a real-time PCR-based method for determining the surface coverage of dithiol-capped oligonucleotides bound onto gold nanoparticles alone and in tandem with antibody. The detection of gold nanoparticle-bound DNA is accomplished by targeting the oligonucleotide with primer and probe binding sites, amplification of the oligonucleotide by PCR, and real-time measurement of the fluorescence emitted during the reaction. This method offers a wide dynamic range and is not dependant on the dissociation of the oligonucleotide strands from the gold nanoparticle surface; the fluorophore is not highly quenched by the gold nanoparticles in solution during fluorescence measurements. We show that this method and a fluorescence-based method give equivalent results for determining the surface coverage of oligonucleotides bound onto 13 or 30 nm gold nanoparticles alone and in tandem with antibody. Quantifying the surface coverage of immobilized oligonucleotides on metallic nanoparticle surfaces is important for optimizing the sensitivity of gold nanoparticle-based detection methods and for better understanding the interactions between thiol-functionalized oligonucleotides and gold nanoparticles.  相似文献   

17.
In the present study, we developed a highly sensitive and convenient biosensor consisting of gold nanoparticle(Au NP) probes and a gene chip to detect micro RNAs(mi RNAs). Specific oligonucleotides were attached to the glass surface as capture probes for the target mi RNAs, which were then detected via hybridization to the Au NP probes. The signal was amplified via the reduction of HAu Cl4 by H2O2. The use of a single Au NP probe detected 10 pmol L?1 of target mi RNA. The recovery rate for mi R-126 from fetal bovine serum was 81.5%–109.1%. The biosensor detection of mi R-126 in total RNA extracted from lung cancer tissues was consistent with the quantitative PCR(q PCR) results. The use of two Au NP probes further improved the detection sensitivity such that even 1 fmol L?1 of target mi R-125a-5p was detectable. This assay takes less than 1 h to complete and the results can be observed by the naked eye. The platform simultaneously detected lung cancer related mi R-126 and mi R-125a-5p. Therefore, this low cost, rapid, and convenient technology could be used for ultrasensitive and robust visual mi RNA detection.  相似文献   

18.
Grasserie, a polyorganotrophic disease caused by Bombyx mori nucleopolyhedrovirus (BmNPV), accounts for lethal infection to fifth instar silkworm larvae. It was found that nanoparticle (NP)-induced morphological transformation of BmNPV polyhedra could reduce the infectivity of BmNPV both in cell line and in silkworm larvae. Initially, 11 NPs were screened for evaluation of their nature of interaction with polyhedra surface through scanning electron microscopy. Amongst these NPs, lipophilically coated silica nanoparticle (SNPL), alumina nanoparticles in the hexagonal close-packed α structure and aspartate capped gold nanoparticle transformed polyhedra were tested for their infectivity in B. mori cell line using cytopathic effect and plaque reduction assay. SNPL was evaluated for its bio-efficacy in fifth instar silkworm larvae. The study of polyhedra morphology as a function of NP concentration showed severe ‘roughening’ of the polyhedra with replacement of the regular facets by a large number of irregular ones by SNPL, and this caused transition of highly infectious polyhedra into a nearly spherical, non-infectious structure. A moderate polyhedra roughening was observed for alumina NPs, and no roughening was noticed for gold NPs. The morphological changes could be correlated with reduction of virus-induced cytopathic effect and plaque formation, and increased survival rate of SNPL transformed polyhedra infected silkworm larvae to 70.09?±?6.61 % after 96 h. In this group, 61.04?±?8.03 % larvae formed normal cocoons from which moths eclosed, laid eggs and larvae emerged. This study could lead to open up newer pathways for designing nano pharmaceuticals to combat other viral diseases.  相似文献   

19.
A biogenic route was adopted towards the synthesis of gold nanoparticles using the extract of a novel strain, Talaromyces flavus. Reduction of chloroauric acid by the fungal extract resulted in the production of gold nanoparticle, which was further confirmed by the concordant results obtained from UV–visible spectroscopy, energy dispersive spectroscopy (EDS), and dynamic light scattering (DLS) analysis. Morphology and the crystal nature of the synthesized nanoparticles were characterized using transmission electron microscopy (TEM), X-ray diffraction (XRD) and selected area electron diffraction (SAED). A direct correlation was observed between nanoparticle formation and the concentration of reducing agent present in the fungal extract. The time-dependent kinetic study revealed that the bioreduction process follows an autocatalytic reaction. Crystalline, irregular, and mostly flower-shaped gold nanoparticles with a mean hydrodynamic radius of 38.54?±?10.34 nm were obtained. pH played a significant role on production of mono-dispersed nanoparticle. FTIR analysis partially deciphered the involvement of –NH2, ?SH, and –CO groups as the probable molecules in the bio-reduction and stabilization process. Compared to the conventional methods, a time-resolved, green, and economically viable method for floral-shaped nanoparticle synthesis was developed.  相似文献   

20.
The present study reported proof-of-principle for a genotyping assay approach that can detect single nucleotide polymorphisms (SNPs) through the gold nanoparticle assembly and the ligase reaction. By incorporating the high-fidelity DNA ligase (Tth DNA ligase) into the allele-specific ligation-based gold nanoparticle assembly, this assay provided a convenient yet powerful colorimetric detection that enabled a straightforward single-base discrimination without the need of precise temperature control. Additionally, the ligase reaction can be performed at a relatively high temperature, which offers the benefit for mitigating the non-specific assembly of gold nanoparticles induced by interfering DNA strands. The assay could be implemented via three steps: a hybridization reaction that allowed two gold nanoparticle-tagged probes to hybrid with the target DNA strand, a ligase reaction that generates the ligation between perfectly matched probes while no ligation occurred between mismatched ones and a thermal treatment at a relatively high temperature that discriminate the ligation of probes. When the reaction mixture was heated to denature the formed duplex, the purple color of the perfect-match solution would not revert to red, while the mismatch gave a red color as the assembled gold nanoparticles disparted. The present approach has been demonstrated with the identification of a single-base mutation in codon 12 of a K-ras oncogene that is of significant value for colorectal cancers diagnosis, and the wild-type and mutant type were successfully scored. To our knowledge, this was the first report concerning SNP detection based on the ligase reaction and the gold nanoparticle assembly. Owing to its ease of operation and high specificity, it was expected that the proposed procedure might hold great promise in practical clinical diagnosis of gene-mutant diseases.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号