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1.
肽核酸是人工合成的寡核苷酸类似物,以N-(2-氨乙基)甘氨酸结构单元替代DNA分子中的戊糖-磷酸结构。与天然核酸相比,肽核酸可以更高效地与DNA或RNA特异性杂交,在分子生物学和基因药物领域具有良好的应用前景。但是,肽核酸骨架呈电中性,难以高效穿过细胞膜,这成为工程应用的最大障碍。为了改善肽核酸的细胞转运性能,对肽核酸进行化学修饰是近年来的研究热点。结合近十年来文献报道和本实验室的工作,对肽核酸的骨架修饰和配合物结合修饰两类增强细胞转运的修饰方法进行综述,并对修饰性肽核酸细胞转运研究中存在的问题以及未来的研究趋势及其应用提出了见解。  相似文献   

2.
肽核酸(peptide nucleic acid,PNA)是一类DNA结构类似物,能与DNA和RNA特异性杂交。它通过与DNA结合而抑制基因转录,通过与mRNA结合而阻止蛋白质的合成;同时,PNA不易被核酸酶和蛋白酶降解,所有这些显示出其作为反基因药物和反义药物的良好应用前景。  相似文献   

3.
肽核酸是一种寡核苷酸的类似物,它是由丹麦哥本哈根大学的Nielsen、Egholm等人首先发明合成的。肽核酸与传统的寡核苷酸相比,骨架结构发生了根要变化。肽核酸的电中性骨架有许多DNA所不具备的性质,例舅高灵敏度、高特异性、非盐依赖性等,从而使它成为一种优良的寡核苷酸的取代物,尤其是杂交检测领域。  相似文献   

4.
肽核酸(peptide nucleic acid,PNA)是一种人工合成DNA分子类似物,其与DNA分子结构的主要区别在于N-(2-氨基乙基)甘氨酸骨架代替糖-磷酸酯骨架作为重复结构单元。基于此分子结构,使得肽核酸具有独特的理化性质及众多的生物学功能。越来越多的研究表明,肽核酸以Waston-Crick碱基配对方式与肿瘤突变的序列特异性结合,从而调节突变基因的复制、转录及翻译过程,从基因水平上治疗肿瘤。肽核酸作为肿瘤基因治疗的重要介质,在抗肿瘤治疗中起着重要的作用。本文就肽核酸的理化性质及其生物学功能进行综述,重点阐述其在抗肿瘤作用机制方面的研究进展。  相似文献   

5.
肽核酸探针在微生物诊断领域的应用进展   总被引:2,自引:0,他引:2  
肽核酸(Polyamide nucleic acid,PNA)是以中性酰胺键为骨架的脱氧核糖核酸(DNA)结构类似物,它可以特异性地与DNA杂交,且具有极高的生物稳定性.相比较传统的DNA探针技术,肽核酸探针以其特殊的结构和性质在食品、环境及临床等微生物快速诊断领域显示出独特的优势.就肽核酸探针在微生物诊断方面的应用进展做简要综述.  相似文献   

6.
肽核酸(PNA)是以多肽为骨架的氧核糖核酸的模拟物,生物稳定性极高,不易被核酸酶,多肽酶及蛋白酶降解。PNA能特异性、高亲和力珠与单、双股DNA和RNA结合,形成用途广泛的二聚体和三聚体PNA独特的化学,生物学性质,使其日益广泛应用于反义和反基因,临床和遗传学诊断及抗肿瘤药物等方面。本文就近年来肽核酸性质和应用上的研究和一简要综述。  相似文献   

7.
肽核酸对基因调节作用的研究进展   总被引:1,自引:0,他引:1  
肽核酸(PNA)是一类人工合成的核酸类似物,PNA与核酸链以Waston-Crick碱基配对方式稳定互补结合,具有高度的亲合性、稳定性、特异性特征,PNA能调节基因的复制、转录(或逆转录)和翻译过程,有着广泛的分子生物学效应,显示出其作为基因调节药物的应用潜力。  相似文献   

8.
费一楠  张飞雄 《遗传》2006,28(5):623-630
肽核酸(PNA)是具有类多肽骨架的DNA类似物,PNA的主链骨架是由N(2-氨基乙基)-甘氨酸与核酸碱基通过亚甲基羰基连接而成的。PNA可以特异性地与DNA或RNA杂交,形成稳定的复合体。PNA由于其自身的特点可以对DNA复制、基因转录、翻译等进行有针对的调控,同时作为杂交探针大大提高了遗传学检测和医疗诊断的效率和灵敏度。肽核酸(PNA)特异性地识别和结合互补核酸序列被引进用于医学和生物学的研究,展示了其独特的生化属性,成为了基因奥秘的探索者。  相似文献   

9.
肽核酸量类NDA结构类似物,是有效的反义/抗基因靶向性制剂,不被核酸酶、蛋白酶及肽酶等降解,与DNA/RNA形成的杂交体非常稳定,在抗病原体、抗肿瘤和分子杂交、PCR反应、基因分离等分子生物学领域显示出强大的应用潜力。  相似文献   

10.
何冬梅 《生命科学》1999,11(3):107-110
肽核酸是以肽为骨架的一种新型DNA模拟物。已经证明肽核酸具有与DNA和RNA结合的高度亲合性、良好的稳定性及能方便地固相合成等特性。在反义技术和基因治疗中有着很好的前景。本文综述了肽核酸的生物化学特性及其在反义技术方面的应用。  相似文献   

11.
PNA technology     
Peptide nucleic acids (PNA) are deoxyribonucleic acid (DNA) mimics with a pseudopeptide backbone. PNA is an extremely good structural mimic of DNA (or of ribonucleic acid [RNA]), and PNA oligomers are able to form very stable duplex structures with Watson-Crick complementary DNA and RNA (or PNA) oligomers, and they can also bind to targets in duplex DNA by helix invasion. Therefore, these molecules are of interest in many areas of chemistry, biology, and medicine, including drug discovery, genetic diagnostics, molecular recognition, and the origin of life. Recent progress in studies of PNA properties and applications is reviewed.  相似文献   

12.
The uncharged DNA-analogue peptide nucleic acid (PNA) can invade into dsDNA by displacing the non-complementary DNA strand. The formed strand displacement complexes can create a sterical hindrance to block access of enzymes such as nucleases and polymerases. Due to the high stability of DNA.PNA duplexes it is usually not possible to displace the PNA strand by ssDNA or ssRNA. We herein report that the polycationic, comb-type copolymer alphaPLL-g-Dex can induce such a replacement of PNA in DNA.PNA duplexes by ssDNA. The influence of the copolymer on strand exchange highly depends on the nature of the oligonucleotides. Acceleration has only been observed when both the starting duplex and the single-stranded exchanger strand were negatively charged. The presented approach should allow the withdrawal of PNA induced sterical hindrance of DNA by rehybridisation with ssDNA.  相似文献   

13.
肽核酸的分子生物学效应及应用   总被引:2,自引:0,他引:2  
肽核酸(PNA)是一类以酰胺键连接骨架替代核酸中核糖磷酸二酯键骨架构成的核酸类似物,其中N-乙基甘氨酸骨架PNA与核酸链以Waston-Crick碱基配对形式稳定互补结合,具有广泛生物学效应,包括调节DNA识别蛋白质的功能以及调节转录和翻译.在分子生物学研究中PNA作为新的工具在多方面得到应用.除它的DNA(RNA)结合特性外PNA在生物稳定性、细胞摄取、结构修饰多方面的研究进展显示出作为基因调节药物具有良好前景.  相似文献   

14.
Adsorption behavior of peptide nucleic acid (PNA) and DNA decamers (GTAGATCACT and the complementary sequence) on a mercury surface was studied by means of AC impedance measurements at a hanging mercury drop electrode. The nucleic acid was first attached to the electrode by adsorption from a 5-microliter drop of PNA (or DNA) solution, and the electrode with the adsorbed nucleic acid layer was then washed and immersed in the blank background electrolyte where the differential capacity C of the electrode double layer was measured as a function of the applied potential E. It was found that the adsorption behavior of the PNA with an electrically neutral backbone differs greatly from that of the DNA (with a negatively charged backbone), whereas the DNA-PNA hybrid shows intermediate behavior. At higher surface coverage PNA molecules associate at the surface, and the minimum value of C is shifted to negative potentials because of intermolecular interactions of PNA at the surface. Prolonged exposure of PNA to highly negative potentials does not result in PNA desorption, whereas almost all of the DNA is removed from the surface at these potentials. Adsorption of PNA decreases with increasing NaCl concentration in the range from 0 to 50 mM NaCl, in contrast to DNA, the adsorption of which increases under the same conditions.  相似文献   

15.
Summary In this chapter, we describe an approach using a peptide nucleic acid (PNA) clamp to directly and irreversibly modify plasmid DNA, without affecting either its supercoiled conformation or its ability to be efficiently transcribed. This strategy enables investigators to functionalize their gene of interest by direct coupling of ligands (fluorophores, peptide, proteins, sugars or oligonucleotides) to plasmid DNA. This approach provides versatile tools to study the mechanisms of gene delivery and to circumvent some of the main obstacles of synthetic gene delivery systems, such as specific targeting and efficient delivery. The proof-of-principal of PNA-dependent gene chemistry (PDGC) was demonstrated with a fluorescently labeled PNA that allowed generation of a highly fluorescent preparation of plasmid DNA that was functionally and conformationally intact. Fluorescent-PNA/DNA was used to identify critical parameters involved in naked DNA and non-viral gene delivery technology. The greatest potential of PDGC lies in the ability to attach specific ligands (e.g., peptides, proteins) to the plasmid DNA in order to overcome cellular barriers of non-viral gene delivery systems. In this regard, specific examples of ligands coupled to DNA are described and their effect on increasing the efficacy of gene therapy is presented  相似文献   

16.
17.
18.
Lipid-mediated delivery of peptide nucleic acids to pulmonary endothelium   总被引:1,自引:0,他引:1  
Peptide nucleic acid (PNA) is a DNA/RNA mimic in which the phosphodiester (PO) linkage is replaced with a peptide bond. It has a number of unique properties compared to currently used oligonucleotides including higher affinity towards RNA or DNA target, resistance to nucleases or proteases, and minimal non-specific interactions with proteins. Clinical applications of PNA, however, are limited by its inefficient intracellular delivery. In this study, we have shown that delivery of PNA to pulmonary endothelium in intact mice can be greatly improved via hybridization with a short PO oligonucleotide that serves as a carrier to form complexes with cationic liposomes. We have also shown for the first time that unlike a CpG DNA oligo that is highly proinflammatory, a CG-containing PNA is inert in triggering TNF-alpha response in cultured macrophages and in mice. Thus delivery of PNA to pulmonary endothelium may prove to be a therapeutically useful for the treatment of pulmonary vascular diseases.  相似文献   

19.
Invasion of two PNA strands to double-stranded DNA is one of the most promising methods to recognize a predetermined site in double-stranded DNA (PNA = peptide nucleic acid). In order to facilitate this 'double-duplex invasion', a new type of PNA was prepared by using chiral PNA monomers in which a nucleobase was bound to the alpha-nitrogen of N-(2-aminoethyl)-d-lysine. These positively charged monomer units, introduced to defined positions in Nielsen's PNAs (poly[N-(2-aminoethyl)glycine] derivatives), promoted the invasion without impairing mismatch-recognizing activity. When pseudo-complementary nucleobases 2,6-diaminopurine and 2-thiouracil were bound to N-(2-aminoethyl)-d-lysine, the invasion successfully occurred even at highly G-C-rich regions [e.g. (G/C)7(A/T)3 and (G/C)8(A/T)2] which were otherwise hardly targeted. Thus, the scope of sequences available as the target site has been greatly expanded. In contrast with the promotion by the chiral PNA monomers derived from N-(2-aminoethyl)-d-lysine, their l-isomers hardly invaded, showing crucial importance of the d-chirality. The promotion of double-duplex invasion by the chiral (d) PNA monomer units was ascribed to both destabilization of PNA/PNA duplex and stabilization of PNA/DNA duplexes.  相似文献   

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