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1.
目的2007年国内报道一例弱D型个体存在第4—9外显子选择性剪接的转录子,我们探讨正常Rh(D)阳性个体的RHD基因mRNA的选择性剪接区域。方法随机选择3名Rh(D)阳性个体,从新鲜全血中提取总RNA,通过特异性引物,采用“一步法”逆转录-PCR(1iT—PCR),扩增RHDmRNA第1~7外显子区域,以及第6-10外显子区域,然后cDNA琼脂糖凝胶电泳和成像分析。结果未发现第1~7外显子区域存在mRNA的选择性剪接条带,仅存在由特异性引物所扩增的第1—7外显子全长的序列条带;而第6~10外显子区域观察到5种替代剪切条带,序列分析显示分别为无缺失片段,以及完整缺失第7、第9、第7和9、第7—9外显子5种RHD转录子。结论正常Rh(D)抗原阳性个体的RHD基因mRNA的选择性剪接仅存在于第7~9外显子区域。  相似文献   

2.
鉴定9个新的RHD基因mRNA可变剪接体   总被引:1,自引:0,他引:1  
许先国  吴俊杰  洪小珍  朱发明  严力行 《遗传》2006,28(10):1213-1218
为了研究各种RHD基因mRNA可变剪接体的基因结构, 应用逆转录聚合酶链反应(RT-PCR)检测正常人脐血样本RHD mRNA, 对RHD cDNA进行TA克隆和序列分析, 对各可变剪接体的剪接位点进行DNA序列分析, 并将RHD mRNA进行表达序列标签(ESTs)分析。结果在28个阳性克隆中, 除全长RHD cDNA外, 共检测到12种(包括9种新的)RHD可变剪接体, 发现外显子遗漏、5′和3′剪接位点变异3种剪接形式, 涉及外显子2~9, 其中6种新的剪接体同时存在RHD和RHCE基因同源杂交现象。ESTs分析还检索到内含子保留形式的剪接体。研究表明, RHD基因mRNA存在复杂的可变剪接机制, 除已报道的剪接体外, 检测到9种新的RHD可变剪接体, 并发现了可变剪接和同源杂交并存现象。  相似文献   

3.
采用PCR及RT-PCR法分别克隆了拟南芥SDIR1基因的DNA和cDNA序列。根据序列比对分析结果,发现了3种不同的转录本,提示SDIR1基因的转录中存在选择性剪接。3种转录本的长度分别为822bp、691bp和666bp,依次命名为:SDIR1-822、SDIR1-691、SDIR1-666。与SDIR1基因的DNA序列及已报道的SDIR1cDNA序列比较,除转录本SDIR1-822包含了完整的编码序列外,其余2种转录本的编码序列都存在不同长度的缺失。其中,SDIR1-691缺失了131bp的片段:第2外显子3′端缺失33bp,第3外显子53bp全部缺失,第4外显子5′端缺失45bp;转录本SDIR1-666缺失了156bp的片段:第3外显子3′端缺失18bp,第4外显子5′端缺失138bp。进而随机挑取101个克隆子对三种转录本的表达比例进行初步分析,结果表明3种分子的比值为SDIR1-822:SDIR1-691:SDIR1-666=26.00:1.33:1.00,反映出SDIR1基因不同转录本在拟南芥中的相对表达量。  相似文献   

4.
河豚毒-抵抗性(TTX-R)Nav1.5 Na 通道是心肌的特异性Na 通道,虽然研究发现神经元中也存在河豚毒-抵抗性Na 电流及Nav1.5/SCN5A mRNA的表达,但其确切的cDNA序列尚不清楚.采用RT-PCR法对人脑组织Nav1.5/SCN5A基因cDNA进行克隆发现:人脑组织Nav1.5/SCN5A基因cDNA有2种变构体,hB1和hB2(accession number EF629346,EF629347),其中hB1全长6201个碱基,其开放读码框架(ORF)参与编码2016个氨基酸,和人心肌Nav1.5 Na 通道氨基酸序列相同率高达98%,共有28个不同的氨基酸,其中7个集中位于第6A外显子与第6外显子编码区.与人心肌Nav1.5/SCN5A基因cDNA不同的是,在对人脑组织Nav1.5/SCN5A基因cDNA的克隆中未发现该基因第18外显子的选择性剪接,但却发现其第24外显子的选择性剪接,2种选择性剪接体(hB1和hB2)在脑组织中基本同时表达,表达比率接近1∶1,但在心脏中二者的表达比率却与年龄有关.人Nav1.5/SCN5A基因的第24外显子定位于染色体3P21区,共有54个碱基,参与编码18个氨基酸.RT-PCR法证实第24外显子的选择性剪接也可发生在大鼠心脑之外的其他组织中,竞争性PCR法证明,不同组织中2种选择性剪接体的表达比率不同,且随着周龄的增加,2种选择性剪接体在各组织中表达的变化趋势不同.此外,RT-PCR法还发现Wistar大鼠全身16种组织中均可检测到Nav1.5/SCN5A mRNA的表达.上述实验结果说明,Nav1.5 Na 通道在全身组织中分布广泛,但编码人脑组织Nav1.5 Na 通道与心肌组织该离子通道的cDNA序列不同,是Nav1.5/SCN5A基因的2种变构体,这为深入研究不同组织中Nav1.5 Na 通道的功能提供了基础.  相似文献   

5.
冯姗  张耀洲 《昆虫学报》2006,49(5):726-732
锌带蛋白(zinc ribbon protein )是锌指类蛋白的一种,它的Cys4 Zn(2+)结合位点由3个β2片层折叠而成,而不是α螺旋结构。锌带结构与锌指结构同为转录因子结合核酸的结构域,锌带蛋白作为转录相关因子在调节基因表达活性等方面具有重要作用。在对家蚕 Bombyx mori蛹cDNA文库测序中,发现一个新的编码家蚕锌带蛋白基因的EST序列(GenBank 登录号DY230964),以此序列为信息探针检索家蚕EST数据库,通过同源筛选,获得一个新的家蚕锌带蛋白基因cDNA全序列并经RT-PCR检测和克隆、测序验证,结果表明与电子克隆序列完全一致。我们将其命名为 BmZNRD1 (Zinc Ribbon Domain Containing 1)(GenBank登录号DQ432055)。该基因全长为675 bp,由363 bp的开放阅读框序列(ORF)、10 bp的5′端非翻译区序列(5′UTR)和302 bp 的3′端非编码区序列(3′ UTR)组成,其编码的120个氨基酸序列与其他真核生物间具有较高的同源性(达60%左右),预测分子量为13.54 kD, 等电点为6.8。BmZNRD1编码的氨基酸序列是一种锌带蛋白,推测有2个功能结构域,分别是位于N-端的Cx2Cx14Cx2C和C-端的Cx2Cx24Cx2C,其中C-端保守氨基酸序列Cx2Cx6Yx3QxRSADEx2TxFx2Cx2C在生物进化中保守性很高,从酵母、果蝇、线虫到两栖类、哺乳类都有发现该结构域的存在,与酵母RNA聚合酶A亚单位9和转录相关蛋白有很高的相似性,推测其具有相同的功能。将BmZNRD1基因cDNA序列与家蚕基因组序列进行比对,结果表明该基因具有3个外显子,2个内含子,外显子/内含子边界符合经典的GT-AG规则。 关键词: 家蚕; 锌带蛋白基因; 电子克隆; 基因克隆; 序列分析  相似文献   

6.
人SDCT2基因的两种不同转录产物选择性转录机理分析   总被引:2,自引:0,他引:2  
为了克隆人高亲和力钠离子依赖性二羧酸转运蛋白 (highaffinitysodium dependentdicarboxylatetransporter,SDCT2 ,或NaDC3)基因并研究其生理功能 ,用大鼠SDCT2基因序列作为电子杂交探针对人EST数据库进行电子筛选 ,得到了一系列与大鼠SDCT2序列具有高度同源性的人EST序列 ,将它们拼接成 2个基因重叠群 ,设计特异性PCR引物通过RT PCR扩增得到 2条杂交探针用于筛选人肾cDNA文库 .从肾组织中同时克隆出了人SDCT2基因 2种mRNA变异体的全长cDNA(SDCT2α和SDCT2 β) ,两者 5′端前 3435bp序列完全一致 ,但 3′端长度不同 ,SDCT2 β在第 3435bp以后比SDCT2α多出了 5 85bp的序列 .Northern杂交和RT PCR显示 ,SDCT2α在人肾中的表达丰度最高 ,在肝、脾、胎盘、脑及结肠中也有低水平的表达 .而SDCT2 β主要在肾脏中表达 ,在脾也有低水平的表达 .基因组结构分析表明 ,虽然两种mRNAs均由 13个外显子组成 ,但是SDCT2α的第 13外显子含有 1个poly(A)加尾信号AATAAA ,而SDCT2 β的第 13外显子含有 2个poly(A)加尾信号 .这表明在肾脏和脾脏组织中 ,人SDCT2基因可能通过选择性使用位于第 13外显子不同位置的 2个poly(A)信号而转录出 2种不同长度的mRNA变异体 .  相似文献   

7.
目的分离犬MC2R基因cDNA5′末端,分析其启动区域特点。方法采用了RNA连接酶介导的RACE(RLM-RACE)技术分离了犬MC2R基因和局部序列比对工具(Basic Local Alignment Search Tool,BLAST)对CDS区进行了初步验证。结果新分离了犬MC2RcDNA的5′末端,并对其启动区序列作了初步分析。序列分析显示,该基因至少由两个外显子(exon1和exon2)组成,exon1和exon2的一部分编码5′非翻译区(5′-UTR),exon2其余的部分编码整个编码区。结论克隆了犬MC2R基因的5′末端,在其启动区发现了inr、SF-1、SP1、CRE、PPRE、AP-1等多个顺式作用元件,为犬MC2R表达调控研究奠定基础。  相似文献   

8.
家蝇卵黄蛋白基因编码的卵黄蛋白是家蝇胚胎发育的重要营养来源 .根据 3种家蝇卵黄蛋白cDNA保守序列设计引物 ,用PCR技术从家蝇基因组DNA中扩增到大小为 76 8bp的mdYP1基因的部分DNA片段 .经地高辛标记成特异性探针 ,从构建的家蝇基因组文库中筛选出一个阳性克隆 ,并从该克隆中分离到大小为 3991bp的mdYP1基因组基因 .序列分析显示 ,该基因组序列含有约1 6kb的 5′ 上游区和 1 0kb的 3′ 下游区 ,编码区由一个 6 1bp的内含子和大小分别为 2 2 2bp和10 2 8bp的 2个外显子组成 .5′ 上游区含有典型的CAAT TATA盒 .  相似文献   

9.
应用克隆的基因组序列作为同源臂 ,构建了小鼠 β 酪蛋白基因定位敲入打靶载体。短臂长 2 7kb ,包括小鼠 β 酪蛋白基因 5′端侧翼区、第 1外显子、第 1内含子、部分第 2外显子。长臂包括小鼠 β 酪蛋白基因部分第 2内含子、第 3~ 7外显子、第 3~ 6内含子、部分第 7内含子 ,长 3 4kb。人t PA突变体cDNA在第 2外显子中与小鼠 β 酪蛋白信号肽序列融合。正筛选标记neo放置在 β 酪蛋白基因第 2内含子中部 ,负筛选标记tk位于短臂外侧。ES细胞株TC 1在滋养层上培养扩增。处理ES细胞使其密度达到 2× 10 7个 /mL后 ,将 4 5 μg线性化的打靶载体DNA与 1mL细胞混匀后电击。转染的细胞在含G4 18和Gancyclovir的选择培养基中培养 ,7d后挑取 192个抗性克隆 ,扩增、提取基因组DNA ,EcoRⅠ酶切后 ,用打靶载体 5′端内侧探针进行Southern杂交 ,野生型出现 9 8kb ,而中靶的 β 酪蛋白基因由于敲入的人t PA突变体携带一个EcoRⅠ位点 ,中靶等位基因出现 6 6kb。从 78株ES细胞株中获得 1株发生正确同源重组的中靶ES细胞。  相似文献   

10.
牙鲆MHC-DAA结构及其等位基因多态性   总被引:2,自引:0,他引:2  
徐田军  陈松林 《遗传》2009,31(10):1020-1028
为了探讨牙鲆MHC-DAA等位基因的多态性, 根据牙鲆 (Paralichthys olivaceus) MHC-DAA的cDNA序列设计特异引物, 扩增内含子序列。牙鲆DAA基因由4个外显子和3个内含子组成, 与大西洋鲑 (Salmo salar) DAA基因结构相同, 在内含子2中存在一个高度多态的微卫星位点(GT)n。根据获得的MHC-DAA基因组序列设计特异性引物, 在45尾牙鲆中扩增了包括完整外显子2和内含子2的长度约670 bp的DNA片段, 克隆测序后共发现30个MHC-DAA等位基因, 各等位基因的频次及其各主型中亚型的数目都不均衡。在249 bp的外显子2序列中共有55个位点发生变异, 核苷酸多样性指数为0.0887, 编码的氨基酸序列中多态变异位点31个, 其中简约信息位点30个, 单变异位点1个。非同义替代与同义替代的比率在PBR(Peptide binding region)和非PBR结合区分别为3.30和2.43, 分析证明平衡选择是牙鲆存在众多DAA等位基因的发生机制。  相似文献   

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Until now, worldwide more than 80 different alleles producing weak D phenotypes have been identified. Here we identified rare RHD DVa alleles in Chinese individuals associated with weak expression of D antigen and an RHD phenotype resembling DVI. Multi-monoclonal anti-D antibodies were used to identify the RHD phenotyping for rare RHD DVa. RHD genotyping was used to confirm the presence of RHD exons and identify RHD, RHCE hybrids and exon deficiencies. Sanger sequencing was used to identify nucleotide polymorphisms in RHD exons. Pedigree analysis demonstrated RHD DVa allele alterations of 667 T>G, 676 G>C, 697 G>C, 712 G>A, 733 G>C, 744 C>T and 1227 G>A, which means the proband''s alleles were RHD DVa-3 [also called RHD-CE(5)-D] and 1227 G>A. The results also demonstrated RHD DVa and the original RHD Va allele without 1227 G>A. The study suggests that RHD phenotyping is a superior strategy for the molecular analysis of RHD variant in Chinese subjects, and for understanding related polymorphisms and mutations.  相似文献   

14.
We assessed the feasibility of fetal RHD and RHCE genotyping by analysis of DNA extracted from plasma samples of RhD-negative pregnant women using real-time PCR and primers and probes targeted toward RHD and RHCE genes. We analyzed 45 pregnant women in the 11th to 40th weeks of pregnancy and correlated the results with serological analysis of cord blood after delivery. Non-invasive prenatal fetal RHD exon 7, RHD exon 10, RHCE exon 2 (C allele), and RHCE exon 5 (E allele) genotyping analysis of maternal plasma samples was correctly performed in 45 out of 45 RhD-negative pregnant women delivering 24 RhD-, 17 RhC-, and 7 RhE-positive newborns. Detection of fetal RHD and the C and E alleles of RHCE gene from maternal plasma is highly accurate and enables implementation into clinical routine. We recommend performing fetal RHD and RHCE genotyping together with fetal sex determination in alloimmunized D-negative pregnancies at risk of hemolytic disease of the newborn. In case of D-negative fetus, amplification of another paternally inherited allele (SRY and/or RhC and/or RhE positivity) proves the presence of fetal DNA in maternal circulation.  相似文献   

15.
In the Caucasian population, the RH locus of RhD-positive individuals is composed of two homologous genes, RHD and RHCE, arranged in tandem but of a single gene, RHCE, in RhD-negative individuals. Many variants recently characterized carry rearranged RH genes, most often by an unidirectional segmental DNA-exchange (gene-conversion) event. In D(VI) variants of type II, RHD is a D-CE-D hybrid gene in which the DNA fragment carrying exons 4-6 has been replaced by the corresponding sequences from the RHCE gene. To identify precisely and characterize the two transition sites, we have studied, by both PCR and sequence analysis, a genomic region between the 3' end of intron 3 and exon 7 in normal RHCE and RHD genes as well as in D(VI) DNA. We show that the D-CE breakpoint is located in intron 3, within a 250-bp fragment comprising an Alu S sequence, and that the CE-D breakpoint lies within a 39-bp fragment in intron 6. This Alu S sequence (and the 100-bp region immediately downstream) most likely defines a recombination hot spot, since there lies also the 5' breakpoint of different rearrangement events leading to D-CE and CE-D transitions in hybrid D(VI),DFR and Dc-,R(N) gene complexes, respectively.  相似文献   

16.
The human Rhesus (Rh) blood group locus is composed of two highly homologous genes, the RHD and RHCE genes on chromosome 1, encoding the D, C/c, and E/e antigens in common Rh-positive phenotypes. In general, the RHD gene is either absent or grossly deleted in Rh-negative individuals. In this study, gene organization at the RH locus of Japanese donors with different serological phenotypes was directly analyzed by two-color fluorescence in situ hybridization on DNA fibers released from their lymphocytes (fiber-FISH) and by using DNA probes of introns 3 and 7 of the RHCE and RHD genes. Six Rh-positive samples (two with the D+C-c+E+e-, two with the D+C+c-E-e+, and two with the D+C+c+E+e+ phenotype) showed the presence of two RH genes within a region of less than 200 kb on chromosome 1p36.1. Of great interest was the finding that the genes were arranged in the antidromic order of the telomere -RHCE (5'--> 3') -RHD (3'-->5') - centromere. On the other hand, two typical Rh-negative samples (D-C-c+E+e+) showed the presence of only one RHCE gene, as expected. Moreover, further analysis combined with a locus-specific assay of three Rh-negative samples (D-C+c+E+e+, D-C+c+E-e+, and D-C+c-E-e+) showed the possible presence of the RHD gene(s) and complex rearrangements, including partial deletion, duplication, and recombination, in this region; these could be responsible for the Rh-negative phenotype.  相似文献   

17.
Hemolytic disease of the newborn is a clinical condition in which maternal and paternal Rh blood group antigens are incompatible and the mother is negative for the antigen whereas the father is positive. Analysis of fetal cells recovered from maternal plasma can provide a highly sensitive prenatal diagnosis. The fetal RHD gene in plasma DNA is detected by real-time PCR amplification of two different segments of the RHD gene (exons 7 and 10). Each amplicon is revealed with specific probes. We examined 40 female blood samples to verify the specificity of RHD exons (7 and 10) amplified by real-time PCR. Thirty fetuses were predicted to be RHD-positive based on analysis of plasma DNA. Seven fetuses were predicted to be RHD-negative. One fetus was negative for RHD on exon 10, and positive for RHD on exon 7 (early gestation age); two fetuses were RHD-negative on exon 7, and RHD-positive on exon 10 (RHD-CE-D(s) or RHDΨ), indicative of a maternal RHD allele. We conclude that it is necessary to analyze at least two exon regions in the RHD gene.  相似文献   

18.
We have studied the arrangement of Rh (rhesus) genes in donors who are completely null for the products of one of them, RHCE. We show that five of six homozygous individuals with the so-called Rh D-- phenotype, who express no red-cell antigens of the C/c and E/e series, have rearranged RHCE genes in which internal sequences have been replaced by the corresponding sequences from RHD. Moreover, although there is heterogeneity at the 3' end, the 5' boundary of this chimerism is within the same small interval around exon 2. This interval is characterized by an exceptionally high degree of sequence homology between RHCE and RHD, a high density of dispersed repetitive elements, and the presence of an alternating purine-pyrimidine copolymer tract. We suggest that these features may explain the mechanistic basis for the origin of the rearrangement.  相似文献   

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