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1.
BPOZ是在卵巢癌等肿瘤组织中表达下调的细胞生长抑制基因,建立BPOZ基因剔除小鼠模型,可以为在体研究BPOZ基因的生物学功能及其与肿瘤发生的关系创造条件.运用生物信息学手段确定小鼠BPOZ基因组序列,设计基因剔除策略,构建完成了基因剔除载体XpPNT-BPOZ.以电穿孔方法将基因剔除载体导入ES细胞,用G418和Ganciclovoir进行正负筛选,获得抵抗克隆,PCR和DNA印迹鉴定出正确同源重组的ES细胞克隆.将同源重组的ES细胞注入小鼠囊胚,获得嵌合体小鼠.嵌合体小鼠与C57BL/6J小鼠交配后获得Aguoti毛色的小鼠30只,其中15只为BPOZ基因剔除杂合子小鼠,阳性率为50%.在雌雄杂合子交配的后代中获得纯合子小鼠.初步的表型观察发现BPOZ基因剔除小鼠发育正常,有繁殖能力,进一步的表型分析工作正在进行之中.  相似文献   

2.
建立几丁质酶结构域内含蛋白1(chitinase domain containing 1,Chid1)基因剔除小鼠,观察小鼠表型和发育差异。设计了合适的基因剔除策略,成功构建了基因剔除打靶载体。以电穿孔方法将打靶载体导入ES细胞(embryonic stem cell),用G418和Ganciclovoir进行正负筛选,挑选抗药的阳性克隆,提取ES细胞基因组DNA,用长臂PCR鉴定出阳性ES细胞。将阳性ES细胞复苏培养后注入小鼠囊胚,获得嵌合体小鼠。嵌合体小鼠与C57BL/6J小鼠交配后获得Aguoti毛色的杂合子小鼠。在雌雄杂合子交配的后代中获得纯合子小鼠。从脑、脾脏、肝、肺的RNA水平鉴定来看,基因剔除小鼠的Chid1基因未表达,而杂合子、野生型小鼠有明显的该基因条带。经过初步的表型观察发现,Chid1基因剔除小鼠发育正常,未出现胚胎致死,交配繁殖能力无异常。几丁质酶结构域内含蛋白1(Chid1)基因剔除小鼠模型建立成功。Child1基因对于小鼠发育、生殖方面无明显作用。  相似文献   

3.
目的 为观察线粒体钾通道在缺血再灌注(I/R)心肌损伤中的作用,探讨其和心衰的关系,制备基因敲除小鼠模型以探讨钾通道单分子作用.方法 用BAC载体制备同源重组载体,对129小鼠胚胎干细胞(ES)打靶筛选后,显微注射至C57 BL/6J小鼠囊胚获得嵌合小鼠.经尾基因组DNA PCR鉴定和测序,鉴别杂合子小鼠.结果 在40只灰色小鼠中初步鉴定出Kcna3+/-基因型F1小鼠8只.结论 在国内首先用ES同源重组基因打靶方法,成功育成Kcna3基因敲除鼠杂合子,为下一步获得纯合子鼠奠定了基础.对进一步用钾离子通道病模型研究心肌保护病理生理机制和药物筛选具重要意义.  相似文献   

4.
目的:构建低钾型周期性麻痹相关的Cchl1a3基因R528H敲入小鼠模型。方法将 Cchl1a3-knock-in打靶载体电转染ES细胞,经过G418和Ganciclovoir筛选阳性ES细胞克隆并用PCR和DNA测序法鉴定。将阳性ES克隆注射到小鼠囊胚,获得嵌合体小鼠。通过杂交获得的杂合子小鼠与FLP小鼠交配繁育获得去neo杂合子小鼠,并用PCR和DNA测序进行鉴定。将去neo杂合子小鼠交配得到纯合子后代,进行生长发育等方面的观察。结果打靶载体成功转染ES细胞,PCR和DNA测序法证实9个ES细胞克隆发生正确的同源重组。通过显微注射获得7只嵌合体小鼠。将嵌合体小鼠交配繁育的杂合子小鼠和FLP小鼠交配获得9只去neo杂合子小鼠,最终得到15只去neo纯合子小鼠。该小鼠在发育至性成熟阶段,精神、饮食及活动状态良好,但是在4个月龄时逐渐出现脱毛,皮肤破溃甚至死亡。结论成功构建Cchl1a3基因 R528H 突变的纯合子小鼠,为研究人类CACNA1S基因功能和阐明低钾型周期性麻痹发生的分子机制奠定了基础。  相似文献   

5.
常规基因剔除小鼠的获得主要是利用ES细胞的全能性先获得嵌合体小鼠,再利用:ES细胞的生殖系传递能力,通过嵌合体与野生型小鼠的交配获得杂合子小鼠.而四倍体补偿技术则可绕过嵌合体小鼠阶段,直接获得基因修饰杂合子小鼠.利用电融合技术和Piezoelectric microinjecfion显微注射技术建立了四倍体补偿技术,小鼠四倍体胚胎的获得率(电融合率)为(93.01±l.37)%,经体外培养囊胚形成率为(82.49±2.08)%.通过显微注射方法将2种129品系小鼠来源的ES细胞(CJ7和SCR012)注射到四倍体囊胚腔中,获得了完全ES细胞来源的小鼠,ES鼠的获得率分别为2.7%和8.3%.经微卫星DNA检测,成体小鼠的10个被检测组织均为129小鼠来源的.同时,也利用基因修饰的ES细胞进行了研究,获得了2种基因修饰的完全ES细胞来源的杂合子小鼠,部分小鼠具有繁殖能力,经繁育已获得了纯合子,其中凝血因子Ⅷ基因敲除小鼠获得了预期的血友病小鼠表型.上述结果说明四倍体补偿技术可应用于基因修饰小鼠的制备.  相似文献   

6.
目的:运用Cre/Loxp重组酶系统构建肝脏特异性CD36基因敲除小鼠并进行鉴定和验证,为研究CD36的生物学功能奠定基础。方法:构建CD36打靶载体,电转转染胚胎干细胞,通过长链PCR筛选出正确同源重组的阳性克隆,阳性胚胎干细胞克隆经扩增后,注射入C57BL/6J小鼠的囊胚中,获得嵌合小鼠,再与Flp小鼠交配筛选获得Flox杂合子小鼠,该小鼠与引进的Alb-Cre小鼠交配,在F3代获得CD36fl/fl:Alb-Cre+基因型小鼠,即为肝脏特异性CD36敲除小鼠。采用PCR鉴定小鼠基因型,PCR、实时荧光定量PCR和Western blot验证小鼠肝脏CD36敲除效果,Western blot检测小鼠肾脏、脂肪和心肌组织CD36表达情况,HE染色观察小鼠肝脏形态学改变。结果:建立了CD36基因的Flox杂合子小鼠,与Alb-Cre小鼠交配后,在F3代筛选出CD36fl/fl:AlbCre-和CD36fl/fl:Alb-Cre+基因型小鼠,DNA水平证实CD36fl/fl:Alb-Cre+基因型小鼠肝脏CD36基因通过Cre/Loxp重组酶系统被敲除。与CD36fl/fl:Alb-Cre-基因型小鼠相比,CD36fl/fl:Alb-Cre+基因型小鼠肝脏CD36mRNA和蛋白表达水平显著降低,肾脏、脂肪和心肌组织CD36蛋白表达无差别,肝脏形态学特征无明显差异。结论:通过Cre/Loxp重组酶系统成功构建了肝脏特异性CD36基因敲除小鼠,为研究CD36在肝脏代谢和肝脏疾病中的功能提供了动物模型。  相似文献   

7.
骨质疏松以及动脉钙化均是危害极大的临床常见病变,骨保护素(OPG)可能是联系两者的分子之一.构建替换型载体pXpPNT-OPG,利用同源重组,将编码前3个蛋白质结构域的小鼠Opg基因组第二外显子序列剔除掉.通过胚胎干细胞(ES)基因打靶获得了正确重组的ES细胞克隆,ES细胞显微注射后获得嵌合体小鼠,交配传代获得杂合子和纯合子小鼠.RT-PCR和蛋白质印迹实验结果显示,纯合子小鼠没有Opg基因的表达.纯合子小鼠骨量丢失明显,骨生物力学指标明显下降,发生严重的骨质疏松,此外,还有50%以上的纯合子小鼠在早期出现动脉中层钙化.小鼠破骨功能亢进,与此同时,成熟成骨细胞数量增加,矿化功能强于野生型.Opg基因缺失小鼠骨中钙和磷大量流失,而血清中水平没有变化,这提示钙磷代谢异常不是OPG缺失导致动脉钙化的原因.对建立的Opg基因敲除小鼠模型进一步深入的研究,将有助于说明动脉钙化和骨质疏松症相互联系的分子机制,为防治骨质疏松症和动脉钙化的并发提供理论基础支持.  相似文献   

8.
adiponectin是脂肪细胞特异分泌的一种活性蛋白质,具有增加胰岛素敏感性、抗炎及抗动脉硬化等活性.建立adiponectin基因剔除β-半乳糖苷酶基因(LacZ)敲入小鼠模型,可为整体动物水平研究adiponectin基因功能及其表达调控机制等提供理想工具.根据生物信息学方法获得adiponectin基因组序列,设计基因剔除及敲入策略,在adiponectin基因第2和第3号外显子剔除的同时,在其ATG和信号肽序列后顺接LacZ基因完整编码序列,构建完成了Adipo-LacZ-XpPNT基因剔除质粒.通过电穿孔将打靶质粒转入ES细胞,以G418和ganciclovir进行药物筛选,获得药物抗性的ES细胞克隆,PCR和DNA印迹鉴定出正确同源重组克隆.将同源重组的ES细胞克隆注入小鼠囊胚得到嵌合体小鼠,嵌合体小鼠与C57BL/6J小鼠交配产生杂合子小鼠,杂合子间交配获得adiponectin基因剔除LacZ基因敲入纯合子小鼠.经RT-PCR、RNA印迹和ELISA检测证实纯合子小鼠脂肪和血清中adiponectin基因表达呈阴性.RT-PCR、RNA印迹及蛋白质印迹检测发现,LacZ基因在突变小鼠脂肪组织中有特异性表达,其表达谱与内源性adiponectin基因的表达谱一致.但在脂肪组织及外周血中未能检测到LacZ活性,且血清中LacZ蛋白亦呈阴性.由此成功建立了adiponectin基因完全灭活及LacZ基因以内源性adiponectin基因表达谱表达的小鼠模型,为进一步研究该基因功能及其表达调控创造了有利条件.  相似文献   

9.
Smad3基因剔除小鼠的繁殖与基因型鉴定   总被引:5,自引:1,他引:4  
目的为进一步深入研究Smad3基因在脊椎动物发育中的重要作用,对Smad3基因剔除小鼠进行保种和繁育研究.方法采用基因剔除杂合子小鼠进行保种,通过PCR和Southern杂交对杂合子小鼠交配所产生的后代进行基因型鉴定,纯合子小鼠和野生型小鼠用于表型分析,杂合子小鼠用于留种和繁殖生产.结果采用PCR方法对278只子代小鼠进行了基因型鉴定,83只为野生型,133只为杂合子,62只为纯合子.结论Smad3基因剔除突变能稳定遗传.采用杂合子小鼠保种,子代小鼠三种基因型比例符合孟德尔遗传定律.  相似文献   

10.
目的探讨Muc2和DCN基因敲除小鼠繁殖能力和食子现象的异同。方法分别将Muc2和DCN基因敲除纯合子雌雄小鼠按1∶1或1∶2的合笼,观察1~3胎产仔量、胎次间隔时间、出生存活率和食子现象。结果Muc2基因敲除小鼠平均产子量5.80±0.95只,平均胎次间隔时间(42.29±2.28)d;DCN基因敲除小鼠平均产子量3.85±0.76只,平均胎次间隔时间(24.86±10.42)d。Muc2和DCN基因敲除小鼠在产仔量、胎次间隔时间、出生存活率和食子率差异均存在显著性。结论两组基因敲除小鼠繁殖性能有差异,揭示可能与Muc2和DCN基因有关。  相似文献   

11.
C57BL/6 is a well-characterized mouse strain that is used extensively for immunological and neurological research. The establishment of C57BL/6 ES cell lines has facilitated the study of gene-altered mice in a pure genetic background-however, relatively few such lines exist. Using a defined media supplement, knockout serum replacement (KSR) with knockout DMEM (KSR-KDMEM), we find that we can readily establish ES cell lines from blastocysts of C57BL/6J mice. Six lines were established, all of which were karyotypically normal and could be maintained in the undifferentiated state on mouse embryonic fibroblast (MEF) feeders. One line was further tested and found to be karyotypically stable and germline competent, both prior to manipulation and after gene targeting. For this cell line, efficiencies of cell cloning and chimera generation were greater when maintained in KSR-KDMEM. Our work suggests that the use of defined serum-free media may facilitate the generation of ES cells from inbred mouse strains.  相似文献   

12.
目的 程序性死亡配体-1(PD-L1)是免疫调节途径的重要因子,是抗肿瘤免疫疗法中重要的靶标之一。利用CRISPR/Cas9技术成功构建PD-L1基因敲除小鼠模型,并初步分析其表型。方法 构建Cas9和sgRNA载体,并转录获得RNA,通过显微注射方式将RNA注射到C57BL/6小鼠受精卵中,经过鉴定获得F0代阳性小鼠。F0代小鼠与野生型C57BL/6小鼠交配获得F1代杂合子小鼠,再通过F1代小鼠自交获得F2代纯合子小鼠品系。随后通过Real-Time PCR和流式实验分别检测PD-L1基因在mRNA和蛋白质水平上的表达情况。结果 Real-Time PCR和流式实验检测结果显示与野生型C57小鼠相比,PD-L1纯合子小鼠的PD-L1 mRNA相对表达水平和细胞上的蛋白质表达均有显著性下降,仅测定到本底的信号,证实已成功构建PD-L1基因敲除小鼠品系,为PD-L1体内基因功能研究提供了新的小鼠模型。  相似文献   

13.
Smads is a new gene family in transforming growth factor-β (TGF- β signaling pathway. Smad2 mutated in multiple human tumors and may be a candidate tumor suppressor gene. Targeted disruption of murine Smad2 gene resulted in embryonic lethality at E6.5. To study the function of Smad2 in vertebrate organgenesis and tumorigenesis, we constructed the Smad2 conditional targeting vector in which two LoxP sequences were placed to flank the sequences encoding the C terminal functional domain of Smad2. The validity of the LoxP sites in the targeting construct was tested in E. coli that express the Cre recombinase constitutively. The vector was electropo-rated into ES cells and 3 targeted ES cell clones were obtained by Southern blot screening. Targeted ES cells were introduced into C57BL/6J blastocysts by microinjection to generate germ-line chimeras. Genotyping analysis showed that 2 progeny among these chimeras carried the Smad2 conditional targeted allele. The establishment of Smad2 conditional gene targetin  相似文献   

14.
Mouse embryonic stem (ES) cells with the C57BL/6 genetic background allow the generation of knockout mice without the need to backcross to C57BL/6. However, C57BL/6 ES cells whose pluripotency after homologous recombination has been confirmed are not yet available from public cell banks. To facilitate the use of ES cells derived from C57BL/6 sublines in both biologic and medical research, we demonstrated that the use of knockout serum replacement as a medium supplement and 8-cell blastomeres as recipient embryos allowed establishment of ES cells and production of germline chimeric mice, respectively. Under effective conditions, a large number of ES cell lines were established from C57BL/6J and C57BL/6N blastocysts. The majority of ES cells in many cell lines obtained from both strains showed a normal chromosome number. Germline chimeric mice were generated from C57BL/6J and C57BL/6N ES cells. Finally, the ES cell line B6J-S1UTR, derived from C57BL/6J, was used for successful production of gene knockout mice. C57BL/6J ES (B6J-S1UTR and B6J-23UTR) and C57BL/6N ES (B6N-22UTR) cells are available from the cell bank of the BioResource Center at RIKEN Tsukuba Institute (http://www.brc.riken.jp/lab/cell/english/).  相似文献   

15.
Smads is a new gene family in transforming growth factor-β (TGF- β) signaling pathway. Smad2 mutated in multiple human tumors and may be a candidate tumor suppressor gene. Targeted disruption of murine Smad2 gene resulted in embryonic lethality at E6.5. To study the function of Smad2 in vertebrate organgenesis and tumorigenesis, we constructed the Smad2 conditional targeting vector in which two LoxP sequences were placed to flank the sequences encoding the C terminal functional domain of Smad2. The validity of the LoxP sites in the targeting construct was tested in E. coli that express the Cre recombinase constitutively. The vector was electroporated into ES cells and 3 targeted ES cell clones were obtained by Southern blot screening. Targeted ES cells were introduced into C57BL/6J blastocysts by microinjection to generate germ-line chimeras. Genotyping analysis showed that 2 progeny among these chimeras carried the Smad2 conditional targeted allele. The establishment of Smad2 conditional gene targeting mouse has laid a solid foundation for producing the tissue specific Smad2 gene knockout mice.  相似文献   

16.
Conditional inactivation of individual genes in mice using site-specific recombinases is an extremely powerful method for determining the complex roles of mammalian genes in developmental and tissue-specific contexts, a major goal of post-genomic research. However, the process of generating mice with recombinase recognition sequences placed at specific locations within a gene, while maintaining a functional allele, is time consuming, expensive and technically challenging. We describe a system that combines gene trap and site-specific DNA inversion to generate mouse embryonic stem (ES) cell clones for the rapid production of conditional knockout mice, and the use of this system in an initial gene trap screen. Gene trapping should allow the selection of thousands of ES cell clones with defined insertions that can be used to generate conditional knockout mice, thereby providing extensive parallelism that eliminates the time-consuming steps of targeting vector construction and homologous recombination for each gene.  相似文献   

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