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排序方式: 共有55条查询结果,搜索用时 296 毫秒
1.
成簇的规律间隔性短回文序列(CRISPR)基因编辑系统,因其设计简单操作方便和无种属限制,已成为一种广泛应用的基因组定点编辑工具,在复杂的基因组编辑,例如基因的人源化改造以及条件等位基因的构建中有所应用。在自然界中,CRISPR系统拥有多种类别。其中,CRISPR/Cas9系统是研究最深入、应用最成熟的一种。本文针对CRISPR/Cas9系统,分别从基因敲入/敲除片段的大小、同源臂长短、构型即递送方式等技术环节进行综述,阐述不同设计及操作条件下由CRISPR/Cas9系统介导的基因敲入/敲除的效率差异。  相似文献   
2.
CRISPR/Cas9 (clustered regularly interspaced short palindromic repeats-Cas9 nuclease) 基因编辑技术是近年来新兴的一种可以实现基因特异性敲除和敲入的技术。本文利用CRISPR/Cas9基因编辑系统,将3×FLAG标签定点敲入HeLa细胞SND1基因前方,使细胞内源性表达的SND1蛋白带有3×FLAG标签,并观察SND1与应激颗粒及加工体的定位情况。设计针对SND1基因起始密码子ATG附近的sgRNA,以px459为表达载体,构建出重组真核表达质粒。设计含有3×FLAG及待插入位置上下游150 bp同源臂的序列,经公司合成获得重组质粒。将2个质粒共同转染HeLa细胞,使用嘌呤霉素筛选阳性细胞,挑取单克隆后培养。Western 印迹表明,细胞表达3×FLAG-SND1融合蛋白质。提取细胞基因组DNA进行测序。测序无误获得稳定株后,用流式细胞术检测细胞周期和凋亡,发现与WT细胞相比无显著性差异。同时,使用0.5 mmol/L亚砷酸钠处理,细胞发生氧化应激,eIF2α蛋白磷酸化增加,胞浆中出现应激颗粒,SND1与应激颗粒标志蛋白TIAR存在共定位现象,但不存在与加工体蛋白DCP1α的共定位。  相似文献   
3.
A pyrogen test is crucial for evaluating the safety of drugs and medical equipment, especially those involved in injections. As existing pyrogen tests, including the rabbit pyrogen test, the limulus amoebocyte lysate (LAL) test and the monocyte activation test have limitations, development of new models for pyrogen testing is necessary. Here we develop a sensitive cell model for pyrogen test based on the lipopolysaccharides (LPS) signal pathway. TLR4, MD2, and CD14 play key roles in the LPS-mediated pyrogen reaction. We established a new TLR4/MD2/CD14-specific overexpressing knock-in cell model using the CRISPR/CAS9 technology and homologous recombination to detect LPS. Stimulation of our TLR4/CD14/MD2 knock-in cell line model with LPS leads to the release of the cytokines IL-6 and TNF-alpha, with a detection limit of 0.005 EU/ml, which is greatly lower than the lower limit of 0.015 EU/ml detected by the Tachypleus amebocyte lysate (TAL) assay.  相似文献   
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Cardiac calsequestrin (CASQ2) contributes to intracellular Ca2+ homeostasis by virtue of its low-affinity/high-capacity Ca2+ binding properties, maintains sarcoplasmic reticulum (SR) architecture and regulates excitation–contraction coupling, especially or exclusively upon β-adrenergic stimulation. Catecholaminergic polymorphic ventricular tachycardia (CPVT) is an inherited arrhythmogenic disease associated with cardiac arrest in children or young adults. Recessive CPVT variants are due to mutations in the CASQ2 gene. Molecular and ultra-structural properties were studied in hearts of CASQ2R33Q/R33Q and of CASQ2−/− mice from post-natal day 2 to week 8. The drastic reduction of CASQ2-R33Q is an early developmental event and is accompanied by down-regulation of triadin and junctin, and morphological changes of jSR and of SR-transverse-tubule junctions. Although endoplasmic reticulum stress is activated, no signs of either apoptosis or autophagy are detected. The other model of recessive CPVT, the CASQ2−/− mouse, does not display the same adaptive pattern. Expression of CASQ2-R33Q influences molecular and ultra-structural heart development; post-natal, adaptive changes appear capable of ensuring until adulthood a new pathophysiological equilibrium.  相似文献   
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Arrhythmogenic right ventricular dysplasia/cardiomyopathy (ARVD/C) is a genetic cardiac muscle disease that accounts for approximately 30% sudden cardiac death in young adults. The Ser358Leu mutation of transmembrane protein 43 (TMEM43) was commonly identified in the patients of highly lethal and fully penetrant ARVD subtype, ARVD5. Here, we generated TMEM43 S358L mouse to explore the underlying mechanism. This mouse strain showed the classic pathologies of ARVD patients, including structural abnormalities and cardiac fibrofatty. TMEM43 S358L mutation led to hyper-activated nuclear factor κB (NF-κB) activation in heart tissues and primary cardiomyocyte cells. Importantly, this hyper activation of NF-κB directly drove the expression of pro-fibrotic gene, transforming growth factor beta (TGFβ1), and enhanced downstream signal, indicating that TMEM43 S358L mutation up-regulates NF-κB-TGFβ signal cascade during ARVD cardiac fibrosis. Our study partially reveals the regulatory mechanism of ARVD development.  相似文献   
8.
The DEAD-box proteins CYT-19 in Neurospora crassa and Mss116p in Saccharomyces cerevisiae are broadly acting RNA chaperones that function in mitochondria to stimulate group I and group II intron splicing and to activate mRNA translation. Previous studies showed that the S. cerevisiae cytosolic/nuclear DEAD-box protein Ded1p could stimulate group II intron splicing in vitro. Here, we show that Ded1p complements mitochondrial translation and group I and group II intron splicing defects in mss116Δ strains, stimulates the in vitro splicing of group I and group II introns, and functions indistinguishably from CYT-19 to resolve different nonnative secondary and/or tertiary structures in the Tetrahymena thermophila large subunit rRNA-ΔP5abc group I intron. The Escherichia coli DEAD-box protein SrmB also stimulates group I and group II intron splicing in vitro, while the E. coli DEAD-box protein DbpA and the vaccinia virus DExH-box protein NPH-II gave little, if any, group I or group II intron splicing stimulation in vitro or in vivo. The four DEAD-box proteins that stimulate group I and group II intron splicing unwind RNA duplexes by local strand separation and have little or no specificity, as judged by RNA-binding assays and stimulation of their ATPase activity by diverse RNAs. In contrast, DbpA binds group I and group II intron RNAs nonspecifically, but its ATPase activity is activated specifically by a helical segment of E. coli 23S rRNA, and NPH-II unwinds RNAs by directional translocation. The ability of DEAD-box proteins to stimulate group I and group II intron splicing correlates primarily with their RNA-unwinding activity, which, for the protein preparations used here, was greatest for Mss116p, followed by Ded1p, CYT-19, and SrmB. Furthermore, this correlation holds for all group I and group II intron RNAs tested, implying a fundamentally similar mechanism for both types of introns. Our results support the hypothesis that DEAD-box proteins have an inherent ability to function as RNA chaperones by virtue of their distinctive RNA-unwinding mechanism, which enables refolding of localized RNA regions or structures without globally disrupting RNA structure.  相似文献   
9.
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   
10.
白敏  李崎  邵艳姣  黄元华  李大力  马燕琳 《遗传》2015,37(10):1029-1035
CRISPR/Cas9技术是新近发展起来的对细胞和动物模型进行基因编辑的重要方法。本文利用DNA双链断裂(Double-strand breaks, DSBs)引起的同源重组(Homologous recombination, HR)依赖与非依赖的修复机制,建立基于CRISPR/Cas9核酸酶技术构建定点突变小鼠品系的技术体系。针对赖氨酸特异脱甲基化酶2b(Lysine (K)-specific demethylase 2b, Kdm2b)酶活关键位点对应的基因组DNA序列设计单一导向RNA(Single-guide RNA, sgRNA),通过与Cas9 mRNA共显微注射,分别得到Kdm2b基因发生移码突变的基因失活品系及关键位点氨基酸缺失的酶活突变型小鼠品系。此外,利用HR介导的修复机理,将黄素单加氧酶3(Flavin containing monooxygenases3, Fmo3)基因的sgRNA序列及对应的点突变单链寡脱氧核苷(Single strand oligonucleotides, ssODN)修复模板共注射到小鼠受精卵雄原核。对F0小鼠基因测序分析显示,成功构建了Fmo3基因移码突变的基因敲除和单碱基定点突变的基因敲入小鼠,这些突变能够稳定遗传给子代。本研究利用CRISPR/Cas9技术,通过同源重组依赖与非依赖两种DNA损伤修复方式,成功构建了特定位点突变的小鼠品系。  相似文献   
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