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1.
目的:应用CRISPR/Cas9技术构建去泛素化酶YOD1基因敲除小鼠。方法:针对YOD1基因设计单链向导RNA(sg RNA)识别序列,构建sg RNA质粒,与Cas9质粒体外转录、纯化后注射入受精卵,通过PCR和测序验证得到F0代阳性小鼠。配繁两代后,取同窝对照的野生型(WT)和敲除(KO)小鼠的主要组织器官研磨,使用免疫印迹(WB)技术检测各组织YOD1蛋白的表达,确证YOD1敲除小鼠模型是否成功建立。统计YOD1杂合子(HET)自交存活后代各基因型比例,分析是否有胚胎致死表型。解剖小鼠分析主要组织器官的表型,进一步利用H.E.染色分析KO小鼠是否存在自发的病理改变。通过血糖耐受实验(GTT)分析KO小鼠的血糖调控能力。结果:基因组测序和WB检测结果显示KO小鼠中YOD1被明显敲除,YOD1敲除小鼠模型成功建立。YOD1杂合子自交后代各基因型比例符合孟德尔定律,提示KO小鼠非胚胎致死。YOD1敲除小鼠肝脏显著小于WT小鼠。GTT结果表明敲除YOD1不影响小鼠的血糖稳态。结论:应用CRISPR/Cas9技术成功构建YOD1基因敲除小鼠。KO小鼠正常出生,无任何胚胎发育缺陷。与WT小鼠相比,KO小鼠肝脏显著减小,但无显著的自发病理变化,KO小鼠血糖控制亦无显著差异。  相似文献   

2.
目的:微小RNA(microRNAs,miRNAs)在胆固醇的合成,代谢和转运中起着重要作用,而mi RNAs在胆固醇代谢物胆酸的代谢和转运中的作用尚不清楚。Dicer基因是miRNAs生成过程的关键酶。本课题使用肝脏特异的Dicer1基因敲除小鼠,考察肝脏Dicer1基因敲除对C57BL/6小鼠肝脏胆酸代谢和转运的影响。方法:使用白蛋白启动子驱动的Cre重组酶和Loxp系统(Alb-Cre/Loxp)在小鼠肝脏中特异的敲除Dicer1基因;分别收集3~12周龄的小鼠血液和肝脏组织,使用Cobas生化仪检测小鼠血液和肝脏中总胆酸含量;利用实时定量PCR的方法分析肝脏中胆汁酸代谢转运相关基因的表达。结果:实验发现,肝脏Dicer基因敲除后,胆酸在血液和肝脏中明显蓄积,弥漫性肝细胞轻微空泡化,偶见单个肝细胞坏死。检测胆酸代谢和转运相关基因的表达发现,胆酸合成相关基因的表达有轻度升高,但缺乏统计学差异;在肝脏细胞血管侧的胆酸摄取转运体中,Oatp1a1在Dicer1敲除小鼠肝脏中明显下调,Ntcp和Oatp1b2则无明显改变;而肝细胞血管侧胆酸外排转运体的表达均有显著升高,胆管侧的外排转运体中Abcb11表达有明显增加。结论:Dicer基因敲除后,胆酸在血液和肝脏中明显蓄积,肝脏和血液中胆酸总量显著增加。血液中胆酸的蓄积可能与肝脏细胞血管侧摄取转运体的低表达和血管侧外排转运体的高表达有关;而肝脏中胆酸的蓄积可能部分来自于轻度升高的胆酸合成酶,胆酸在肝细胞内运输途径的紊乱可能与肝脏和血液中胆酸总量的显著增加相关。  相似文献   

3.
目的:建立心肌特异性Creg基因敲除小鼠并初步分析其表型。方法:利用订购的Creg两端插入lox P位点(Cregflox/flox)的小鼠与肌型肌酸激酶特异性启动子驱动的Cre重组酶转基因(Ckmm-cre)小鼠交配,获得Cregflox/+/Ckmm-cre小鼠。再利用Cregflox/+/Ckmm-cre小鼠互相交配,获得基因型为Cregflox/flox/Ckmm-cre的心肌特异性Creg基因条件敲除(Creg conditional knockout,Creg c KO)小鼠。用PCR法进行基因型鉴定。用定量PCR及Western Blot检测心肌组织中Creg表达水平。HE染色观察敲除小鼠与同窝野生型对照小鼠心脏大小及形态。检测两组小鼠心电图。用小动物超声评价两组小鼠左心室收缩功能。结果:1经基因型鉴定,成功获得Creg c KO小鼠。2与野生型对照相比,Creg c KO小鼠心脏中CREG在转录及翻译水平表达降低90%以上。3与野生型对照相比,Cre c KO小鼠的心脏大小、形态、心电图及左心室射血分数均无显著差别。结论:成功建立心肌特异性CREG基因条件敲除小鼠,为进一步研究Creg在心脏疾病中的作用和机制提供了有力的工具。  相似文献   

4.
利用Tbx18谱系示踪小鼠模型及Tbx18条件性基因敲除小鼠模型,探讨转录因子Tbx18对小鼠心血管结构发育的影响.实验建立Tbx18-Cre/Rosa26R-EYFP和Tbx18-Cre/Rosa26R-Lac Z两种基因敲入谱系示踪小鼠模型和Tbx18:Cre/Cre基因敲除小鼠模型;通过免疫荧光及X-gal染色技术,示踪Tbx18在心血管系统结构形成中的命运;通过小鼠心脏整体血管免疫组化及切片HE染色、免疫组化、免疫荧光技术,比较Tbx18:Cre/Cre基因敲除小鼠与野生型对照小鼠心脏室壁结构及冠状血管结构发育情况.示踪结果提示,Tbx18参与小鼠冠状血管及室间隔结构的形成,并与冠脉平滑肌细胞共表达;对Tbx18基因敲除小鼠及野生型小鼠的心脏结构比较提示,Tbx18基因敲除后,仍能形成形态正常的冠状血管系统,小鼠心室肌及室间隔厚度较野生型无明显差异.结果表明,Tbx18参与小鼠心脏血管平滑肌及室间隔结构的形成,但其在小鼠心脏腔室结构及冠状血管结构形成过程中不是必需的.  相似文献   

5.
目的:通过对与小鼠胚胎发育相关的新基因AI429618表达模式的初步分析为揭示小鼠胚胎发育机理提供研究基础.方法:利用Northern-blot和原位杂交方法对该基因进行表达谱分析.结果:Northern结果表明该基因在E12.5,E.15.5,E18.5三个时期都有所表达,并且在E12.5的小鼠胚胎中处于一个相对较高的转录水平,E15.5表达骤降并且基本上与E18.5(略高)持平;原位杂交结果显示E9.5,E10.5的小鼠胚胎中这一基因的表达集中在端脑、中脑、后脑、腮弓、前肢芽以及尾芽,E15.5的切片原位杂交中这一基因的表达信号在胸腺,肺,肝,肾,小肠中极为显著.结论:AI429618基因在小鼠胚胎发育期有着持续广泛的表达,可能对胚胎的正常发育起着重要的调控作用.  相似文献   

6.
目的:对与小鼠胚胎发育相关的印记基因Mcts2表达模式及生物学功能做初步的分析。方法:采用切片原位杂交,全胚胎原位杂交,Northern blot和real-time PCR对该基因进行了表达谱的分析。结果:切片原位杂交结果显示Mcts2基因在E13.5和E15.5胚胎中的脑、舌、心脏、肺脏、肝脏、肾脏等重要脏器中都有普遍表达。全胚胎原位杂交结果显示Mcts2基因在E10.5胚胎中的前脑、前肢、尾芽中出现较强的信号,其他部位信号较弱。Northern和Real-time PCR实验分析了Mcts2基因在E12.5,E15.5,E18.5胚胎和新生小鼠的脑、心脏、肺脏、肝脏和肾脏中的表达谱,发现Mcts2基因在这几个主要发育时期都有普遍表达,在E15.5胚胎中表达信号最为强烈。结论:Mcts2基因在小鼠胚胎的发育的各主要时期的重要脏器中都有普遍的表达,提示该基因在小鼠胚胎发育过程中起到了重要的作用。  相似文献   

7.
黏蛋白1(MUC1)属黏蛋白家族成员,分布于上皮细胞膜表面,由于在免疫炎症反应以及肿瘤发生中的重要作用而日益受到重视.为了进一步深入研究MUC1的生物学功能,构建了Muc1基因敲除小鼠模型.首先,根据小鼠Muc1基因组序列设计基因剔除策略,将2个loxP位点分别插在外显子2和3两侧,构建基因剔除载体Muc1-ABRLFn-pBR322.以电穿孔方法将载体导入胚胎干细胞(ES细胞),用G418和更昔洛韦进行正负筛选获得4个同源重组的ES细胞克隆.挑选其中一个阳性ES克隆行囊胚显微注射,获得16只嵌合率大于50%的雄鼠;其次,利用嵌合雄鼠与C57BL/6J野生型雌鼠交配后获得11只floxP杂合子小鼠(10雄1雌),通过杂合子小鼠回交,并进一步与EⅡa-Cre小鼠交配,最终成功得到Muc1全身敲除小鼠,其中纯合子小鼠未出现胚胎致死现象.初步表型观察未发现Muc1基因敲除相关器官组织结构的异常改变.本研究为MUC1的生物学功能的挖掘,尤其是MUC1在肿瘤发生转移中的作用机制的揭示提供了实验平台.  相似文献   

8.
基因特异性敲除的细胞常用于生物学研究。近些年兴起的CRISPR-Cas9 (clustered regularly interspaced short palindromic repeats-Cas9 nuclease)基因编辑技术越来越广泛地用于基因特异性敲除的实验中。本实验通过利用CRISPR-Cas9基因编辑技术,实现对大鼠心肌H9c2细胞Tudor-SN(tudor staphylococcal nuclease)基因的敲除,并观察其对H9c2细胞周期及增殖的影响。选择PX462质粒为载体,利用软件设计能特异性识别H9c2细胞Tudor-SN 基因第2个外显子的上下游sgRNA(single-guided RNA),构建1对重组质粒。随后,将这对质粒共同转入H9c2 细胞中,再挑选阳性单克隆细胞进行培养。Western 印迹鉴定其敲除效果,并用敲除成功的细胞株通过流式细胞术及CCK-8(cell counting kit 8)实验进行细胞周期和增殖的检测。Western 印迹结果显示,在阳性细胞中,Tudor-SN 蛋白不表达,成功实现了对Tudor-SN基因的敲除。流式结果显示,Tudor-SN基因敲除(KO)细胞发生了G1期阻滞。G1期细胞占比由H9c2 野生型(WT)细胞的54.28%±0.21% 升高到KO细胞的61.96%±0.40%(*P< 0.05)。CCK-8实验结果显示,KO细胞的增殖速率减慢。生长第6 d的A值由WT细胞的2.82±0.03降低到KO细胞1.85±0.19(*P< 0.05)。本实验成功构建了H9c2 细胞Tudor-SN 基因敲除细胞株,并检测到Tudor-SN 基因敲除对细胞周期的阻滞及增殖的抑制,为研究Tudor-SN基因对心肌细胞功能的调控提供了便利的工具及研究的基础。  相似文献   

9.
基因特异性敲除的细胞常用于生物学研究。近些年兴起的CRISPR-Cas9(clustered regularly interspaced short palindromic repeats-Cas9 nuclease)基因编辑技术越来越广泛地用于基因特异性敲除的实验中。本实验通过利用CRISPR-Cas9基因编辑技术,实现对大鼠心肌H9c2细胞Tudor-SN(tudor staphylococcal nuclease)基因的敲除,并观察其对H9c2细胞周期及增殖的影响。选择PX462质粒为载体,利用软件设计能特异性识别H9c2细胞Tudor-SN基因第2个外显子的上下游sgRNA(single-guided RNA),构建1对重组质粒。随后,将这对质粒共同转入H9c2细胞中,再挑选阳性单克隆细胞进行培养。Western印迹鉴定其敲除效果,并用敲除成功的细胞株通过流式细胞术及CCK-8(cell counting kit 8)实验进行细胞周期和增殖的检测。Western印迹结果显示,在阳性细胞中,Tudor-SN蛋白不表达,成功实现了对Tudor-SN基因的敲除。流式结果显示,Tudor-SN基因敲除(KO)细胞发生了G1期阻滞。G1期细胞占比由H9c2野生型(WT)细胞的54.28%±0.21%升高到KO细胞的61.96%±0.40%(*P0.05)。CCK-8实验结果显示,KO细胞的增殖速率减慢。生长第6天的A值由WT细胞的2.82±0.03降低到KO细胞1.85±0.19(*P0.05)。本实验成功构建了H9c2细胞Tudor-SN基因敲除细胞株,并检测到Tudor-SN基因敲除对细胞周期的阻滞及增殖的抑制,为研究Tudor-SN基因对心肌细胞功能的调控提供了便利的工具及研究的基础。  相似文献   

10.
目的:研究大鼠胰腺胚胎发育不同阶段的基因表达谱,对比其功能相关基因随大鼠胰腺发育的变化.方法:采用显微分离及提取技术获得胚胎发育不同阶段胰腺组织并提取RNA,采用高密度寡核普酸芯片(Affemetrix芯片)对胚胎发育至第12.5天、15.5天、18.5天胚胎胰腺及成年胰腺进行基因转录水平分析,用生物信息学方法分析具体基因的表达情况.结果:胰腺的生物学功能尤其beta细胞功能相关基因insulin RNA,amylopsin RNA,GLUT-2 RNA等在胚胎15.5及18.5天显著高表达.结论:E15.5到E18.5直至出生是胰腺功能完善和成熟的阶段,这个时期以细胞功能成熟为主.  相似文献   

11.
Dicer is a RNAase III enzyme that cleaves double stranded RNA and generates small interfering RNA (siRNA) and microRNA (miRNA). The goal of this study is to examine the role of Dicer and miRNAs in vascular smooth muscle cells (VSMCs). We deleted Dicer in VSMCs of mice, which caused a developmental delay that manifested as early as embryonic day E12.5, leading to embryonic death between E14.5 and E15.5 due to extensive hemorrhage in the liver, brain, and skin. Dicer KO embryos showed dilated blood vessels and a disarray of vascular architecture between E14.5 and E15.5. VSMC proliferation was significantly inhibited in Dicer KOs. The expression of VSMC marker genes were significantly downregulated in Dicer cKO embryos. The vascular structure of the yolk sac and embryo in Dicer KOs was lost to an extent that no blood vessels could be identified after E15.5. Expression of most miRNAs examined was compromised in VSMCs of Dicer KO. Our results indicate that Dicer is required for vascular development and regulates vascular remodeling by modulating VSMC proliferation and differentiation.  相似文献   

12.
miRNA biogenesis enzyme Drosha cleaves double-stranded primary miRNA by interacting with double-stranded RNA binding protein DGCR8 and processes primary miRNA into precursor miRNA to participate in the miRNA biogenesis pathway. The role of Drosha in vascular smooth muscle cells (VSMCs) has not been well addressed. We generated Drosha conditional knockout (cKO) mice by crossing VSMC-specific Cre mice, SM22-Cre, with Drosha loxp/loxp mice. Disruption of Drosha in VSMCs resulted in embryonic lethality at E14.5 with severe liver hemorrhage in mutant embryos. No obvious developmental delay was observed in Drosha cKO embryos. The vascular structure was absent in the yolk sac of Drosha homozygotes at E14.5. Loss of Drosha reduced VSMC proliferation in vitro and in vivo. The VSMC differentiation marker genes, including αSMA, SM22, and CNN1, and endothelial cell marker CD31 were significantly downregulated in Drosha cKO mice compared to controls. ERK1/2 mitogen-activated protein kinase and the phosphatidylinositol 3-kinase/AKT were attenuated in VSMCs in vitro and in vivo. Disruption of Drosha in VSMCs of mice leads to the dysregulation of miRNA expression. Using bioinformatics approach, the interactions between dysregulated miRNAs and their target genes were analyzed. Our data demonstrated that Drosha is required for VSMC survival by targeting multiple signaling pathways.  相似文献   

13.
DiGeorge Critical Region 8 (DGCR8) is a double-stranded RNA-binding protein that interacts with Drosha and facilitates microRNA (miRNA) maturation. However, the role of DGCR8 in vascular smooth muscle cells (VSMCs) is not well understood. To investigate whether DGCR8 contributes to miRNA maturation in VSMCs, we generated DGCR8 conditional knockout (cKO) mice by crossing VSMC-specific Cre mice (SM22-Cre) with DGCR8(loxp/loxp) mice. We found that loss of DGCR8 in VSMCs resulted in extensive liver hemorrhage and embryonic mortality between embryonic days (E) 12.5 and E13.5. DGCR8 cKO embryos displayed dilated blood vessels and disarrayed vascular architecture. Blood vessels were absent in the yolk sac of DGCR8 KOs after E12.5. Disruption of DGCR8 in VSMCs reduced VSMC proliferation and promoted apoptosis in vitro and in vivo. In DGCR8 cKO embryos and knockout VSMCs, differentiation marker genes, including αSMA, SM22, and CNN1, were significantly down-regulated, and the survival pathways of ERK1/2 mitogen-activated protein kinase and the phosphatidylinositol 3-kinase/AKT were attenuated. Knockout of DGCR8 in VSMCs has led to down-regulation of the miR-17/92 and miR-143/145 clusters. We further demonstrated that the miR-17/92 cluster promotes VSMC proliferation and enhances VSMC marker gene expression, which may contribute to the defects of DGCR8 cKO mutants. Our results indicate that the DGCR8 gene is required for vascular development through the regulation of VSMC proliferation, apoptosis, and differentiation.  相似文献   

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15.
Neurogenesis during the development of the mammalian cerebral cortex involves a switch of neural stem and progenitor cells from proliferation to differentiation. To explore the possible role of microRNAs (miRNAs) in this process, we conditionally ablated Dicer in the developing mouse neocortex using Emx1-Cre, which is specifically expressed in the dorsal telencephalon as early as embryonic day (E) 9.5. Dicer ablation in neuroepithelial cells, which are the primary neural stem and progenitor cells, and in the neurons derived from them, was evident from E10.5 onwards, as ascertained by the depletion of the normally abundant miRNAs miR-9 and miR-124. Dicer ablation resulted in massive hypotrophy of the postnatal cortex and death of the mice shortly after weaning. Analysis of the cytoarchitecture of the Dicer-ablated cortex revealed a marked reduction in radial thickness starting at E13.5, and defective cortical layering postnatally. Whereas the former was due to neuronal apoptosis starting at E12.5, which was the earliest detectable phenotype, the latter reflected dramatic impairment of neuronal differentiation. Remarkably, the primary target cells of Dicer ablation, the neuroepithelial cells, and the neurogenic progenitors derived from them, were unaffected by miRNA depletion with regard to cell cycle progression, cell division, differentiation and viability during the early stage of neurogenesis, and only underwent apoptosis starting at E14.5. Our results support the emerging concept that progenitors are less dependent on miRNAs than their differentiated progeny, and raise interesting perspectives as to the expansion of somatic stem cells.  相似文献   

16.
Dicer is an evolutionarily conserved ribonuclease III that is necessary for microRNA (miRNA) processing and the synthesis of small interfering RNAs from long double-stranded RNA. Although it has been shown that Dicer plays important roles in the mammalian germline and early embryogenesis, the functions of Dicer-dependent pathways in the somatic cells of the female reproductive tract are unknown. Using a transgenic line in which Cre recombinase is driven by the anti-Müllerian hormone receptor type 2 promoter, we conditionally inactivated Dicer1 in the mesenchyme of the developing Müllerian ducts and postnatally in ovarian granulosa cells and mesenchyme-derived cells of the oviducts and uterus. Deletion of Dicer in these cell types results in female sterility and multiple reproductive defects including decreased ovulation rates, compromised oocyte and embryo integrity, prominent bilateral paratubal (oviductal) cysts, and shorter uterine horns. The paratubal cysts act as a reservoir for spermatozoa and oocytes and prevent embryos from transiting the oviductal isthmus and passing the uterotubal junction to enter the uterus for implantation. Deep sequencing of small RNAs in oviduct revealed down-regulation of specific miRNAs in Dicer conditional knockout females compared with wild type. The majority of these differentially expressed miRNAs are predicted to regulate genes important for Müllerian duct differentiation and mesenchyme-derived structures, and several of these putative target genes were significantly up-regulated upon conditional deletion of Dicer1. Thus, our findings reveal diverse and critical roles for Dicer and its miRNA products in the development and function of the female reproductive tract.  相似文献   

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Morphogenesis and shape of the ocular lens depend on epithelial cell elongation and differentiation into fiber cells, followed by the symmetric and compact organization of fiber cells within an enclosed extracellular matrix-enriched elastic capsule. The cellular mechanisms orchestrating these different events however, remain obscure. We investigated the role of the Rac1 GTPase in these processes by targeted deletion of expression using the conditional gene knockout (cKO) approach. Rac1 cKO mice were derived from two different Cre (Le-Cre and MLR-10) transgenic mice in which lens-specific Cre expression starts at embryonic day 8.75 and 10.5, respectively, in both the lens epithelium and fiber cells. The Le-Cre/Rac1 cKO mice exhibited an early-onset (E12.5) and severe lens phenotype compared to the MLR-10/Rac1 cKO (E15.5) mice. While the Le-Cre/Rac1 cKO lenses displayed delayed primary fiber cell elongation, lenses from both Rac1 cKO strains were characterized by abnormal shape, impaired secondary fiber cell migration, sutural defects and thinning of the posterior capsule which often led to rupture. Lens fiber cell N-cadherin/β-catenin/Rap1/Nectin-based cell–cell junction formation and WAVE-2/Abi-2/Nap1-regulated actin polymerization were impaired in the Rac1 deficient mice. Additionally, the Rac1 cKO lenses were characterized by a shortened epithelial sheet, reduced levels of extracellular matrix (ECM) proteins and increased apoptosis. Taken together, these data uncover the essential role of Rac1 GTPase activity in establishment and maintenance of lens shape, suture formation and capsule integrity, and in fiber cell migration, adhesion and survival, via regulation of actin cytoskeletal dynamics, cell adhesive interactions and ECM turnover.  相似文献   

19.
Dicer is a cellular enzyme required for the processing of pre‐miRNA molecules into mature miRNA, and Dicer and miRNA biogenesis have been found to play important roles in a variety of physiologic processes. Recently, reports of alterations in miRNA expression levels in cultured pre‐adipogenic cell lines during differentiation and findings of differences between the miRNA expression signatures of white and brown adipose have suggested that miRNA molecules might regulate adipocyte differentiation and the formation of adipose tissue. However, direct evidence that miRNAs regulate adipogenesis is lacking. To determine if Dicer and mature miRNA govern adipocyte differentiation, we utilized primary cells isolated from mice bearing Dicer‐conditional alleles to study adipogenesis in the presence or absence of miRNA biogenesis. Our results reveal that Dicer is required for adipogenic differentiation of mouse embryonic fibroblasts and primary cultures of pre‐adipocytes. Furthermore, the requirement for Dicer in adipocyte differentiation is not due to miRNA‐mediated alterations in cell proliferation, as deletion of the Ink4a locus and the prevention of premature cellular senescence normally induced in primary cells upon Dicer ablation fails to rescue adipogenic differentiation in fibroblasts and pre‐adipocytes. J. Cell. Biochem. 110: 812–816, 2010. © 2010 Wiley‐Liss, Inc.  相似文献   

20.
Despite the increasing interest in other classes of small RNAs, microRNAs (miRNAs) remain the most widely investigated and have been shown to play a role in a number of different processes in mammals. Many studies investigating miRNA function focus on the processing enzyme Dicer1, which is an RNAseIII protein essential for the biogenesis of active miRNAs through its cleavage of precursor RNA molecules. General deletion of Dicer1 in the mouse confirms that miRNAs are essential for development because embryos lacking Dicer1 fail to reach the end of gastrulation. Here we investigate the role of Dicer1 in urogenital tract development. We utilised a conditional allele of the Dicer1 gene and two Cre-expressing lines, driven by HoxB7 and Amhr2, to investigate the effect of Dicer1 deletion on both male and female reproductive tract development. Data presented here highlight an essential role for Dicer1 in the correct morphogenesis and function of the female reproductive tract and confirm recent findings that suggest Dicer1 is required for female fertility. In addition, HoxB7:Cre-mediated deletion in ureteric bud derivatives leads to a spectrum of anomalies in both males and females, including hydronephrotic kidneys and kidney parenchymal cysts. Male reproductive tract development, however, remains largely unaffected in the absence of Dicer1. Thus, Dicer1 is required for development of the female reproductive tract and also normal kidney morphogenesis.  相似文献   

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