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A neuron-specific deletion of the microRNA-processing enzyme DICER induces severe but transient obesity in mice.神经元特异性缺失微小RNA加工酶DICER会在小鼠中诱发严重但短暂的肥胖。
PLoS One. 2015 Jan 28;10(1):e0116760. doi: 10.1371/journal.pone.0116760. eCollection 2015.
3
Gonadotrope-specific deletion of Dicer results in severely suppressed gonadotropins and fertility defects.性腺特异性缺失Dicer会导致促性腺激素严重抑制和生育缺陷。
J Biol Chem. 2015 Jan 30;290(5):2699-714. doi: 10.1074/jbc.M114.621565. Epub 2014 Dec 18.
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A subset of chondrogenic cells provides early mesenchymal progenitors in growing bones.在生长中的骨骼中,软骨细胞亚群为早期间充质祖细胞提供来源。
Nat Cell Biol. 2014 Dec;16(12):1157-67. doi: 10.1038/ncb3067. Epub 2014 Nov 24.
5
Global microRNA expression is essential for murine mast cell development in vivo.整体微小RNA表达对于体内小鼠肥大细胞的发育至关重要。
Exp Hematol. 2014 Oct;42(10):919-23.e1. doi: 10.1016/j.exphem.2014.07.266. Epub 2014 Sep 6.
6
Deletion of Dicer in late erythroid cells results in impaired stress erythropoiesis in mice.在晚期红细胞中删除Dicer会导致小鼠应激性红细胞生成受损。
Exp Hematol. 2014 Oct;42(10):852-6.e1. doi: 10.1016/j.exphem.2014.06.004. Epub 2014 Jun 24.
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Loss of functional Dicer in mouse radial glia cell-autonomously prolongs cortical neurogenesis.敲除小鼠放射状胶质细胞中的功能性 Dicer 可自主延长皮质神经发生。
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8
Dicer deficiency reveals microRNAs predicted to control gene expression in the developing adrenal cortex.Dicer缺失揭示了预测可控制发育中肾上腺皮质基因表达的微小RNA。
Mol Endocrinol. 2013 May;27(5):754-68. doi: 10.1210/me.2012-1331. Epub 2013 Mar 21.
9
Mechanism of random integration of foreign DNA in transgenic mice.转基因小鼠中外源 DNA 随机整合的机制。
Transgenic Res. 2013 Oct;22(5):983-92. doi: 10.1007/s11248-013-9701-z. Epub 2013 Mar 13.
10
Inducible deletion of epidermal Dicer and Drosha reveals multiple functions for miRNAs in postnatal skin.诱导性敲除表皮 Dicer 和 Drosha 揭示了 miRNA 在出生后皮肤中的多种功能。
Development. 2012 Apr;139(8):1405-16. doi: 10.1242/dev.070920.

创建用于研究小非编码RNA功能的条件性双荧光标记转基因动物。

Creating conditional dual fluorescence labeled transgenic animals for studying function of small noncoding RNAs.

作者信息

Yang Kun, Gao Yun, Yang Mingfu, Xu Zuoshang, Chen Qian

机构信息

a Department of Orthopedics , Warren Alpert Medical School of Brown University and Rhode Island Hospital , Providence , RI , USA.

b Department of Biochemistry and Molecular Pharmacology , University of Massachusetts Medical School , Worcester , MA , USA.

出版信息

Connect Tissue Res. 2017 Jan;58(1):103-115. doi: 10.1080/03008207.2016.1247834. Epub 2016 Oct 20.

DOI:10.1080/03008207.2016.1247834
PMID:27763799
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5382716/
Abstract

Because the function of most noncoding (nc) RNAs is unknown, Cre-lox transgenic mice are useful tools to determine their functions in a tissue or developmental stage-specific manner. However, the technology faces challenges because expression of ncRNA-transgene lacks protein product. No antibody or peptide-tag can be used to trace ncRNA expression in mouse tissues in real time. Furthermore, transgene integration at different locus or orientations in the genome may result in recombination of genomic fragments in the Cre-lox system. Establishing a reliable method that can be used to determine the precise copy number and orientation of the transgene is critical to the field. We developed a fast and straightforward method to determine ncRNA-transgene copy number, orientation, and insertion site in the genome. Furthermore, upon tissue-specific expression of ncRNA, a Cre-loxP-mediated dual-fluorescence expression system facilitates fluorescence signal switching from green to red, which enables real-time monitoring of ncRNA expression by fluorescence signals. As proof of concept, we demonstrate that after microRNA (miRNA)-Flox mice crossed with Col2a1-Cre mice, miRNA transgene expression could be detected successfully by red fluorescence signals in various cartilaginous tissues. This method of creating small ncRNA transgenic mice facilitates both tissue-specific ncRNA expression and real-time visualization of its expression. It is particularly suitable for in vivo studies of the functional roles and lineage tracing of small ncRNA.

摘要

由于大多数非编码(nc)RNA的功能尚不清楚,Cre-lox转基因小鼠是按组织或发育阶段特异性方式确定其功能的有用工具。然而,该技术面临挑战,因为ncRNA转基因的表达缺乏蛋白质产物。没有抗体或肽标签可用于实时追踪小鼠组织中的ncRNA表达。此外,转基因在基因组中不同位点或方向的整合可能导致Cre-lox系统中基因组片段的重组。建立一种可用于确定转基因精确拷贝数和方向的可靠方法对该领域至关重要。我们开发了一种快速且直接的方法来确定基因组中ncRNA转基因的拷贝数、方向和插入位点。此外,在ncRNA进行组织特异性表达时,Cre-loxP介导的双荧光表达系统可促进荧光信号从绿色切换为红色,从而能够通过荧光信号实时监测ncRNA表达。作为概念验证,我们证明在微小RNA(miRNA)-Flox小鼠与Col2a1-Cre小鼠杂交后,可通过红色荧光信号在各种软骨组织中成功检测到miRNA转基因表达。这种创建小型ncRNA转基因小鼠的方法既有助于组织特异性ncRNA表达,又能对其表达进行实时可视化。它特别适用于小型ncRNA功能作用和谱系追踪的体内研究。