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A novel approach for stable, cell-type restricted knockdown of gene expression in C. elegans.

机译:秀丽隐杆线虫中基因表达的稳定,细胞类型限制的敲低的新方法。

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摘要

Removal of protein activity by genetic mutation or pharmacological inhibition has been used extensively to understand the normal function of a protein. However, null mutations eliminate gene function in all cells and pharmacological agents can diffuse through tissues to have similar global effects that can obscure the physiological function of a protein. This is a particular problem when studying proteins that function in many cell types or that have different cell-specific activities. The most direct strategy to study the function of a protein is to reduce or eliminate its activity only in specific cell types, rather than in all cells of an organism. The idea of targeting gene knockdown to specific cell types or to individual cells is not new and many strategies aim to do just this. However, these strategies result in variable knockdown efficiencies and can have silencing effects in neighboring cells and therefore knockdown is never cell-specific.;We developed a novel method to knock down the expression of any gene and to restrict this knockdown to specific cell types in C. elegans. In this method we replaced endogenous genes with single copy integrated transgenes containing an engineered sequence tag that introduces premature stop codons (PTCs) into transgene mRNA. This tag causes the natural stop codon to be recognized as a PTC by the host's nonsense-mediated decay (NMD) machinery and does not disrupt gene function. In NMD-competent animals, a PTC-containing transgene is degraded and in NMD-defective animals, a PTC-containing transgene is expressed. Therefore, the expression of PTC-containing transgenes can be controlled by cell-specific activation of NMD. Using this technique, we replaced two endogenous genes with PTC-containing transgenes and directed degradation of their mRNA to specific cell types by restoring NMD activity in these cells. The single copy transgenes were expressed at levels comparable to the endogenous genes and were knocked down to ∼10% of endogenous by NMD, resulting in both global and cell-specific null-like phenotypes. This knockdown strategy can be used to cell-specifically knock down essentially any gene in the C. elegans genome and should provide new insights into understanding protein function.
机译:通过遗传突变或药理学抑制作用去除蛋白质活性已被广泛用于理解蛋白质的正常功能。但是,无效突变会消除所有细胞中的基因功能,并且药理学试剂可以在组织中扩散,从而产生类似的整体效应,从而掩盖蛋白质的生理功能。当研究在许多细胞类型中起作用或具有不同细胞特异性活性的蛋白质时,这是一个特殊的问题。研究蛋白质功能的最直接策略是仅在特定细胞类型中而不是在生物体的所有细胞中降低或消除其活性。将基因敲低靶向特定细胞类型或单个细胞的想法并不是什么新鲜事,许多策略旨在做到这一点。然而,这些策略导致可变的敲低效率,并且可能在邻近细胞中产生沉默作用,因此敲低绝不是细胞特异性的。我们开发了一种新颖的方法来敲低任何基因的表达并将这种敲低限制于特定的细胞类型。秀丽隐杆线虫。在这种方法中,我们用包含工程序列标签的单拷贝整合转基因替代了内源基因,该工程标签将过早终止密码子(PTC)引入转基因mRNA中。该标签使自然终止密码子被宿主的无义介导的衰变(NMD)机制识别为PTC,并且不会破坏基因功能。在具有NMD能力的动物中,含有PTC的转基因被降解,而在具有NMD缺陷的动物中,含有PTC的转基因被表达。因此,可以通过NMD的细胞特异性激活来控制含PTC的转基因的表达。使用这项技术,我们用含PTC的转基因替换了两个内源基因,并通过恢复这些细胞的NMD活性将其mRNA降解定向为特定的细胞类型。单拷贝转基因以与内源性基因相当的水平表达,并被NMD击倒至约10%的内源性表型,从而导致整体和细胞特异性空样表型。这种敲除策略可用于基本上特异性地敲除秀丽隐杆线虫基因组中的任何基因,并应为了解蛋白质功能提供新的见解。

著录项

  • 作者

    Maher, Kathryn N.;

  • 作者单位

    University of Massachusetts Amherst.;

  • 授予单位 University of Massachusetts Amherst.;
  • 学科 Biology Molecular.;Biology Genetics.;Biology Neuroscience.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 152 p.
  • 总页数 152
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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