Javascript must be enabled to continue!
Expanded FLP toolbox for spatiotemporal protein degradation and transcriptomic profiling in C. elegans
View through CrossRef
Abstract
Control of gene expression in specific tissues and/or at certain stages of development allows the study and manipulation of gene function with high precision. Site-specific genome recombination by the Flippase (FLP) and Cre enzymes has proven particularly relevant. Joint efforts of many research groups have led to the creation of efficient FLP and Cre drivers to regulate gene expression in a variety of tissues in
Caenorhabditis elegans
. Here, we extend this toolkit by the addition of FLP lines that drive recombination specifically in distal tip cells, the somatic gonad, coelomocytes and the epithelial P lineage. In some cases, recombination-mediated gene knockouts do not completely deplete protein levels due to persistence of long-lived proteins. To overcome this, we developed a spatiotemporally regulated degradation system for GFP fusion proteins (GFPdeg) based on FLP-mediated recombination. Using two stable nuclear pore proteins, MEL-28/ELYS and NPP-2/NUP85 as examples, we report the benefit of combining tissue-specific gene knockout and protein degradation to achieve complete protein depletion. We also demonstrate that FLP-mediated recombination can be utilized to identify transcriptomes in a
C. elegans
tissue of interest. We have adapted RNA polymerase DamID (RAPID) for the FLP toolbox and by focusing on a well-characterized tissue, the hypodermis, we show that the vast majority of genes identified by RAPID are known to be expressed in this tissue. These tools allow combining FLP activity for simultaneous gene inactivation and transcriptomic profiling, thus enabling the inquiry of gene function in various complex biological processes.
Title: Expanded FLP toolbox for spatiotemporal protein degradation and transcriptomic profiling in
C. elegans
Description:
Abstract
Control of gene expression in specific tissues and/or at certain stages of development allows the study and manipulation of gene function with high precision.
Site-specific genome recombination by the Flippase (FLP) and Cre enzymes has proven particularly relevant.
Joint efforts of many research groups have led to the creation of efficient FLP and Cre drivers to regulate gene expression in a variety of tissues in
Caenorhabditis elegans
.
Here, we extend this toolkit by the addition of FLP lines that drive recombination specifically in distal tip cells, the somatic gonad, coelomocytes and the epithelial P lineage.
In some cases, recombination-mediated gene knockouts do not completely deplete protein levels due to persistence of long-lived proteins.
To overcome this, we developed a spatiotemporally regulated degradation system for GFP fusion proteins (GFPdeg) based on FLP-mediated recombination.
Using two stable nuclear pore proteins, MEL-28/ELYS and NPP-2/NUP85 as examples, we report the benefit of combining tissue-specific gene knockout and protein degradation to achieve complete protein depletion.
We also demonstrate that FLP-mediated recombination can be utilized to identify transcriptomes in a
C.
elegans
tissue of interest.
We have adapted RNA polymerase DamID (RAPID) for the FLP toolbox and by focusing on a well-characterized tissue, the hypodermis, we show that the vast majority of genes identified by RAPID are known to be expressed in this tissue.
These tools allow combining FLP activity for simultaneous gene inactivation and transcriptomic profiling, thus enabling the inquiry of gene function in various complex biological processes.
Related Results
ВОЗМОЖНАЯ РОЛЬ РЕЦЕПТОРОВ ДОФАМИНА DOP-1, DOP-2 И DOP-3 В МОДУЛЯЦИИ ЧУВСТВИТЕЛЬНОСТИ ПОЧВЕННОЙ НЕМАТОДЫ Caenorhabditis elegans К ТОКСИЧЕСКОМУ ДЕЙСТВИЮ ИОНОВ СВИНЦА
ВОЗМОЖНАЯ РОЛЬ РЕЦЕПТОРОВ ДОФАМИНА DOP-1, DOP-2 И DOP-3 В МОДУЛЯЦИИ ЧУВСТВИТЕЛЬНОСТИ ПОЧВЕННОЙ НЕМАТОДЫ Caenorhabditis elegans К ТОКСИЧЕСКОМУ ДЕЙСТВИЮ ИОНОВ СВИНЦА
Проведено изучение возможной роли рецепторов дофамина DOP-1, DOP-2 и DOP-3 в модуляции чувствительности почвенной нематоды Caenorhabditis elegans к токсическому действию нитрата св...
Mechanism of cleavage and ligation by FLP recombinase: classification of mutations in FLP protein by in vitro complementation analysis.
Mechanism of cleavage and ligation by FLP recombinase: classification of mutations in FLP protein by in vitro complementation analysis.
The FLP recombinase of the 2 microns plasmid of Saccharomyces cerevisiae is a member of the integrase family of site-specific recombinases. Recombination catalyzed by members of th...
7
th
International Symposium on Enabling Technologies for Life Sciences (ETP)
7
th
International Symposium on Enabling Technologies for Life Sciences (ETP)
The seventh in the series of ETP Symposia (see
Rapid Communications in Mass Spectrometry
2012,
26
, ...
FLP-15 modulates the amplitude of body bends during locomotion in
Caenorhabditis elegans
FLP-15 modulates the amplitude of body bends during locomotion in
Caenorhabditis elegans
Abstract
Locomotion is essential for executing most behaviours. In
Caenorhabditis elegans
. Efficient locomot...
Photocaged FLP Recombinase for Precise Spatio-temporal Control of Gene Expression
Photocaged FLP Recombinase for Precise Spatio-temporal Control of Gene Expression
ABSTRACT
The ability to precisely control gene expression is fundamental to studying biological processes. Using site-specific recombinases such ...
An efficient FLP-based toolkit for spatiotemporal control of gene expression in
Caenorhabditis elegans
An efficient FLP-based toolkit for spatiotemporal control of gene expression in
Caenorhabditis elegans
Abstract
Site-specific recombinases are potent tools to regulate gene expression. In particular, the Cre and FLP enzymes are widely used to eithe...
Holliday junctions in FLP recombination: resolution by step-arrest mutants of FLP protein.
Holliday junctions in FLP recombination: resolution by step-arrest mutants of FLP protein.
The FLP "recombinase" of the 2-micron circle yeast plasmid can resolve synthetic FLP site-Holliday junctions. Mutants of the FLP protein that are blocked in recombination but are n...
Regulated Expression of Yeast FLP Recombinase in Plant Cells
Regulated Expression of Yeast FLP Recombinase in Plant Cells
Research activities in both our laboratories were directed toward development of control of the FLP/frt recombination system for plants. As described in the text of the research pr...

