RNA Purification

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Howard Y Chang - One of the best experts on this subject based on the ideXlab platform.

  • understanding RNA chromatin interactions using chromatin isolation by RNA Purification chirp
    Methods of Molecular Biology, 2016
    Co-Authors: Ci Chu, Howard Y Chang
    Abstract:

    ChIRP is a novel and easy-to-use technique for studying long noncoding RNA (lncRNA)-chromatin interactions. RNA and chromatin are cross-linked in vivo using formaldehyde or glutaraldehyde, and purified using biotinylated antisense oligonucleotides that hybridize to the target RNA. Co-precipitated DNA is then purified and analyzed by quantitative PCR (qPCR) or high-throughput sequencing.

  • in situ dissection of RNA functional subunits by domain specific chromatin isolation by RNA Purification dchirp
    Methods of Molecular Biology, 2015
    Co-Authors: Jeffrey J Quinn, Howard Y Chang
    Abstract:

    Here we describe domain-specific chromatin isolation by RNA Purification (dChIRP), a technique for dissecting the functional domains of a target RNA in situ. For an RNA of interest, dChIRP can identify domain-level intramolecular and intermolecular RNA-RNA, RNA-protein, and RNA-DNA interactions and maps the RNA's genomic binding sites with higher precision than domain-agnostic methods. We illustrate how this technique has been applied to the roX1 lncRNA to resolve its domain-level architecture, discover its protein- and chromatin-interacting domains, and map its occupancy on the X chromosome.

  • revealing long noncoding RNA architecture and functions using domain specific chromatin isolation by RNA Purification
    Nature Biotechnology, 2014
    Co-Authors: Jeffrey J Quinn, Ibrahim Avsar Ilik, Kun Qu, Plamen Georgiev, Ci Chu, Asifa Akhtar, Howard Y Chang
    Abstract:

    Domain-specific chromatin isolation by RNA Purification (dChIRP) identifies interacting partners of functional regions of long noncoding RNAs.

  • revealing long noncoding RNA architecture and functions using domain specific chromatin isolation by RNA Purification
    Nature Biotechnology, 2014
    Co-Authors: Jeffrey J Quinn, Ibrahim Avsar Ilik, Plamen Georgiev, Ci Chu, Asifa Akhtar, Howard Y Chang
    Abstract:

    Little is known about the functional domain architecture of long noncoding RNAs (lncRNAs) because of a relative paucity of suitable methods to analyze RNA function at a domain level. Here we describe domain-specific chromatin isolation by RNA Purification (dChIRP), a scalable technique to dissect pairwise RNA-RNA, RNA-protein and RNA-chromatin interactions at the level of individual RNA domains in living cells. dChIRP of roX1, a lncRNA essential for Drosophila melanogaster X-chromosome dosage compensation, reveals a 'three-fingered hand' ribonucleoprotein topology. Each RNA finger binds chromatin and the male-specific lethal (MSL) protein complex and can individually rescue male lethality in roX-null flies, thus defining a minimal RNA domain for chromosome-wide dosage compensation. dChIRP improves the RNA genomic localization signal by >20-fold relative to previous techniques, and these binding sites are correlated with chromosome conformation data, indicating that most roX-bound loci cluster in a nuclear territory. These results suggest dChIRP can reveal lncRNA architecture and function with high precision and sensitivity.

  • chromatin isolation by RNA Purification chirp
    Journal of Visualized Experiments, 2012
    Co-Authors: Ci Chu, Jeffrey J Quinn, Howard Y Chang
    Abstract:

    Long noncoding RNAs are key regulators of chromatin states for important biological processes such as dosage compensation, imprinting, and developmental gene expression 1,2,3,4,5,6,7. The recent discovery of thousands of lncRNAs in association with specific chromatin modification complexes, such as Polycomb Repressive Complex 2 (PRC2) that mediates histone H3 lysine 27 trimethylation (H3K27me3), suggests broad roles for numerous lncRNAs in managing chromatin states in a gene-specific fashion 8,9. While some lncRNAs are thought to work in cis on neighboring genes, other lncRNAs work in trans to regulate distantly located genes. For instance, Drosophila lncRNAs roX1 and roX2 bind numerous regions on the X chromosome of male cells, and are critical for dosage compensation 10,11. However, the exact locations of their binding sites are not known at high resolution. Similarly, human lncRNA HOTAIR can affect PRC2 occupancy on hundreds of genes genome-wide 3,12,13, but how specificity is achieved is unclear. LncRNAs can also serve as modular scaffolds to recruit the assembly of multiple protein complexes. The classic trans-acting RNA scaffold is the TERC RNA that serves as the template and scaffold for the telomerase complex 14; HOTAIR can also serve as a scaffold for PRC2 and a H3K4 demethylase complex 13. Prior studies mapping RNA occupancy at chromatin have revealed substantial insights 15,16, but only at a single gene locus at a time. The occupancy sites of most lncRNAs are not known, and the roles of lncRNAs in chromatin regulation have been mostly inferred from the indirect effects of lncRNA perturbation. Just as chromatin immunoprecipitation followed by microarray or deep sequencing (ChIP-chip or ChIP-seq, respectively) has greatly improved our understanding of protein-DNA interactions on a genomic scale, here we illustrate a recently published strategy to map long RNA occupancy genome-wide at high resolution 17. This method, Chromatin Isolation by RNA Purification (ChIRP) (Figure 1), is based on affinity capture of target lncRNA:chromatin complex by tiling antisense-oligos, which then generates a map of genomic binding sites at a resolution of several hundred bases with high sensitivity and low background. ChIRP is applicable to many lncRNAs because the design of affinity-probes is straightforward given the RNA sequence and requires no knowledge of the RNA's structure or functional domains.

Ci Chu - One of the best experts on this subject based on the ideXlab platform.

  • understanding RNA chromatin interactions using chromatin isolation by RNA Purification chirp
    Methods of Molecular Biology, 2016
    Co-Authors: Ci Chu, Howard Y Chang
    Abstract:

    ChIRP is a novel and easy-to-use technique for studying long noncoding RNA (lncRNA)-chromatin interactions. RNA and chromatin are cross-linked in vivo using formaldehyde or glutaraldehyde, and purified using biotinylated antisense oligonucleotides that hybridize to the target RNA. Co-precipitated DNA is then purified and analyzed by quantitative PCR (qPCR) or high-throughput sequencing.

  • revealing long noncoding RNA architecture and functions using domain specific chromatin isolation by RNA Purification
    Nature Biotechnology, 2014
    Co-Authors: Jeffrey J Quinn, Ibrahim Avsar Ilik, Kun Qu, Plamen Georgiev, Ci Chu, Asifa Akhtar, Howard Y Chang
    Abstract:

    Domain-specific chromatin isolation by RNA Purification (dChIRP) identifies interacting partners of functional regions of long noncoding RNAs.

  • revealing long noncoding RNA architecture and functions using domain specific chromatin isolation by RNA Purification
    Nature Biotechnology, 2014
    Co-Authors: Jeffrey J Quinn, Ibrahim Avsar Ilik, Plamen Georgiev, Ci Chu, Asifa Akhtar, Howard Y Chang
    Abstract:

    Little is known about the functional domain architecture of long noncoding RNAs (lncRNAs) because of a relative paucity of suitable methods to analyze RNA function at a domain level. Here we describe domain-specific chromatin isolation by RNA Purification (dChIRP), a scalable technique to dissect pairwise RNA-RNA, RNA-protein and RNA-chromatin interactions at the level of individual RNA domains in living cells. dChIRP of roX1, a lncRNA essential for Drosophila melanogaster X-chromosome dosage compensation, reveals a 'three-fingered hand' ribonucleoprotein topology. Each RNA finger binds chromatin and the male-specific lethal (MSL) protein complex and can individually rescue male lethality in roX-null flies, thus defining a minimal RNA domain for chromosome-wide dosage compensation. dChIRP improves the RNA genomic localization signal by >20-fold relative to previous techniques, and these binding sites are correlated with chromosome conformation data, indicating that most roX-bound loci cluster in a nuclear territory. These results suggest dChIRP can reveal lncRNA architecture and function with high precision and sensitivity.

  • chromatin isolation by RNA Purification chirp
    Journal of Visualized Experiments, 2012
    Co-Authors: Ci Chu, Jeffrey J Quinn, Howard Y Chang
    Abstract:

    Long noncoding RNAs are key regulators of chromatin states for important biological processes such as dosage compensation, imprinting, and developmental gene expression 1,2,3,4,5,6,7. The recent discovery of thousands of lncRNAs in association with specific chromatin modification complexes, such as Polycomb Repressive Complex 2 (PRC2) that mediates histone H3 lysine 27 trimethylation (H3K27me3), suggests broad roles for numerous lncRNAs in managing chromatin states in a gene-specific fashion 8,9. While some lncRNAs are thought to work in cis on neighboring genes, other lncRNAs work in trans to regulate distantly located genes. For instance, Drosophila lncRNAs roX1 and roX2 bind numerous regions on the X chromosome of male cells, and are critical for dosage compensation 10,11. However, the exact locations of their binding sites are not known at high resolution. Similarly, human lncRNA HOTAIR can affect PRC2 occupancy on hundreds of genes genome-wide 3,12,13, but how specificity is achieved is unclear. LncRNAs can also serve as modular scaffolds to recruit the assembly of multiple protein complexes. The classic trans-acting RNA scaffold is the TERC RNA that serves as the template and scaffold for the telomerase complex 14; HOTAIR can also serve as a scaffold for PRC2 and a H3K4 demethylase complex 13. Prior studies mapping RNA occupancy at chromatin have revealed substantial insights 15,16, but only at a single gene locus at a time. The occupancy sites of most lncRNAs are not known, and the roles of lncRNAs in chromatin regulation have been mostly inferred from the indirect effects of lncRNA perturbation. Just as chromatin immunoprecipitation followed by microarray or deep sequencing (ChIP-chip or ChIP-seq, respectively) has greatly improved our understanding of protein-DNA interactions on a genomic scale, here we illustrate a recently published strategy to map long RNA occupancy genome-wide at high resolution 17. This method, Chromatin Isolation by RNA Purification (ChIRP) (Figure 1), is based on affinity capture of target lncRNA:chromatin complex by tiling antisense-oligos, which then generates a map of genomic binding sites at a resolution of several hundred bases with high sensitivity and low background. ChIRP is applicable to many lncRNAs because the design of affinity-probes is straightforward given the RNA sequence and requires no knowledge of the RNA's structure or functional domains.

  • genomic maps of long noncoding RNA occupancy reveal principles of RNA chromatin interactions
    Molecular Cell, 2011
    Co-Authors: Ci Chu, Frankli L Zhong, Steve E Artandi, Howard Y Chang
    Abstract:

    Long noncoding RNAs (lncRNAs) are key regulators of chromatin state, yet the nature and sites of RNA-chromatin interaction are mostly unknown. Here we introduce Chromatin Isolation by RNA Purification (ChIRP), where tiling oligonucleotides retrieve specific lncRNAs with bound protein and DNA sequences, which are enumerated by deep sequencing. ChIRP-seq of three lncRNAs reveal that RNA occupancy sites in the genome are focal, sequence-specific, and numerous. Drosophila roX2 RNA occupies male X-linked gene bodies with increasing tendency toward the 3' end, peaking at CES sites. Human telomerase RNA TERC occupies telomeres and Wnt pathway genes. HOTAIR lncRNA preferentially occupies a GA-rich DNA motif to nucleate broad domains of Polycomb occupancy and histone H3 lysine 27 trimethylation. HOTAIR occupancy occurs independently of EZH2, suggesting the order of RNA guidance of Polycomb occupancy. ChIRP-seq is generally applicable to illuminate the intersection of RNA and chromatin with newfound precision genome wide.

Jeffrey J Quinn - One of the best experts on this subject based on the ideXlab platform.

  • in situ dissection of RNA functional subunits by domain specific chromatin isolation by RNA Purification dchirp
    Methods of Molecular Biology, 2015
    Co-Authors: Jeffrey J Quinn, Howard Y Chang
    Abstract:

    Here we describe domain-specific chromatin isolation by RNA Purification (dChIRP), a technique for dissecting the functional domains of a target RNA in situ. For an RNA of interest, dChIRP can identify domain-level intramolecular and intermolecular RNA-RNA, RNA-protein, and RNA-DNA interactions and maps the RNA's genomic binding sites with higher precision than domain-agnostic methods. We illustrate how this technique has been applied to the roX1 lncRNA to resolve its domain-level architecture, discover its protein- and chromatin-interacting domains, and map its occupancy on the X chromosome.

  • revealing long noncoding RNA architecture and functions using domain specific chromatin isolation by RNA Purification
    Nature Biotechnology, 2014
    Co-Authors: Jeffrey J Quinn, Ibrahim Avsar Ilik, Kun Qu, Plamen Georgiev, Ci Chu, Asifa Akhtar, Howard Y Chang
    Abstract:

    Domain-specific chromatin isolation by RNA Purification (dChIRP) identifies interacting partners of functional regions of long noncoding RNAs.

  • revealing long noncoding RNA architecture and functions using domain specific chromatin isolation by RNA Purification
    Nature Biotechnology, 2014
    Co-Authors: Jeffrey J Quinn, Ibrahim Avsar Ilik, Plamen Georgiev, Ci Chu, Asifa Akhtar, Howard Y Chang
    Abstract:

    Little is known about the functional domain architecture of long noncoding RNAs (lncRNAs) because of a relative paucity of suitable methods to analyze RNA function at a domain level. Here we describe domain-specific chromatin isolation by RNA Purification (dChIRP), a scalable technique to dissect pairwise RNA-RNA, RNA-protein and RNA-chromatin interactions at the level of individual RNA domains in living cells. dChIRP of roX1, a lncRNA essential for Drosophila melanogaster X-chromosome dosage compensation, reveals a 'three-fingered hand' ribonucleoprotein topology. Each RNA finger binds chromatin and the male-specific lethal (MSL) protein complex and can individually rescue male lethality in roX-null flies, thus defining a minimal RNA domain for chromosome-wide dosage compensation. dChIRP improves the RNA genomic localization signal by >20-fold relative to previous techniques, and these binding sites are correlated with chromosome conformation data, indicating that most roX-bound loci cluster in a nuclear territory. These results suggest dChIRP can reveal lncRNA architecture and function with high precision and sensitivity.

  • chromatin isolation by RNA Purification chirp
    Journal of Visualized Experiments, 2012
    Co-Authors: Ci Chu, Jeffrey J Quinn, Howard Y Chang
    Abstract:

    Long noncoding RNAs are key regulators of chromatin states for important biological processes such as dosage compensation, imprinting, and developmental gene expression 1,2,3,4,5,6,7. The recent discovery of thousands of lncRNAs in association with specific chromatin modification complexes, such as Polycomb Repressive Complex 2 (PRC2) that mediates histone H3 lysine 27 trimethylation (H3K27me3), suggests broad roles for numerous lncRNAs in managing chromatin states in a gene-specific fashion 8,9. While some lncRNAs are thought to work in cis on neighboring genes, other lncRNAs work in trans to regulate distantly located genes. For instance, Drosophila lncRNAs roX1 and roX2 bind numerous regions on the X chromosome of male cells, and are critical for dosage compensation 10,11. However, the exact locations of their binding sites are not known at high resolution. Similarly, human lncRNA HOTAIR can affect PRC2 occupancy on hundreds of genes genome-wide 3,12,13, but how specificity is achieved is unclear. LncRNAs can also serve as modular scaffolds to recruit the assembly of multiple protein complexes. The classic trans-acting RNA scaffold is the TERC RNA that serves as the template and scaffold for the telomerase complex 14; HOTAIR can also serve as a scaffold for PRC2 and a H3K4 demethylase complex 13. Prior studies mapping RNA occupancy at chromatin have revealed substantial insights 15,16, but only at a single gene locus at a time. The occupancy sites of most lncRNAs are not known, and the roles of lncRNAs in chromatin regulation have been mostly inferred from the indirect effects of lncRNA perturbation. Just as chromatin immunoprecipitation followed by microarray or deep sequencing (ChIP-chip or ChIP-seq, respectively) has greatly improved our understanding of protein-DNA interactions on a genomic scale, here we illustrate a recently published strategy to map long RNA occupancy genome-wide at high resolution 17. This method, Chromatin Isolation by RNA Purification (ChIRP) (Figure 1), is based on affinity capture of target lncRNA:chromatin complex by tiling antisense-oligos, which then generates a map of genomic binding sites at a resolution of several hundred bases with high sensitivity and low background. ChIRP is applicable to many lncRNAs because the design of affinity-probes is straightforward given the RNA sequence and requires no knowledge of the RNA's structure or functional domains.

Asifa Akhtar - One of the best experts on this subject based on the ideXlab platform.

  • revealing long noncoding RNA architecture and functions using domain specific chromatin isolation by RNA Purification
    Nature Biotechnology, 2014
    Co-Authors: Jeffrey J Quinn, Ibrahim Avsar Ilik, Kun Qu, Plamen Georgiev, Ci Chu, Asifa Akhtar, Howard Y Chang
    Abstract:

    Domain-specific chromatin isolation by RNA Purification (dChIRP) identifies interacting partners of functional regions of long noncoding RNAs.

  • revealing long noncoding RNA architecture and functions using domain specific chromatin isolation by RNA Purification
    Nature Biotechnology, 2014
    Co-Authors: Jeffrey J Quinn, Ibrahim Avsar Ilik, Plamen Georgiev, Ci Chu, Asifa Akhtar, Howard Y Chang
    Abstract:

    Little is known about the functional domain architecture of long noncoding RNAs (lncRNAs) because of a relative paucity of suitable methods to analyze RNA function at a domain level. Here we describe domain-specific chromatin isolation by RNA Purification (dChIRP), a scalable technique to dissect pairwise RNA-RNA, RNA-protein and RNA-chromatin interactions at the level of individual RNA domains in living cells. dChIRP of roX1, a lncRNA essential for Drosophila melanogaster X-chromosome dosage compensation, reveals a 'three-fingered hand' ribonucleoprotein topology. Each RNA finger binds chromatin and the male-specific lethal (MSL) protein complex and can individually rescue male lethality in roX-null flies, thus defining a minimal RNA domain for chromosome-wide dosage compensation. dChIRP improves the RNA genomic localization signal by >20-fold relative to previous techniques, and these binding sites are correlated with chromosome conformation data, indicating that most roX-bound loci cluster in a nuclear territory. These results suggest dChIRP can reveal lncRNA architecture and function with high precision and sensitivity.

Plamen Georgiev - One of the best experts on this subject based on the ideXlab platform.

  • revealing long noncoding RNA architecture and functions using domain specific chromatin isolation by RNA Purification
    Nature Biotechnology, 2014
    Co-Authors: Jeffrey J Quinn, Ibrahim Avsar Ilik, Kun Qu, Plamen Georgiev, Ci Chu, Asifa Akhtar, Howard Y Chang
    Abstract:

    Domain-specific chromatin isolation by RNA Purification (dChIRP) identifies interacting partners of functional regions of long noncoding RNAs.

  • revealing long noncoding RNA architecture and functions using domain specific chromatin isolation by RNA Purification
    Nature Biotechnology, 2014
    Co-Authors: Jeffrey J Quinn, Ibrahim Avsar Ilik, Plamen Georgiev, Ci Chu, Asifa Akhtar, Howard Y Chang
    Abstract:

    Little is known about the functional domain architecture of long noncoding RNAs (lncRNAs) because of a relative paucity of suitable methods to analyze RNA function at a domain level. Here we describe domain-specific chromatin isolation by RNA Purification (dChIRP), a scalable technique to dissect pairwise RNA-RNA, RNA-protein and RNA-chromatin interactions at the level of individual RNA domains in living cells. dChIRP of roX1, a lncRNA essential for Drosophila melanogaster X-chromosome dosage compensation, reveals a 'three-fingered hand' ribonucleoprotein topology. Each RNA finger binds chromatin and the male-specific lethal (MSL) protein complex and can individually rescue male lethality in roX-null flies, thus defining a minimal RNA domain for chromosome-wide dosage compensation. dChIRP improves the RNA genomic localization signal by >20-fold relative to previous techniques, and these binding sites are correlated with chromosome conformation data, indicating that most roX-bound loci cluster in a nuclear territory. These results suggest dChIRP can reveal lncRNA architecture and function with high precision and sensitivity.