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1.
Nucleic Acids Res ; 52(10): 5732-5755, 2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38597682

ABSTRACT

Expansion of a G4C2 repeat in the C9orf72 gene is associated with familial Amyotrophic Lateral Sclerosis (ALS) and Frontotemporal Dementia (FTD). To investigate the underlying mechanisms of repeat instability, which occurs both somatically and intergenerationally, we created a novel mouse model of familial ALS/FTD that harbors 96 copies of G4C2 repeats at a humanized C9orf72 locus. In mouse embryonic stem cells, we observed two modes of repeat expansion. First, we noted minor increases in repeat length per expansion event, which was dependent on a mismatch repair pathway protein Msh2. Second, we found major increases in repeat length per event when a DNA double- or single-strand break (DSB/SSB) was artificially introduced proximal to the repeats, and which was dependent on the homology-directed repair (HDR) pathway. In mice, the first mode primarily drove somatic repeat expansion. Major changes in repeat length, including expansion, were observed when SSB was introduced in one-cell embryos, or intergenerationally without DSB/SSB introduction if G4C2 repeats exceeded 400 copies, although spontaneous HDR-mediated expansion has yet to be identified. These findings provide a novel strategy to model repeat expansion in a non-human genome and offer insights into the mechanism behind C9orf72 G4C2 repeat instability.


Subject(s)
C9orf72 Protein , DNA Repeat Expansion , Genomic Instability , Animals , Humans , Mice , Amyotrophic Lateral Sclerosis/genetics , C9orf72 Protein/genetics , Disease Models, Animal , DNA Breaks, Double-Stranded , DNA Repeat Expansion/genetics , Frontotemporal Dementia/genetics , Gene Knock-In Techniques , Genomic Instability/genetics , MutS Homolog 2 Protein/genetics
2.
Nat Commun ; 12(1): 2770, 2021 05 13.
Article in English | MEDLINE | ID: mdl-33986266

ABSTRACT

CRISPR-based transcriptional activation is a powerful tool for functional gene interrogation; however, delivery difficulties have limited its applications in vivo. Here, we created a mouse model expressing all components of the CRISPR-Cas9 guide RNA-directed Synergistic Activation Mediator (SAM) from a single transcript that is capable of activating target genes in a tissue-specific manner. We optimized Lipid Nanoparticles and Adeno-Associated Virus guide RNA delivery approaches to achieve expression modulation of one or more genes in vivo. We utilized the SAM mouse model to generate a hypercholesteremia disease state that we could bidirectionally modulate with various guide RNAs. Additionally, we applied SAM to optimize gene expression in a humanized Transthyretin mouse model to recapitulate human expression levels. These results demonstrate that the SAM gene activation platform can facilitate in vivo research and drug discovery.


Subject(s)
CRISPR-Cas Systems/genetics , Hypercholesterolemia/genetics , Liposomes/pharmacology , Prealbumin/metabolism , Transcriptional Activation/genetics , Animals , Cell Line , Gene Expression/genetics , Gene Expression Regulation/genetics , Genetic Engineering/methods , HEK293 Cells , Humans , Hypercholesterolemia/pathology , Mice , Mice, Inbred C57BL , Mice, Transgenic , Nanoparticles , Prealbumin/genetics , RNA, Guide, Kinetoplastida/genetics , RNA, Guide, Kinetoplastida/metabolism
3.
PLoS One ; 10(4): e0125522, 2015.
Article in English | MEDLINE | ID: mdl-25909911

ABSTRACT

In a survey of 20 knockout mouse lines designed to examine the biological functions of large intergenic non-coding RNAs (lincRNAs), we have found a variety of phenotypes, ranging from perinatal lethality to defects associated with premature aging and morphological and functional abnormalities in the lungs, skeleton, and muscle. Each mutant allele carried a lacZ reporter whose expression profile highlighted a wide spectrum of spatiotemporal and tissue-specific transcription patterns in embryos and adults that informed our phenotypic analyses and will serve as a guide for future investigations of these genes. Our study shows that lincRNAs are a new class of encoded molecules that, like proteins, serve essential and important functional roles in embryonic development, physiology, and homeostasis of a broad array of tissues and organs in mammals.


Subject(s)
RNA, Long Noncoding/genetics , Transcription, Genetic/genetics , Transcriptome/genetics , Alleles , Animals , Embryonic Development/genetics , Female , Genes, Reporter/genetics , Male , Mammals/genetics , Membrane Transport Proteins/genetics , Mice , Mice, Inbred C57BL , Mice, Knockout , Phenotype
4.
Breast Cancer Res ; 15(6): R111, 2013 Nov 21.
Article in English | MEDLINE | ID: mdl-24262428

ABSTRACT

INTRODUCTION: Latent TGFß binding proteins (LTBPs) govern TGFß presentation and activation and are important for elastogenesis. Although TGFß is well-known as a tumor suppressor and metastasis promoter, and LTBP1 is elevated in two distinct breast cancer metastasis signatures, LTBPs have not been studied in the normal mammary gland. METHODS: To address this we have examined Ltbp1 promoter activity throughout mammary development using an Ltbp1L-LacZ reporter as well as expression of both Ltbp1L and 1S mRNA and protein by qRT-PCR, immunofluorescence and flow cytometry. RESULTS: Our data show that Ltbp1L is transcribed coincident with lumen formation, providing a rare marker distinguishing ductal from alveolar luminal lineages. Ltbp1L and Ltbp1S are silent during lactation but robustly induced during involution, peaking at the stage when the remodeling process becomes irreversible. Ltbp1L is also induced within the embryonic mammary mesenchyme and maintained within nipple smooth muscle cells and myofibroblasts. Ltbp1 protein exclusively ensheaths ducts and side branches. CONCLUSIONS: These data show Ltbp1 is transcriptionally regulated in a dynamic manner that is likely to impose significant spatial restriction on TGFß bioavailability during mammary development. We hypothesize that Ltbp1 functions in a mechanosensory capacity to establish and maintain ductal luminal cell fate, support and detect ductal distension, trigger irreversible involution, and facilitate nipple sphincter function.


Subject(s)
Latent TGF-beta Binding Proteins/metabolism , Mammary Glands, Animal/cytology , Mammary Glands, Animal/embryology , Mesoderm/cytology , Animals , Cell Lineage , Cell Movement , Female , Gene Expression Regulation, Developmental , Lactation , Latent TGF-beta Binding Proteins/genetics , Mammary Glands, Animal/physiology , Mesoderm/metabolism , Mice, Inbred C57BL , Mice, Mutant Strains , Muscle, Smooth/cytology , Muscle, Smooth/embryology , Pregnancy , Promoter Regions, Genetic , Up-Regulation
5.
Proc Natl Acad Sci U S A ; 110(34): E3179-88, 2013 Aug 20.
Article in English | MEDLINE | ID: mdl-23918385

ABSTRACT

Conditional mutagenesis is becoming a method of choice for studying gene function, but constructing conditional alleles is often laborious, limited by target gene structure, and at times, prone to incomplete conditional ablation. To address these issues, we developed a technology termed conditionals by inversion (COIN). Before activation, COINs contain an inverted module (COIN module) that lies inertly within the antisense strand of a resident gene. When inverted into the sense strand by a site-specific recombinase, the COIN module causes termination of the target gene's transcription and simultaneously provides a reporter for tracking this event. COIN modules can be inserted into natural introns (intronic COINs) or directly into coding exons as part of an artificial intron (exonic COINs), greatly simplifying allele design and increasing flexibility over previous conditional KO approaches. Detailed analysis of over 20 COIN alleles establishes the reliability of the method and its broad applicability to any gene, regardless of exon-intron structure. Our extensive testing provides rules that help ensure success of this approach and also explains why other currently available conditional approaches often fail to function optimally. Finally, the ability to split exons using the COIN's artificial intron opens up engineering modalities for the generation of multifunctional alleles.


Subject(s)
Alleles , Gene Silencing , Genetic Engineering/methods , Mutagenesis, Insertional/methods , Sequence Inversion/genetics , DNA Nucleotidyltransferases/metabolism
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