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1.
Stem Cell Reports ; 18(1): 394-409, 2023 01 10.
Article in English | MEDLINE | ID: mdl-36525967

ABSTRACT

Rats were more frequently used than mice to model human disease before mouse embryonic stem cells (mESCs) revolutionized genetic engineering in mice. Rat ESCs (rESCs) were first reported over 10 years ago, yet they are not as frequently used as mESCs. CRISPR-based gene editing in zygotes is widely used in rats but is limited by the difficulty of inserting or replacing DNA sequences larger than about 10 kb. We report here the generation of germline-competent rESC lines from several rat strains. These rESC lines maintain their potential for germline transmission after serial targeting with bacterial artificial chromosome (BAC)-based targeting vectors, and CRISPR-Cas9 cutting can increase targeting efficiency. Using these methods, we have successfully replaced entire rat genes spanning up to 101 kb with the human ortholog.


Subject(s)
Embryonic Stem Cells , Retinal Degeneration , Humans , Rats , Animals , Mice , Gene Editing , Genetic Engineering , CRISPR-Cas Systems/genetics
2.
Sci Rep ; 12(1): 14079, 2022 08 18.
Article in English | MEDLINE | ID: mdl-35982097

ABSTRACT

Humanized liver rodent models, in which the host liver parenchyma is repopulated by human hepatocytes, have been increasingly used for drug development and disease research. Unlike the leading humanized liver mouse model in which Fumarylacetoacetate Hydrolase (Fah), Recombination Activating Gene (Rag)-2 and Interleukin-2 Receptor Gamma (Il2rg) genes were inactivated simultaneously, generation of similar recipient rats has been challenging. Here, using Velocigene and 1-cell-embryo-targeting technologies, we generated a rat model deficient in Fah, Rag1/2 and Il2rg genes, similar to humanized liver mice. These rats were efficiently engrafted with Fah-expressing hepatocytes from rat, mouse and human. Humanized liver rats expressed human albumin and complement proteins in serum and showed a normal liver zonation pattern. Further, approaches were developed for gene delivery through viral transduction of human hepatocytes either in vivo, or in vitro prior to engraftment, providing a novel platform to study liver disease and hepatocyte-targeted therapies.


Subject(s)
Hepatocytes , Liver Diseases , Animals , Disease Models, Animal , Hepatocytes/metabolism , Humans , Liver/metabolism , Liver Diseases/metabolism , Mice , Rats
3.
Mol Ther ; 29(12): 3512-3524, 2021 12 01.
Article in English | MEDLINE | ID: mdl-34400331

ABSTRACT

Lysosomal diseases are a class of genetic disorders predominantly caused by loss of lysosomal hydrolases, leading to lysosomal and cellular dysfunction. Enzyme replacement therapy (ERT), where recombinant enzyme is given intravenously, internalized by cells, and trafficked to the lysosome, has been applied to treat several lysosomal diseases. However, current ERT regimens do not correct disease phenotypes in all affected organs because the biodistribution of enzyme uptake does not match that of the affected cells that require the enzyme. We present here targeted ERT, an approach that utilizes antibody-enzyme fusion proteins to target the enzyme to specific cell types. The antibody moiety recognizes transmembrane proteins involved in lysosomal trafficking and that are also preferentially expressed in those cells most affected in disease. Using Pompe disease (PD) as an example, we show that targeted ERT is superior to ERT in treating the skeletal muscle phenotypes of PD mice both as a protein replacement therapeutic and as a gene therapy.


Subject(s)
Glycogen Storage Disease Type II , Lysosomal Storage Diseases , Animals , Enzyme Replacement Therapy , Glycogen Storage Disease Type II/drug therapy , Glycogen Storage Disease Type II/genetics , Hydrolases/metabolism , Lysosomal Storage Diseases/drug therapy , Lysosomal Storage Diseases/genetics , Lysosomes/metabolism , Mice , Tissue Distribution , alpha-Glucosidases/genetics
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