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1.
Int J Mol Sci ; 23(11)2022 Jun 04.
Article in English | MEDLINE | ID: mdl-35682977

ABSTRACT

Pompe disease (PD) is a rare disorder caused by mutations in the acid alpha-glucosidase (GAA) gene. Most gene therapies (GT) partially rely on the cross-correction of unmodified cells through the uptake of the GAA enzyme secreted by corrected cells. In the present study, we generated isogenic murine GAA-KO cell lines resembling severe mutations from Pompe patients. All of the generated GAA-KO cells lacked GAA activity and presented an increased autophagy and increased glycogen content by means of myotube differentiation as well as the downregulation of mannose 6-phosphate receptors (CI-MPRs), validating them as models for PD. Additionally, different chimeric murine GAA proteins (IFG, IFLG and 2G) were designed with the aim to improve their therapeutic activity. Phenotypic rescue analyses using lentiviral vectors point to IFG chimera as the best candidate in restoring GAA activity, normalising the autophagic marker p62 and surface levels of CI-MPRs. Interestingly, in vivo administration of liver-directed AAVs expressing the chimeras further confirmed the good behaviour of IFG, achieving cross-correction in heart tissue. In summary, we generated different isogenic murine muscle cell lines mimicking the severe PD phenotype, as well as validating their applicability as preclinical models in order to reduce animal experimentation.


Subject(s)
Dependovirus , Glycogen Storage Disease Type II , Animals , Cell Line , Dependovirus/genetics , Disease Models, Animal , Genetic Therapy , Genetic Vectors/genetics , Glycogen Storage Disease Type II/genetics , Glycogen Storage Disease Type II/therapy , Humans , Mice , Mice, Knockout , Muscle Cells/metabolism , Muscle, Skeletal/metabolism , Mutation , alpha-Glucosidases/metabolism
2.
Cells ; 9(6)2020 06 18.
Article in English | MEDLINE | ID: mdl-32570971

ABSTRACT

In spite of the enormous potential of CRISPR/Cas in basic and applied science, the levels of undesired genomic modifications cells still remain mostly unknown and controversial. Nowadays, the efficiency and specificity of the cuts generated by CRISPR/Cas is the main concern. However, there are also other potential drawbacks when DNA donors are used for gene repair or gene knock-ins. These GE strategies should take into account not only the specificity of the nucleases, but also the fidelity of the DNA donor to carry out their function. The current methods to quantify the fidelity of DNA donor are costly and lack sensitivity to detect illegitimate DNA donor integrations. In this work, we have engineered two reporter cell lines (K562_SEWAS84 and K562GWP) that efficiently quantify both the on-target and the illegitimate DNA donor integrations in a WAS-locus targeting setting. K562_SEWAS84 cells allow the detection of both HDR-and HITI-based donor integration, while K562GWP cells only report HDR-based GE. To the best of our knowledge, these are the first reporter systems that allow the use of gRNAs targeting a relevant locus to measure efficacy and specificity of DNA donor-based GE strategies. By using these models, we have found that the specificity of HDR is independent of the delivery method and that the insertion of the target sequence into the DNA donor enhances efficiency but do not affect specificity. Finally, we have also shown that the higher the number of the target sites is, the higher the specificity and efficacy of GE will be.


Subject(s)
CRISPR-Cas Systems , Gene Editing/methods , Homologous Recombination , Models, Genetic , DNA, Recombinant/genetics , Gene Targeting/adverse effects , Gene Targeting/methods , Genes, Reporter , Genetic Engineering , Genetic Therapy/adverse effects , Genetic Therapy/methods , Genetic Vectors , Humans , K562 Cells , Lentivirus/genetics , Wiskott-Aldrich Syndrome Protein/genetics
3.
Stem Cells Transl Med ; 9(6): 674-685, 2020 06.
Article in English | MEDLINE | ID: mdl-32141715

ABSTRACT

Over recent decades, gene therapy, which has enabled the treatment of several incurable diseases, has undergone a veritable revolution. Cell therapy has also seen major advances in the treatment of various diseases, particularly through the use of adult stem cells (ASCs). The combination of gene and cell therapy (GCT) has opened up new opportunities to improve advanced therapy medicinal products for the treatment of several diseases. Despite the considerable potential of GCT, the use of retroviral vectors has major limitations with regard to oncogene transactivation and the lack of physiological expression. Recently, gene therapists have focused on genome editing (GE) technologies as an alternative strategy. In this review, we discuss the potential benefits of using GE technologies to improve GCT approaches based on ASCs. We will begin with a brief summary of different GE platforms and techniques and will then focus on key therapeutic approaches that have been successfully used to treat diseases in animal models. Finally, we discuss whether ASC GE could become a real alternative to retroviral vectors in a GCT setting.


Subject(s)
Adult Stem Cells/metabolism , Gene Editing , Genetic Therapy , Adult , Animals , Clinical Trials as Topic , Humans , Immunologic Memory
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