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1.
Pharmaceutics ; 16(6)2024 Jun 03.
Article in English | MEDLINE | ID: mdl-38931878

ABSTRACT

Rett syndrome (RTT) is a rare neurodevelopmental disorder caused by mutation in the X-linked gene methyl-CpG-binding protein 2 (Mecp2), a ubiquitously expressed transcriptional regulator. RTT results in mental retardation and developmental regression that affects approximately 1 in 10,000 females. Currently, there is no curative treatment for RTT. Thus, it is crucial to develop new therapeutic approaches for children suffering from RTT. Several studies suggested that RTT is linked with defects in cholesterol homeostasis, but for the first time, therapeutic evaluation is carried out by modulating this pathway. Moreover, AAV-based CYP46A1 overexpression, the enzyme involved in cholesterol pathway, has been demonstrated to be efficient in several neurodegenerative diseases. Based on these data, we strongly believe that CYP46A1 could be a relevant therapeutic target for RTT. Herein, we evaluated the effects of intravenous AAVPHP.eB-hCYP46A1-HA delivery in male and female Mecp2-deficient mice. The applied AAVPHP.eB-hCYP46A1 transduced essential neurons of the central nervous system (CNS). CYP46A1 overexpression alleviates behavioral alterations in both male and female Mecp2 knockout mice and extends the lifespan in Mecp2-deficient males. Several parameters related to cholesterol pathway are improved and correction of mitochondrial activity is demonstrated in treated mice, which highlighted the clear therapeutic benefit of CYP46A1 through the neuroprotection effect. IV delivery of AAVPHP.eB-CYP46A1 is perfectly well tolerated with no inflammation observed in the CNS of the treated mice. Altogether, our results strongly suggest that CYP46A1 is a relevant target and overexpression could alleviate the phenotype of Rett patients.

2.
J Control Release ; 352: 994-1008, 2022 12.
Article in English | MEDLINE | ID: mdl-36370877

ABSTRACT

Wireless powered optogenetic cell-based implant provides a strategy to deliver subcutaneously therapeutic proteins. Immortalize Human Mesenchymal Stem Cells (hMSC-TERT) expressing the bacteriophytochrome diguanylate cyclase (DGCL) were validated for optogenetic controlled interferon-ß delivery (Optoferon cells) in a bioelectronic cell-based implant. Optoferon cells transcriptomic profiling was used to elaborate an in-silico model of the recombinant interferon-ß production. Wireless optoelectronic device integration was developed using additive manufacturing and injection molding. Implant cell-based optoelectronic interface manufacturing was established to integrate industrial flexible compact low-resistance screen-printed Near Field Communication (NFC) coil antenna. Optogenetic cell-based implant biocompatibility, and device performances were evaluated in the Experimental Autoimmune Encephalomyelitis (EAE) mouse model of multiple sclerosis.


Subject(s)
Encephalomyelitis, Autoimmune, Experimental , Multiple Sclerosis , Mice , Animals , Humans , Multiple Sclerosis/therapy , Encephalomyelitis, Autoimmune, Experimental/therapy , Interferon-beta/genetics , Interferon-beta/metabolism , Disease Models, Animal , Gene Expression , Mice, Inbred C57BL
3.
EMBO Mol Med ; 14(8): e14759, 2022 08 08.
Article in English | MEDLINE | ID: mdl-35822550

ABSTRACT

Preventing neurodegeneration-associated disability progression in patients with multiple sclerosis (MS) remains an unmet therapeutic need. As remyelination prevents axonal degeneration, promoting this process in patients might enhance neuroprotection. In demyelinating mouse lesions, local overexpression of semaphorin 3F (Sema3F), an oligodendrocyte progenitor cell (OPC) attractant, increases remyelination. However, molecular targeting to MS lesions is a challenge. A clinically relevant paradigm for delivering Sema3F to demyelinating lesions could be to use blood-derived macrophages as vehicles. Thus, we chose transplantation of genetically modified hematopoietic stem cells (HSCs) as means of obtaining chimeric mice with circulating Sema3F-overexpressing monocytes. We demonstrated that Sema3F-transduced HSCs stimulate OPC migration in a neuropilin 2 (Nrp2, Sema3F receptor)-dependent fashion, which was conserved in middle-aged OPCs. While demyelinating lesions induced in mice with Sema3F-expressing blood cells showed no changes in inflammation and OPC survival, OPC recruitment was enhanced which accelerated the onset of remyelination. Our results provide a proof of concept that blood cells, particularly monocytes/macrophages, can be used to deliver pro-remyelinating agents "at the right time and place," suggesting novel means for remyelination-promoting strategies in MS.


Subject(s)
Multiple Sclerosis , Oligodendrocyte Precursor Cells , Remyelination , Animals , Cell Differentiation , Macrophages/pathology , Mice , Multiple Sclerosis/pathology , Myelin Sheath , Oligodendroglia
4.
Nat Med ; 28(3): 517-527, 2022 03.
Article in English | MEDLINE | ID: mdl-35190726

ABSTRACT

Hematopoietic stem cell transplantation (HSCT) is a therapy used for multiple malignant and nonmalignant diseases, with chemotherapy used for pretransplantation myeloablation. The post-HSCT brain contains peripheral engrafted parenchymal macrophages, despite their absence in the normal brain, with the engraftment mechanism still undefined. Here we show that HSCT chemotherapy broadly disrupts mouse brain regenerative populations, including a permanent loss of adult neurogenesis. Microglial density was halved, causing microglial process expansion, coinciding with indicators of broad senescence. Although microglia expressed cell proliferation markers, they underwent cell cycle arrest in S phase with a majority expressing the senescence and antiapoptotic marker p21. In vivo single-cell tracking of microglia after recovery from chemical depletion showed loss of their regenerative capacity, subsequently replaced with donor macrophages. We propose that HSCT chemotherapy causes microglial senescence with a gradual decrease to a critical microglial density, providing a permissive niche for peripheral macrophage engraftment of the brain.


Subject(s)
Hematopoietic Stem Cell Transplantation , Microglia , Animals , Brain , Macrophages , Mice , Transplantation Conditioning
5.
Mol Ther ; 26(2): 480-495, 2018 02 07.
Article in English | MEDLINE | ID: mdl-29221807

ABSTRACT

Although gene transfer to hematopoietic stem cells (HSCs) has shown therapeutic efficacy in recent trials for several individuals with inherited disorders, transduction incompleteness of the HSC population remains a hurdle to yield a cure for all patients with reasonably low integrated vector numbers. In previous attempts at HSC selection, massive loss of transduced HSCs, contamination with non-transduced cells, or lack of applicability to large cell populations has rendered the procedures out of reach for human applications. Here, we fused codon-optimized puromycin N-acetyltransferase to herpes simplex virus thymidine kinase. When expressed from a ubiquitous promoter within a complex lentiviral vector comprising the ßAT87Q-globin gene, viral titers and therapeutic gene expression were maintained at effective levels. Complete selection and preservation of transduced HSCs were achieved after brief exposure to puromycin in the presence of MDR1 blocking agents, suggesting the procedure's suitability for human clinical applications while affording the additional safety of conditional suicide.


Subject(s)
Genetic Therapy , Hematopoietic Stem Cell Transplantation , Hematopoietic Stem Cells/metabolism , Hemoglobinopathies/genetics , Hemoglobinopathies/therapy , Transduction, Genetic , beta-Globins/genetics , ATP Binding Cassette Transporter, Subfamily B/genetics , Animals , Disease Models, Animal , Gene Expression , Gene Order , Genes, Transgenic, Suicide , Genetic Therapy/methods , Genetic Vectors/genetics , Humans , Lentivirus/genetics , Mice , Mice, Transgenic , Transgenes
6.
Curr Gene Ther ; 15(1): 64-81, 2015.
Article in English | MEDLINE | ID: mdl-25429463

ABSTRACT

A previously published clinical trial demonstrated the benefit of autologous CD34(+) cells transduced with a selfinactivating lentiviral vector (HPV569) containing an engineered ß-globin gene (ß(A-T87Q)-globin) in a subject with ß thalassemia major. This vector has been modified to increase transduction efficacy without compromising safety. In vitro analyses indicated that the changes resulted in both increased vector titers (3 to 4 fold) and increased transduction efficacy (2 to 3 fold). An in vivo study in which 58 ß-thalassemic mice were transplanted with vector- or mock-transduced syngenic bone marrow cells indicated sustained therapeutic efficacy. Secondary transplantations involving 108 recipients were performed to evaluate long-term safety. The six month study showed no hematological or biochemical toxicity. Integration site (IS) profile revealed an oligo/polyclonal hematopoietic reconstitution in the primary transplants and reduced clonality in secondary transplants. Tumor cells were detected in the secondary transplant mice in all treatment groups (including the control group), without statistical differences in the tumor incidence. Immunohistochemistry and quantitative PCR demonstrated that tumor cells were not derived from transduced donor cells. This comprehensive efficacy and safety data provided the basis for initiating two clinical trials with this second generation vector (BB305) in Europe and in the USA in patients with ß-thalassemia major and sickle cell disease.


Subject(s)
Anemia, Sickle Cell/therapy , Genetic Therapy/methods , Genetic Vectors , Lentivirus/genetics , beta-Thalassemia/therapy , Anemia, Sickle Cell/genetics , Animals , Antigens, CD34/metabolism , Computational Biology , DNA Damage , Disease Models, Animal , Female , Gene Expression , Gene Transfer Techniques , Hematopoietic Stem Cell Transplantation , Male , Mice , Mice, Inbred C57BL , beta-Thalassemia/genetics
7.
Mol Ther ; 19(7): 1273-86, 2011 Jul.
Article in English | MEDLINE | ID: mdl-21386821

ABSTRACT

A lentiviral vector encoding ß-globin flanked by insulator elements has been used to treat ß-thalassemia (ß-Thal) successfully in one human subject. However, a clonal expansion was observed after integration in the HMGA2 locus, raising the question of how commonly lentiviral integration would be associated with possible insertional activation. Here, we report correcting ß-Thal in a murine model using the same vector and a busulfan-conditioning regimen, allowing us to investigate efficacy and clonal evolution at 9.2 months after transplantation of bone marrow cells. The five gene-corrected recipient mice showed near normal levels of hemoglobin, reduced accumulation of reticulocytes, and normalization of spleen weights. Mapping of integration sites pretransplantation showed the expected favored integration in transcription units. The numbers of gene-corrected long-term repopulating cells deduced from the numbers of unique integrants indicated oligoclonal reconstitution. Clonal abundance was quantified using a Mu transposon-mediated method, indicating that clones with integration sites near growth-control genes were not enriched during growth. No integration sites involving HMGA2 were detected. Cells containing integration sites in genes became less common after prolonged growth, suggesting negative selection. Thus, ß-Thal gene correction in mice can be achieved without expansion of cells harboring vectors integrated near genes involved in growth control.


Subject(s)
Genetic Vectors/genetics , Lentivirus/genetics , beta-Thalassemia/therapy , Animals , Bone Marrow Transplantation , Chromatography, High Pressure Liquid , Flow Cytometry , HMGA2 Protein/genetics , Mice , beta-Globins/genetics , beta-Globins/metabolism , beta-Thalassemia/genetics , beta-Thalassemia/metabolism
8.
Blood ; 117(20): 5321-31, 2011 May 19.
Article in English | MEDLINE | ID: mdl-21436071

ABSTRACT

A challenge for gene therapy of genetic diseases is to maintain corrected cell populations in subjects undergoing transplantation in cases in which the corrected cells do not have intrinsic selective advantage over nontransduced cells. For inherited hematopoietic disorders, limitations include inefficient transduction of stem cell pools, the requirement for toxic myelosuppression, and a lack of optimal methods for cell selection after transduction. Here, we have designed a lentiviral vector that encodes human ß-globin and a truncated erythropoietin receptor, both under erythroid-specific transcriptional control. This truncated receptor confers enhanced sensitivity to erythropoietin and a benign course in human carriers. Transplantation of marrow transduced with the vector into syngenic thalassemic mice, which have elevated plasma erythropoietin levels, resulted in long-term correction of the disease even at low ratios of transduced/untransduced cells. Amplification of the red over the white blood cell lineages was self-controlled and averaged ∼ 100-fold instead of ∼ 5-fold for ß-globin expression alone. There was no detectable amplification of white blood cells or alteration of hematopoietic homeostasis. Notwithstanding legitimate safety concerns in the context of randomly integrating vectors, this approach may prove especially valuable in combination with targeted integration or in situ homologous recombination/repair and may lower the required level of pretransplantation myelosuppression.


Subject(s)
Genetic Therapy/methods , beta-Thalassemia/therapy , Animals , Base Sequence , DNA Primers/genetics , Disease Models, Animal , Erythropoiesis/genetics , Gene Expression , Genetic Vectors , Hematopoietic Stem Cell Transplantation , Homeostasis , Humans , Lentivirus/genetics , Mice , Receptors, Erythropoietin/genetics , Recombinant Proteins/genetics , Transplantation, Isogeneic , beta-Globins/genetics , beta-Thalassemia/blood , beta-Thalassemia/genetics
9.
Nature ; 467(7313): 318-22, 2010 Sep 16.
Article in English | MEDLINE | ID: mdl-20844535

ABSTRACT

The ß-haemoglobinopathies are the most prevalent inherited disorders worldwide. Gene therapy of ß-thalassaemia is particularly challenging given the requirement for massive haemoglobin production in a lineage-specific manner and the lack of selective advantage for corrected haematopoietic stem cells. Compound ß(E)/ß(0)-thalassaemia is the most common form of severe thalassaemia in southeast Asian countries and their diasporas. The ß(E)-globin allele bears a point mutation that causes alternative splicing. The abnormally spliced form is non-coding, whereas the correctly spliced messenger RNA expresses a mutated ß(E)-globin with partial instability. When this is compounded with a non-functional ß(0) allele, a profound decrease in ß-globin synthesis results, and approximately half of ß(E)/ß(0)-thalassaemia patients are transfusion-dependent. The only available curative therapy is allogeneic haematopoietic stem cell transplantation, although most patients do not have a human-leukocyte-antigen-matched, geno-identical donor, and those who do still risk rejection or graft-versus-host disease. Here we show that, 33 months after lentiviral ß-globin gene transfer, an adult patient with severe ß(E)/ß(0)-thalassaemia dependent on monthly transfusions since early childhood has become transfusion independent for the past 21 months. Blood haemoglobin is maintained between 9 and 10 g dl(-1), of which one-third contains vector-encoded ß-globin. Most of the therapeutic benefit results from a dominant, myeloid-biased cell clone, in which the integrated vector causes transcriptional activation of HMGA2 in erythroid cells with further increased expression of a truncated HMGA2 mRNA insensitive to degradation by let-7 microRNAs. The clonal dominance that accompanies therapeutic efficacy may be coincidental and stochastic or result from a hitherto benign cell expansion caused by dysregulation of the HMGA2 gene in stem/progenitor cells.


Subject(s)
Blood Transfusion , Genetic Therapy , HMGA2 Protein/metabolism , beta-Globins/genetics , beta-Globins/metabolism , beta-Thalassemia/genetics , beta-Thalassemia/therapy , Adolescent , Blood Cells/cytology , Blood Cells/metabolism , Bone Marrow Cells/cytology , Bone Marrow Cells/metabolism , Child, Preschool , Clone Cells/metabolism , Gene Expression , Genetic Vectors/genetics , HMGA2 Protein/genetics , Homeostasis , Humans , Lentivirus/genetics , Male , MicroRNAs/genetics , Organ Specificity , RNA, Messenger/analysis , RNA, Messenger/genetics , Time Factors , Transcriptional Activation , Young Adult , beta-Thalassemia/metabolism
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