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1.
Mol Ther ; 32(4): 969-981, 2024 Apr 03.
Article in English | MEDLINE | ID: mdl-38341614

ABSTRACT

The ability to target the native production site of factor VIII (FVIII)-liver sinusoidal endothelial cells (LSECs)-can improve the outcome of hemophilia A (HA) gene therapy. By testing a matrix of ultrasound-mediated gene delivery (UMGD) parameters for delivering a GFP plasmid into the livers of HA mice, we were able to define specific conditions for targeted gene delivery to different cell types in the liver. Subsequently, two conditions were selected for experiments to treat HA mice via UMGD of an endothelial-specific human FVIII plasmid: low energy (LE; 50 W/cm2, 150 µs pulse duration) to predominantly target endothelial cells or high energy (HE; 110 W/cm2, 150 µs pulse duration) to predominantly target hepatocytes. Both groups of UMGD-treated mice achieved persistent FVIII activity levels of ∼10% over 84 days post treatment; however, half of the HE-treated mice developed low-titer inhibitors while none of the LE mice did. Plasma transaminase levels and histological liver examinations revealed minimal transient liver damage that was lower in the LE group than in the HE group. These results indicate that UMGD can safely target LSECs with a lower-energy condition to achieve persistent FVIII gene expression, demonstrating that this novel technology is highly promising for therapeutic correction of HA.


Subject(s)
Factor VIII , Hemophilia A , Humans , Factor VIII/metabolism , Hemophilia A/genetics , Hemophilia A/therapy , Hemophilia A/pathology , Endothelial Cells/metabolism , Hepatocytes/metabolism , Liver/metabolism , Genetic Therapy/methods
2.
Blood Adv ; 6(12): 3557-3568, 2022 06 28.
Article in English | MEDLINE | ID: mdl-35427415

ABSTRACT

A safe, effective, and inclusive gene therapy will significantly benefit a large population of patients with hemophilia. We used a minimally invasive transcutaneous ultrasound-mediated gene delivery (UMGD) strategy combined with microbubbles (MBs) to enhance gene transfer into 4 canine livers. A mixture of high-expressing, liver-specific human factor VIII (hFVIII) plasmid and MBs was injected into the hepatic vein via balloon catheter under fluoroscopy guidance with simultaneous transcutaneous UMGD treatment targeting a specific liver lobe. Therapeutic levels of hFVIII expression were achieved in all 4 dogs, and hFVIII levels were maintained at a detectable level in 3 dogs throughout the 60-day experimental period. Plasmid copy numbers correlated with hFVIII antigen levels, and plasmid-derived messenger RNA (mRNA) was detected in treated livers. Liver transaminase levels and histology analysis indicated minimal liver damage and a rapid recovery after treatment. These results indicate that liver-targeted transcutaneous UMGD is promising as a clinically feasible therapy for hemophilia A and other diseases.


Subject(s)
Hemophilia A , Hemostatics , Animals , Dogs , Factor VIII/genetics , Factor VIII/therapeutic use , Gene Transfer Techniques , Genetic Therapy/methods , Hemophilia A/genetics , Hemophilia A/therapy , Hemophilia A/veterinary , Humans , Liver/metabolism
3.
Exp Eye Res ; 215: 108899, 2022 02.
Article in English | MEDLINE | ID: mdl-34929159

ABSTRACT

Sorsby Fundus Dystrophy (SFD) is a rare form of macular degeneration that is clinically similar to age-related macular degeneration (AMD), and a histologic hallmark of SFD is a thick layer of extracellular deposits beneath the retinal pigment epithelium (RPE). Previous studies of SFD patient-induced pluripotent stem cell (iPSC) derived RPE differ as to whether these cultures recapitulate this key clinical feature by forming increased drusenoid deposits. The primary purpose of this study is to examine whether SFD patient-derived iPSC-RPE form basal deposits similar to what is found in affected family member SFD globes and to determine whether SFD iPSC RPE may be more oxidatively stressed. We performed a careful comparison of iPSC RPE from three control individuals, multiple iPSC clones from two SFD patients' iPSC RPE, and post-mortem eyes of affected SFD family members. We also examined the effect of CRISPR-Cas9 gene correction of the S204C TIMP3 mutation on RPE phenotype. Finally, targeted metabolomics with liquid chromatography and mass spectrometry analysis and stable isotope-labeled metabolite analysis were performed to determine whether SFD RPE are more oxidatively stressed. We found that SFD iPSC-RPE formed significantly more sub-RPE deposits (∼6-90 µm in height) compared to control RPE at 8 weeks. These deposits were similar in composition to the thick layer of sub-RPE deposits found in SFD family member globes by immunofluorescence staining and TEM imaging. S204C TIMP3 correction by CRISPR-Cas9 gene editing in SFD iPSC RPE cells resulted in significantly reduced basal laminar and sub-RPE calcium deposits. We detected a ∼18-fold increase in TIMP3 accumulation in the extracellular matrix (ECM) of SFD RPE, and targeted metabolomics showed that intracellular 4-hydroxyproline, a major breakdown product of collagen, is significantly elevated in SFD RPE, suggesting increased ECM turnover. Finally, SFD RPE cells have decreased intracellular reduced glutathione and were found to be more vulnerable to oxidative stress. Our findings suggest that elements of SFD pathology can be demonstrated in culture which may lead to insights into disease mechanisms.


Subject(s)
Induced Pluripotent Stem Cells , Macular Degeneration , Extracellular Matrix/metabolism , Humans , Induced Pluripotent Stem Cells/metabolism , Macular Degeneration/metabolism , Retinal Pigment Epithelium/metabolism
4.
J Biol Chem ; 292(31): 12895-12905, 2017 08 04.
Article in English | MEDLINE | ID: mdl-28615447

ABSTRACT

Metabolite transport is a major function of the retinal pigment epithelium (RPE) to support the neural retina. RPE dysfunction plays a significant role in retinal degenerative diseases. We have used mass spectrometry with 13C tracers to systematically study nutrient consumption and metabolite transport in cultured human fetal RPE. LC/MS-MS detected 120 metabolites in the medium from either the apical or basal side. Surprisingly, more proline is consumed than any other nutrient, including glucose, taurine, lipids, vitamins, or other amino acids. Besides being oxidized through the Krebs cycle, proline is used to make citrate via reductive carboxylation. Citrate, made either from 13C proline or from 13C glucose, is preferentially exported to the apical side and is taken up by the retina. In conclusion, RPE cells consume multiple nutrients, including glucose and taurine, but prefer proline, and they actively synthesize and export metabolic intermediates to the apical side to nourish the outer retina.


Subject(s)
Proline/metabolism , Retina/metabolism , Retinal Pigment Epithelium/metabolism , Animals , Biological Transport , Carbon Isotopes , Cell Polarity , Cells, Cultured , Citric Acid/metabolism , Citric Acid Cycle , Coculture Techniques , Embryo, Mammalian/cytology , Glucose/metabolism , Humans , Kinetics , Metabolomics/methods , Mice , Retina/cytology , Retina/enzymology , Retinal Pigment Epithelium/cytology , Retinal Pigment Epithelium/enzymology , Taurine/metabolism , Tissue Culture Techniques
5.
Proc Natl Acad Sci U S A ; 113(51): 14710-14715, 2016 12 20.
Article in English | MEDLINE | ID: mdl-27911769

ABSTRACT

The retinal pigment epithelium (RPE) is a monolayer of pigmented cells that requires an active metabolism to maintain outer retinal homeostasis and compensate for oxidative stress. Using 13C metabolic flux analysis in human RPE cells, we found that RPE has an exceptionally high capacity for reductive carboxylation, a metabolic pathway that has recently garnered significant interest because of its role in cancer cell survival. The capacity for reductive carboxylation in RPE exceeds that of all other cells tested, including retina, neural tissue, glial cells, and a cancer cell line. Loss of reductive carboxylation disrupts redox balance and increases RPE sensitivity to oxidative damage, suggesting that deficiencies of reductive carboxylation may contribute to RPE cell death. Supporting reductive carboxylation by supplementation with an NAD+ precursor or its substrate α-ketoglutarate or treatment with a poly(ADP ribose) polymerase inhibitor protects reductive carboxylation and RPE viability from excessive oxidative stress. The ability of these treatments to rescue RPE could be the basis for an effective strategy to treat blinding diseases caused by RPE dysfunction.


Subject(s)
Carbon/chemistry , Eye/embryology , Ketoglutaric Acids/chemistry , Macular Degeneration/metabolism , Retinal Pigment Epithelium/embryology , Retinal Pigment Epithelium/metabolism , Aged, 80 and over , Animals , Cell Differentiation , Cell Line, Tumor , Cell Proliferation , Cell Survival , Fatty Acids/chemistry , Female , HeLa Cells , Humans , Induced Pluripotent Stem Cells/metabolism , Isocitrate Dehydrogenase/metabolism , Macular Degeneration/pathology , Mice , NAD/chemistry , Neoplasms/metabolism , Neoplasms/pathology , Oxidation-Reduction , Oxidative Stress , Oxygen/chemistry , Poly(ADP-ribose) Polymerases/metabolism
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