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1.
Sci Rep ; 11(1): 14486, 2021 07 14.
Article in English | MEDLINE | ID: mdl-34262084

ABSTRACT

Krabbe disease (KD) and metachromatic leukodystrophy (MLD) are caused by accumulation of the glycolipids galactosylceramide (GalCer) and sulfatide and their toxic metabolites psychosine and lysosulfatide, respectively. We discovered a potent and selective small molecule inhibitor (S202) of ceramide galactosyltransferase (CGT), the key enzyme for GalCer biosynthesis, and characterized its use as substrate reduction therapy (SRT). Treating a KD mouse model with S202 dose-dependently reduced GalCer and psychosine in the central (CNS) and peripheral (PNS) nervous systems and significantly increased lifespan. Similarly, treating an MLD mouse model decreased sulfatides and lysosulfatide levels. Interestingly, lower doses of S202 partially inhibited CGT and selectively reduced synthesis of non-hydroxylated forms of GalCer and sulfatide, which appear to be the primary source of psychosine and lysosulfatide. Higher doses of S202 more completely inhibited CGT and reduced the levels of both non-hydroxylated and hydroxylated forms of GalCer and sulfatide. Despite the significant benefits observed in murine models of KD and MLD, chronic CGT inhibition negatively impacted both the CNS and PNS of wild-type mice. Therefore, further studies are necessary to elucidate the full therapeutic potential of CGT inhibition.


Subject(s)
Enzyme Inhibitors/pharmacology , Leukodystrophy, Globoid Cell/drug therapy , Leukodystrophy, Metachromatic/drug therapy , N-Acylsphingosine Galactosyltransferase/antagonists & inhibitors , N-Acylsphingosine Galactosyltransferase/metabolism , Animals , Disease Models, Animal , Dose-Response Relationship, Drug , Enzyme Inhibitors/administration & dosage , Galactosylceramides/metabolism , Ganglioside Galactosyltransferase/genetics , Ganglioside Galactosyltransferase/metabolism , Humans , Leukodystrophy, Globoid Cell/mortality , Leukodystrophy, Metachromatic/metabolism , Mice, Inbred C57BL , Mice, Knockout , Psychosine/analogs & derivatives , Psychosine/metabolism , Small Molecule Libraries/pharmacology , Sulfotransferases/metabolism , Transferases (Other Substituted Phosphate Groups)/metabolism
2.
Drug Deliv Transl Res ; 10(2): 425-439, 2020 04.
Article in English | MEDLINE | ID: mdl-31942701

ABSTRACT

BMN 250 is being developed as enzyme replacement therapy for Sanfilippo type B, a primarily neurological rare disease, in which patients have deficient lysosomal alpha-N-acetylglucosaminidase (NAGLU) enzyme activity. BMN 250 is taken up in target cells by the cation-independent mannose 6-phosphate receptor (CI-MPR, insulin-like growth factor 2 receptor), which then facilitates transit to the lysosome. BMN 250 is dosed directly into the central nervous system via the intracerebroventricular (ICV) route, and the objective of this work was to compare systemic intravenous (IV) and ICV delivery of BMN 250 to confirm the value of ICV dosing. We first assess the ability of enzyme to cross a potentially compromised blood-brain barrier in the Naglu-/- mouse model and then assess the potential for CI-MPR to be employed for receptor-mediated transport across the blood-brain barrier. In wild-type and Naglu-/- mice, CI-MPR expression in brain vasculature is high during the neonatal period but virtually absent by adolescence. In contrast, CI-MPR remains expressed through adolescence in non-affected non-human primate and human brain vasculature. Combined results from IV administration of BMN 250 in Naglu-/- mice and IV and ICV administration in healthy juvenile non-human primates suggest a limitation to therapeutic benefit from IV administration because enzyme distribution is restricted to brain vascular endothelial cells: enzyme does not reach target neuronal cells following IV administration, and pharmacological response following IV administration is likely restricted to clearance of substrate in endothelial cells. In contrast, ICV administration enables central nervous system enzyme replacement with biodistribution to target cells.


Subject(s)
Acetylglucosaminidase/administration & dosage , Acetylglucosaminidase/genetics , Blood-Brain Barrier/chemistry , Insulin-Like Growth Factor II/administration & dosage , Mucopolysaccharidosis III/drug therapy , Receptor, IGF Type 2/metabolism , Recombinant Fusion Proteins/administration & dosage , Acetylglucosaminidase/therapeutic use , Administration, Intravenous , Animals , Disease Models, Animal , Enzyme Replacement Therapy , Female , Infusions, Intraventricular , Insulin-Like Growth Factor II/therapeutic use , Male , Mice , Mice, Transgenic , Mucopolysaccharidosis III/genetics , Primates , Recombinant Fusion Proteins/therapeutic use , Translational Research, Biomedical
3.
Proc Natl Acad Sci U S A ; 116(40): 20097-20103, 2019 10 01.
Article in English | MEDLINE | ID: mdl-31527255

ABSTRACT

Infantile globoid cell leukodystrophy (GLD, Krabbe disease) is a fatal demyelinating disorder caused by a deficiency in the lysosomal enzyme galactosylceramidase (GALC). GALC deficiency leads to the accumulation of the cytotoxic glycolipid, galactosylsphingosine (psychosine). Complementary evidence suggested that psychosine is synthesized via an anabolic pathway. Here, we show instead that psychosine is generated catabolically through the deacylation of galactosylceramide by acid ceramidase (ACDase). This reaction uncouples GALC deficiency from psychosine accumulation, allowing us to test the long-standing "psychosine hypothesis." We demonstrate that genetic loss of ACDase activity (Farber disease) in the GALC-deficient mouse model of human GLD (twitcher) eliminates psychosine accumulation and cures GLD. These data suggest that ACDase could be a target for substrate reduction therapy (SRT) in Krabbe patients. We show that pharmacological inhibition of ACDase activity with carmofur significantly decreases psychosine accumulation in cells from a Krabbe patient and prolongs the life span of the twitcher (Twi) mouse. Previous SRT experiments in the Twi mouse utilized l-cycloserine, which inhibits an enzyme several steps upstream of psychosine synthesis, thus altering the balance of other important lipids. Drugs that directly inhibit ACDase may have a more acceptable safety profile due to their mechanistic proximity to psychosine biogenesis. In total, these data clarify our understanding of psychosine synthesis, confirm the long-held psychosine hypothesis, and provide the impetus to discover safe and effective inhibitors of ACDase to treat Krabbe disease.


Subject(s)
Acid Ceramidase/genetics , Gene Deletion , Leukodystrophy, Globoid Cell/genetics , Leukodystrophy, Globoid Cell/metabolism , Psychosine/metabolism , Animals , Cell Line, Tumor , Cytokines/metabolism , DNA Methylation , Disease Models, Animal , Genetic Association Studies , Genetic Predisposition to Disease , Humans , Leukodystrophy, Globoid Cell/drug therapy
4.
Mol Ther Methods Clin Dev ; 6: 43-53, 2017 Sep 15.
Article in English | MEDLINE | ID: mdl-28664165

ABSTRACT

Sanfilippo syndrome type B (mucopolysaccharidosis IIIB), caused by inherited deficiency of α-N-acetylglucosaminidase (NAGLU), required for lysosomal degradation of heparan sulfate (HS), is a pediatric neurodegenerative disorder with no approved treatment. Intracerebroventricular (ICV) delivery of a modified recombinant NAGLU, consisting of human NAGLU fused with insulin-like growth factor 2 (IGF2) for enhanced lysosomal targeting, was previously shown to result in marked enzyme uptake and clearance of HS storage in the Naglu-/- mouse brain. To further evaluate regional, cell type-specific, and dose-dependent biodistribution of NAGLU-IGF2 (BMN 250) and its effects on biochemical and histological pathology, Naglu-/- mice were treated with 1-100 µg ICV doses (four times over 2 weeks). 1 day after the last dose, BMN 250 (100 µg doses) resulted in above-normal NAGLU activity levels, broad biodistribution, and uptake in all cell types, with NAGLU predominantly localized to neurons in the Naglu-/- mouse brain. This led to complete clearance of disease-specific HS and reduction of secondary lysosomal defects and neuropathology across various brain regions lasting for at least 28 days after the last dose. The substantial brain uptake of NAGLU attainable by this highest ICV dosage was required for nearly complete attenuation of disease-driven storage accumulations and neuropathology throughout the Naglu-/- mouse brain.

5.
Proc Natl Acad Sci U S A ; 111(41): 14870-5, 2014 Oct 14.
Article in English | MEDLINE | ID: mdl-25267636

ABSTRACT

Mucopolysaccharidosis type IIIB (MPS IIIB, Sanfilippo syndrome type B) is a lysosomal storage disease characterized by profound intellectual disability, dementia, and a lifespan of about two decades. The cause is mutation in the gene encoding α-N-acetylglucosaminidase (NAGLU), deficiency of NAGLU, and accumulation of heparan sulfate. Impediments to enzyme replacement therapy are the absence of mannose 6-phosphate on recombinant human NAGLU and the blood-brain barrier. To overcome the first impediment, a fusion protein of recombinant NAGLU and a fragment of insulin-like growth factor II (IGFII) was prepared for endocytosis by the mannose 6-phosphate/IGFII receptor. To bypass the blood-brain barrier, the fusion protein ("enzyme") in artificial cerebrospinal fluid ("vehicle") was administered intracerebroventricularly to the brain of adult MPS IIIB mice, four times over 2 wk. The brains were analyzed 1-28 d later and compared with brains of MPS IIIB mice that received vehicle alone or control (heterozygous) mice that received vehicle. There was marked uptake of the administered enzyme in many parts of the brain, where it persisted with a half-life of approximately 10 d. Heparan sulfate, and especially disease-specific heparan sulfate, was reduced to control level. A number of secondary accumulations in neurons [ß-hexosaminidase, LAMP1(lysosome-associated membrane protein 1), SCMAS (subunit c of mitochondrial ATP synthase), glypican 5, ß-amyloid, P-tau] were reduced almost to control level. CD68, a microglial protein, was reduced halfway. A large amount of enzyme also appeared in liver cells, where it reduced heparan sulfate and ß-hexosaminidase accumulation to control levels. These results suggest the feasibility of enzyme replacement therapy for MPS IIIB.


Subject(s)
Acetylglucosaminidase/therapeutic use , Brain/metabolism , Drug Delivery Systems , Insulin-Like Growth Factor II/therapeutic use , Mucopolysaccharidosis III/drug therapy , Recombinant Fusion Proteins/administration & dosage , Recombinant Fusion Proteins/therapeutic use , Animals , Biomarkers/metabolism , Brain/pathology , CHO Cells , Cells, Cultured , Cricetinae , Cricetulus , Endocytosis , Fibroblasts/metabolism , Fibroblasts/pathology , Heparitin Sulfate/metabolism , Humans , Injections, Intraventricular , Liver/metabolism , Lysosomal Membrane Proteins/metabolism , Mice , Mucopolysaccharidosis III/pathology , Neurons/metabolism , Neurons/pathology , Protein Binding , beta-N-Acetylhexosaminidases/metabolism
6.
Acta Crystallogr F Struct Biol Commun ; 70(Pt 9): 1143-9, 2014 Sep.
Article in English | MEDLINE | ID: mdl-25195882

ABSTRACT

Poly(ADP-ribose) polymerases 1 and 2 (PARP1 and PARP2), which are involved in DNA damage response, are targets of anticancer therapeutics. BMN 673 is a novel PARP1/2 inhibitor with substantially increased PARP-mediated tumor cytotoxicity and is now in later-stage clinical development for BRCA-deficient breast cancers. In co-crystal structures, BMN 673 is anchored to the nicotinamide-binding pocket via an extensive network of hydrogen-bonding and π-stacking interactions, including those mediated by active-site water molecules. The novel di-branched scaffold of BMN 673 extends the binding interactions towards the outer edges of the pocket, which exhibit the least sequence homology among PARP enzymes. The crystallographic structural analyses reported here therefore not only provide critical insights into the molecular basis for the exceptionally high potency of the clinical development candidate BMN 673, but also new opportunities for increasing inhibitor selectivity.


Subject(s)
Phthalazines/pharmacology , Poly(ADP-ribose) Polymerase Inhibitors , Amino Acid Sequence , Hydrogen Bonding , Models, Molecular , Molecular Conformation , Molecular Sequence Data , Phthalazines/chemistry , Poly(ADP-ribose) Polymerases/chemistry
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