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1.
Mol Pharm ; 20(11): 5901-5909, 2023 11 06.
Article in English | MEDLINE | ID: mdl-37860991

ABSTRACT

Mucopolysaccharidoses (MPSs) make up a group of lysosomal storage diseases characterized by the aberrant accumulation of glycosaminoglycans throughout the body. Patients with MPSs display various signs and symptoms, such as retinopathy, which is also observed in patients with MPS II. Unfortunately, retinal disorders in MPS II are resistant to conventional intravenous enzyme-replacement therapy because the blood-retinal barrier (BRB) impedes drug penetration. In this study, we show that a fusion protein, designated pabinafusp alfa, consisting of an antihuman transferrin receptor antibody and iduronate-2-sulfatase (IDS), crosses the BRB and reaches the retina in a murine model of MPS II. We found that retinal function, as assessed by electroretinography (ERG) in MPS II mice, deteriorated with age. Early intervention with repeated intravenous treatment of pabinafusp alfa decreased heparan sulfate deposition in the retina, optic nerve, and visual cortex, thus preserving or even improving the ERG response in MPS II mice. Histological analysis further revealed that pabinafusp alfa mitigated the loss of the photoreceptor layer observed in diseased mice. In contrast, recombinant nonfused IDS failed to reach the retina and hardly affected the retinal disease. These results support the hypothesis that transferrin receptor-targeted IDS can penetrate the BRB, thereby ameliorating retinal dysfunction in MPS II.


Subject(s)
Iduronate Sulfatase , Mucopolysaccharidosis II , Retinal Diseases , Animals , Mice , Blood-Retinal Barrier/metabolism , Glycosaminoglycans , Iduronate Sulfatase/metabolism , Iduronate Sulfatase/therapeutic use , Iduronic Acid , Mucopolysaccharidosis II/drug therapy , Mucopolysaccharidosis II/diagnosis , Receptors, Transferrin , Retinal Diseases/drug therapy
2.
Mol Ther Methods Clin Dev ; 29: 439-449, 2023 Jun 08.
Article in English | MEDLINE | ID: mdl-37251981

ABSTRACT

Mucopolysaccharidosis I (MPS I), a lysosomal storage disease caused by dysfunction of α-L-iduronidase (IDUA), is characterized by the deposition of dermatan sulfate (DS) and heparan sulfate (HS) throughout the body, which causes several somatic and central nervous symptoms. Although enzyme-replacement therapy (ERT) is currently available to treat MPS I, it does not alleviate central nervous disorders, as it cannot penetrate the blood-brain barrier. Here we evaluate the brain delivery, efficacy, and safety of JR-171, a fusion protein comprising humanized anti-human transferrin receptor antibody Fab and IDUA, using monkeys and MPS I mice. Intravenously administered JR-171 was distributed in major organs, including the brain, and reduced DS and HS concentrations in the central nervous system and peripheral tissues. JR-171 exerted similar effects on peripheral disorders similar to conventional ERT and further reversed brain pathology in MPS I mice. We found that JR-171 improved spatial learning ability, which was seen to deteriorate in the vehicle-treated mice. Further, no safety concerns were noted in repeat-dose toxicity studies in monkeys. This study provides nonclinical evidence that JR-171 might potentially prevent and even improve disease conditions in patients with neuronopathic MPS I without serious safety concerns.

3.
Int J Mol Sci ; 23(19)2022 Oct 03.
Article in English | MEDLINE | ID: mdl-36233030

ABSTRACT

Heparan sulfate (HS) is an essential glycosaminoglycan (GAG) as a component of proteoglycans, which are present on the cell surface and in the extracellular matrix. HS-containing proteoglycans not only function as structural constituents of the basal lamina but also play versatile roles in various physiological processes, including cell signaling and organ development. Thus, inherited mutations of genes associated with the biosynthesis or degradation of HS can cause various diseases, particularly those involving the bones and central nervous system (CNS). Mucopolysaccharidoses (MPSs) are a group of lysosomal storage disorders involving GAG accumulation throughout the body caused by a deficiency of GAG-degrading enzymes. GAGs are stored differently in different types of MPSs. Particularly, HS deposition is observed in patients with MPS types I, II, III, and VII, all which involve progressive neuropathy with multiple CNS system symptoms. While therapies are available for certain symptoms in some types of MPSs, significant unmet medical needs remain, such as neurocognitive impairment. This review presents recent knowledge on the pathophysiological roles of HS focusing on the pathogenesis of MPSs. We also discuss the possible use and significance of HS as a biomarker for disease severity and therapeutic response in MPSs.


Subject(s)
Mucopolysaccharidoses , Mucopolysaccharidosis I , Biomarkers , Glycosaminoglycans , Heparan Sulfate Proteoglycans , Heparitin Sulfate/metabolism , Humans , Mucopolysaccharidoses/pathology
4.
Mol Ther Methods Clin Dev ; 25: 534-544, 2022 Jun 09.
Article in English | MEDLINE | ID: mdl-35662814

ABSTRACT

Deposition of heparan sulfate (HS) in the brain of patients with mucopolysaccharidosis II (MPS II) is believed to be the leading cause of neurodegeneration, resulting in several neurological signs and symptoms, including neurocognitive impairment. We recently showed that pabinafusp alfa, a blood-brain-barrier-penetrating fusion protein consisting of iduronate-2-sulfatase and anti-human transferrin receptor antibody, stabilized learning ability by preventing the deposition of HS in the CNS of MPS II mice. We further examined the dose-dependent effect of pabinafusp alfa on neurological function in relation to its HS-reducing efficacy in a mouse model of MPS II. Long-term intravenous treatment with low (0.1 mg/kg), middle (0.5 mg/kg), and high (2.0 mg/kg) doses of the drug dose-dependently decreased HS concentration in the brain and cerebrospinal fluid (CSF). A comparable dose-dependent effect in the prevention of neuronal damage in the CNS, and dose-dependent improvements in neurobehavioral performance tests, such as gait analysis, pole test, Y maze, and Morris water maze, were also observed. Notably, the water maze test performance was inversely correlated with the HS levels in the brain and CSF. This study provides nonclinical evidence substantiating a quantitative dose-dependent relationship between HS reduction in the CNS and neurological improvements in MPS II.

5.
Int J Mol Sci ; 22(20)2021 Oct 10.
Article in English | MEDLINE | ID: mdl-34681597

ABSTRACT

Enzyme replacement therapy (ERT) improves somatic manifestations in mucopolysaccharidoses (MPS). However, because intravenously administered enzymes cannot cross the blood-brain barrier (BBB), ERT is ineffective against the progressive neurodegeneration and resultant severe central nervous system (CNS) symptoms observed in patients with neuronopathic MPS. Attempts to surmount this problem have been made with intrathecal and intracerebroventricular ERT in order to achieve CNS effects, but the burdens on patients are inimical to long-term administrations. However, since pabinafusp alfa, a human iduronate-2-sulfatase fused with a BBB-crossing anti-transferrin receptor antibody, showed both central and peripheral efficacy in a mouse model, subsequent clinical trials in a total of 62 patients with MPS-II (Hunter syndrome) in Japan and Brazil substantiated this dual efficacy and provided an acceptable safety profile. To date, pabinafusp alfa is the only approved intravenous ERT that is effective against both the somatic and CNS symptoms of patients with MPS-II. This article summarizes the previously obtained preclinical and clinical evidence related to the use of this drug, presents latest data, and discusses the preclinical, translational, and clinical challenges of evaluating, ameliorating, and preventing neurodegeneration in patients with MPS-II.


Subject(s)
Enzyme Replacement Therapy , Iduronate Sulfatase/therapeutic use , Mucopolysaccharidosis II/drug therapy , Animals , Biomarkers/cerebrospinal fluid , Blood-Brain Barrier/drug effects , Blood-Brain Barrier/metabolism , Brain/metabolism , Clinical Trials as Topic , Disease Models, Animal , Drug Evaluation, Preclinical , Humans , Iduronate Sulfatase/genetics , Iduronate Sulfatase/metabolism , Mice , Mice, Inbred C57BL , Mice, Knockout , Mucopolysaccharidosis II/pathology , Recombinant Proteins/adverse effects , Recombinant Proteins/pharmacology , Recombinant Proteins/therapeutic use , Severity of Illness Index
6.
Mol Ther ; 29(5): 1853-1861, 2021 05 05.
Article in English | MEDLINE | ID: mdl-33508431

ABSTRACT

Mucopolysaccharidosis II (MPS II), a lysosomal storage disease caused by mutations in iduronate-2-sulfatase (IDS), is characterized by a wide variety of somatic and neurologic symptoms. The currently approved intravenous enzyme replacement therapy with recombinant IDS (idursulfase) is ineffective for CNS manifestations due to its inability to cross the blood-brain barrier (BBB). Here, we demonstrate that the clearance of heparan sulfate (HS) deposited in the brain by a BBB-penetrable antibody-enzyme fusion protein prevents neurodegeneration and neurocognitive dysfunctions in MPS II mice. The fusion protein pabinafusp alfa was chronically administered intravenously to MPS II mice. The drug reduced HS and attenuated histopathological changes in the brain, as well as in peripheral tissues. The loss of spatial learning abilities was completely suppressed by pabinafusp alfa, but not by idursulfase, indicating an association between HS deposition in the brain, neurodegeneration, and CNS manifestations in these mice. Furthermore, HS concentrations in the brain and reduction thereof by pabinafusp alpha correlated with those in the cerebrospinal fluid (CSF). Thus, repeated intravenous administration of pabinafusp alfa to MPS II mice decreased HS deposition in the brain, leading to prevention of neurodegeneration and maintenance of neurocognitive function, which may be predicted from HS concentrations in CSF.


Subject(s)
Brain/metabolism , Heparitin Sulfate/metabolism , Mucopolysaccharidosis II/drug therapy , Neurocognitive Disorders/prevention & control , Recombinant Fusion Proteins/administration & dosage , Recombinant Proteins/administration & dosage , Administration, Intravenous , Animals , Antibodies/genetics , Blood-Brain Barrier , Brain/drug effects , Disease Models, Animal , Glycoproteins/genetics , Heparitin Sulfate/cerebrospinal fluid , Humans , Iduronate Sulfatase/administration & dosage , Iduronate Sulfatase/pharmacology , Immunoglobulin G/chemistry , Immunoglobulin G/genetics , Mice , Mucopolysaccharidosis II/cerebrospinal fluid , Mucopolysaccharidosis II/psychology , Neurocognitive Disorders/etiology , Receptors, Transferrin/antagonists & inhibitors , Recombinant Fusion Proteins/pharmacology , Recombinant Proteins/genetics , Recombinant Proteins/pharmacology , Spatial Learning/drug effects
7.
Int J Mol Sci ; 20(23)2019 Nov 20.
Article in English | MEDLINE | ID: mdl-31757021

ABSTRACT

Mucopolysaccharidosis type II (MPS II) is a rare lysosomal storage disease (LSD) involving a genetic error in iduronic acid-2-sulfatase (IDS) metabolism that leads to accumulation of glycosaminoglycans within intracellular lysosomes. The primary treatment for MPS II, enzyme replacement therapy, is not effective for central nervous system (CNS) symptoms, such as intellectual disability, because the drugs do not cross the blood-brain barrier. Recently, autophagy has been associated with LSDs. In this study, we examined the morphologic relationship between neuronal damage and autophagy in IDS knockout mice using antibodies against subunit c of mitochondrial adenosine triphosphate (ATP) synthetase and p62. Immunohistological changes suggesting autophagy, such as vacuolation, were observed in neurons, microglia, and pericytes throughout the CNS, and the numbers increased over postnatal development. Oral administration of chloroquine, which inhibits autophagy, did not suppress damage to microglia and pericytes, but greatly reduced neuronal vacuolation and eliminated neuronal cells with abnormal inclusions. Thus, decreasing autophagy appears to prevent neuronal degeneration. These results suggest that an autophagy modulator could be used in addition to conventional enzyme replacement therapy to preserve the CNS in patients with MPS II.


Subject(s)
Autophagy , Mucopolysaccharidosis II/metabolism , Neurons/metabolism , Animals , Brain/metabolism , Brain/pathology , Chloroquine/pharmacology , Iduronate Sulfatase/genetics , Male , Mice , Mice, Inbred C57BL , Microglia/drug effects , Microglia/metabolism , Microglia/ultrastructure , Mitochondrial Proton-Translocating ATPases/genetics , Mitochondrial Proton-Translocating ATPases/metabolism , Mucopolysaccharidosis II/pathology , Neurons/drug effects , Neurons/ultrastructure , Sequestosome-1 Protein/genetics , Sequestosome-1 Protein/metabolism
8.
Mol Genet Metab ; 125(1-2): 53-58, 2018 09.
Article in English | MEDLINE | ID: mdl-30064964

ABSTRACT

Mucopolysaccharidosis type II (MPS II or Hunter syndrome) is a lysosomal storage disorder caused by a deficiency of iduronate-2-sulfatase (IDS), an enzyme that catabolizes glycosaminoglycans (GAGs) including heparan sulfate (HS) and dermatan sulfate (DS). GAG accumulation leads to severe neurological and somatic impairments. At present, the most common treatment for MPS II is intravenous enzyme replacement therapy; however, the inability of recombinant IDS to cross the blood-brain barrier (BBB) restricts therapeutic efficacy for neurological manifestations. We recently developed a BBB-penetrating IDS fusion protein, JR-141, and demonstrated its ability to reduce GAG accumulation in the brain of human transferrin receptor knock-in and Ids knock-out mice (TFRC-KI/Ids-KO), an animal model of MPS II, following intravenous administration. Given the impossibility of measuring GAG accumulation in the brains of human patients with MPS II, we hypothesized that GAG content in the cerebrospinal fluid (CSF) might serve as an indicator of brain GAG burden. To test this hypothesis, we optimized a high-sensitivity method for quantifying HS and DS in low-volume samples by combining acidic methanolysis and liquid chromatography-tandem mass spectrometry (LC/MS/MS). We employed this method to quantify HS and DS in samples from TFRC-KI/Ids-KO mice and revealed that HS but not DS accumulated in the central nerve system (CNS). Moreover, concentrations of HS in CSF correlated with those in brain. Finally, intravenous treatment with JR-141 reduced levels of HS in the CSF and brain in TFRC-KI/Ids-KO mice. These results suggest that CSF HS content may be a useful biomarker for evaluating the brain GAG accumulation and the therapeutic efficacy of drugs in patients with MPS II.


Subject(s)
Biomarkers/cerebrospinal fluid , Heparitin Sulfate/cerebrospinal fluid , Mucopolysaccharidosis II/cerebrospinal fluid , Nervous System Diseases/cerebrospinal fluid , Animals , Blood-Brain Barrier/drug effects , Brain/drug effects , Brain/metabolism , Brain/pathology , Chromatography, Liquid , Dermatan Sulfate/cerebrospinal fluid , Disease Models, Animal , Heparitin Sulfate/genetics , Humans , Iduronate Sulfatase/genetics , Mice , Mice, Knockout , Mucopolysaccharidosis II/drug therapy , Mucopolysaccharidosis II/genetics , Mucopolysaccharidosis II/pathology , Nervous System Diseases/pathology , Receptors, Transferrin/genetics , Tandem Mass Spectrometry
9.
Mol Genet Metab ; 125(1-2): 153-160, 2018 09.
Article in English | MEDLINE | ID: mdl-30054149

ABSTRACT

Fabry disease (FD) is an X-linked lysosomal storage disease. It is caused by deficiency of the enzyme α-galactosidase A (α-Gal A), which leads to excessive deposition of neutral glycosphingolipids, especially globotriaosylceramide (GL-3), in cells throughout the body. Progressive accumulation of GL-3 causes life-threatening complications in several tissues and organs, including the vasculature, heart, and kidney. Currently available enzyme replacement therapy for FD employs recombinant α-Gal A in two formulations, namely agalsidase alfa and agalsidase beta. Here, we evaluated JR-051 as a biosimilar to agalsidase beta in a non-clinical study. JR-051 was shown to have identical primary and similar higher-order structures to agalsidase beta. Mannose-6-phosphate content was higher in JR-051 than in agalsidase beta, which probably accounts for a slightly better uptake into fibroblasts in vitro. In spite of these differences in in vitro biological features, pharmacokinetic profiles of the two compounds in mice, rats, and monkeys were similar. The ability to reduce GL-3 accumulation in the kidney, heart, skin, liver, spleen, and plasma of Gla-knockout mice, a model of FD, was not different between JR-051 and agalsidase beta. Furthermore, we identified no safety concerns regarding JR-051 in a 13-week evaluation using cynomolgus monkeys. These findings indicate that JR-051 is similar to agalsidase beta in terms of physicochemical and biological properties.


Subject(s)
Biosimilar Pharmaceuticals/administration & dosage , Fabry Disease/drug therapy , Isoenzymes/administration & dosage , alpha-Galactosidase/genetics , Animals , Enzyme Replacement Therapy , Fabry Disease/genetics , Fabry Disease/pathology , Fibroblasts , Humans , Isoenzymes/genetics , Kidney/metabolism , Kidney/pathology , Liver/metabolism , Liver/pathology , Male , Mice , Mice, Knockout , Skin/metabolism , Skin/pathology , Spleen/metabolism , Spleen/pathology , Trihexosylceramides , alpha-Galactosidase/administration & dosage
10.
Mol Ther ; 26(5): 1366-1374, 2018 05 02.
Article in English | MEDLINE | ID: mdl-29606503

ABSTRACT

Mucopolysaccharidosis II (MPS II) is an X-linked recessive lysosomal storage disease caused by mutations in the iduronate-2-sulfatase (IDS) gene. Since IDS catalyzes the degradation of glycosaminoglycans (GAGs), deficiency in this enzyme leads to accumulation of GAGs in most cells in all tissues and organs, resulting in severe somatic and neurological disorders. Although enzyme replacement therapy with human IDS (hIDS) has been used for the treatment of MPS II, this therapy is not effective for defects in the CNS mainly because the enzyme cannot cross the blood-brain barrier (BBB). Here, we developed a BBB-penetrating fusion protein, JR-141, which consists of an anti-human transferrin receptor (hTfR) antibody and intact hIDS. The TfR-mediated incorporation of JR-141 was confirmed by using human fibroblasts in vitro. When administrated intravenously to hTfR knockin mice or monkeys, JR-141, but not naked hIDS, was detected in the brain. In addition, the intravenous administration of JR-141 reduced the accumulation of GAGs both in the peripheral tissues and in the brain of hTfR knockin mice lacking Ids, an animal model of MPS II. These data provide a proof of concept for the translation of JR-141 to clinical study for the treatment of patients with MPS II with CNS disorders.


Subject(s)
Antibodies, Monoclonal/pharmacology , Blood-Brain Barrier/drug effects , Blood-Brain Barrier/metabolism , Mucopolysaccharidosis II/metabolism , Receptors, Transferrin/antagonists & inhibitors , Recombinant Fusion Proteins , Animals , Antibodies, Monoclonal/administration & dosage , Antibodies, Monoclonal/pharmacokinetics , Brain/drug effects , Brain/metabolism , Cell Line , Disease Models, Animal , Fibroblasts/drug effects , Fibroblasts/metabolism , Humans , Mice , Mice, Knockout , Mucopolysaccharidosis II/drug therapy , Mucopolysaccharidosis II/genetics , Receptor, IGF Type 2/genetics , Receptor, IGF Type 2/metabolism , Tissue Distribution/drug effects
11.
Mol Genet Metab ; 107(1-2): 122-8, 2012 Sep.
Article in English | MEDLINE | ID: mdl-22704483

ABSTRACT

Mucopolysaccharidosis type II (MPS II), or Hunter syndrome, is a lysosomal storage disorder caused by a deficiency of iduronate-2-sulfatase (IDS) and is characterized by the accumulation of glycosaminoglycans (GAGs). MPS II has been treated by hematopoietic stem cell therapy (HSCT)/enzyme replacement therapy (ERT), but its effectiveness in the central nervous system (CNS) is limited because of poor enzyme uptake across the blood-brain barrier (BBB). To increase the efficacy of ERT in the brain, we tested an intraventricular ERT procedure consisting of repeated administrations of IDS (20 µg/mouse/3 weeks) in IDS-knockout, MPS II model mice. The IDS enzyme activity and the accumulation of total GAGs were measured in mouse brains. The IDS activity was significantly increased, and the accumulation of total GAGs was decreased in the MPS II mouse brains treated with multiple administrations of IDS via intraventricular ERT. Additionally, a high level of IDS enzyme activity was appreciated in other MPS II mouse tissues, such as the liver, spleen, testis and others. A Y-maze was used to test learning and memory after repeated intraventricular ERT with IDS. The IDS-treated mouse groups recovered the capacity for short-term memory and activity. Although large and small vacuoles were found at the margin of the cerebellar Purkinje cells in the disease-control mice, these vacuoles disappeared upon treated with IDS. Loss of vacuoles was also observed in other tissues (liver, kidney and testis). These results demonstrate the possible efficacy of an ERT procedure with intraventricular administration of IDS for the treatment of MPS II.


Subject(s)
Enzyme Replacement Therapy , Iduronate Sulfatase/therapeutic use , Mucopolysaccharidosis II/therapy , Animals , Behavior, Animal , Brain/metabolism , Brain/pathology , Disease Models, Animal , Iduronate Sulfatase/administration & dosage , Liver/metabolism , Liver/pathology , Male , Maze Learning/drug effects , Mice , Mice, Knockout , Mucopolysaccharidosis II/diagnosis , Phenotype , Testis/metabolism , Testis/pathology , Treatment Outcome
12.
Glycobiology ; 17(8): 886-94, 2007 Aug.
Article in English | MEDLINE | ID: mdl-17513885

ABSTRACT

The hydrozoan is the simplest organism whose movements are governed by the neuromuscular system, and its de novo morphogenesis can be easily induced by the removal of body parts. These features make the hydrozoan an excellent model for studying the regeneration of tissues in vivo, especially in the nervous system. Although glycosaminoglycans (GAGs) and proteoglycans (PGs) have been implicated in the signaling functions of various growth factors and play critical roles in the development of the central nervous system, the isolation and characterization of GAGs from hydrozoans have never been reported. Here, we characterized GAGs of Hydra magnipapillata. Immunostaining using anti-GAG antibodies showed chondroitin or chondroitin sulfate (CS) in the developing nematocyst, which is a sting organelle specific to cnidarians. The CS-PGs might furnish an environment for assembling nematocyst components, and might themselves be components of nematocysts. Therefore, GAGs were isolated from Hydra and their structural features were examined. A considerable amount of CS, three orders of magnitude less heparan sulfate (HS), but no hyaluronan were found, as in Caenorhabditis elegans. Analysis of the disaccharide composition of HS revealed glucosamine 2-N-sulfation, glucosamine 6-O-sulfation, and uronate 2-O-sulfation. CS contains not only nonsulfated and 4-O-sulfated N-acetylgalactosamine (GalNAc) but also 6-O-sulfated GalNAc. The average molecular size of CS and HS was 110 and 10 kDa, respectively. It has also been established here that CS chains are synthesized on the core protein through the ubiquitous linkage region tetrasaccharide, suggesting that indispensable functions of the linkage region in the synthesis of GAGs have been conserved during evolution.


Subject(s)
Chondroitin/analysis , Chondroitin/chemistry , Hydra/chemistry , Animals , Carbohydrate Sequence , Glycosaminoglycans/chemistry , Hydra/cytology , Hydra/growth & development , Molecular Sequence Data
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