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Katakai, Y.

Publications and source records attributed to Katakai, Y..

3 recordsLinked to original sources

Establishment of a second-generation transgenic marmoset model of polyglutamine disease recapitulating neurological symptoms and pathology

Neurodegenerative diseases, including polyglutamine diseases, remain a major clinical challenge, partly because of limited animal models that recapitulate human disease. Here, we describe a second-generation transgenic marmoset model of spinocerebellar ataxia 3 (SCA3), a polyglutamine disease, which stably expresses expanded CAG repeats in ATXN3. All five offspring of the founder marmoset harbored the transgene with reduced transgene integration sites and without repeat instability or genetic mosaicism, offering improved construct validity. Three of the five marmosets developed progressive motor impairments that segregated into two distinct phenotypes: early onset with rapid progression and late onset with mild progression, accompanied by corresponding patterns in body weight gain and grip strength. Pathological analysis revealed cerebellar Purkinje cell loss, spinal cord neurodegeneration, and widespread intranuclear inclusions. The severity of motor phenotypes correlated with transgene expression levels in disease-relevant brain regions, including the cerebellum, spinal cord, and striatum. By overcoming the common translational limitations of rodent systems, our second-generation model offers a powerful platform for investigating disease mechanisms and testing potential therapeutic interventions. Our results advance the utility of transgenic marmosets as clinically relevant models of neurodegenerative diseases. Summary StatementSecond-generation transgenic marmoset models of spinocerebellar ataxia 3 replicated the progressive motor deficits and neuropathology of the founder marmoset, providing a powerful platform for studying disease mechanisms and developing therapies.

neuroscience↗

Engineered coagulation factor VIII with enhanced secretion and coagulation potential for hemophilia A gene therapy

The major challenges of gene therapy for hemophilia A using adeno-associated virus (AAV) vectors are reducing vector doses and the long-term maintenance of stable factor VIII (FVIII). Here, we developed engineered human B-domain-deleted FVIIIs (FVIIISQs) with enhanced secretion and coagulation potential. Intracellular accumulation was markedly reduced in some engineered FVIIISQs, resulting in reduced unfolded protein responses. The administration of AAV vectors carrying engineered FVIIISQ to hemophilia A mice resulted in approximately eight-fold higher FVIII activity and four-fold higher FVIII antigen levels compared with wild-type FVIIISQ administration. The specific FVIII activity of the engineered FVIIISQ was 3.6 times higher than that of the wild-type FVIIISQ, and its binding to activated coagulation factor IX was significantly enhanced, which is supported by the structural analysis. In macaques, the administration of AAV5 vector carrying the engineered FVIIISQ without CpG sequences resulted in a supra-physiological increase in plasma FVIII activity at a dose one-thirtieth that of valoctocogene roxaparvovec (2 x 1012 vg/kg). The engineered FVIIISQ may thus provide stable, long-term therapeutic efficacy in AAV-mediated hemophilia A gene therapy even at low doses.

bioengineering↗

Efficient Gene Transduction in Pigs and Macaques with the Engineered AAV Vector AAV.GT5 for Hemophilia B Gene Therapy

Gene therapy for hemophilia using adeno-associated virus (AAV) vectors allows long-term coagulation factor expression. We examined the potential of a novel engineered liver-tropic AAV3B-based vector AAV.GT5 for hemophilia B gene therapy. In vitro transduction with AAV.GT5 in human hepatocytes was more than 100 times higher than with AAV-Spark100, while in vivo transduction efficacy into the liver and the increase in coagulation factor IX (FIX) antigen following intravenous injection of these vectors were similar in PXB mice (chimeric mice with a humanized liver) and macaques. The discrepancy was due to the low recovery and short half-life of AAV.GT5 in blood, depending on the positive charge of the heparin-binding site in the original AAV3B. The intra-hepatic vascular administration of AAV.GT5, but not AAV-Spark100, enhanced vector transduction into the liver and reduced vector distribution to the kidney in pigs. In macaques, the intra-hepatic artery injection of AAV.GT5 yielded a comparable increase in FIX antigen with a one-third dosage of peripheral venous administration. Two of four macaques who received AAV.GT5 intravenously did not develop neutralizing antibodies (NAbs) against AAV.GT5, while AAV-Spark100 induced serotype-specific NAbs in all four macaques. The NAb produced after the administration was relatively specific to the serotype and less responsive to the other serotype. As a result, the administration of AAV.GT5 successfully boosted FIX expression in one animal previously given AAV-Spark100. Thus, AAV.GT5 has different biodistribution and immunogenic characteristics compared with AAV-Spark100, and the intra-hepatic vascular administration may lessen the vector dose and avoid vector distribution to other organs. Key PointsO_LIThe AAV.GT5 vector has a strong transduction efficacy in human hepatocytes but has a faster clearance after systemic administration. C_LIO_LIIntra-hepatic vascular administration of the AAV.GT5 vector is an effective liver transduction method for hemophilia gene therapy. C_LI

genetics↗