US 5173414A
· Lebkowski et al.
· 1992
[cited by applicant]
US 5658776A
· Flotte et al.
· 1997
[cited by applicant]
US 5786211A
· Johnson
· 1998
[cited by applicant]
US 5863782A
· Hopwood
· 1999
[cited by examiner]
US 5871982A
· Wilson et al.
· 1999
[cited by applicant]
US 6258595B1
· Gao et al.
· 2001
[cited by applicant]
US 6566118B1
· Atkinson et al.
· 2003
[cited by applicant]
US 6582692B1
· Podsakoff et al.
· 2003
[cited by applicant]
US 6841357B1
· Vaillancourt et al.
· 2005
[cited by applicant]
US 7198951B2
· Gao et al.
· 2007
[cited by applicant]
US 7906111B2
· Wilson et al.
· 2011
[cited by applicant]
US 8999948B2
· Tubert
· 2015
[cited by examiner]
US 9415121B2
· Kaspar et al.
· 2016
[cited by applicant]
US 9725716B2
· Burghes et al.
· 2017
[cited by applicant]
US 9926574B2
· Barkats
· 2018
[cited by applicant]
US 20030083299A1
· Ferguson
· 2003
[cited by applicant]
US 20040076613A1
· Mazarakis et al.
· 2004
[cited by applicant]
US 20070280906A1
· Petras
· 2007
[cited by applicant]
US 20120177605A1
· Kaspar
· 2012
[cited by examiner]
US 20130039888A1
· McCarty et al.
· 2013
[cited by applicant]
US 20130195800A1
· Roeth et al.
· 2013
[cited by applicant]
US 20150252384A1
· Kaspar et al.
· 2015
[cited by applicant]
US 20170216458A1
· Kaspar et al.
· 2017
[cited by applicant]
US 20180036431A1
· Kaspar et al.
· 2018
[cited by applicant]
EP 1620133A1
· 2006
[cited by applicant]
JP 2007527427A
· 2007
[cited by applicant]
JP 2007528424A
· 2007
[cited by applicant]
WO WO1995013365A1
· 1995
[cited by applicant]
WO WO1995013392A1
· 1995
[cited by applicant]
WO WO1996017947A1
· 1996
[cited by applicant]
WO WO1997006243A1
· 1997
[cited by applicant]
WO WO1997008298A1
· 1997
[cited by applicant]
WO WO199708308A1
· 1997
[cited by applicant]
WO WO1997009441A2
· 1997
[cited by applicant]
WO WO1997021825A1
· 1997
[cited by applicant]
WO WO1998009657A3
· 1998
[cited by applicant]
WO WO1999011764A3
· 1999
[cited by applicant]
WO WO2001083692A3
· 2002
[cited by applicant]
WO WO2002081634A2
· 2002
[cited by applicant]
WO WO2005033321A2
· 2005
[cited by applicant]
WO WO2005056807A2
· 2005
[cited by applicant]
WO WO2005084713A2
· 2005
[cited by applicant]
WO WO2005087272A2
· 2005
[cited by applicant]
WO WO2007089632A2
· 2007
[cited by applicant]
WO WO2008154198A1
· 2008
[cited by applicant]
WO WO2009013290A1
· 2009
[cited by applicant]
WO WO2009043936A1
· 2009
[cited by applicant]
WO WO2009137006A3
· 2010
[cited by applicant]
WO WO2010071832A1
· 2010
[cited by applicant]
WO WO2010129021A1
· 2010
[cited by applicant]
WO WO2011112902A2
· 2011
[cited by applicant]
WO WO2011133890A1
· 2011
[cited by applicant]
WO WO2012057363A1
· 2012
[cited by applicant]
WO WO2019108856A1
· 2019
[cited by applicant]
WO WO2019108857A1
· 2019
[cited by applicant]
Ruzo et al.XVIII Annual Congress of the European Society of Gene and Cell Therapy: 1389 (Abstract Or 96) p. 1 (Year: 2010).
[cited by examiner]
NCBI accession No. U30894.1, p. 1 (Year: 1996).
[cited by examiner]
Fraldi et al Human Molecular Genetics, vol. 16, No. 22 2693-2702 (Year: 2007).
[cited by examiner]
Fu et al Molecular Therapy, 19(6), 1025-1033, 2011, published online, Mar. 8, 2011 (Year: 2011).
[cited by examiner]
Fu et al Molecular Genetics and Metabolism, vol. 102, No. 2, pp. S18-S19. Abstract No. 118. Meeting Info: 7th Annual Research Meeting of the Lysosomal Disease Network, (Year: 2011).
[cited by examiner]
Fu et al (Hereafter 3, Molecular Therapy, (May 2011) vol. 19, Supp. Suppl. 1, pp. S 131. Abstract No. 337. Meeting Info: 14th Annual Meeting of the American Society of Gene and Cell Therapy. Seattle, WA, United States. …
[cited by examiner]
Duque et al Molecular Therapy vol. 17 No. 7, 1187-1196 (Year: 2009).
[cited by examiner]
NCBI accession No. AY414351, pp. 1-2 (Year: 2003).
[cited by examiner]
Sequence alignment of NCBI accession No. AY414351 vs SEQ ID No. 3, pp. 1-3 (Year: 2003).
[cited by examiner]
Grimm et al Human Gene therapy, 2445-2450 (Year: 1999).
[cited by examiner]
Heon-Roberts et al J. Clin. Med. 9, 344, 1-2 (Year: 2020).
[cited by examiner]
NCBI accession No. AAA86530.1, pp. 1-2 (Year: 1996).
[cited by examiner]
Fu et al (Molecular Therapy, 854, vol. 11, Supplement 1, S332 (Year: 2005).
[cited by examiner]
Bhaumik et al., A mouse model for mucopolysaccharidosis type III A (Sanfilippo syndrome),
[cited by applicant]
Carter, Adeno-associated virus vectors,
[cited by applicant]
Clark et al., A stable cell line carrying adenovirus-inducible rep and cap genes allows for infectivity titration of adeno-associated virus vectors,
[cited by applicant]
Clark et al., Highly purified recombinant adeno-associated virus vectors are biologically active and free of detectable helper and wild-type viruses,
[cited by applicant]
Cressant et al., Improved behavior and neuropathology in the mouse model of Sanfilippo type IIIB disease after adeno-associated virus-mediated gene transfer in the striatum,
[cited by applicant]
De et al., High levels of persistent expression of a1-antitrypsin mediated by the nonhuman primate serotype rh. 10 adeno-associated virus despite preexisting immunity to common human adeno-associated viruses,
[cited by applicant]
De Jong et al., Dimethylmethylene blue-based specrophotometry of glycosaminoglycans in untreated urng: a rapid screening procedure for mucopolysaccharidoses,
[cited by applicant]
Duque et al., Intravenous administration of self-complementary AAV9 enables transgene delivery to adult motor neurons,
[cited by applicant]
Foust et al., Intravascular AAV9 preferentially targets neonatal neurons and adult astrocytes,
[cited by applicant]
Fraldi et al., Functional correction of CNS lesions in an MPS-IIIA mouse model by intracerebral AAV-mediated delivery of sulfamidase and SUMF1 genes,
[cited by applicant]
Fu et al., Correction of neurological disease of mucopolysaccharidosis IIIB in adult mice by rAAV9 trans-blood-brain barrier gene delivery,
[cited by applicant]
Fu et al., Neurological correction of lysosomal storage in a mucopolysaccharidosis IIB mouse model by adeno-associated virus-mediated gene delivery,
[cited by applicant]
Fu et al., Restoration of central nervous system α-N-acetylglucosaminidase activity and therapeutic benefits in mucopolysaccharidosis IIB mice by a single intracisternal recombinant adeno-associated virus type 2 vector …
[cited by applicant]
Fu et al., Significantly increased lifespan and improved behavioral performances by rAAV gene delivery in adult mucopolysaccharidosis IIIB mice,
[cited by applicant]
Fu et al., Molecular Genetics and Metabolism, (Feb. 2011) vol. 102, No. 2, pp. S18-S19. Abstract No. 118. Meeting Info: 7th Annual Research Meeting of the Lysosomal Disease Netword, WORLD Symposium 2011, Las Vegas, NV (…
[cited by applicant]
Fu et al., Molecular Therapy, (May 2011) vol. 19, Supp. Suppl. 1, p. S131. Abstract No. 337. Meeting Info: 14th Annual Meeting of the American Society of Gene and Cell Therapy. Seattle, WA. USA. May 18, 2011-May 21, 201…
[cited by applicant]
Fu et al., Self-complementary adeno-associated virus serotype 2 vector: Global distribution and broad dispersion of AAV-mediated transgene expression in mouse brain.
[cited by applicant]
Gao et al., Clades of adeno-associated viruses are widely disseminated in human tissues,
[cited by applicant]
GenBank Accession No. AF085716.
[cited by applicant]
GenBank Accession No. AX753249.
[cited by applicant]
GenBank Accession No. NC_00 1862.
[cited by applicant]
GenBank Accession No. NC_001401.
[cited by applicant]
GenBank Accession No. NC_001829.
[cited by applicant]
GenBank Accession No. NC_002077.
[cited by applicant]
GenBank Accession Nos. AX753246.
[cited by applicant]
Guide for the Care and Use of Laboratory Animals [DHHS Publication No. (NIH) 85-23].
[cited by applicant]
Hartung et al., Correction of metabolic, craniofacial, and neurologic abnormalities in MPS I mice treated at birth with adeno-associated virus vector transducing the human α-L-Iduronidase gene,
[cited by applicant]
Heldermon et al., Therapeutic efficacy of bone marrow transplant, intracranial AAV-mediated gene therapy, or both in the mouse model of MPS IIIB,
[cited by applicant]
Hermonat et al., Use of adeno-associated virus as a mammalian DNA cloning vector: Transduction of neomycin resistance into mammalian tissue culture cells,
[cited by applicant]
Kaplitt et al., Safety and tolerability of gene therapy with an adeno-associated virus (AAV) borne GAD gene for Parkinson's disease: An open label, phase I trial,
[cited by applicant]
Laughlin et al., Cloning of infectious adeno-associated virus genomes in bacterial plasmids,
[cited by applicant]
Lebkowski et al., Adeno-associated virus: a vector system for efficient introduction and integration of DNA into a variety of mammalian cell types,
[cited by applicant]
Lehninger, Chapter 4. The amino acid building blocks of proteins, Biochemistry, 2nd Edition; Worth Publishers, Inc., New York, pp. 71-77 (1975).
[cited by applicant]
Li et al., Mouse model of sanfilippo syndrome type B produced by targeted disruption of the gene encoding α-N-acetylglucosaminidase,
[cited by applicant]
Lijam et al., Social interaction and sensorimotor gating abnormalities in mice lacking Dvl1,
[cited by applicant]
Manfredsson et al., AAV9: A potential blood-brain barrier buster.
[cited by applicant]
Marks et al., Safety and tolerability of intraputaminal delivery of CERE-120 (adeno-associated virus serotype 2-neurturin) to patients with idiopathic Parkinson's disease: An open-label, phase I trial,
[cited by applicant]
McCarty et al., Mannitol-facilitated CNS entry of rAAV2 vector significantly delayed the neurological disease progression in MPS IIIB mice,
[cited by applicant]
McLaughlin et al., Adeno-associated virus general transduction vectors: analysis of proviral structures,
[cited by applicant]
Mori et al., Two novel adeno-associated viruses from cynomolgus monkey: Pseudotyping characterization of capsid protein,
[cited by applicant]
Muzyczka, Use of adeno-associated virus as a general transduction vector for mammalian cells,
[cited by applicant]
NCBI Accession No. U30894.1, dated Feb. 2, 1996 (2 pages).
[cited by applicant]
Pacak et al., Recombinant adeno-associated virus serotype 9 leads to preferential cardiac transduction in vivo,
[cited by applicant]
Palli et al., Improved ecdysone receptor-based inducible gene regulation system,
[cited by applicant]
Paul et al., Increased viral titer through concentration of viral harvests from retroviral packaging lines,
[cited by applicant]
Perrin et al., An experimental rabies vaccine produced with a new BHK-21 suspension cell culture process: Use of serum-free medium and perfusion-reactor system
[cited by applicant]
Ruffing et al., Mutations in the carboxy terminus of adeno-associated virus 2 capsid proteins affect viral infectivity: Lack of an RGD integrin-binding motif,
[cited by applicant]
Ruzo et al., Liver production of sulfamidase reverses peripheral and ameliorates CNS pathology in mucopolysaccharidosis IIIA mice,
[cited by applicant]
Ruzo et al., XVIII Annual Congress of the European Society of Gene and Cell Therapy: 1389 (Abstract Or 96) (Oct. 22-25, 2010).
[cited by applicant]
Sambrook et al., Molecular Cloning: A Laboratory Manual (Second ed., Cold Spring Harbor Laboratory Press, 1989), Hybridization of radiolabeled probes to immobilized nucleic acids, §§ 9.47-9.51.
[cited by applicant]
Samulski et al., Cloning of adeno-associated virus into pBR322: Rescue of intact virus from the recombinant plasmid in human cells,
[cited by applicant]
Samulski et al., Helper-free stocks of recombinant adeno-associated viruses: Normal integration does not require viral gene expression,
[cited by applicant]
Sands et al., CNS-directed gene therapy for lysosomal storage diseases,
[cited by applicant]
Sands et al., Percutaneous intravenous injection in neonatal mice,
[cited by applicant]
Schenpp and Clark, Highly purified recombinant adeno-associated virus vectors,
[cited by applicant]
Senapathy & Carter, Molecular cloning of adeno-associated virus variant genomes and generation of infectious virus by recombination in mammalian cells,
[cited by applicant]
Srivastava et al., Nucleotide sequence and organization of the adeno-associated virus 2 genome,
[cited by applicant]
Tratschin et al., A human parvovirus, adeno-associated virus, as a eucaryotic vector: transient expression and encapsidation of the procaryotic gene for chloramphenical acetyltransferase,
[cited by applicant]
Tratschin et al., Adeno-associated virus vector for high-frequency integration, expression, and rescue of genes in mammalian cells,
[cited by applicant]
Urlinger et al., Exploring the sequence space for tetracycline-dependent transcriptional activators: novel mutations yield expanded range and sensitivity,
[cited by applicant]
Van de Lest et al., Quantification and characterization of glycosaminoglycans at the nanogram level by a combined azure A-silver staining in agarose gels,
[cited by applicant]
Wang et al., Adeno-associated virus serotype 8 efficiently delivers genes to muscle and heart,
[cited by applicant]
Warburton et al., The conjoint importance of the hippocampus and anterior thalamic nuclei for allocentric spatial learning: Evidence from a disconnection study in the rat,
[cited by applicant]
Worgall et al., Treatment of late infantile neuronal ceroid lipofuscinosis by CNS administration of a serotype 2 adeno-associated virus expressing CLN2 cDNA,
[cited by applicant]
Zincarelli et al., Analysis of AAV serotypes 1-9 mediated gene expression and tropism in mice after systemic injection,
[cited by applicant]
Zolotukhin et al., Recombinant adeno-associated virus purification using novel methods improves infectious titer and yield,
[cited by applicant]
Bevan et al., Early heart failure in the SMNDelta7 model of spinal muscular atrophy and correction by postnatal scAAV9-SMN delivery,
[cited by applicant]
Foust et al., Rescue of the spinal muscular atrophy phenotype in a mouse model by early postnatal delivery of SMN,
[cited by applicant]
Mingozzi et al., Therapeutic in vivo gene transfer for genetic disease using AAV: progress and challenges,
[cited by applicant]
Suzuki et al., Are animal models useful for understanding the pathophysiology of lysosomal storage disease?
[cited by applicant]
Verma et al., Routes of drug administration,
[cited by applicant]
Walkley, Cellular pathology of lysosomal storage disorders,
[cited by applicant]
Xiao et al., Gene therapy vectors based on adeno-associated virus type 1,
[cited by applicant]
Dehouck et al., An easier, reproducible, and mass-production method to study the blood-brain barrier in vitro,
[cited by applicant]
Del Gaudio et al., Increased MECP2 gene copy number as the result of genomic duplication in neurodevelopmentally delayed males,
[cited by applicant]
Dodge et al., Delivery of AAV-IGF-1 to the CNS extends survival in ALS mice through modification of aberrant glial cell activity,
[cited by applicant]
Eck et al., Gene-based therapy, Chapter 5 pp. 77-101, In: Goodman & Gilman's The Pharmacological Basis of Therapeutics, New York, NY: McGraw Hill (1996).
[cited by applicant]
Examination Report, Australian patent application No. 2013296425, May 22, 2017.
[cited by applicant]
Federici et al., Robust spinal motor neuron transduction following intrathecal delivery of AAV9 in pigs,
[cited by applicant]
Ford, Selected maturational changes observed in the postnatal rat brain,
[cited by applicant]
Friez et al., Recurrent infections, hypotonia, and mental retardation caused by duplication of MECP2 and adjacent region in Xq28,
[cited by applicant]
Gadalla et al., Improved survival and reduced phenotypic severity following AAV9/MECP2 gene transfer to neonatal and juvenile male Mecp2 knockout mice,
[cited by applicant]
Gavrilina et al., Neuronal SMN expression corrects spinal muscular atrophy in severe SMA mice while muscle-specific SMN expression has no phenotypic effect,
[cited by applicant]
Grady et al., Cerebellar synaptic defects and abnormal motor behavior in mice lacking alpha- and beta-dystrobrevin,
[cited by applicant]
Gray et al., Directed evolution of a novel adeno-associated virus (AAV) vector that crosses the seizure-comprised blood-brain barrier (BBB),
[cited by applicant]
Gray et al., Gene Therapy and neurodevelopmental disorders,
[cited by applicant]
Gray et al., Viral vectors and delivery strategies for CNS gene therapy,
[cited by applicant]
Grossman et al., A randomized comparison of iodixanol and iohexol in adult intracranial computed tomography scanning,
[cited by applicant]
Guy et al., A mouse Mecp2-null mutation causes neurological symptoms that mimic Rett syndrome,
[cited by applicant]
Guy et al., Reversal of neurological defects in a mouse model of Rett syndrome,
[cited by applicant]
Haseloff et al., In search of the astrocytic factor(s) modulating blood-brain barrier functions in brain capillary endothelial cells in vitro,
[cited by applicant]
Hawkins et al., The blood-brain barrier/neurovascular unit in health and disease,
[cited by applicant]
Hayashi et al., Induction of various blood-brain barrier properties in non-neural endothelial cells by close apposition to co-cultured astrocytes,
[cited by applicant]
Hsieh-Li et al., A mouse model for spinal muscular atrophy,
[cited by applicant]
Hutson et al., Corticospinal tract transduction: a comparison of seven adenoassociated viral vector serotypes and a non-integrating lentiviral vector,
[cited by applicant]
Iadecola, Neurovascular regulation in the normal brain and in Alzheimer's disease,
[cited by applicant]
Inagaki et al., Robust systemic transduction with AAV9 vectors in mice: efficient global cardiac gene transfer superior to that of AAV8,
[cited by applicant]
International Application No. PCT/US13/53065, International Preliminary Report on Patentability, dated Feb. 3, 2015.
[cited by applicant]
International Application No. PCT/US09/68818, International Search Report and Written Opinion, mailing date Mar. 2, 2010.
[cited by applicant]
International Application No. PCT/US13/53065, International Search Report and Written Opinion, mailed Sep. 2, 2013.
[cited by applicant]
International Application No. PCT/US2009/068818, International Preliminary Report on Patentability, dated Jun. 21, 2011.
[cited by applicant]
Japanese Patent Application No. 2015-525565, Notice of Reasons for Rejection, dated May 16, 2017.
[cited by applicant]
Japanese Patent Application No. 2018-058524, Notice of Reasons for Rejection, dated Dec. 27, 2018.
[cited by applicant]
Kaiser, Clinical research. Death prompts a review of gene therapy vector,
[cited by applicant]
Kaminsky and Ascano, p. 1-4 (2017).
[cited by applicant]
Kaspar et al., Retrograde viral delivery of IGF-1 prolongs survival in a mouse ALS model,
[cited by applicant]
Katz et al., Preclinical research in Rett syndrome: setting the foundation for translational success,
[cited by applicant]
Kempermann et al., Genetic influence on neurogenesis in the dentate gyrus of adult mice,
[cited by applicant]
Kim et al., Trendelenburg position with hip flexion as a rescue strategy to increase spinal anaesthetic level after spinal block,
[cited by applicant]
Klein et al., AAV8, 9, Rh10, Rh43 vector gene transfer in the rat brain: effects of serotype, promoter and purification method,
[cited by applicant]
Koerber et al., Molecular Evolution of Adeno-associated Virus for Enhanced Glial Gene Delivery,
[cited by applicant]
Kohan et al., Therapeutic approaches to the challenge of neuronal ceroid lipofuscinoses,
[cited by applicant]
Kong et al., Impaired synaptic vesicle release and immaturity of neuromuscular junctions in spinal muscular atrophy mice,
[cited by applicant]
Kosai et al., Rett syndome is reversible and treatable by MeCP2 gene therapy into the striatum in mice,
[cited by applicant]
Kota et al., Follistatin gene delivery enhances muscle growth and strength in nonhuman primates,
[cited by applicant]
Le et al., SMNDelta7, the major product of the centromeric survival motor neuron (SMN2) gene, extends survival in mice with spinal muscular atrophy and associates with full-length SMN,
[cited by applicant]
Lioy et al., A role for glia in the progression of Rett's syndrome,
[cited by applicant]
Maguire et al., Directed evolution of adeno-associated virus for glioma cell transduction,
[cited by applicant]
McAllister et al., Mechanisms of glucose transport at the blood-brain barrier: an in vitro study,
[cited by applicant]
McIlwain, “Chemical and enzymic make-up of the brain during development” In: Mcllwain, Biochemistry and the Central Nervous System, London: Churchill Livingstone (1966).
[cited by applicant]
Monani et al., A transgene carrying an A2G missense mutation in the SMN gene modulates phenotypic severity in mice with severe (type I) spinal muscular atrophy,
[cited by applicant]
Monani et al., The human centromeric survival motor neuron gene (SMN2) rescues embryonic lethality in Smn(-/-) mice and results in a mouse with spinal muscular atrophy,
[cited by applicant]
Nagai et al., A transcriptional repressor MeCP2 causing Rett syndrome is expressed in embryonic non-neuronal cells and controls their growth, Brain Res.,
[cited by applicant]
Narver et al., Sustained improvement of spinal muscular atrophy mice treated with trichostatin A plus nutrition,
[cited by applicant]
Notice of Reasons for Rejection (English translation), Japanese patent application No. 2015/525565, mailed May 16, 2017.
[cited by applicant]
Oertle et al., Nogo-A inhibits neurite outgrowth and cell spreading with three discrete regions,
[cited by applicant]
Oprea et al., Plastin 3 is a protective modifier of autosomal recessive spinal muscular atrophy,
[cited by applicant]
Pardridge, Drug and gene targeting to the brain with molecular Trojan horses,
[cited by applicant]
Penta, Sulla colorazione vitale del sistema nervoso central negli animali neonati,
[cited by applicant]
Perabo et al., Combinatorial engineering of a gene therapy vector: directed evolution of adeno-associated virus,
[cited by applicant]
Ralph et al., Silencing mutant SOD1 using RNAi protects against neurodegeneration and extends survival in an ALS model,
[cited by applicant]
Rastegar et al., MECP2 isoform-specific vectors with regulated expression for Rett syndrome gene therapy,
[cited by applicant]
Reichenbach et al., pp. 19-35 In: Kettemann et al., Neuroglia, 2nd ed., New York: Oxford University Press (2004).
[cited by applicant]
Risau et al., Development of the blood-brain barrier,
[cited by applicant]
Risau et al., Differentiation-dependent expression of proteins in brain endothelium during development of the blood-brain barrier,
[cited by applicant]
Robinson et al., Morphological and functional reversal of phenotypes in a mouse model of Rett syndrome,
[cited by applicant]
Royo et al., Specific AAV serotypes stably transduce primary hippocampal and cortical cultures with high efficiency and low toxicity,
[cited by applicant]
Rubin et al., A cell culture model of the blood-brain barrier,
[cited by applicant]
Saunders et al., On the progestational activity of 17alpha-ethynyl-17-hydroxy-5(10)-estren-3-one (norethynodrel),
[cited by applicant]
Schlageter et al., Microvessel organization and structure in experimental brain tumors: microvessel populations with distinctive structural and functional properties,
[cited by applicant]
Setayesh et al., The Trendelenburg position increases the spread and accelerates the onset of epidural anesthesia for Cesarean section,
[cited by applicant]
Siegel et al., Francis Crick's legacy for neuroscience: between the alpha and the Omega,
[cited by applicant]
Sinnett et al., Recent endeavors in MECP2 gene transfer for gene therapy of Rett syndrome,
[cited by applicant]
Skene et al., Neuronal MeCP2 is expressed at near histone-octamer levels and globally alters the chromatin state,
[cited by applicant]
Snyder et al., Comparison of adeno-associated viral vector serotypes for spinal cord and motor neuron gene delivery,
[cited by applicant]
Sobue et al., Induction of blood-brain barrier properties in immortalized bovine brain endothelial cells by astrocytic factors,
[cited by applicant]
Stern et al., Platelet lipoxygenase in spontaneously hypertensive rats,
[cited by applicant]
Stewart et al., Interendothelial junctional changes underlie the developmental ‘tightening’ of the blood-brain barrier,
[cited by applicant]
Turner et al., Administration of substances to laboratory animals: routes of administration and factors to consider,
[cited by applicant]
Verkman, Aquaporin water channels and endothelial cell function,
[cited by applicant]
Virgintino et al., Immunolocalization of tight junction proteins in the adult and developing human brain, Histochem.
[cited by applicant]
Vorbrodt et al., Localization of alkaline phosphatase activity in endothelia of developing and mature mouse blood-brain barrier,
[cited by applicant]
Wang et al., Decreased synaptic activity shifts the calcium dependence of release at the mammalian neuromuscular junction in vivo,
[cited by applicant]
Watson et al., Postnatal growth and morphological development of the brain: a species comparison,
[cited by applicant]
Wolburg et al., Tight junctions of the blood-brain barrier: development, composition and regulation,
[cited by applicant]
Wolburg, pp. 77-107 In: Dermietzel et al., (eds.), Blood-Brain Interfaces—from Ontogeny to Artificial Barriers, Wiley-VCH (2006).
[cited by applicant]
Wu et al., Single amino acid changes can influence titer, heparin binding, and tissue tropism in different adeno-associated virus serotypes,
[cited by applicant]
Yamanaka et al., Astrocytes as determinants of disease progression in inherited amyotrophic lateral sclerosis,
[cited by applicant]
Carter, “Adeno-Associated Virus Vectors in Clinical Trials”, Human Gene Therapy, 16:541-550 (2005).
[cited by applicant]
Carty et al., Convection-Enhanced Delivery and Systemic Mannitol Increase Gene Products Distribution of AAV Vectors 5, 8, and 9 and Increase Gene Product in the Adult Mouse Brain,
[cited by applicant]
Dalkara et al. “In Vivo-Directed Evolution of a New Adeno-Associated Virus for Therapeutic Outer Retinal Gene Deliver from the Vitreous,” Science Translational Medicine, 5(189):1-11 (2013).
[cited by applicant]
Edelstein et al., “Gene therapy clinical trials worldwide 1989-2004-an overview”, The Journal of Gene Medicine, 6:597-602 (2004).
[cited by applicant]
Final Rejection issued in U.S. Appl. No. 16/159,986 dated Mar. 4, 2021.
[cited by applicant]
Maguire et al., “Gene Therapy for the Nervous System: Challenges and New Strategies,” Neurotherapeutics, 11:817-839 (2004).
[cited by applicant]
Ruzo et al., “AAV-Mediated Sulphamidase Expression in Liver or Skeletal Muscle Prevents Development of Somatic Alterations in MPS IIIA Mice,” Molecular Therapy, 16(1):S197 (2008).
[cited by applicant]
Storek et al., “Sensory neuron targeting by self-complementary AAV8 via lumbar puncture for chronic pain”, PNAS, 105(3):1055-1060 (2008).
[cited by applicant]
Towne et al., “Recombinant adeno-associated virus serotype 6 (rAAV2/6)-mediated gene transfer to nociceptive neurons through different routes of delivery”, Molecular Pain, 5(52):1-17 (2009).
[cited by applicant]
Yogalingam et al., “Molecular Genetics of Mucopolysaccharidosis Type IIIA and IIIB: Diagnostic, Clinical, and Biological Implications,”
[cited by applicant]
Akbar et al., The role of MR myelography with intrathecal gadolinium in localization of spinal CSF leaks in patients with spontaneous intracranial hypotension,
[cited by applicant]
Amicus Therapeutics, Amicus establishes gene therapy pipeline for lysosomal storage disorders (LSDs). Sep. 20, 2018, p. 1-27 (2018).
[cited by applicant]
Bowerman et al., Therapeutic strategies for spinal muscular atrophy: SMN and beyond,
[cited by applicant]
Dayton et al., The advent of AAV9 expands applications for brain and spinal cord gene delivery,
[cited by applicant]
De los Reyes et al., Abstract #204. Interim Results from the First Clinical Gene Therapy Trial for CLN6 Batten Disease. Forty- Eighth National Meeting of the Child Neurology Society. Charlotte, NC. Oct. 23-26, 2019.
[cited by applicant]
Drory et al., EEG Recordings Following Intrathecal lohexol Administration,
[cited by applicant]
Gao et al., Mutations in a novel CLN6-encoded transmembrane protein cause variant neuronal ceroid lipofuscinosis in man and mouse,
[cited by applicant]
Gray et al., Preclinical Differences of Intravascular AAV9 Delivery to Neurons and Glia: A Comparative Study of Adult Mice and Nonhuman Primates,
[cited by applicant]
Haria et al., lohexol a review of its pharmacological properties and use as a contrast medium in Myelography and Neuroangiography,
[cited by applicant]
Highlights of Prescribing Information Omnipaque-iohexol injection, GE Healthcare Inc. (May 2018).
[cited by applicant]
Hudry et al., Therapeutic AAV gene transfer to the nervous system: A clinical reality,
[cited by applicant]
McCarty et al., Adeno-associated virus terminal repeat (TR) mutant generates self-complementary vectors to overcome the rate-limiting step to transduction in vivo,
[cited by applicant]
McCarty et al., Self-complementary recombinant adeno-associated virus (scAAV) vectors promote efficient transduction independently of DNA synthesis,
[cited by applicant]
Olsen et al., Intrathecal iohexol-distribution following cervical myelography, postmyelographic registration of adverse effects, psychometric assessment and electroencephalographic recording,
[cited by applicant]
Papisov et al., Physiology of the intrathecal bolus: the leptomeningeal route for macromolecule and particle delivery to CNS,
[cited by applicant]
Ratcliff et al., Cognitive and affective changes after myelography: A Comparison of Metrizamide and lohexol,
[cited by applicant]
Schuster et al., Biodistribution of adeno-associated virus serotype 9 (AAV9) vector after intrathecal and intravenous delivery in mouse,
[cited by applicant]
Steinfeld et al., Late Infantile Neuronal Ceroid Lipofuscinosis: Quantitative Description of the Clinical Course in Patients With CLN2 Mutations,
[cited by applicant]
Su et al., Real-time MR imaging with Gadoteridol predicts distribution of transgenes after convection-enhanced delivery of AAV2 vectors,
[cited by applicant]
Vestergaard et al., Central Nervous System Reactions to Cervical Myelography,
[cited by applicant]
Wang et al., Expansive gene transfer in the rat CNS rapidly produces amyotrophic lateral sclerosis relevant sequelae when TDP-43 is overexpressed,
[cited by applicant]
Zhang et al., Several rAAV Vectors Efficiently Cross the Blood-brain Barrier and Transduce Neurons and Astrocytes in the Neonatal Mouse Central Nervous System,
[cited by applicant]
NCBI accession No. U43573.1, Human alpha-N-acetylglucosaminidase (NAGLU) mRNA, complete cds, pp. 1-2 (Year: 1996).
[cited by applicant]
Sequence alignment of SEQ ID No. 1 vs accession No. U43573.1, pp. 1-3 (Year: 2021).
[cited by applicant]
Fu et al., Significantly increased lifespan and improved behavioral performances by rAAV gene delivery in adult mucopolysaccharidosis IIIB mice Gene Therapy 14:1065-77 (2007).
[cited by applicant]