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huUSH2A(E10-15)
製品ID :
C001554
系統:
C57BL/6JCya
状況:
説明:
Usher syndrome (USH), also referred to as hereditary deafness-retinitis pigmentosa syndrome or retinitis pigmentosa-neurosensory deafness syndrome, is an autosomal recessive disorder marked by genetic heterogeneity. The primary clinical manifestations include congenital sensorineural hearing loss, progressive retinitis pigmentosa (RP), and visual impairment. USH is the leading disorder resulting in deafness and blindness, with an estimated prevalence ranging from 1 in 5,000 to 1 in 16,000 individuals. USH is classified into three subtypes—USH1, USH2, and USH3—based on the age of onset and effects on hearing and vestibular function. Patients with USH1 present with profound congenital deafness and vestibular dysfunction, typically developing RP before adulthood. USH2 is characterized by moderate to severe hearing loss without vestibular dysfunction, with RP symptoms manifesting later in adulthood. USH3 patients are born with normal hearing, which progressively declines alongside the onset of RP. USH1 is the most severe form, while USH2 is the most prevalent, accounting for 40%–50% of cases. However, underdiagnosis and the gradual progression of the disease suggest that the true prevalence of USH2 may be underestimated. The USH2A gene is the primary causative gene for USH2, with 75%–90% of USH2 cases linked to mutations in this gene [1].
The USH2A gene encodes Usherin, a protein featuring laminin EGF-like, pentraxin, and fibronectin type III domains, predominantly expressed in the basement membrane of the inner ear and retina. Usherin plays a critical role in developing hair cells in the inner ear, auditory signal transduction, and the maintenance of adhesion via interactions with fibronectin in the retinal basement membrane. Mutations in the USH2A gene disrupt the normal development and function of hair cells, impair fibronectin assembly, and compromise the adhesive properties of the retinal basement membrane, leading to hearing loss and RP symptoms. Currently, there are no effective therapies for Usher syndrome. Ongoing research focuses on elucidating the genetic mechanisms underlying the disorder and developing gene-based therapeutic strategies. While gene therapy remains preclinical, promising advances have been made with antisense oligonucleotides (ASO) and CRISPR-based gene-editing technologies. QR-421a, an RNA-based oligonucleotide therapy developed by ProQR Therapeutics, targets exon 13 mutations in the USH2A gene associated with USH and non-syndromic RP. This therapeutic approach aims to restore Usherin expression by correcting exon 13 deletions through exon skipping.
Given the focus of ASO and CRISPR therapies on the human USH2A gene, developing humanized mouse models is critical to advancing gene therapies toward clinical applications. Exon 13 of the USH2A gene harbors a hotspot for pathogenic mutations associated with USH, including two common mutations, c.2299delG and c.2276G>T, which are the subject of several therapeutic investigations [2-4, 6]. The huUSH2A(E10-15) mouse model, in which the corresponding mouse Ush2a gene sequence was replaced with human USH2A exons 10 to 15 and their flanking regions, provides a valuable tool for studying USH pathogenesis and evaluating preclinical treatments. Homozygous huUSH2A(E10-15) mice are viable and fertile, making them suitable for drug evaluation and disease modeling. In addition, based on the independently developed TurboKnockout fusion BAC recombination technology, Cyagen can also generate hot mutation models based on this strain and provide customized services for specific mutations to meet the experimental needs in pharmacology and other fields.
Usher syndrome (USH), also referred to as hereditary deafness-retinitis pigmentosa syndrome or retinitis pigmentosa-neurosensory deafness syndrome, is an autosomal recessive disorder marked by genetic heterogeneity. The primary clinical manifestations include congenital sensorineural hearing loss, progressive retinitis pigmentosa (RP), and visual impairment. USH is the leading disorder resulting in deafness and blindness, with an estimated prevalence ranging from 1 in 5,000 to 1 in 16,000 individuals. USH is classified into three subtypes—USH1, USH2, and USH3—based on the age of onset and effects on hearing and vestibular function. Patients with USH1 present with profound congenital deafness and vestibular dysfunction, typically developing RP before adulthood. USH2 is characterized by moderate to severe hearing loss without vestibular dysfunction, with RP symptoms manifesting later in adulthood. USH3 patients are born with normal hearing, which progressively declines alongside the onset of RP. USH1 is the most severe form, while USH2 is the most prevalent, accounting for 40%–50% of cases. However, underdiagnosis and the gradual progression of the disease suggest that the true prevalence of USH2 may be underestimated. The USH2A gene is the primary causative gene for USH2, with 75%–90% of USH2 cases linked to mutations in this gene [1].
The USH2A gene encodes Usherin, a protein featuring laminin EGF-like, pentraxin, and fibronectin type III domains, predominantly expressed in the basement membrane of the inner ear and retina. Usherin plays a critical role in developing hair cells in the inner ear, auditory signal transduction, and the maintenance of adhesion via interactions with fibronectin in the retinal basement membrane. Mutations in the USH2A gene disrupt the normal development and function of hair cells, impair fibronectin assembly, and compromise the adhesive properties of the retinal basement membrane, leading to hearing loss and RP symptoms. Currently, there are no effective therapies for Usher syndrome. Ongoing research focuses on elucidating the genetic mechanisms underlying the disorder and developing gene-based therapeutic strategies. While gene therapy remains preclinical, promising advances have been made with antisense oligonucleotides (ASO) and CRISPR-based gene-editing technologies. QR-421a, an RNA-based oligonucleotide therapy developed by ProQR Therapeutics, targets exon 13 mutations in the USH2A gene associated with USH and non-syndromic RP. This therapeutic approach aims to restore Usherin expression by correcting exon 13 deletions through exon skipping.
Given the focus of ASO and CRISPR therapies on the human USH2A gene, developing humanized mouse models is critical to advancing gene therapies toward clinical applications. Exon 13 of the USH2A gene harbors a hotspot for pathogenic mutations associated with USH, including two common mutations, c.2299delG and c.2276G>T, which are the subject of several therapeutic investigations [2-4, 6]. The huUSH2A(E10-15) mouse model, in which the corresponding mouse Ush2a gene sequence was replaced with human USH2A exons 10 to 15 and their flanking regions, provides a valuable tool for studying USH pathogenesis and evaluating preclinical treatments. Homozygous huUSH2A(E10-15) mice are viable and fertile, making them suitable for drug evaluation and disease modeling. In addition, based on the independently developed TurboKnockout fusion BAC recombination technology, Cyagen can also generate hot mutation models based on this strain and provide customized services for specific mutations to meet the experimental needs in pharmacology and other fields.
huUSH2A(E10-15)-c.2299delG
製品ID :
C001850
系統:
C57BL/6JCya
状況:
説明:
The USH2A gene encodes Usherin, a protein featuring laminin EGF-like, pentraxin, and fibronectin type III domains, predominantly expressed in the basement membrane of the inner ear and retina. Usherin plays a critical role in developing hair cells in the inner ear, auditory signal transduction, and the maintenance of adhesion via interactions with fibronectin in the retinal basement membrane. Mutations in the USH2A gene disrupt the normal development and function of hair cells, impair fibronectin assembly, and compromise the adhesive properties of the retinal basement membrane, leading to hearing loss and RP symptoms. The USH2A gene is the primary causative gene for Usher syndrome Type II (USH2), with 75%–90% of USH2 cases linked to mutations in this gene [1]. Exon 13 of the USH2A gene harbors a hotspot for pathogenic mutations associated with USH, including two common mutations, c.2299delG and c.2276G>T, which are the subject of several therapeutic investigations. The c.2299delG mutation in exon 13 causes frameshift and premature termination codons. This mutation produces a protein that is 85% truncated compared to the normal transcript size, leading to the loss of Usherin protein function [2-5]. Currently, there are no effective therapies for Usher syndrome. Ongoing research focuses on elucidating the genetic mechanisms underlying the disorder and developing gene-based therapeutic strategies.
huUSH2A(E10-15)-c.2299delG mice are obtained by introducing the c.2299delG mutation into the exon 13 of the human USH2A gene in huUSH2A(E10-15) mice (Catalog Number: C001554) using gene editing technology. This model can be used to study the mechanisms and therapeutic approaches for diseases such as Usher syndrome Type II.
The USH2A gene encodes Usherin, a protein featuring laminin EGF-like, pentraxin, and fibronectin type III domains, predominantly expressed in the basement membrane of the inner ear and retina. Usherin plays a critical role in developing hair cells in the inner ear, auditory signal transduction, and the maintenance of adhesion via interactions with fibronectin in the retinal basement membrane. Mutations in the USH2A gene disrupt the normal development and function of hair cells, impair fibronectin assembly, and compromise the adhesive properties of the retinal basement membrane, leading to hearing loss and RP symptoms. The USH2A gene is the primary causative gene for Usher syndrome Type II (USH2), with 75%–90% of USH2 cases linked to mutations in this gene [1]. Exon 13 of the USH2A gene harbors a hotspot for pathogenic mutations associated with USH, including two common mutations, c.2299delG and c.2276G>T, which are the subject of several therapeutic investigations. The c.2299delG mutation in exon 13 causes frameshift and premature termination codons. This mutation produces a protein that is 85% truncated compared to the normal transcript size, leading to the loss of Usherin protein function [2-5]. Currently, there are no effective therapies for Usher syndrome. Ongoing research focuses on elucidating the genetic mechanisms underlying the disorder and developing gene-based therapeutic strategies.
huUSH2A(E10-15)-c.2299delG mice are obtained by introducing the c.2299delG mutation into the exon 13 of the human USH2A gene in huUSH2A(E10-15) mice (Catalog Number: C001554) using gene editing technology. This model can be used to study the mechanisms and therapeutic approaches for diseases such as Usher syndrome Type II.
huUSH2A(E10-15)-c.2286_2287insT
製品ID :
C001961
系統:
C57BL/6JCya
状況:
説明:
The USH2A gene encodes Usherin, a protein featuring laminin EGF-like, pentraxin, and fibronectin type III domains, predominantly expressed in the basement membrane of the inner ear and retina. Usherin plays a critical role in developing hair cells in the inner ear, auditory signal transduction, and the maintenance of adhesion via interactions with fibronectin in the retinal basement membrane. Mutations in the USH2A gene disrupt the normal development and function of hair cells, impair fibronectin assembly, and compromise the adhesive properties of the retinal basement membrane, leading to hearing loss and RP symptoms. The USH2A gene is the primary causative gene for Usher syndrome Type II (USH2), with 75%–90% of USH2 cases linked to mutations in this gene [1]. The mutations mainly cause frameshift and premature termination codons, producing a protein that is 85% truncated compared to the normal transcript size, leading to the loss of Usherin protein function [2-5]. Currently, there are no effective therapies for Usher syndrome. Ongoing research focuses on elucidating the genetic mechanisms underlying the disorder and developing gene-based therapeutic strategies.
huUSH2A(E10-15)-c.2286_2287insT mice are obtained by introducing the c.2286_2287insT mutation into the exon 13 of the human USH2A gene in huUSH2A(E10-15) mice (Catalog Number: C001554) using gene editing technology. This model can be used to study the mechanisms and therapeutic approaches for diseases such as Usher syndrome Type II.
The USH2A gene encodes Usherin, a protein featuring laminin EGF-like, pentraxin, and fibronectin type III domains, predominantly expressed in the basement membrane of the inner ear and retina. Usherin plays a critical role in developing hair cells in the inner ear, auditory signal transduction, and the maintenance of adhesion via interactions with fibronectin in the retinal basement membrane. Mutations in the USH2A gene disrupt the normal development and function of hair cells, impair fibronectin assembly, and compromise the adhesive properties of the retinal basement membrane, leading to hearing loss and RP symptoms. The USH2A gene is the primary causative gene for Usher syndrome Type II (USH2), with 75%–90% of USH2 cases linked to mutations in this gene [1]. The mutations mainly cause frameshift and premature termination codons, producing a protein that is 85% truncated compared to the normal transcript size, leading to the loss of Usherin protein function [2-5]. Currently, there are no effective therapies for Usher syndrome. Ongoing research focuses on elucidating the genetic mechanisms underlying the disorder and developing gene-based therapeutic strategies.
huUSH2A(E10-15)-c.2286_2287insT mice are obtained by introducing the c.2286_2287insT mutation into the exon 13 of the human USH2A gene in huUSH2A(E10-15) mice (Catalog Number: C001554) using gene editing technology. This model can be used to study the mechanisms and therapeutic approaches for diseases such as Usher syndrome Type II.
huUSH2A(E10-15)-c.2288_2289delCT
製品ID :
C001984
系統:
C57BL/6JCya
状況:
説明:
The USH2A gene encodes Usherin, a protein featuring laminin EGF-like, pentraxin, and fibronectin type III domains, predominantly expressed in the basement membrane of the inner ear and retina. Usherin plays a critical role in developing hair cells in the inner ear, auditory signal transduction, and the maintenance of adhesion via interactions with fibronectin in the retinal basement membrane. Mutations in the USH2A gene disrupt the normal development and function of hair cells, impair fibronectin assembly, and compromise the adhesive properties of the retinal basement membrane, leading to hearing loss and RP symptoms. The USH2A gene is the primary causative gene for Usher syndrome Type II (USH2), with 75%–90% of USH2 cases linked to mutations in this gene [1]. The mutations mainly cause frameshift and premature termination codons, producing a protein that is 85% truncated compared to the normal transcript size, leading to the loss of Usherin protein function [2-5]. Currently, there are no effective therapies for Usher syndrome. Ongoing research focuses on elucidating the genetic mechanisms underlying the disorder and developing gene-based therapeutic strategies.
huUSH2A(E10-15)-c.2288_2289delCT mice are obtained by introducing the c.2288_2289delCT mutation into the exon 13 of the human USH2A gene in huUSH2A(E10-15) mice (Catalog Number: C001554) using gene editing technology. This model can be used to study the mechanisms and therapeutic approaches for diseases such as Usher syndrome Type II.
The USH2A gene encodes Usherin, a protein featuring laminin EGF-like, pentraxin, and fibronectin type III domains, predominantly expressed in the basement membrane of the inner ear and retina. Usherin plays a critical role in developing hair cells in the inner ear, auditory signal transduction, and the maintenance of adhesion via interactions with fibronectin in the retinal basement membrane. Mutations in the USH2A gene disrupt the normal development and function of hair cells, impair fibronectin assembly, and compromise the adhesive properties of the retinal basement membrane, leading to hearing loss and RP symptoms. The USH2A gene is the primary causative gene for Usher syndrome Type II (USH2), with 75%–90% of USH2 cases linked to mutations in this gene [1]. The mutations mainly cause frameshift and premature termination codons, producing a protein that is 85% truncated compared to the normal transcript size, leading to the loss of Usherin protein function [2-5]. Currently, there are no effective therapies for Usher syndrome. Ongoing research focuses on elucidating the genetic mechanisms underlying the disorder and developing gene-based therapeutic strategies.
huUSH2A(E10-15)-c.2288_2289delCT mice are obtained by introducing the c.2288_2289delCT mutation into the exon 13 of the human USH2A gene in huUSH2A(E10-15) mice (Catalog Number: C001554) using gene editing technology. This model can be used to study the mechanisms and therapeutic approaches for diseases such as Usher syndrome Type II.
huUSH2A(E10-15)-c.2282_2288delCTCACTC
製品ID :
C001983
系統:
C57BL/6JCya
状況:
説明:
Usher syndrome (USH), also known as hereditary deafness-retinitis pigmentosa syndrome or retinitis pigmentosa-sensorineural deafness syndrome, is a genetically heterogeneous autosomal recessive disorder. Patients typically present with congenital sensorineural hearing loss, progressive retinitis pigmentosa (RP), and visual impairment. USH represents the most prevalent cause of combined deafness and blindness, with an estimated incidence ranging from 1 in 5,000 to 1 in 16,000. Based on age of onset and involvement of auditory and vestibular function, USH is clinically classified into three subtypes: type I (USH1), type II (USH2), and type III (USH3). USH1 is characterized by profound congenital deafness, vestibular dysfunction, and RP onset before adulthood. USH2 patients exhibit mild-to-moderate hearing loss without vestibular impairment, with RP symptoms typically emerging in adulthood. USH3 patients have normal hearing at birth, followed by progressive hearing loss and RP. Among these, USH1 is the most severe, whereas USH2 is the most prevalent, each accounting for approximately 40–50% of cases. Due to underdiagnosis and variable disease progression, the actual prevalence of USH2 may exceed current estimates.
USH2A is the principal causative gene for USH2, with approximately 75–90% of USH2 patients harboring pathogenic variants in USH2A [1]. The USH2A gene encodes usherin, a basement membrane-associated protein containing laminin EGF-like domains, a pentraxin domain, and multiple fibronectin type III motifs. Usherin is predominantly expressed in the basement membrane and plays a critical role in the development and homeostasis of the inner ear and retina. In cochlear hair cells, usherin is essential for morphogenesis and auditory signal transduction, while in the retinal basement membrane, it regulates adhesion through interactions with fibronectin. Mutations in USH2A disrupt normal hair cell development and maintenance, impair fibronectin assembly in the retinal basement membrane, and compromise adhesion, collectively contributing to hearing loss and RP pathology. Exon 13 of USH2A is a mutational hotspot, with c.2299delG and c.2276G>T being the most common pathogenic variants. Multiple therapeutic programs are currently focused on this region [2-4, 6].
The huUSH2A(E10-15)-c.2282_2288delCTCACTC mouse model was generated by introducing a human USH2A exon 13 deletion (bases 2282–2288, CTCACTC) into the huUSH2A(E10-15) background (catalog ID: C001554). This model enables mechanistic studies and preclinical evaluation of candidate therapeutics for Usher syndrome. Furthermore, leveraging proprietary TurboKnockout technology integrated with BAC recombination, Cyagen Biosciences offers customizable model generation services targeting diverse mutations to support pharmacodynamic and translational research in Usher syndrome.
Usher syndrome (USH), also known as hereditary deafness-retinitis pigmentosa syndrome or retinitis pigmentosa-sensorineural deafness syndrome, is a genetically heterogeneous autosomal recessive disorder. Patients typically present with congenital sensorineural hearing loss, progressive retinitis pigmentosa (RP), and visual impairment. USH represents the most prevalent cause of combined deafness and blindness, with an estimated incidence ranging from 1 in 5,000 to 1 in 16,000. Based on age of onset and involvement of auditory and vestibular function, USH is clinically classified into three subtypes: type I (USH1), type II (USH2), and type III (USH3). USH1 is characterized by profound congenital deafness, vestibular dysfunction, and RP onset before adulthood. USH2 patients exhibit mild-to-moderate hearing loss without vestibular impairment, with RP symptoms typically emerging in adulthood. USH3 patients have normal hearing at birth, followed by progressive hearing loss and RP. Among these, USH1 is the most severe, whereas USH2 is the most prevalent, each accounting for approximately 40–50% of cases. Due to underdiagnosis and variable disease progression, the actual prevalence of USH2 may exceed current estimates.
USH2A is the principal causative gene for USH2, with approximately 75–90% of USH2 patients harboring pathogenic variants in USH2A [1]. The USH2A gene encodes usherin, a basement membrane-associated protein containing laminin EGF-like domains, a pentraxin domain, and multiple fibronectin type III motifs. Usherin is predominantly expressed in the basement membrane and plays a critical role in the development and homeostasis of the inner ear and retina. In cochlear hair cells, usherin is essential for morphogenesis and auditory signal transduction, while in the retinal basement membrane, it regulates adhesion through interactions with fibronectin. Mutations in USH2A disrupt normal hair cell development and maintenance, impair fibronectin assembly in the retinal basement membrane, and compromise adhesion, collectively contributing to hearing loss and RP pathology. Exon 13 of USH2A is a mutational hotspot, with c.2299delG and c.2276G>T being the most common pathogenic variants. Multiple therapeutic programs are currently focused on this region [2-4, 6].
The huUSH2A(E10-15)-c.2282_2288delCTCACTC mouse model was generated by introducing a human USH2A exon 13 deletion (bases 2282–2288, CTCACTC) into the huUSH2A(E10-15) background (catalog ID: C001554). This model enables mechanistic studies and preclinical evaluation of candidate therapeutics for Usher syndrome. Furthermore, leveraging proprietary TurboKnockout technology integrated with BAC recombination, Cyagen Biosciences offers customizable model generation services targeting diverse mutations to support pharmacodynamic and translational research in Usher syndrome.
Aadacl3-flox
製品ID :
S-CKO-07399
系統:
C57BL/6JCya
状況:
説明:
Aadacl3 is located on chromosome 4 of mice. SgRNA and ssDNA were designed using Nuclease Technology; Aadacl3 conditional knockout mice were obtained by high-throughput electroporation of fertilized eggs. After sexual maturity, sperm were collected for cryopreservation.
Aadacl3 is located on chromosome 4 of mice. SgRNA and ssDNA were designed using Nuclease Technology; Aadacl3 conditional knockout mice were obtained by high-throughput electroporation of fertilized eggs. After sexual maturity, sperm were collected for cryopreservation.
Pramel12-KO
製品ID :
S-KO-07399
系統:
C57BL/6JCya
状況:
説明:
Pramel12 is located on chromosome 4 of mice. Nuclease Technology was used to design sgRNA; Pramel12 knockout mice were obtained by applying high-throughput electroporation of fertilized eggs. After sexual maturity, sperm were collected for cryopreservation.
Pramel12 is located on chromosome 4 of mice. Nuclease Technology was used to design sgRNA; Pramel12 knockout mice were obtained by applying high-throughput electroporation of fertilized eggs. After sexual maturity, sperm were collected for cryopreservation.
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