Logo
홈페이지
모델 살펴보기
장바구니
연락처
구독하기
연구 모델
HUGO Series 🌟
HUGO-GT™(유전자 치료를 위한 인간화 게놈 Ortholog)
HUGO-Ab™(항체 개발을 위한 인간화 게놈 Ortholog)
MouseAtlas 모델 라이브러리
번개 세일
연구용 동물 모델
Cre 마우스
인간화 타겟 유전자 모델
대사 질환 모델
안과 질환 모델
신경질환 모델
자가면역 질환 모델
면역결핍 마우스 모델
인간화 면역계 마우스 모델
종양 및 면역 항암 모델
Covid-19 마우스 모델
세포주 모델
Knockout 세포주 제품 카탈로그
종양 세포주 제품 카탈로그
유도만능줄기세포(iPSC) 카탈로그
AAV 표준 제품 카탈로그
서비스
전임상 효능 평가
신경과학
알츠하이머병(AD)
혈액-뇌 장벽(BBB)
파킨슨병(PD)
헌팅턴병(HD)
안과학
녹내장
연령관련 황반변성(AMD)
종양학
PBMC 인간화 마우스 모델
면역항암 연구를 위한 인간 면역 시스템(HIS) 마우스
대사 및 심혈관 질환
자가면역 및 염증
유전자 변형 동물
Knockout 마우스
Transgenic 마우스
Knock-in 마우스
Knockout Rat
Knock-in(KI) Rat
Transgenic Rat
모델 제작 기술
Turboknockout™ 유전자 타겟팅
타겟 유전자 편집
일반 Transgenic
PiggyBac Transgenesis
BAC Transgenic
ES 세포 유전자 타겟팅
브리딩 및 지원 서비스
브리딩 서비스
동결 보존 및 복원
Phenotyping 서비스
BAC 변형 서비스
바이러스 패키징
AAV 패키징
렌티바이러스(Lentivirus) 패키징
아데노바이러스(Adenovirus ) 패키징
맞춤형 세포주 서비스
유도만능줄기세포(iPSCs)
Knockout(KO) 세포주
Knock-in(KI) 세포주
Point Mutation 세포주
과발현 세포주
모달리티
유전자 치료
AI 기반 AAV 발굴
Oligonucleotide 치료
세포 면역치료
Resource
프로모션
이벤트 및 웨비나
뉴스
블로그 및 인사이트
자료실
참고 데이터베이스
Peer-Reviewed 인용
희귀질환 데이터센터
AbSeek
Cell iGeneEditor™ System
OriCell 세포 배양
회사 소개
회사 소개
시설 개요
동물 건강 및 복지
건강 보고서
대리점
인재채용
문의하기
Login
필터
필터
KO/cKO Mouse Models
Flash Sales
HUGO-GT™ Platform
Full-Gene Humanized Models
Humanized Target Gene Models
Immune Target Humanized ModelsTumor Target Humanized ModelsMetabolic Target Humanized ModelsCytokine Humanized ModelsOther Target Humanized Models
Immune System Mouse Models
Immunodeficient Mouse ModelsHumanized Immune System Models
Genetic Tool Mouse Models
Cre Driver LinesReporter Mouse LinesOther Genetic Tool Lines
Specialized Disease Models
Ophthalmic Disease ModelsNeurological Disease ModelsMetabolic Disease ModelsOncology & Immuno-oncology ModelsAutoimmune Disease ModelsRare Disease ModelsInfectious Disease ModelsOther Disease Models
“2158” 에 대한 검색 결과 4 건
필터
정렬 기준:
알파벳순 (A-Z)
베스트셀러
F9 KO
제품 ID:
C001509
계통(Strain):
C57BL/6JCya
상태:
Live Mouse
설명:
Hemophilia is a group of genetic bleeding disorders that affect the blood’s ability to clot. The common feature of this disease is the generation of abnormal clotting factors, which leads to prolonged clotting time and increased risk of bleeding after minor injuries. In severe cases, spontaneous bleeding can occur even without obvious trauma. As an X-linked recessive disorder, Hemophilia B is more common in males, with approximately 1 in every 30,000 newborn males worldwide being affected [1]. Hemophilia B is caused by mutations in the F9 (FIX) gene, which leads to a deficiency of clotting factor IX. The severity of the disease is usually correlated with the activity level of factor IX in the blood plasma. Mild patients (IX factor activity >5%, >0.05 IU/mL) do not experience spontaneous bleeding, but the amount of bleeding after injury or surgery may increase. Moderate patients (IX factor activity 1%-5%, 0.01-0.05 IU/mL) rarely experience spontaneous bleeding, but even minor injuries can cause prolonged bleeding. Severe patients (IX factor activity <1%, <0.01 IU/mL) experience spontaneous bleeding, soft tissue or joint bleeding, and severe subcutaneous hematomas [2]. According to the Centers for Disease Control and Prevention (CDC) in the United States, severe Hemophilia B patients account for 30%-40% of all diagnosed patients [3]. The F9 gene encodes coagulation factor IX, a vitamin K-dependent serine protease that plays a key role in the intrinsic coagulation pathway. Factor IX circulates in the blood as an inactive zymogen and is converted to its active form, factor IXa, by the cleavage of its activation peptide by factor XIa. Factor IXa then interacts with Ca2+ ions, membrane phospholipids, and factor Ⅷ to activate factor X in the coagulation cascade. The body can normally stop bleeding when the levels of factors Ⅷ and IX are ≥50% of normal values [4]. The deficiency of the F9 gene can lead to a clotting disorder with insufficient factor IX, causing X-linked recessive hemophilia B. F9 KO mice are Hemophilia B disease models constructed by knocking out the mouse F9 gene. F9 KO mice lack F9 mRNA expression and exhibit coagulation dysfunction and other Hemophilia B-related phenotypes. They can be used to study the genetic mechanisms and clinical phenotypes of Hemophilia B in humans and to assist in developing, screening, and evaluating therapeutic drugs. The homozygotes are viable and fertile. Tail docking may lead to significant bleeding. Immediate hemostasis, such as cauterizing the tail incision, is advised to prevent health complications in homozygous mice. Usually, ear tags are applied to mice at 2 to 3 weeks of age (a small notch is made with scissors for identification). After tail clipping for genotyping, the tail wound should be promptly cauterized (using metal forceps heated with an alcohol lamp) to prevent fatal bleeding. Following cauterization, place the mouse in a clean cage to prevent wound infection and add environmental enrichment.
Hemophilia is a group of genetic bleeding disorders that affect the blood’s ability to clot. The common feature of this disease is the generation of abnormal clotting factors, which leads to prolonged clotting time and increased risk of bleeding after minor injuries. In severe cases, spontaneous bleeding can occur even without obvious trauma. As an X-linked recessive disorder, Hemophilia B is more common in males, with approximately 1 in every 30,000 newborn males worldwide being affected [1]. Hemophilia B is caused by mutations in the F9 (FIX) gene, which leads to a deficiency of clotting factor IX. The severity of the disease is usually correlated with the activity level of factor IX in the blood plasma. Mild patients (IX factor activity >5%, >0.05 IU/mL) do not experience spontaneous bleeding, but the amount of bleeding after injury or surgery may increase. Moderate patients (IX factor activity 1%-5%, 0.01-0.05 IU/mL) rarely experience spontaneous bleeding, but even minor injuries can cause prolonged bleeding. Severe patients (IX factor activity <1%, <0.01 IU/mL) experience spontaneous bleeding, soft tissue or joint bleeding, and severe subcutaneous hematomas [2]. According to the Centers for Disease Control and Prevention (CDC) in the United States, severe Hemophilia B patients account for 30%-40% of all diagnosed patients [3]. The F9 gene encodes coagulation factor IX, a vitamin K-dependent serine protease that plays a key role in the intrinsic coagulation pathway. Factor IX circulates in the blood as an inactive zymogen and is converted to its active form, factor IXa, by the cleavage of its activation peptide by factor XIa. Factor IXa then interacts with Ca2+ ions, membrane phospholipids, and factor Ⅷ to activate factor X in the coagulation cascade. The body can normally stop bleeding when the levels of factors Ⅷ and IX are ≥50% of normal values [4]. The deficiency of the F9 gene can lead to a clotting disorder with insufficient factor IX, causing X-linked recessive hemophilia B. F9 KO mice are Hemophilia B disease models constructed by knocking out the mouse F9 gene. F9 KO mice lack F9 mRNA expression and exhibit coagulation dysfunction and other Hemophilia B-related phenotypes. They can be used to study the genetic mechanisms and clinical phenotypes of Hemophilia B in humans and to assist in developing, screening, and evaluating therapeutic drugs. The homozygotes are viable and fertile. Tail docking may lead to significant bleeding. Immediate hemostasis, such as cauterizing the tail incision, is advised to prevent health complications in homozygous mice. Usually, ear tags are applied to mice at 2 to 3 weeks of age (a small notch is made with scissors for identification). After tail clipping for genotyping, the tail wound should be promptly cauterized (using metal forceps heated with an alcohol lamp) to prevent fatal bleeding. Following cauterization, place the mouse in a clean cage to prevent wound infection and add environmental enrichment.
huF9
제품 ID:
C001644
계통(Strain):
C57BL/6NCya
상태:
Live Mouse
설명:
Hemophilia is a group of inherited bleeding disorders primarily caused by deficiency or dysfunction of coagulation factor VIII or IX, leading to impaired coagulation. Patients typically present with prolonged clotting time, easy bleeding even after minor trauma, and in severe cases, spontaneous bleeding, commonly occurring in joints and deep tissues. Hemophilia is mainly classified into three types: type A (factor VIII deficiency), type B (factor IX deficiency), and type C (factor XI deficiency). Among these, types A and B are the most prevalent. Hemophilia A is caused by mutations in the F8 gene, resulting in factor VIII deficiency, while hemophilia B is caused by mutations in the F9 gene, leading to factor IX deficiency [1]. Coagulation factor IX, encoded by the F9 gene, is activated to FIXa during coagulation and works in concert with FVIIIa, Ca2+, and membrane phospholipids to activate factor X. Hemophilia A and B are both X-linked recessive genetic disorders with a higher incidence in males. The incidence of hemophilia B is approximately 1/25,000 to 1/30,000, accounting for about 15%-20% of all hemophilia cases [2]. Currently, coagulation factor replacement therapy is the primary treatment for hemophilia [2]. For hemophilia A, the treatment is intravenous injection of factor VIII concentrates; for hemophilia B, factor IX concentrates are injected to maintain normal levels of coagulation factors in patients. However, this therapy is a supplementary approach, requiring lifelong regular injections, which may not only cause side effects but also impose a substantial economic burden on patients. Therefore, gene therapy, particularly for hemophilia B, is considered a highly promising research direction. Etranacogene dezaparvovec (brand name Hemgenix) is the first gene therapy for hemophilia B approved by the U.S. FDA [3-4]. This therapy utilizes adeno-associated virus vector AAV5 to deliver the coagulation factor IX gene to patient hepatocytes, thereby increasing FIX activity in vivo and reducing bleeding events [3]. Gene therapy is considered a potential curative approach for hemophilia B. Considering the genetic differences between animals and humans, and that most gene therapies target human genes, humanizing mouse genes will help accelerate the drug pipeline of gene therapies into the clinical stage. This strain is a humanized mouse F9 gene model, which can be used for preclinical evaluation of hemophilia B pathogenesis and therapeutic drugs. Homozygotes of this model are viable and fertile. In addition, based on the independently developed TurboKnockout fusion BAC recombination technology innovation, Cyagen can also provide disease models of popular point mutations based on this model, and can also provide customized services for different point mutations to meet the experimental needs of researchers in the pharmacodynamics of hemophilia B.
Hemophilia is a group of inherited bleeding disorders primarily caused by deficiency or dysfunction of coagulation factor VIII or IX, leading to impaired coagulation. Patients typically present with prolonged clotting time, easy bleeding even after minor trauma, and in severe cases, spontaneous bleeding, commonly occurring in joints and deep tissues. Hemophilia is mainly classified into three types: type A (factor VIII deficiency), type B (factor IX deficiency), and type C (factor XI deficiency). Among these, types A and B are the most prevalent. Hemophilia A is caused by mutations in the F8 gene, resulting in factor VIII deficiency, while hemophilia B is caused by mutations in the F9 gene, leading to factor IX deficiency [1]. Coagulation factor IX, encoded by the F9 gene, is activated to FIXa during coagulation and works in concert with FVIIIa, Ca2+, and membrane phospholipids to activate factor X. Hemophilia A and B are both X-linked recessive genetic disorders with a higher incidence in males. The incidence of hemophilia B is approximately 1/25,000 to 1/30,000, accounting for about 15%-20% of all hemophilia cases [2]. Currently, coagulation factor replacement therapy is the primary treatment for hemophilia [2]. For hemophilia A, the treatment is intravenous injection of factor VIII concentrates; for hemophilia B, factor IX concentrates are injected to maintain normal levels of coagulation factors in patients. However, this therapy is a supplementary approach, requiring lifelong regular injections, which may not only cause side effects but also impose a substantial economic burden on patients. Therefore, gene therapy, particularly for hemophilia B, is considered a highly promising research direction. Etranacogene dezaparvovec (brand name Hemgenix) is the first gene therapy for hemophilia B approved by the U.S. FDA [3-4]. This therapy utilizes adeno-associated virus vector AAV5 to deliver the coagulation factor IX gene to patient hepatocytes, thereby increasing FIX activity in vivo and reducing bleeding events [3]. Gene therapy is considered a potential curative approach for hemophilia B. Considering the genetic differences between animals and humans, and that most gene therapies target human genes, humanizing mouse genes will help accelerate the drug pipeline of gene therapies into the clinical stage. This strain is a humanized mouse F9 gene model, which can be used for preclinical evaluation of hemophilia B pathogenesis and therapeutic drugs. Homozygotes of this model are viable and fertile. In addition, based on the independently developed TurboKnockout fusion BAC recombination technology innovation, Cyagen can also provide disease models of popular point mutations based on this model, and can also provide customized services for different point mutations to meet the experimental needs of researchers in the pharmacodynamics of hemophilia B.
Gabra4-KO
제품 ID:
S-KO-02158
계통(Strain):
C57BL/6JCya
상태:
Frozen Sperm
설명:
Gabra4 is located on chromosome 5 of mice. Nuclease Technology will be used to design sgRNA; Gabra4 knockout mice will be obtained by applying high-throughput electroporation of fertilized eggs. After sexual maturity, sperm were collected for cryopreservation.
Gabra4 is located on chromosome 5 of mice. Nuclease Technology will be used to design sgRNA; Gabra4 knockout mice will be obtained by applying high-throughput electroporation of fertilized eggs. After sexual maturity, sperm were collected for cryopreservation.
Efnb3-flox
제품 ID:
S-CKO-02158
계통(Strain):
C57BL/6JCya
상태:
Research and Development
설명:
Efnb3 is located on chromosome 11 of mice. SgRNA and ssDNA will be designed using Nuclease Technology; Efnb3 conditional knockout mice will be obtained by high-throughput electroporation of fertilized eggs. After sexual maturity, sperm will be collected for cryopreservation.
Efnb3 is located on chromosome 11 of mice. SgRNA and ssDNA will be designed using Nuclease Technology; Efnb3 conditional knockout mice will be obtained by high-throughput electroporation of fertilized eggs. After sexual maturity, sperm will be collected for cryopreservation.
Items: 1 to 4 of 4
1
더보기
전체 필터
Strain Type
Mouse
Rat
Modification Type
Knockout
Conditional Knockout
Knockin
Point Mutation
Transgenic
Conditional Knockin
Others
Status
Live Mice
R&D
Frozen Sperm
Validation Data
Verified
In Progress
초기화
확인
모델 라이브러리
모델 라이브러리
리소스
리소스
동물 품질
동물 품질
고객 지원
고객 지원
주소:
2255 Martin Avenue, Suite E Santa Clara, CA 95050-2709, US
전화:
800-921-8930 (8-6pm PST)
+1408-963-0306 (lnt’l)
팩스:
408-969-0336
이메일:
[email protected]
연구 모델
HUGO-Ab™(항체 개발을 위한 인간화 게놈 Ortholog)HUGO-GT™(유전자 치료를 위한 인간화 게놈 Ortholog)MouseAtlas 모델 라이브러리연구용 동물 모델
서비스
신경과학안과학종양학대사 및 심혈관 질환자가면역 및 염증
회사 소개
회사 소개시설 개요동물 건강 및 복지건강 보고서대리점인재채용문의하기
소셜 미디어
면책 조항: Cyagen의 제품 및 서비스 가격과 제공 여부는 지역에 따라 다를 수 있습니다. 명표시된 가격은 특정 국가에만 적용됩니다. 자세한 내용은 Cyagen으로 문의해 주시기 바랍니다.
Copyright © 2025 Cyagen. All rights reserved.
개인정보 처리방침
사이트 맵
Cyagen 최신 소식 받아보기
연구 모델, CRO 서비스, 과학 자료 및 특별 혜택에 대한 최신 소식을 연구 니즈에 맞춰 이메일로 받아보세요.
성명
이메일
조직
관심 분야
주요 연구 분야