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B6-hGLP-1R
製品ID :
C001421
系統:
C57BL/6NCya
状況:
説明:
The Glucagon-like peptide 1 receptor (GLP1R) gene encodes a protein that belongs to the glucagon receptor subfamily of the G protein-coupled receptor B cluster [1]. This cell surface receptor protein is widely expressed in tissues such as the brain, small intestine, heart, and lungs, and plays a crucial role in insulin secretion signaling cascades by responding to GLP-1 and GLP-1 analogs. Animal model data also suggest that it has neuroprotective effects. Polymorphisms of this gene are closely associated with diabetes, making the GLP-1R protein an important drug target for the treatment of type 2 diabetes and stroke [2-3]. Glucagon-like peptide-1 receptor agonists (GLP-1RA) are novel anti-diabetic drugs that activate GLP-1R to enhance insulin secretion, inhibit glucagon secretion, delay gastric emptying, and reduce food intake through central appetite suppression, thereby achieving blood sugar reduction and weight loss [4].
B6-hGLP-1R mice are a model of mouse Glp1r gene humanization, in which the sequences encoding the seven-transmembrane (7TM) structural domain and the larger extracellular structural domain of the human GLP1R gene were inserted into the mouse Glp1r gene sequence using gene editing technology. This model expresses the key functional regions of the human GLP-1R protein while preserving the signal peptide and 3’UTR region of mouse GLp1r. It can be used to study the pathogenesis of various metabolic diseases, such as obesity and type II diabetes, as well as for screening in GLP-1RA drug development. Homozygous B6-hGLP-1R mice are viable and fertile.
The Glucagon-like peptide 1 receptor (GLP1R) gene encodes a protein that belongs to the glucagon receptor subfamily of the G protein-coupled receptor B cluster [1]. This cell surface receptor protein is widely expressed in tissues such as the brain, small intestine, heart, and lungs, and plays a crucial role in insulin secretion signaling cascades by responding to GLP-1 and GLP-1 analogs. Animal model data also suggest that it has neuroprotective effects. Polymorphisms of this gene are closely associated with diabetes, making the GLP-1R protein an important drug target for the treatment of type 2 diabetes and stroke [2-3]. Glucagon-like peptide-1 receptor agonists (GLP-1RA) are novel anti-diabetic drugs that activate GLP-1R to enhance insulin secretion, inhibit glucagon secretion, delay gastric emptying, and reduce food intake through central appetite suppression, thereby achieving blood sugar reduction and weight loss [4].
B6-hGLP-1R mice are a model of mouse Glp1r gene humanization, in which the sequences encoding the seven-transmembrane (7TM) structural domain and the larger extracellular structural domain of the human GLP1R gene were inserted into the mouse Glp1r gene sequence using gene editing technology. This model expresses the key functional regions of the human GLP-1R protein while preserving the signal peptide and 3’UTR region of mouse GLp1r. It can be used to study the pathogenesis of various metabolic diseases, such as obesity and type II diabetes, as well as for screening in GLP-1RA drug development. Homozygous B6-hGLP-1R mice are viable and fertile.
B6-hGLP-1R/ob
製品ID :
C001601
系統:
C57BL/6NCya;C57BL/6JCya
状況:
説明:
The Glucagon-like peptide 1 receptor (GLP1R) gene encodes a protein that belongs to the glucagon receptor subfamily of the G protein-coupled receptor B cluster [1]. This cell surface receptor protein is widely expressed in tissues such as the brain, small intestine, heart, and lungs, and plays a crucial role in insulin secretion signaling cascades by responding to GLP-1 and GLP-1 analogs. Animal model data also suggest that it has neuroprotective effects. Polymorphisms of this gene are closely associated with diabetes, making the GLP-1R protein an important drug target for the treatment of type 2 diabetes and stroke [2-3]. Glucagon-like peptide-1 receptor agonists (GLP-1RA) are novel anti-diabetic drugs that activate GLP-1R to enhance insulin secretion, inhibit glucagon secretion, delay gastric emptying, and reduce food intake through central appetite suppression, thereby achieving blood sugar reduction and weight loss [4].
The leptin (LEP) gene, also known as the OB gene, encodes the leptin protein, which is secreted into the circulation by white adipocytes and plays a major role in regulating energy homeostasis. Circulating leptin binds to leptin receptors (LEPR) in the brain, activating downstream signaling pathways that inhibit feeding and promote energy expenditure. Leptin also has multiple endocrine functions and is involved in physiopathological processes such as immune and inflammatory responses, hematopoiesis, angiogenesis, reproduction, bone formation, and wound healing [6]. Mutations in the LEP gene and its regulatory regions lead to severe obesity and morbid obesity with hypogonadism in humans and are also associated with the development of type II diabetes [7].
The B6-hGLP-1R/ob mouse model, generated by mating B6-hGLP-1R mice (Catalog Number: C001421) with Lep KO (ob/ob) mice (Catalog Number: C001368), is a metabolic disease model. It can be used for research on the pathogenic mechanisms of various metabolic diseases, such as obesity and type II diabetes, and for screening GLP-1RA drugs.
The Glucagon-like peptide 1 receptor (GLP1R) gene encodes a protein that belongs to the glucagon receptor subfamily of the G protein-coupled receptor B cluster [1]. This cell surface receptor protein is widely expressed in tissues such as the brain, small intestine, heart, and lungs, and plays a crucial role in insulin secretion signaling cascades by responding to GLP-1 and GLP-1 analogs. Animal model data also suggest that it has neuroprotective effects. Polymorphisms of this gene are closely associated with diabetes, making the GLP-1R protein an important drug target for the treatment of type 2 diabetes and stroke [2-3]. Glucagon-like peptide-1 receptor agonists (GLP-1RA) are novel anti-diabetic drugs that activate GLP-1R to enhance insulin secretion, inhibit glucagon secretion, delay gastric emptying, and reduce food intake through central appetite suppression, thereby achieving blood sugar reduction and weight loss [4].
The leptin (LEP) gene, also known as the OB gene, encodes the leptin protein, which is secreted into the circulation by white adipocytes and plays a major role in regulating energy homeostasis. Circulating leptin binds to leptin receptors (LEPR) in the brain, activating downstream signaling pathways that inhibit feeding and promote energy expenditure. Leptin also has multiple endocrine functions and is involved in physiopathological processes such as immune and inflammatory responses, hematopoiesis, angiogenesis, reproduction, bone formation, and wound healing [6]. Mutations in the LEP gene and its regulatory regions lead to severe obesity and morbid obesity with hypogonadism in humans and are also associated with the development of type II diabetes [7].
The B6-hGLP-1R/ob mouse model, generated by mating B6-hGLP-1R mice (Catalog Number: C001421) with Lep KO (ob/ob) mice (Catalog Number: C001368), is a metabolic disease model. It can be used for research on the pathogenic mechanisms of various metabolic diseases, such as obesity and type II diabetes, and for screening GLP-1RA drugs.
B6-hGIPR/hGLP-1R
製品ID :
C001599
系統:
C57BL/6NCya
状況:
説明:
The Glucagon-like peptide 1 receptor (GLP1R) gene encodes a protein that belongs to the glucagon receptor subfamily of the G protein-coupled receptor B cluster [1]. This cell surface receptor protein is widely expressed in tissues such as the brain, small intestine, heart, and lungs, and plays a crucial role in insulin secretion signaling cascades by responding to GLP-1 and GLP-1 analogs. Animal model data also suggest that it has neuroprotective effects. Polymorphisms of this gene are closely associated with diabetes, making the GLP-1R protein an important drug target for the treatment of type 2 diabetes and stroke [2-3]. Glucagon-like peptide-1 receptor agonists (GLP-1RA) are novel anti-diabetic drugs that activate GLP-1R to enhance insulin secretion, inhibit glucagon secretion, delay gastric emptying, and reduce food intake through central appetite suppression, thereby achieving blood sugar reduction and weight loss [4].
The GIPR gene encodes a G-protein-coupled receptor for gastric inhibitory polypeptide (GIP), secreted by intestinal K cells after food intake. GIP was initially discovered in intestinal extracts to inhibit gastric acid secretion and gastrin release, but it was later found to stimulate insulin release in the presence of elevated glucose levels. GIPR activation stimulates pancreatic β-cells to secrete insulin and mediates fat deposition by increasing lipoprotein lipase activity, adipogenesis, and fatty acid and glucose uptake in adipocytes. GIPR is primarily expressed in EBV-transformed lymphocytes, the stomach, and visceral adipose tissue [6]. Knockout mice for this gene exhibit elevated blood glucose levels and impaired initial insulin response following oral glucose load. Mice with disrupted Gipr expression show resistance to diet-induced obesity [7]. A deficiency in the GIPR gene is associated with type 2 diabetes and obesity. Research suggests that one of the core strategies for the next generation of T2D drugs is the production of single-peptide agonists, targeting both GLP-1R activity and the glucose-dependent insulinotropic polypeptide receptor (GIPR). GIPR involvement enhances the weight-loss effects of GLP-1-based therapies. This approach improves glycemic control and weight loss in T2D patients, highlighting the GIPR signaling axis as a promising and effective co-target [8].
The B6-hGIPR/hGLP-1R mouse is a dual humanized model for the Gipr and Glp1r genes. Using gene-editing technology, a partial coding sequence (CDS) of the human GIPR gene was inserted into the mouse Gipr gene sequence in B6-hGLP-1R mice (Catalog No.: C001421). This model expresses the functional region of the human GIPR protein while preserving the mouse signal peptide. It can be used to study the pathogenic mechanisms of metabolic diseases such as obesity and type 2 diabetes, and the development of GIPR/GLP-1R dual agonist drugs. The homozygotes are viable and fertile.
The Glucagon-like peptide 1 receptor (GLP1R) gene encodes a protein that belongs to the glucagon receptor subfamily of the G protein-coupled receptor B cluster [1]. This cell surface receptor protein is widely expressed in tissues such as the brain, small intestine, heart, and lungs, and plays a crucial role in insulin secretion signaling cascades by responding to GLP-1 and GLP-1 analogs. Animal model data also suggest that it has neuroprotective effects. Polymorphisms of this gene are closely associated with diabetes, making the GLP-1R protein an important drug target for the treatment of type 2 diabetes and stroke [2-3]. Glucagon-like peptide-1 receptor agonists (GLP-1RA) are novel anti-diabetic drugs that activate GLP-1R to enhance insulin secretion, inhibit glucagon secretion, delay gastric emptying, and reduce food intake through central appetite suppression, thereby achieving blood sugar reduction and weight loss [4].
The GIPR gene encodes a G-protein-coupled receptor for gastric inhibitory polypeptide (GIP), secreted by intestinal K cells after food intake. GIP was initially discovered in intestinal extracts to inhibit gastric acid secretion and gastrin release, but it was later found to stimulate insulin release in the presence of elevated glucose levels. GIPR activation stimulates pancreatic β-cells to secrete insulin and mediates fat deposition by increasing lipoprotein lipase activity, adipogenesis, and fatty acid and glucose uptake in adipocytes. GIPR is primarily expressed in EBV-transformed lymphocytes, the stomach, and visceral adipose tissue [6]. Knockout mice for this gene exhibit elevated blood glucose levels and impaired initial insulin response following oral glucose load. Mice with disrupted Gipr expression show resistance to diet-induced obesity [7]. A deficiency in the GIPR gene is associated with type 2 diabetes and obesity. Research suggests that one of the core strategies for the next generation of T2D drugs is the production of single-peptide agonists, targeting both GLP-1R activity and the glucose-dependent insulinotropic polypeptide receptor (GIPR). GIPR involvement enhances the weight-loss effects of GLP-1-based therapies. This approach improves glycemic control and weight loss in T2D patients, highlighting the GIPR signaling axis as a promising and effective co-target [8].
The B6-hGIPR/hGLP-1R mouse is a dual humanized model for the Gipr and Glp1r genes. Using gene-editing technology, a partial coding sequence (CDS) of the human GIPR gene was inserted into the mouse Gipr gene sequence in B6-hGLP-1R mice (Catalog No.: C001421). This model expresses the functional region of the human GIPR protein while preserving the mouse signal peptide. It can be used to study the pathogenic mechanisms of metabolic diseases such as obesity and type 2 diabetes, and the development of GIPR/GLP-1R dual agonist drugs. The homozygotes are viable and fertile.
B6-huGCGR/hGLP1R
製品ID :
C001785
系統:
C57BL/6NCya
状況:
説明:
The B6-huGCGR/hGLP1R mouse is a dual-gene humanized model obtained by mating B6-huGCGR mice (catalog No.: C001723) with B6-hGLP-1R mice (catalog No.: C001421). This model can be used for studying the pathogenesis of glucose-related metabolic diseases such as obesity, type 2 diabetes (T2D), and steatohepatitis, as well as for the screening, development, and safety evaluation of drugs targeting GCGR/GLP1R.
The B6-huGCGR/hGLP1R mouse is a dual-gene humanized model obtained by mating B6-huGCGR mice (catalog No.: C001723) with B6-hGLP-1R mice (catalog No.: C001421). This model can be used for studying the pathogenesis of glucose-related metabolic diseases such as obesity, type 2 diabetes (T2D), and steatohepatitis, as well as for the screening, development, and safety evaluation of drugs targeting GCGR/GLP1R.
B6-htau/hGLP-1R
製品ID :
I001221
系統:
C57BL/6Cya
状況:
説明:
The tau protein, a microtubule-associated protein encoded by MAPT is primarily localized to neuronal axons and plays a critical role in microtubule stability and assembly. By binding to microtubules, tau protein helps to maintain neuronal cell shape. Mutations in MAPT can promote tau aggregation, leading to pathological tau protein accumulation and death of glutamatergic cortical neurons [1]. Additionally, certain MAPT mutations can affect pre-mRNA exon splicing, altering the ratio of 3R to 4R tau protein isoforms and increasing the relative production of 4R-tau protein, which is more prone to fibril formation [2].
The GLP-1 receptor (GLP-1R) gene encodes a protein that serves as the receptor for the glucagon-like peptide 1 (GLP-1) hormone, belonging to the glucagon receptor subfamily within the class B G-protein-coupled receptors (GPCRs). G proteins are a class of intracellular signal transduction proteins typically associated with seven-transmembrane receptors (GPCRs). When a GPCR binds to its ligand, it activates the G protein, causing it to dissociate from the Gβγ subunit and initiate downstream effects through interactions with membrane-bound effector molecules. This signaling process is known as canonical G protein signaling. GLP-1R is a multi-transmembrane protein characterized by a typical seven-transmembrane core domain and a relatively large extracellular domain, which can stimulate glucose-induced insulin secretion [3]. GLP-1R is a cell surface receptor protein widely expressed in tissues such as the brain, small intestine, heart, and lungs. It internalizes in response to GLP-1 and GLP-1 analogs and plays a crucial role in the insulin secretion signaling cascade. Additionally, data from animal models indicate its neuroprotective effects [4-5]. Polymorphisms of this gene are closely associated with diabetes. The GLP1R protein is an important drug target for treating type 2 diabetes and stroke. Glucagon-like peptide-1 receptor agonists (GLP-1RAs) are a new class of antidiabetic drugs in recent years. They activate GLP1R to enhance insulin secretion, suppress glucagon secretion, delay gastric emptying, and reduce food intake through central appetite suppression, lowering blood glucose and weight loss [6].
The B6-htau/hGLP-1R mouse is obtained by mating B6-htau mice (Catalog No.: C001410) with B6-hGLP-1R mice (Catalog No.: C001421). This model can be used for research on neurodegenerative diseases such as frontotemporal dementia (FTD) and Alzheimer's disease (AD), as well as metabolic diseases such as obesity and type 2 diabetes. It is also useful for developing GLP-1 receptor agonist (GLP-1RA) drugs or for the preclinical evaluation of the potential therapeutic effects of GLP-1RA drugs in tauopathy-related diseases like Alzheimer's disease (AD).
The tau protein, a microtubule-associated protein encoded by MAPT is primarily localized to neuronal axons and plays a critical role in microtubule stability and assembly. By binding to microtubules, tau protein helps to maintain neuronal cell shape. Mutations in MAPT can promote tau aggregation, leading to pathological tau protein accumulation and death of glutamatergic cortical neurons [1]. Additionally, certain MAPT mutations can affect pre-mRNA exon splicing, altering the ratio of 3R to 4R tau protein isoforms and increasing the relative production of 4R-tau protein, which is more prone to fibril formation [2].
The GLP-1 receptor (GLP-1R) gene encodes a protein that serves as the receptor for the glucagon-like peptide 1 (GLP-1) hormone, belonging to the glucagon receptor subfamily within the class B G-protein-coupled receptors (GPCRs). G proteins are a class of intracellular signal transduction proteins typically associated with seven-transmembrane receptors (GPCRs). When a GPCR binds to its ligand, it activates the G protein, causing it to dissociate from the Gβγ subunit and initiate downstream effects through interactions with membrane-bound effector molecules. This signaling process is known as canonical G protein signaling. GLP-1R is a multi-transmembrane protein characterized by a typical seven-transmembrane core domain and a relatively large extracellular domain, which can stimulate glucose-induced insulin secretion [3]. GLP-1R is a cell surface receptor protein widely expressed in tissues such as the brain, small intestine, heart, and lungs. It internalizes in response to GLP-1 and GLP-1 analogs and plays a crucial role in the insulin secretion signaling cascade. Additionally, data from animal models indicate its neuroprotective effects [4-5]. Polymorphisms of this gene are closely associated with diabetes. The GLP1R protein is an important drug target for treating type 2 diabetes and stroke. Glucagon-like peptide-1 receptor agonists (GLP-1RAs) are a new class of antidiabetic drugs in recent years. They activate GLP1R to enhance insulin secretion, suppress glucagon secretion, delay gastric emptying, and reduce food intake through central appetite suppression, lowering blood glucose and weight loss [6].
The B6-htau/hGLP-1R mouse is obtained by mating B6-htau mice (Catalog No.: C001410) with B6-hGLP-1R mice (Catalog No.: C001421). This model can be used for research on neurodegenerative diseases such as frontotemporal dementia (FTD) and Alzheimer's disease (AD), as well as metabolic diseases such as obesity and type 2 diabetes. It is also useful for developing GLP-1 receptor agonist (GLP-1RA) drugs or for the preclinical evaluation of the potential therapeutic effects of GLP-1RA drugs in tauopathy-related diseases like Alzheimer's disease (AD).
B6-hGIPR/huGCGR/hGLP-1R
製品ID :
C001939
系統:
C57BL/6NCya
状況:
説明:
The B6-hGIPR/huGCGR/hGLP-1R mouse is a triple-gene humanized model obtained by mating B6-hGIPR/hGLP-1R mice (catalog No.: C001599) with B6-huGCGR mice (catalog No.: C001723). This model can be used for studying the pathogenic mechanisms and developing treatment methods for glucose-related metabolic diseases such as obesity, type 2 diabetes (T2D), and steatohepatitis, as well as for the development of GIPR/GLP-1R/GCGR-targeted drugs.
The B6-hGIPR/huGCGR/hGLP-1R mouse is a triple-gene humanized model obtained by mating B6-hGIPR/hGLP-1R mice (catalog No.: C001599) with B6-huGCGR mice (catalog No.: C001723). This model can be used for studying the pathogenic mechanisms and developing treatment methods for glucose-related metabolic diseases such as obesity, type 2 diabetes (T2D), and steatohepatitis, as well as for the development of GIPR/GLP-1R/GCGR-targeted drugs.
Gpr162-flox
製品ID :
S-CKO-02740
系統:
C57BL/6JCya
状況:
説明:
Gpr162 is located on chromosome 6 of mice. SgRNA and ssDNA were designed using Nuclease Technology; Gpr162 conditional knockout mice were obtained by high-throughput electroporation of fertilized eggs. After sexual maturity, sperm were collected for cryopreservation.
Gpr162 is located on chromosome 6 of mice. SgRNA and ssDNA were designed using Nuclease Technology; Gpr162 conditional knockout mice were obtained by high-throughput electroporation of fertilized eggs. After sexual maturity, sperm were collected for cryopreservation.
Kcnab2-KO
製品ID :
S-KO-02740
系統:
C57BL/6JCya
状況:
説明:
Kcnab2 is located on chromosome 4 of mice. Nuclease Technology will be used to design sgRNA; Kcnab2 knockout mice will be obtained by applying high-throughput electroporation of fertilized eggs. After sexual maturity, sperm were collected for cryopreservation.
Kcnab2 is located on chromosome 4 of mice. Nuclease Technology will be used to design sgRNA; Kcnab2 knockout mice will be obtained by applying high-throughput electroporation of fertilized eggs. After sexual maturity, sperm were collected for cryopreservation.
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