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B6-hOSM
製品ID :
C001815
系統:
C57BL/6NCya
状況:
説明:
The OSM gene (Oncostatin M) encodes a secreted cytokine, Oncostatin M, which is a pleiotropic protein belonging to the leukemia inhibitory factor/oncostatin-M (LIF/OSM) family. This protein is expressed in various immune cells, including activated T lymphocytes, macrophages, and neutrophils, as well as in other tissues like endothelial cells, osteoblasts, and smooth muscle cells [1]. OSM plays diverse functions, acting as a growth regulator that can inhibit the proliferation of certain tumor cell lines, stimulate proliferation of others (e.g., AIDS-KS cells), and regulate the production of other cytokines like IL-6, G-CSF, and GM-CSF. Its activities are mediated through two receptor complexes: Type I (gp130 and LIFRβ) and Type II (gp130 and OSMRβ), primarily activating the JAK/STAT, MAPK, JNK, and PI3K/AKT signaling pathways [2]. OSM is implicated in a wide array of diseases, contributing to inflammatory conditions such as arthritis (rheumatoid and osteoarthritis), inflammatory bowel disease, lung and skin diseases (e.g., psoriasis, asthma), cardiovascular diseases (e.g., atherosclerosis), and liver diseases (e.g., fibrosis) [3]. It also exhibits a complex role in various cancers, sometimes inhibiting tumor growth in early stages or in specific cell lines, while promoting tumorigenesis, epithelial-mesenchymal transition (EMT), invasion, and metastasis in more advanced cancers like breast, cervical, ovarian, pancreatic, and lung cancers. Deficiency in OSM has also been linked to severe bone marrow failure syndromes [4].
The B6-hOSM mouse is a humanized model, constructed by replacing the coding sequences of the endogenous mouse Osm gene with the coding sequences of the human OSM gene. B6-hOSM mice can be used for research into the pathogenesis of inflammatory conditions such as arthritis (rheumatoid and osteoarthritis), inflammatory bowel disease, lung and skin diseases (e.g., psoriasis, asthma), cardiovascular diseases (e.g., atherosclerosis), liver diseases (e.g., fibrosis), various cancers, and bone marrow failure syndromes, as well as for the screening, development, and safety evaluation of OSM-targeted drugs.
The OSM gene (Oncostatin M) encodes a secreted cytokine, Oncostatin M, which is a pleiotropic protein belonging to the leukemia inhibitory factor/oncostatin-M (LIF/OSM) family. This protein is expressed in various immune cells, including activated T lymphocytes, macrophages, and neutrophils, as well as in other tissues like endothelial cells, osteoblasts, and smooth muscle cells [1]. OSM plays diverse functions, acting as a growth regulator that can inhibit the proliferation of certain tumor cell lines, stimulate proliferation of others (e.g., AIDS-KS cells), and regulate the production of other cytokines like IL-6, G-CSF, and GM-CSF. Its activities are mediated through two receptor complexes: Type I (gp130 and LIFRβ) and Type II (gp130 and OSMRβ), primarily activating the JAK/STAT, MAPK, JNK, and PI3K/AKT signaling pathways [2]. OSM is implicated in a wide array of diseases, contributing to inflammatory conditions such as arthritis (rheumatoid and osteoarthritis), inflammatory bowel disease, lung and skin diseases (e.g., psoriasis, asthma), cardiovascular diseases (e.g., atherosclerosis), and liver diseases (e.g., fibrosis) [3]. It also exhibits a complex role in various cancers, sometimes inhibiting tumor growth in early stages or in specific cell lines, while promoting tumorigenesis, epithelial-mesenchymal transition (EMT), invasion, and metastasis in more advanced cancers like breast, cervical, ovarian, pancreatic, and lung cancers. Deficiency in OSM has also been linked to severe bone marrow failure syndromes [4].
The B6-hOSM mouse is a humanized model, constructed by replacing the coding sequences of the endogenous mouse Osm gene with the coding sequences of the human OSM gene. B6-hOSM mice can be used for research into the pathogenesis of inflammatory conditions such as arthritis (rheumatoid and osteoarthritis), inflammatory bowel disease, lung and skin diseases (e.g., psoriasis, asthma), cardiovascular diseases (e.g., atherosclerosis), liver diseases (e.g., fibrosis), various cancers, and bone marrow failure syndromes, as well as for the screening, development, and safety evaluation of OSM-targeted drugs.
BALB/c-huOSM
製品ID :
C001855
系統:
BALB/cAnCya
状況:
説明:
The OSM gene (Oncostatin M) encodes a secreted cytokine, Oncostatin M, which is a pleiotropic protein belonging to the leukemia inhibitory factor/oncostatin-M (LIF/OSM) family. This protein is expressed in various immune cells, including activated T lymphocytes, macrophages, and neutrophils, as well as in other tissues like endothelial cells, osteoblasts, and smooth muscle cells [1]. OSM plays diverse functions, acting as a growth regulator that can inhibit the proliferation of certain tumor cell lines, stimulate proliferation of others (e.g., AIDS-KS cells), and regulate the production of other cytokines like IL-6, G-CSF, and GM-CSF. Its activities are mediated through two receptor complexes: Type I (gp130 and LIFRβ) and Type II (gp130 and OSMRβ), primarily activating the JAK/STAT, MAPK, JNK, and PI3K/AKT signaling pathways [2]. OSM is implicated in a wide array of diseases, contributing to inflammatory conditions such as arthritis (rheumatoid and osteoarthritis), inflammatory bowel disease, lung and skin diseases (e.g., psoriasis, asthma), cardiovascular diseases (e.g., atherosclerosis), and liver diseases (e.g., fibrosis) [3]. It also exhibits a complex role in various cancers, sometimes inhibiting tumor growth in early stages or in specific cell lines, while promoting tumorigenesis, epithelial-mesenchymal transition (EMT), invasion, and metastasis in more advanced cancers like breast, cervical, ovarian, pancreatic, and lung cancers. Deficiency in OSM has also been linked to severe bone marrow failure syndromes [4].
BALB/c-huOSM mice are humanized models constructed by gene-editing technology, in which the sequences from the ATG start codon to the TAG stop codon of the endogenous mouse Osm gene were replaced with the sequences from the ATG start codon to the TAG stop codon of the human OSM gene. This model can be used to study the pathogenesis of inflammatory diseases (such as rheumatoid arthritis, osteoarthritis, and inflammatory bowel disease), lung and skin diseases (such as asthma and psoriasis), cardiovascular diseases (such as atherosclerosis), liver diseases (such as fibrosis), and bone marrow failure syndrome, as well as the development of OSM-targeted drugs.
The OSM gene (Oncostatin M) encodes a secreted cytokine, Oncostatin M, which is a pleiotropic protein belonging to the leukemia inhibitory factor/oncostatin-M (LIF/OSM) family. This protein is expressed in various immune cells, including activated T lymphocytes, macrophages, and neutrophils, as well as in other tissues like endothelial cells, osteoblasts, and smooth muscle cells [1]. OSM plays diverse functions, acting as a growth regulator that can inhibit the proliferation of certain tumor cell lines, stimulate proliferation of others (e.g., AIDS-KS cells), and regulate the production of other cytokines like IL-6, G-CSF, and GM-CSF. Its activities are mediated through two receptor complexes: Type I (gp130 and LIFRβ) and Type II (gp130 and OSMRβ), primarily activating the JAK/STAT, MAPK, JNK, and PI3K/AKT signaling pathways [2]. OSM is implicated in a wide array of diseases, contributing to inflammatory conditions such as arthritis (rheumatoid and osteoarthritis), inflammatory bowel disease, lung and skin diseases (e.g., psoriasis, asthma), cardiovascular diseases (e.g., atherosclerosis), and liver diseases (e.g., fibrosis) [3]. It also exhibits a complex role in various cancers, sometimes inhibiting tumor growth in early stages or in specific cell lines, while promoting tumorigenesis, epithelial-mesenchymal transition (EMT), invasion, and metastasis in more advanced cancers like breast, cervical, ovarian, pancreatic, and lung cancers. Deficiency in OSM has also been linked to severe bone marrow failure syndromes [4].
BALB/c-huOSM mice are humanized models constructed by gene-editing technology, in which the sequences from the ATG start codon to the TAG stop codon of the endogenous mouse Osm gene were replaced with the sequences from the ATG start codon to the TAG stop codon of the human OSM gene. This model can be used to study the pathogenesis of inflammatory diseases (such as rheumatoid arthritis, osteoarthritis, and inflammatory bowel disease), lung and skin diseases (such as asthma and psoriasis), cardiovascular diseases (such as atherosclerosis), liver diseases (such as fibrosis), and bone marrow failure syndrome, as well as the development of OSM-targeted drugs.
B6-huOSM/hOSMR
製品ID :
C001901
系統:
C57BL/6NCya
状況:
説明:
The B6-huOSM/hOSMR mouse is a dual-gene humanized model obtained by crossing B6-huOSM mice (catalog No.: C001815) with B6-hOSMR mice (catalog No.: C001841). This model can be used for studying the pathogenesis of inflammatory diseases (such as rheumatoid arthritis, osteoarthritis, and inflammatory bowel disease), cancers (cervical squamous cell carcinoma, lung adenocarcinoma, and pancreatic cancer), pulmonary and skin diseases (such as asthma and psoriasis), cardiovascular diseases (such as atherosclerosis), liver diseases (such as fibrosis), and hematopoietic system and bone marrow-related diseases, as well as for the development of OSM/OSMR-targeted drugs.
The B6-huOSM/hOSMR mouse is a dual-gene humanized model obtained by crossing B6-huOSM mice (catalog No.: C001815) with B6-hOSMR mice (catalog No.: C001841). This model can be used for studying the pathogenesis of inflammatory diseases (such as rheumatoid arthritis, osteoarthritis, and inflammatory bowel disease), cancers (cervical squamous cell carcinoma, lung adenocarcinoma, and pancreatic cancer), pulmonary and skin diseases (such as asthma and psoriasis), cardiovascular diseases (such as atherosclerosis), liver diseases (such as fibrosis), and hematopoietic system and bone marrow-related diseases, as well as for the development of OSM/OSMR-targeted drugs.
Foxp3-flox
製品ID :
S-CKO-05008
系統:
C57BL/6JCya
状況:
説明:
Foxp3 is located on chromosome X of mice. SgRNA and ssDNA were designed using Nuclease Technology; Foxp3 conditional knockout mice were obtained by high-throughput electroporation of fertilized eggs. After sexual maturity, sperm were collected for cryopreservation.
Foxp3 is located on chromosome X of mice. SgRNA and ssDNA were designed using Nuclease Technology; Foxp3 conditional knockout mice were obtained by high-throughput electroporation of fertilized eggs. After sexual maturity, sperm were collected for cryopreservation.
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