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C57BL/6JCya-Toxem1/Cya
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C57BL/6JCya-Toxem1/Cya

Common Name
Tox-KO
Product ID
S-KO-17225
Backgroud
C57BL/6JCya
Strain ID
KOCMP-252838-Tox-B6J-VB
Status
Research and Development
When using this mouse strain in a publication, please cite “Tox-KO Mouse (Catalog S-KO-17225) were purchased from Cyagen.”
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Basic Information
Strain Name
Tox-KO
Strain ID
KOCMP-252838-Tox-B6J-VB
Gene Name
Tox
Product ID
S-KO-17225
Gene Alias
1700007F02Rik
Background
C57BL/6JCya
Gene Full Name
thymocyte selection-associated high mobility group box
Modification
Conventional knockout
NCBI ID
252838 (Mouse)
Phenotype
MGI:2181659
Chromosome
Chr 4 (Mouse)
Application
--
Datasheet
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Strain Description
Ensembl Transcript ID
ENSMUST00000039987
NCBI Transcript ID
NM_145711
Target Region
Exon 1
Size of Effective Region
~0.4 kb
Overview of Gene Research
TOX, also known as thymocyte selection-associated high mobility group box protein, is a DNA-binding protein belonging to an evolutionarily conserved family. It contains a DNA-binding domain and plays crucial roles in the immune system. TOX is involved in regulating T-cell differentiation, and its expression is associated with pathways such as chronic T-cell receptor stimulation and NFAT activation. It is important in various biological processes related to T-cells, including their exhaustion and survival, and has implications for cancer, chronic infections, and autoimmune diseases [1,2,3,4].

In tumor-specific CD8 T cells, deletion of Tox abrogated the exhaustion program as Tox-deleted TST cells did not upregulate genes for inhibitory receptors and retained high expression of transcription factors like TCF-1. However, despite their non-exhausted immunophenotype, these cells remained dysfunctional and failed to persist in tumors, suggesting a decoupling of inhibitory receptor regulation from effector function loss [1]. In autoimmune hepatitis, dual-stage loss of TOX in thymocytes hierarchically impaired mTEC maturation, promoted thymic IL-17A-producing γδ T-cell lineage commitment, and led to the development of fatal autoimmune hepatitis. Transfer of γδ T cells from TOX-deficient mice reproduced AIH, and TOX expression was downregulated in γδ T cells from AIH patients, inversely correlated with the AIH diagnostic score [5].

In conclusion, TOX is a key regulator in T-cell differentiation. Gene knockout models of Tox in mice have revealed its significance in tumor-specific T-cell exhaustion and autoimmune hepatitis. Understanding TOX's functions through these models provides insights into the mechanisms of cancer and autoimmune diseases, potentially guiding the development of new therapeutic strategies.

References:
1. Scott, Andrew C, Dündar, Friederike, Zumbo, Paul, Philip, Mary, Schietinger, Andrea. 2019. TOX is a critical regulator of tumour-specific T cell differentiation. In Nature, 571, 270-274. doi:10.1038/s41586-019-1324-y. https://pubmed.ncbi.nlm.nih.gov/31207604/
2. Niu, Haiyue, Wang, Huaquan. 2023. TOX regulates T lymphocytes differentiation and its function in tumor. In Frontiers in immunology, 14, 990419. doi:10.3389/fimmu.2023.990419. https://pubmed.ncbi.nlm.nih.gov/36969216/
3. Han, Jiawen, Wan, Minjie, Ma, Zhanchuan, He, Ping. . The TOX subfamily: all-round players in the immune system. In Clinical and experimental immunology, 208, 268-280. doi:10.1093/cei/uxac037. https://pubmed.ncbi.nlm.nih.gov/35485425/
4. Liang, Chaofeng, Huang, Shuxin, Zhao, Yujie, Chen, Shaohua, Li, Yangqiu. 2021. TOX as a potential target for immunotherapy in lymphocytic malignancies. In Biomarker research, 9, 20. doi:10.1186/s40364-021-00275-y. https://pubmed.ncbi.nlm.nih.gov/33743809/
5. He, Qifeng, Lu, Yijun, Tian, Wenfang, Dong, Zhongjun, Sun, Beicheng. 2022. TOX deficiency facilitates the differentiation of IL-17A-producing γδ T cells to drive autoimmune hepatitis. In Cellular & molecular immunology, 19, 1102-1116. doi:10.1038/s41423-022-00912-y. https://pubmed.ncbi.nlm.nih.gov/35986136/
Quality Control Standard
Sperm Test

Pre-cryopreservation: Measurement of sperm concentration, determination of sperm viability.

Post-cryopreservation: A vial of cryopreserved sperms is selected for in-vitro fertilization from each batch.

Environmental Standards:SPF
Available Region:Global
Source:Cyagen
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Global Antibody Drug Industry Development BlueBook (Frost & Sullivan)
Key Insights
The industry is undergoing a rapid transformation driven by next-generation modalities, globalized markets, and upstream technological innovations.
  • Market Structural Shift: Monoclonal antibodies drive steady growth, but ADCs and bispecifics are rapidly accelerating, reshaping the market with higher-value innovations.
  • Chinese Market Globalization: China is actively expanding globally, evidenced by a surge in high-value cross-border license-out deals.
  • Technology-Driven Efficiency: Advanced discovery engines—exemplified by Cyagen's HUGO-Ab platform and AI algorithms—are streamlining candidate screening, optimizing molecular design, and localizing the upstream supply chain.
  • Oncology-Focused Innovation: R&D pipelines remain heavily concentrated on high-incidence malignancies like non-small cell lung cancer, utilizing complex modalities to combat clinical resistance.
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