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C57BL/6NCya-Aqp9em1/Cya
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C57BL/6NCya-Aqp9em1/Cya

Common Name
Aqp9-KO
Product ID
S-KO-11384
Backgroud
C57BL/6NCya
Strain ID
KOCMP-64008-Aqp9-B6N-VA
Status
Research and Development
When using this mouse strain in a publication, please cite “Aqp9-KO Mouse (Catalog S-KO-11384) were purchased from Cyagen.”
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The standard delivery applies for a guaranteed minimum of three heterozygous carriers. Breeding services for homozygous carriers and/or specified sex are available.
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KO Models
Basic Information
Strain Name
Aqp9-KO
Strain ID
KOCMP-64008-Aqp9-B6N-VA
Gene Name
Aqp9
Product ID
S-KO-11384
Gene Alias
AQP-9, 1700020I22Rik
Background
C57BL/6NCya
Gene Full Name
aquaporin 9
Modification
Conventional knockout
NCBI ID
64008 (Mouse)
Phenotype
MGI:1891066
Chromosome
Chr 9 (Mouse)
Application
--
Datasheet
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Strain Description
Ensembl Transcript ID
ENSMUST00000074465
NCBI Transcript ID
NM_022026
Target Region
Exon 2~3
Size of Effective Region
~5.6 kb
Overview of Gene Research
Aqp9, an aquaglyceroporin, is a small membrane-spanning protein. It is permeable to water, hydrogen peroxide (H2O2), glycerol, and even larger solutes like lactate [2,3,4]. Aqp9 is involved in multiple biological processes, such as hepatocyte H2O2 homeostasis, glucose metabolism, and macrophage polarization. It is associated with pathways like the LPA-hippo pathway, and its functions are crucial in maintaining normal physiological states [1,2]. Genetic models, especially knockout (KO) mouse models, have been instrumental in studying Aqp9's functions.

In a CD mouse model, specific inhibition of Aqp9 significantly enhanced the response to anti-TNF therapy. Blockade of Aqp9 in macrophages decreased their inflamed functions and cytokine expression, revealing its role in the LPA-hippo pathway activation and cytokine production in Crohn's disease [1]. Aqp9 -/- mice showed impaired liver regeneration, increased hepatic H2O2 concentration, and abnormal glucose metabolism, indicating its importance in liver regeneration [2]. In a tumor allograft mouse model, Aqp9 knockout mice were more resistant to tumor cell growth with suppressed M2-like polarization in tumor tissue, suggesting Aqp9's role in promoting tumor progression through lactate-induced macrophage polarization [3].

In conclusion, Aqp9 plays essential roles in biological processes like liver regeneration, macrophage polarization, and disease-related cytokine regulation. The use of Aqp9 KO mouse models has provided valuable insights into its functions in diseases such as Crohn's disease, liver injury, and colon cancer, highlighting its potential as a therapeutic target in these disease areas.

References:
1. Yu, Minhao, Shi, Yuan, Gao, Yuan, Cao, Zhijun, Zhong, Ming. 2024. Targeting AQP9 enhanced the anti-TNF therapy response in Crohn's disease by inhibiting LPA-hippo pathway. In Pharmacological research, 203, 107172. doi:10.1016/j.phrs.2024.107172. https://pubmed.ncbi.nlm.nih.gov/38583685/
2. Zhang, Bo, Lv, Dongyue, Chen, Yang, Chen, Siqing, Ma, Tonghui. 2022. Aquaporin-9 facilitates liver regeneration following hepatectomy. In Redox biology, 50, 102246. doi:10.1016/j.redox.2022.102246. https://pubmed.ncbi.nlm.nih.gov/35086002/
3. Shi, Yundi, Yasui, Masato, Hara-Chikuma, Mariko. 2022. AQP9 transports lactate in tumor-associated macrophages to stimulate an M2-like polarization that promotes colon cancer progression. In Biochemistry and biophysics reports, 31, 101317. doi:10.1016/j.bbrep.2022.101317. https://pubmed.ncbi.nlm.nih.gov/35967760/
4. Verkman, A S, Mitra, A K. . Structure and function of aquaporin water channels. In American journal of physiology. Renal physiology, 278, F13-28. doi:. https://pubmed.ncbi.nlm.nih.gov/10644652/
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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