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C57BL/6JCya-Dyrk3em1/Cya
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C57BL/6JCya-Dyrk3em1/Cya

Common Name
Dyrk3-KO
Product ID
S-KO-05974
Backgroud
C57BL/6JCya
Strain ID
KOCMP-226419-Dyrk3-B6J-VA
Status
Research and Development
When using this mouse strain in a publication, please cite “Dyrk3-KO Mouse (Catalog S-KO-05974) were purchased from Cyagen.”
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KO Models
Basic Information
Strain Name
Dyrk3-KO
Strain ID
KOCMP-226419-Dyrk3-B6J-VA
Gene Name
Dyrk3
Product ID
S-KO-05974
Gene Alias
--
Background
C57BL/6JCya
Gene Full Name
dual-specificity tyrosine-(Y)-phosphorylation regulated kinase 3
Modification
Conventional knockout
NCBI ID
226419 (Mouse)
Phenotype
MGI:1330300
Chromosome
Chr 1 (Mouse)
Application
--
Datasheet
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Strain Description
Ensembl Transcript ID
ENSMUST00000016670
NCBI Transcript ID
NM_145508
Target Region
Exon 1~3
Size of Effective Region
~9.5 kb
Overview of Gene Research
DYRK3, short for dual-specificity tyrosine-phosphorylation-regulated kinase 3, is a key kinase involved in multiple biological processes. It belongs to the DYRK family and plays essential roles in processes such as secretory trafficking, where it maintains the liquid-like state of ER exit sites (ERESs), thus enabling directional membrane traffic in eukaryotic cells [1]. It is also associated with pathways related to cell growth, differentiation, and stress response. Genetic models, like knockout mice, have been valuable in studying its functions.

DYRK3 knockout (KO) mouse experiments show that in anemia, DYRK3 -/- mice exhibit enhanced erythropoiesis, indicating that DYRK3 attenuates red cell production selectively during anemia [4]. In glioblastoma, knockdown of DYRK3 inhibits mitochondrial fission, leading to increased oxidative phosphorylation and reduced glycolysis, and impairs cell migration and invasion, suggesting its role in promoting glioblastoma malignancy [3]. In oral squamous cell carcinoma (OSCC), inhibition of DYRK3 can combat radiotherapy resistance, highlighting the role of the DYRK3/PAICS axis in OSCC radiotherapy resistance pathways [2].

In conclusion, DYRK3 is crucial for regulating multiple biological processes. KO mouse models have revealed its significant roles in diseases such as anemia, glioblastoma, and OSCC. Understanding DYRK3 functions provides insights into disease mechanisms and may offer potential therapeutic targets for these diseases.

References:
1. Gallo, Raffaella, Rai, Arpan Kumar, McIntyre, Alexa B R, Meyer, Katrina, Pelkmans, Lucas. 2023. DYRK3 enables secretory trafficking by maintaining the liquid-like state of ER exit sites. In Developmental cell, 58, 1880-1897.e11. doi:10.1016/j.devcel.2023.08.005. https://pubmed.ncbi.nlm.nih.gov/37643612/
2. Huang, Chin-Sheng, Hsieh, Ming-Shou, Yadav, Vijesh Kumar, Yeh, Chi-Tai, Huang, Mao-Suan. 2023. PAICS/DYRK3 Multienzyme Interactions as Coregulators of Purinosome Formation and Metabolism on Radioresistance in Oral Squamous Cell Carcinoma. In International journal of molecular sciences, 24, . doi:10.3390/ijms242417346. https://pubmed.ncbi.nlm.nih.gov/38139175/
3. Kim, Kyeongmin, Lee, Sungmin, Kang, Hyunkoo, Youn, HyeSook, Youn, BuHyun. 2021. Dual Specificity Kinase DYRK3 Promotes Aggressiveness of Glioblastoma by Altering Mitochondrial Morphology and Function. In International journal of molecular sciences, 22, . doi:10.3390/ijms22062982. https://pubmed.ncbi.nlm.nih.gov/33804169/
4. Bogacheva, Olga, Bogachev, Oleg, Menon, Madhu, Erickson-Miller, Connie L, Wojchowski, Don M. 2008. DYRK3 dual-specificity kinase attenuates erythropoiesis during anemia. In The Journal of biological chemistry, 283, 36665-75. doi:10.1074/jbc.M807844200. https://pubmed.ncbi.nlm.nih.gov/18854306/
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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