Spag1-KO Mouse
Common Name
Spag1-KO
제품 ID
S-KO-17275
Backgroud
C57BL/6JCya
품종 계통계통 ID
KOCMP-26942-Spag1-B6J-VB
상태
이 마우스 계통을 논문에서 사용할 경우, “Spag1-KO Mouse (카탈로그 번호 S-KO-17275)은 Cyagen에서 구입하였습니다.”라고 명시해 주시기 바랍니다.
구매 가능한 제품 종류
연령
Genotype
성별
수량
표준 제공 조건은 최소 3마리의 이형접합(heterozygous) 보균자를 보장합니다. 동형접합(homozygous) 보균자 및/또는 특정 성별에 대한 브리딩 서비스도 제공됩니다.
기본 정보
품종 계통
Spag1-KO
품종 계통계통 ID
KOCMP-26942-Spag1-B6J-VB
유전자명
제품 ID
S-KO-17275
유전자 별칭
tpis
배경
C57BL/6JCya
NCBI ID
변형 내용
Conventional knockout
염색체
Chr 15
Phenotype
Datasheet
적용 분야
--
품종 계통 설명
Ensembl 전사체 ID
ENSMUST00000047348
NCBI 전사체 ID
NM_001359980
타겟 영역
Exon 3~8
유효 영역 크기
~12.4 kb
유전자 연구 개요
Spag1, or sperm-associated antigen 1, is a multidomain protein. It is essential for the assembly of axonemal dynein arms in cilia, a process crucial for the function of motile cells. It interacts with multiple dynein axonemal assembly factors (DNAAFs), dynein chains and components of the R2TP complex, and is necessary for scaffolding R2TP-like complexes that facilitate the folding and binding of dynein heavy chains (DHCs) to the dynein intermediate chain (DIC) complex [2,4,6]. Mutations in Spag1 result in primary ciliary dyskinesia (PCD), a disorder characterized by chronic oto-sino-pulmonary disease, infertility and laterality defects [2,3,7,8].
In acute myeloid leukemia (AML), Spag1 is widely expressed and its high expression is associated with a poor prognosis. RNA interference knockdown tests showed that Spag1 promotes the proliferation and survival of AML cells, regulates the expression of structural maintenance of chromosomes protein 3 (SMC3), and activates the ERK/MAPK signaling pathway. Inhibiting Spag1 also impacts AML cell susceptibility to venetoclax. Bioinformatics and clinical validation further confirmed that Spag1 overexpression may serve as an independent prognostic biomarker and guide treatment choice between hematopoietic stem cell transplantation (HSCT) and chemotherapy in AML patients [1,5]. In porcine immature Sertoli cells, miR-638 targets Spag1 to inhibit cell proliferation, cell cycle, and promote apoptosis, and it indirectly inactivates the PI3K/AKT pathway [9].
In conclusion, Spag1 plays a crucial role in cilia-related biological functions and is associated with PCD. In the context of AML, it affects cell proliferation, survival, and chemotherapy sensitivity, highlighting its potential as a therapeutic target. The study of Spag1 in these disease areas, through methods like RNA interference knockdown (functionally similar to gene knockout in revealing gene function), provides insights into disease mechanisms and potential treatment strategies.
References:
1. Liu, Lu, Liu, Jing, Liu, Xiao-Jun, Yang, Lin, Luo, Jian-Min. 2022. SPAG1 promotes the development of AML by activating the ERK/MAPK signaling pathway and affects the chemotherapy sensitivity of venetoclax. In Neoplasma, 69, 1108-1118. doi:10.4149/neo_2022_220415N416. https://pubmed.ncbi.nlm.nih.gov/35951456/
2. Smith, Amanda J, Bustamante-Marin, Ximena M, Yin, Weining, Zariwala, Maimoona A, Ostrowski, Lawrence E. 2022. The role of SPAG1 in the assembly of axonemal dyneins in human airway epithelia. In Journal of cell science, 135, . doi:10.1242/jcs.259512. https://pubmed.ncbi.nlm.nih.gov/35178554/
3. Guan, Yuhong, Yang, Haiming, Yao, Xingfeng, Ge, Wentong, Ni, Xin. 2021. Clinical and Genetic Spectrum of Children With Primary Ciliary Dyskinesia in China. In Chest, 159, 1768-1781. doi:10.1016/j.chest.2021.02.006. https://pubmed.ncbi.nlm.nih.gov/33577779/
4. Chagot, Marie-Eve, Dos Santos Morais, Raphael, Dermouche, Sana, Dehez, François, Quinternet, Marc. 2019. Binding properties of the quaternary assembly protein SPAG1. In The Biochemical journal, 476, 1679-1694. doi:10.1042/BCJ20190198. https://pubmed.ncbi.nlm.nih.gov/31118266/
5. Gu, Yu, Chu, Ming-Qiang, Xu, Zi-Jun, Lin, Jiang, Zhou, Jing-Dong. 2022. Comprehensive analysis of SPAG1 expression as a prognostic and predictive biomarker in acute myeloid leukemia by integrative bioinformatics and clinical validation. In BMC medical genomics, 15, 38. doi:10.1186/s12920-022-01193-0. https://pubmed.ncbi.nlm.nih.gov/35227274/
6. Dermouche, Sana, Chagot, Marie-Eve, Manival, Xavier, Quinternet, Marc. 2021. Optimizing the First TPR Domain of the Human SPAG1 Protein Provides Insight into the HSP70 and HSP90 Binding Properties. In Biochemistry, 60, 2349-2363. doi:10.1021/acs.biochem.1c00052. https://pubmed.ncbi.nlm.nih.gov/33739091/
7. Knowles, Michael R, Ostrowski, Lawrence E, Loges, Niki T, Omran, Heymut, Zariwala, Maimoona A. 2013. Mutations in SPAG1 cause primary ciliary dyskinesia associated with defective outer and inner dynein arms. In American journal of human genetics, 93, 711-20. doi:10.1016/j.ajhg.2013.07.025. https://pubmed.ncbi.nlm.nih.gov/24055112/
8. Jat, Kana Ram, Faruq, Mohammed, Jindal, Shishir, Arava, Sudheer K, Kabra, Sushil K. 2024. Genetics of 67 patients of suspected primary ciliary dyskinesia from India. In Clinical genetics, 106, 650-658. doi:10.1111/cge.14590. https://pubmed.ncbi.nlm.nih.gov/39004944/
9. Hu, Pandi, Guan, Kaifeng, Feng, Yue, Li, Jialian, Li, Fenge. 2017. miR-638 Inhibits immature Sertoli cell growth by indirectly inactivating PI3K/AKT pathway via SPAG1 gene. In Cell cycle (Georgetown, Tex.), 16, 2290-2300. doi:10.1080/15384101.2017.1380130. https://pubmed.ncbi.nlm.nih.gov/29119857/
품질 관리 기준
정자 검사
동결 보존 전: 정자 농도 측정 및 정자 생존율 평가.
동결 보존 후: 각 배치에서 동결 보존된 정자 바이알 1개를 선택하여 체외수정(in vitro fertilization)에 사용합니다.
Environmental Standards:
SPFAvailable Region:
GlobalSource:
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