Acsbg1-flox Mouse
Common Name
Acsbg1-flox
제품 ID
S-CKO-17237
Backgroud
C57BL/6JCya
품종 계통계통 ID
CKOCMP-94180-Acsbg1-B6J-VA
상태
이 마우스 계통을 논문에서 사용할 경우, “Acsbg1-flox Mouse (카탈로그 번호 S-CKO-17237)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
Acsbg1-flox
품종 계통계통 ID
CKOCMP-94180-Acsbg1-B6J-VA
유전자명
제품 ID
S-CKO-17237
유전자 별칭
BG1, Bgm, Lpd, GR-LACS, E230019G03Rik
배경
C57BL/6JCya
NCBI ID
변형 내용
Conditional knockout
염색체
Chr 9
Phenotype
Datasheet
적용 분야
--
품종 계통 설명
Ensembl 전사체 ID
ENSMUST00000034822
NCBI 전사체 ID
NM_053178
타겟 영역
Exon 2
유효 영역 크기
~1.1 kb
유전자 연구 개요
Acsbg1, also known as "bubblegum" acyl-CoA synthetase, is a key player in lipid metabolism. It facilitates the activation of long-chain fatty acids (LCFAs) and their integration into essential lipid species, supporting processes like membrane formation, myelination, and energy production [4,5]. It is involved in fatty acid metabolism pathways and is important for maintaining lipid homeostasis and proper physiological functions. Genetic models, such as knockout mouse models, have been crucial in studying its functions.
In Treg cells, genetic deletion of Acsbg1 causes mitochondrial dysfunction and dampens other metabolic pathways. Extrinsic supplementation of Acsbg1-deficient Treg cells with oleoyl-CoA restores the Treg metabolic signature, indicating its role as a metabolic checkpoint for tissue Treg cell homeostasis and resolution of lung inflammation [1]. In CD4+ T cells, Acsbg1 deficiency leads to impaired TH17 and in vitro-induced Treg (iTreg) differentiation, highlighting its importance in maintaining immune homeostasis by regulating T cell differentiation [3]. In the context of obesity-driven breast cancer, breast cancer cells in obese animals upregulate Acsbg1 to promote creatine-dependent tumor progression, revealing its role in the crosstalk between adipocytes and cancer cells in the tumor microenvironment [2]. In the mouse brain, an Acsbg1 knockout mouse model showed developmental and compositional changes in fatty acid levels, though it is unlikely that Acsbg1 directly contributes to the pathology of X-linked adrenoleukodystrophy (XALD) [4,5]. In rats with diabetic cardiomyopathy, Acsbg1 was identified as a hub gene associated with fatty acid metabolism and potentially involved in the disease's occurrence and progression through the lysosome [6].
In summary, Acsbg1 is essential for lipid metabolism-related processes. Model-based research, especially KO mouse models, has revealed its roles in immune regulation, cancer progression, and brain lipid metabolism. These findings contribute to understanding the underlying mechanisms of diseases such as lung inflammation, obesity-driven breast cancer, and diabetic cardiomyopathy, providing potential targets for further research and treatment.
References:
1. Kanno, Toshio, Nakajima, Takahiro, Kawashima, Yusuke, Nakayama, Toshinori, Endo, Yusuke. . Acsbg1-dependent mitochondrial fitness is a metabolic checkpoint for tissue Treg cell homeostasis. In Cell reports, 37, 109921. doi:10.1016/j.celrep.2021.109921. https://pubmed.ncbi.nlm.nih.gov/34758300/
2. Maguire, Olivia A, Ackerman, Sarah E, Szwed, Sarah K, Kazak, Lawrence, Cohen, Paul. 2021. Creatine-mediated crosstalk between adipocytes and cancer cells regulates obesity-driven breast cancer. In Cell metabolism, 33, 499-512.e6. doi:10.1016/j.cmet.2021.01.018. https://pubmed.ncbi.nlm.nih.gov/33596409/
3. Palatella, Martina, Kruse, Friederike, Glage, Silke, Greweling-Pils, Marina, Huehn, Jochen. 2025. Acsbg1 regulates differentiation and inflammatory properties of CD4+ T cells. In European journal of microbiology & immunology, 15, 21-31. doi:10.1556/1886.2025.00003. https://pubmed.ncbi.nlm.nih.gov/39937199/
4. Ye, Xiaoli, Li, Yuanyuan, González-Lamuño, Domingo, Smith, Kirby D, Watkins, Paul A. 2024. Role of ACSBG1 in brain lipid metabolism and X-linked adrenoleukodystrophy pathogenesis: Insights from a knockout mouse model. In bioRxiv : the preprint server for biology, , . doi:10.1101/2024.06.19.599741. https://pubmed.ncbi.nlm.nih.gov/38948805/
5. Ye, Xiaoli, Li, Yuanyuan, González-Lamuño, Domingo, Smith, Kirby D, Watkins, Paul A. 2024. Role of ACSBG1 in Brain Lipid Metabolism and X-Linked Adrenoleukodystrophy Pathogenesis: Insights from a Knockout Mouse Model. In Cells, 13, . doi:10.3390/cells13201687. https://pubmed.ncbi.nlm.nih.gov/39451204/
6. Huang, Xun, Wang, Yunhong, Wan, Rong, You, Zhigang, Huang, Lin. 2025. Identification of lipid metabolism-related genes in dapagliflozin treated rats with diabetic cardiomyopathy by bioinformatics. In Frontiers in endocrinology, 16, 1525831. doi:10.3389/fendo.2025.1525831. https://pubmed.ncbi.nlm.nih.gov/40182633/
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:
Cyagen문의하기
맞춤형 동물 모델 관련 상담을 위해 Cyagen 전문가와 연락해 보세요. 아래 양식을 작성하여 상담을 시작하거나 견적을 요청하시기 바랍니다.
Cyagen은 고객님의 개인정보를 소중히 여깁니다. 최신 제품, 서비스 및 인사이트를 안내드리고자 합니다. 고객님의 수신 설정은 다음과 같습니다:
해당 커뮤니케이션은 언제든지 수신 거부하실 수 있습니다. 수신 거부 방법 및 데이터 보호에 대한 자세한 내용은 개인정보처리방침을 참고해 주시기 바랍니다.
아래 버튼을 클릭함으로써, 요청하신 콘텐츠 제공을 위해 본 양식을 통해 제출된 개인정보를 Cyagen이 저장 및 처리하는 데 동의하게 됩니다.
