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huANGPTL3/huPCSK9 Mouse
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huANGPTL3/huPCSK9 Mouse
製品名
huANGPTL3/huPCSK9 Mouse
製品ID
C002108
系統名
C57BL/6Cya-Angptl3em1(hANGPTL3)Pcsk9tm1(hPCSK9)/Cya
背景情報
C57BL/6Cya
状況
このマウス系統を論文で使用する場合は、「huANGPTL3/huPCSK9 Mouse(カタログ番号C002108)はサイアジェンから購入しました。」と引用してください。
HUGO-GT Humanized Models
Metabolic Target Humanized Mouse Models
siRNA
製品タイプ
年齢
遺伝子型
性別
数量
標準的な配送方法では、少なくとも3匹のヘテロ接合体キャリアを保証しています。ホモ接合体キャリアや指定された性別の個体の繁殖サービスも利用可能です。
お見積もりについてはこちらまでご連絡ください
HUGO-GT Humanized Models
Metabolic Target Humanized Mouse Models
siRNA
基本情報
関連リソース
基本情報
遺伝子別名
FH3, PC9, FHCL3, NARC1, LDLCQ1, NARC-1, HCHOLA3, ANL3, ANG-5, FHBL2, ANGPT5
染色体
Chr 1, Chr 1
MGI ID
さらに
系統詳細
Angiopoietin‑like protein 3 (ANGPTL3) is mainly expressed in the liver and is a secreted glycoprotein structurally related to angiopoietins. The mature form of human ANGPTL3 protein contains an N‑terminal coiled‑coil domain and a C‑terminal fibrinogen‑like (FBN) domain. Through binding of its FBN‑like domain to integrin αvβ3, ANGPTL3 induces endothelial cell adhesion and migration, thereby playing a role in the regulation of angiogenesis [1]. In addition, ANGPTL3 can directly inhibit lipoprotein lipase (LPL) and endothelial lipase (EL), which are closely involved in the hydrolysis of circulating triglycerides (TG) and high‑density lipoprotein cholesterol (HDL‑C), respectively, thereby elevating circulating TG levels and affecting HDL levels [2-3]. In humans, ANGPTL3 is an important factor for HDL levels, and its plasma level is positively correlated with HDL‑C. Loss‑of‑function mutations in the ANGPTL3 gene (especially homozygous or compound heterozygous) lead to familial combined hypolipidemia (FHBL2) [4]. Furthermore, ANGPTL3 also plays important roles in biological and pathological processes related to lipid metabolism and angiogenesis, such as atherosclerosis, tumors, nephrotic syndrome, diabetes, and liver disease [3].
Proprotein convertase subtilisin/kexin type 9 (PCSK9) is a serine protease produced predominantly in the liver and also expressed in the intestine, heart, pancreas, renal interstitial cells, and neurons. The N-terminal and catalytic domains of PCSK9 are involved in protein maturation and stability, while the C-terminal domain plays a critical role in LDLR degradation [5]. PCSK9 is closely involved in the regulation of blood cholesterol. The low‑density lipoprotein receptor (LDLR) is a receptor responsible for clearing low‑density lipoprotein cholesterol (LDL‑C); PCSK9 binds to the EGF-A domain of cell-surface LDLR, promoting its endocytosis and lysosomal degradation, thereby reducing LDLR levels and elevating plasma LDL-C. Overexpression or gain‑of‑function mutations of the PCSK9 gene reduce LDLR levels, resulting in LDL‑C accumulation, hypercholesterolemia, and increased risks of cardiovascular diseases such as atherosclerosis and coronary heart disease, as well as neurodegenerative disorders including stroke and Alzheimer's disease [6].
The huANGPTL3/huPCSK9 mouse is a dual humanized model generated by gene editing on the huPCSK9 mouse (Catalog No.: C001617) background, in which the mouse Angptl3 endogenous region from the p.S17 to downstream of Exon 7 was replaced with the human ANGPTL3 region from p.S17 to downstream of Exon 7. The murine signal peptide was retained. This model is applicable to mechanistic studies of metabolic diseases, such as hypertriglyceridemia, hypercholesterolemia, and dyslipidemia, and is also suitable for the screening, development, and preclinical evaluation of dual-targeting drugs against ANGPTL3 and PCSK9.
参考文献
Camenisch G, Pisabarro MT, Sherman D, et al. ANGPTL3 stimulates endothelial cell adhesion and migration via integrin αvβ3 and induces blood vessel formation in vivo. J Biol Chem. 2002;277(19):17281-17290.
Shimamura M, Matsuda M, Yasumo H, et al. Angiopoietin-like protein3 regulates plasma HDL cholesterol through suppression of endothelial lipase. Arterioscler Thromb Vasc Biol. 2007;27(2):366-372.
Kersten S. Angiopoietin-like 3 in lipoprotein metabolism. Nat Rev Endocrinol. 2017;13(12):731-744.
Musunuru K, Pirruccello JP, Do R, Peloso GM, Guiducci C, Sougnez C, Garimella KV, Fisher S, Abreu J, Barry AJ, Fennell T, Banks E, Ambrogio L, Cibulskis K, Kernytsky A, Gonzalez E, Rudzicz N, Engert JC, DePristo MA, Daly MJ, Cohen JC, Hobbs HH, Altshuler D, Schonfeld G, Gabriel SB, Yue P, Kathiresan S. Exome sequencing, ANGPTL3 mutations, and familial combined hypolipidemia. N Engl J Med. 2010 Dec 2;363(23):2220-7.
Melendez QM, Krishnaji ST, Wooten CJ, Lopez D. Hypercholesterolemia: The role of PCSK9. Arch Biochem Biophys. 2017 Jul 1;625-626:39-53.
Seidah NG, Awan Z, Chrétien M, Mbikay M. PCSK9: a key modulator of cardiovascular health. Circ Res. 2014 Mar 14;114(6):1022-36.
系統作製戦略
The mouse Angptl3 endogenous region from p.S17 to downstream of Exon 7 of huPCSK9 mice (Catalog No.: C001617) was replaced with the human ANGPTL3 region from p.S17 to downstream of Exon 7. The murine signal peptide was retained.

Figure 1. Gene editing strategy of huPCSK9 mice. The mouse Pcsk9 gene sequence was replaced with the corresponding sequences in the human PCSK9 gene, including the UTR regions.

Figure 2. Gene editing strategy of huANGPTL3/huPCSK9 mice.
適用分野
Mechanistic studies of metabolic diseases, such as hypertriglyceridemia, hypercholesterolemia, and dyslipidemia;
Screening, development, and preclinical evaluation of dual‑targeting drugs against ANGPTL3 and PCSK9.
関連リソース
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