原卟啉氯化钴
Co(III) protoporphyrin IX chloride (Protoporphyrin IX cobaltic chloride) 是一种 HO-1 诱导剂。Co(III) protoporphyrin IX chloride 具有抗炎、抗菌等活性。Co(III) protoporphyrin IX chloride 也可用于缺血再灌注损伤模型的研究。
茯苓新酸 A
Poricoic acid A 可从茯苓中分离得到。Poricoic acid A 是一种口服抗肿瘤药物。Poricoic acid A 通过调节 Gas6/AxlNFκB/Nrf2 轴增强褪黑素对急性肾损伤 (AKI) 向慢性肾脏病 (CKD) 转变的抑制作用。Poricoic acid A 还通过激活 AMPK 和抑制 Smad3 来减轻肾纤维化中成纤维细胞的活化和异常的细胞外基质重塑。Poricoic acid A 与褪黑素联合使用可显著降低大鼠模型中血清肌酐和尿素水平的升高幅度。Poricoic acid A 与褪黑激素联合作用,在 IRI 啮齿动物模型中,通过调节 NF-κB 和 Nrf2 来减轻氧化应激和炎症,从而改善肾脏纤维化和足细胞损伤。
脂多糖,来源于大肠杆菌O26:B6
Lipopolysaccharides, from E. coli (Escherichia coli) O26:B6 是来源于大肠杆菌 (E. coli) 的脂多糖内毒素和 TLR-4 激活剂,是一种 S 型 LPS,可激活免疫系统的致病相关分子模式 (PAMP) 和诱导细胞分泌迁移体。Lipopolysaccharides, from E. coli O26:B6 具有典型的 3 部分结构:O 抗原、核心寡糖和脂质 A,能够被核心特异性单克隆抗体 MAb J8-4C10 识别。Lipopolysaccharides, from E. coli O26:B6 可促进血浆中促炎细胞因子增加,进而引发下丘脑-垂体-肾上腺 (HPA) 激活,导致肾上腺氧化损伤。Lipopolysaccharides, from E. coli O26:B6 可用于构建多种模型,如细胞炎症模型,脓毒症,急性肺损伤,肾上腺功能障碍和膀胱感染模型等。
建议配制浓度 ≥2 mg/mL,充分涡旋震荡 10 分钟以上,必要时辅助超声。由于 LPS 具有吸附特性,分装保存时需使用硅烷化容器或低吸附离心管,使用前充分混匀。
泛影素 A
Panduratin A 是一种口服有效的、具有多重药理活性的天然化合物。Panduratin A 通过特异性抑制 NF-κB 信号通路,在肠道和血管炎症模型中发挥强大的抗炎和抗氧化作用。Panduratin A 通过减轻氧化应激、改善线粒体功能障碍和抑制细胞凋亡 (apoptosis),对 Colistin (HY-113678) 引起的肾毒性具有明确的保护作用。Panduratin A 通过 AMPK 依赖途径激活自噬 (autophagy),具有抗结核活性。Panduratin A 通过抑制 SARS-CoV-2 的甲基转移酶 (DNA Methyltransferase) 发挥抗病毒作用。
脂多糖
Lipopolysaccharides, from E. coli O55:B5 (LPS, from Escherichia coli (O55:B5)) 是从大肠杆菌 (E. coli O55:B5) 中提取的脂多糖内毒素和 TLR-4 激活剂,是一种 S (smooth) 型 LPS。Lipopolysaccharides, from E. coli O55:B5 具有典型的 3 部分结构:O 抗原、核心寡糖和脂质 A。Lipopolysaccharides, from E. coli O55:B5 激活免疫细胞的 TLR-4,具有高致热原性,以及剂量和血清型特异性。Lipopolysaccharides, from E. coli O55:B5 可用于诱导多种细胞炎症和动物炎症相关模型。
建议配制浓度 ≥2 mg/mL,充分涡旋震荡 10 分钟以上,必要时辅助超声。由于 LPS 具有吸附特性,分装保存时需使用硅烷化容器或低吸附离心管,使用前充分混匀。
脂多糖,来源于大肠杆菌O111:B4
Lipopolysaccharides, from E. coli O111:B4 (LPS, from Escherichia coli (O111:B4)) 是从大肠杆菌 (E. coli O111:B4) 中提取的脂多糖内毒素和 TLR-4 激活剂,是一种 S (smooth) 型 LPS。Lipopolysaccharides (LPS), from E. coli O111:B4 具有典型的 3 部分结构:O 抗原、R3 型核心寡糖和脂质 A。Lipopolysaccharides (LPS), from E. coli O111:B4 激活免疫细胞的 TLR-4,可引起显著胃部疾病。Lipopolysaccharides (LPS), from E. coli O111:B4 可用于诱导细胞炎症和动物炎症相关模型。
建议配制浓度 ≥2 mg/mL,充分涡旋震荡 10 分钟以上,必要时辅助超声。由于 LPS 具有吸附特性,分装保存时需使用硅烷化容器或低吸附离心管,使用前充分混匀。
脂多糖,来源于大肠杆菌O127:B8
Lipopolysaccharides, from E. coli O127:B8 (LPS, from Escherichia coli (O127:B8)) 是从大肠杆菌 (E. coli O127:B8) 中提取的脂多糖内毒素和 TLR-4 激活剂,是一种 S (smooth) 型 LPS。Lipopolysaccharides, from E. coli O127:B8 具有典型的 3 部分结构:O 抗原、R3 型核心寡糖和脂质 A。Lipopolysaccharides, from E. coli O127:B8 激活免疫细胞的 TLR-4,可引起炎症反应和回肠收缩力,可用于构建肠道炎症模型。
建议配制浓度 ≥2 mg/mL,充分涡旋震荡 10 分钟以上,必要时辅助超声。由于 LPS 具有吸附特性,分装保存时需使用硅烷化容器或低吸附离心管,使用前充分混匀。
脂多糖,来源于大肠杆菌O128:B12
Lipopolysaccharides, from E. coli O128:B12 (LPS, from Escherichia coli (O128:B12)) 是从大肠杆菌 (E. coli O128:B12) 中提取的脂多糖内毒素和 TLR-4 激活剂,是一种 S (smooth) 型 LPS。Lipopolysaccharides, from E. coli O128:B12 具有典型的 3 部分结构:O 抗原、R3 型核心寡糖和脂质 A。Lipopolysaccharides, from E. coli O128:B12 激活免疫细胞的 TLR-4,可用于构建动物新生儿脑部炎症模型,并可能影响新生儿早产。
建议配制浓度 ≥2 mg/mL,充分涡旋震荡 10 分钟以上,必要时辅助超声。由于 LPS 具有吸附特性,分装保存时需使用硅烷化容器或低吸附离心管,使用前充分混匀。
脂多糖
Lipopolysaccharides, from E. coli O55:B5 (LPS, from Escherichia coli (O55:B5)) 是从大肠杆菌 (E. coli O55:B5) 中提取的脂多糖内毒素和 TLR-4 激活剂,是一种 S (smooth) 型 LPS。Lipopolysaccharides, from E. coli O55:B5 具有典型的 3 部分结构:O 抗原、核心寡糖和脂质 A。Lipopolysaccharides, from E. coli O55:B5 激活免疫细胞的 TLR-4,具有高致热原性,以及剂量和血清型特异性。Lipopolysaccharides, from E. coli O55:B5 可用于诱导多种细胞炎症和动物炎症相关模型。
建议配制浓度 ≥2 mg/mL,充分涡旋震荡 10 分钟以上,必要时辅助超声。由于 LPS 具有吸附特性,分装保存时需使用硅烷化容器或低吸附离心管,使用前充分混匀。
脂多糖,来源于大肠杆菌O111:B4
Lipopolysaccharides, from E. coli O111:B4 (LPS, from Escherichia coli (O111:B4)) 是从大肠杆菌 (E. coli O111:B4) 中提取的脂多糖内毒素和 TLR-4 激活剂,是一种 S (smooth) 型 LPS。Lipopolysaccharides (LPS), from E. coli O111:B4 具有典型的 3 部分结构:O 抗原、R3 型核心寡糖和脂质 A。Lipopolysaccharides (LPS), from E. coli O111:B4 激活免疫细胞的 TLR-4,可引起显著胃部疾病。Lipopolysaccharides (LPS), from E. coli O111:B4 可用于诱导细胞炎症和动物炎症相关模型。
建议配制浓度 ≥2 mg/mL,充分涡旋震荡 10 分钟以上,必要时辅助超声。由于 LPS 具有吸附特性,分装保存时需使用硅烷化容器或低吸附离心管,使用前充分混匀。
脂多糖,来源于大肠杆菌O26:B6
Lipopolysaccharides, from E. coli (Escherichia coli) O26:B6 是来源于大肠杆菌 (E. coli) 的脂多糖内毒素和 TLR-4 激活剂,是一种 S 型 LPS,可激活免疫系统的致病相关分子模式 (PAMP) 和诱导细胞分泌迁移体。Lipopolysaccharides, from E. coli O26:B6 具有典型的 3 部分结构:O 抗原、核心寡糖和脂质 A,能够被核心特异性单克隆抗体 MAb J8-4C10 识别。Lipopolysaccharides, from E. coli O26:B6 可促进血浆中促炎细胞因子增加,进而引发下丘脑-垂体-肾上腺 (HPA) 激活,导致肾上腺氧化损伤。Lipopolysaccharides, from E. coli O26:B6 可用于构建多种模型,如细胞炎症模型,脓毒症,急性肺损伤,肾上腺功能障碍和膀胱感染模型等。
建议配制浓度 ≥2 mg/mL,充分涡旋震荡 10 分钟以上,必要时辅助超声。由于 LPS 具有吸附特性,分装保存时需使用硅烷化容器或低吸附离心管,使用前充分混匀。
原卟啉氯化钴
Co(III) protoporphyrin IX chloride (Protoporphyrin IX cobaltic chloride) 是一种 HO-1 诱导剂。Co(III) protoporphyrin IX chloride 具有抗炎、抗菌等活性。Co(III) protoporphyrin IX chloride 也可用于缺血再灌注损伤模型的研究。
脂多糖,来源于大肠杆菌O127:B8
Lipopolysaccharides, from E. coli O127:B8 (LPS, from Escherichia coli (O127:B8)) 是从大肠杆菌 (E. coli O127:B8) 中提取的脂多糖内毒素和 TLR-4 激活剂,是一种 S (smooth) 型 LPS。Lipopolysaccharides, from E. coli O127:B8 具有典型的 3 部分结构:O 抗原、R3 型核心寡糖和脂质 A。Lipopolysaccharides, from E. coli O127:B8 激活免疫细胞的 TLR-4,可引起炎症反应和回肠收缩力,可用于构建肠道炎症模型。
建议配制浓度 ≥2 mg/mL,充分涡旋震荡 10 分钟以上,必要时辅助超声。由于 LPS 具有吸附特性,分装保存时需使用硅烷化容器或低吸附离心管,使用前充分混匀。
脂多糖,来源于大肠杆菌O128:B12
Lipopolysaccharides, from E. coli O128:B12 (LPS, from Escherichia coli (O128:B12)) 是从大肠杆菌 (E. coli O128:B12) 中提取的脂多糖内毒素和 TLR-4 激活剂,是一种 S (smooth) 型 LPS。Lipopolysaccharides, from E. coli O128:B12 具有典型的 3 部分结构:O 抗原、R3 型核心寡糖和脂质 A。Lipopolysaccharides, from E. coli O128:B12 激活免疫细胞的 TLR-4,可用于构建动物新生儿脑部炎症模型,并可能影响新生儿早产。
建议配制浓度 ≥2 mg/mL,充分涡旋震荡 10 分钟以上,必要时辅助超声。由于 LPS 具有吸附特性,分装保存时需使用硅烷化容器或低吸附离心管,使用前充分混匀。
脂多糖
Lipopolysaccharides, from E. coli O55:B5 (LPS, from Escherichia coli (O55:B5)) 是从大肠杆菌 (E. coli O55:B5) 中提取的脂多糖内毒素和 TLR-4 激活剂,是一种 S (smooth) 型 LPS。Lipopolysaccharides, from E. coli O55:B5 具有典型的 3 部分结构:O 抗原、核心寡糖和脂质 A。Lipopolysaccharides, from E. coli O55:B5 激活免疫细胞的 TLR-4,具有高致热原性,以及剂量和血清型特异性。Lipopolysaccharides, from E. coli O55:B5 可用于诱导多种细胞炎症和动物炎症相关模型。
建议配制浓度 ≥2 mg/mL,充分涡旋震荡 10 分钟以上,必要时辅助超声。由于 LPS 具有吸附特性,分装保存时需使用硅烷化容器或低吸附离心管,使用前充分混匀。
茯苓新酸 A
Poricoic acid A 可从茯苓中分离得到。Poricoic acid A 是一种口服抗肿瘤药物。Poricoic acid A 通过调节 Gas6/AxlNFκB/Nrf2 轴增强褪黑素对急性肾损伤 (AKI) 向慢性肾脏病 (CKD) 转变的抑制作用。Poricoic acid A 还通过激活 AMPK 和抑制 Smad3 来减轻肾纤维化中成纤维细胞的活化和异常的细胞外基质重塑。Poricoic acid A 与褪黑素联合使用可显著降低大鼠模型中血清肌酐和尿素水平的升高幅度。Poricoic acid A 与褪黑激素联合作用,在 IRI 啮齿动物模型中,通过调节 NF-κB 和 Nrf2 来减轻氧化应激和炎症,从而改善肾脏纤维化和足细胞损伤。
泛影素 A
Panduratin A 是一种口服有效的、具有多重药理活性的天然化合物。Panduratin A 通过特异性抑制 NF-κB 信号通路,在肠道和血管炎症模型中发挥强大的抗炎和抗氧化作用。Panduratin A 通过减轻氧化应激、改善线粒体功能障碍和抑制细胞凋亡 (apoptosis),对 Colistin (HY-113678) 引起的肾毒性具有明确的保护作用。Panduratin A 通过 AMPK 依赖途径激活自噬 (autophagy),具有抗结核活性。Panduratin A 通过抑制 SARS-CoV-2 的甲基转移酶 (DNA Methyltransferase) 发挥抗病毒作用。
Western blot analysis of extracts from THP-1(lane 2(20μg), Jurkat (lane 3(20μg) and NIH3T3(lane 4(20μg) using FOXO1A (HY-P80132) Rabbit mAb. Proteins were transferred
to a PVDF membrane and blocked with 5% non-fat milk in TBST for 2 hour at room temperature. The primary antibody (1/1000) and Loading control antibody (Beta Actin, HY-P80438, 1/10000) was
used in 5% non-fat milk in TBST at 4°C overnight. Goat Anti-Mouse/Rabbit IgG-HRP Secondary Antibody (1/10000) was used for 1 hour at room temperature.
Western blot analysis of extracts from THP-1(lane 2(20μg), Jurkat (lane 3(20μg) and NIH3T3(lane 4(20μg) using FOXO1A (HY-P80132) Rabbit mAb. Proteins were transferred
to a PVDF membrane and blocked with 5% non-fat milk in TBST for 2 hour at room temperature. The primary antibody (1/1000) and Loading control antibody (Beta Actin, HY-P80438, 1/10000) was
used in 5% non-fat milk in TBST at 4°C overnight. Goat Anti-Mouse/Rabbit IgG-HRP Secondary Antibody (1/10000) was used for 1 hour at room temperature.
Western blot analysis of extracts from THP-1(lane 2(20μg), Jurkat (lane 3(20μg) and NIH3T3(lane 4(20μg) using FOXO1A (HY-P80132) Rabbit mAb. Proteins were transferred
to a PVDF membrane and blocked with 5% non-fat milk in TBST for 2 hour at room temperature. The primary antibody (1/1000) and Loading control antibody (Beta Actin, HY-P80438, 1/10000) was
used in 5% non-fat milk in TBST at 4°C overnight. Goat Anti-Mouse/Rabbit IgG-HRP Secondary Antibody (1/10000) was used for 1 hour at room temperature.
Western blot analysis of extracts from THP-1(lane 2(20μg), Jurkat (lane 3(20μg) and NIH3T3(lane 4(20μg) using FOXO1A (HY-P80132) Rabbit mAb. Proteins were transferred
to a PVDF membrane and blocked with 5% non-fat milk in TBST for 2 hour at room temperature. The primary antibody (1/1000) and Loading control antibody (Beta Actin, HY-P80438, 1/10000) was
MedchemExpress Validation 03
Western blot analysis of extracts from THP-1(lane 2(20μg), Jurkat (lane 3(20μg) and NIH3T3(lane 4(20μg) using FOXO1A (HY-P80132) Rabbit mAb. Proteins were transferred
MedchemExpress Validation 04
Western blot analysis of extracts from THP-1(lane 2(20μg), Jurkat (lane 3(20μg) and NIH3T3(lane 4(20μg) using FOXO1A (HY-P80132) Rabbit mAb. Proteins were transferred
to a PVDF membrane and blocked with 5% non-fat milk in TBST for 2 hour at room temperature. The primary antibody (1/1000) and Loading control antibody (Beta Actin, HY-P80438, 1/10000) was
used in 5% non-fat milk in TBST at 4°C overnight. Goat Anti-Mouse/Rabbit IgG-HRP Secondary Antibody (1/10000) was used for 1 hour at room temperature.
MedchemExpress Validation
Western blot analysis of extracts from THP-1(lane 2(20μg), Jurkat (lane 3(20μg) and NIH3T3(lane 4(20μg) using FOXO1A (HY-P80132) Rabbit mAb. Proteins were transferred
to a PVDF membrane and blocked with 5% non-fat milk in TBST for 2 hour at room temperature. The primary antibody (1/1000) and Loading control antibody (Beta Actin, HY-P80438, 1/10000) was
used in 5% non-fat milk in TBST at 4°C overnight. Goat Anti-Mouse/Rabbit IgG-HRP Secondary Antibody (1/10000) was used for 1 hour at room temperature.
Western blot analysis of extracts from THP-1(lane 2(20μg), Jurkat (lane 3(20μg) and NIH3T3(lane 4(20μg) using FOXO1A (HY-P80132) Rabbit mAb. Proteins were transferred
to a PVDF membrane and blocked with 5% non-fat milk in TBST for 2 hour at room temperature. The primary antibody (1/1000) and Loading control antibody (Beta Actin, HY-P80438, 1/10000) was
used in 5% non-fat milk in TBST at 4°C overnight. Goat Anti-Mouse/Rabbit IgG-HRP Secondary Antibody (1/10000) was used for 1 hour at room temperature.
MedchemExpress Validation
Western blot analysis of extracts from THP-1(lane 2(20μg), Jurkat (lane 3(20μg) and NIH3T3(lane 4(20μg) using FOXO1A (HY-P80132) Rabbit mAb. Proteins were transferred
to a PVDF membrane and blocked with 5% non-fat milk in TBST for 2 hour at room temperature. The primary antibody (1/1000) and Loading control antibody (Beta Actin, HY-P80438, 1/10000) was
used in 5% non-fat milk in TBST at 4°C overnight. Goat Anti-Mouse/Rabbit IgG-HRP Secondary Antibody (1/10000) was used for 1 hour at room temperature.
MedchemExpress Validation
Western blot analysis of extracts from THP-1(lane 2(20μg), Jurkat (lane 3(20μg) and NIH3T3(lane 4(20μg) using FOXO1A (HY-P80132) Rabbit mAb. Proteins were transferred
to a PVDF membrane and blocked with 5% non-fat milk in TBST for 2 hour at room temperature. The primary antibody (1/1000) and Loading control antibody (Beta Actin, HY-P80438, 1/10000) was
used in 5% non-fat milk in TBST at 4°C overnight. Goat Anti-Mouse/Rabbit IgG-HRP Secondary Antibody (1/10000) was used for 1 hour at room temperature.
MedchemExpress Validation
Western blot analysis of extracts from THP-1(lane 2(20μg), Jurkat (lane 3(20μg) and NIH3T3(lane 4(20μg) using FOXO1A (HY-P80132) Rabbit mAb. Proteins were transferred
to a PVDF membrane and blocked with 5% non-fat milk in TBST for 2 hour at room temperature. The primary antibody (1/1000) and Loading control antibody (Beta Actin, HY-P80438, 1/10000) was
used in 5% non-fat milk in TBST at 4°C overnight. Goat Anti-Mouse/Rabbit IgG-HRP Secondary Antibody (1/10000) was used for 1 hour at room temperature.
MedchemExpress Validation
Western blot analysis of extracts from THP-1(lane 2(20μg), Jurkat (lane 3(20μg) and NIH3T3(lane 4(20μg) using FOXO1A (HY-P80132) Rabbit mAb. Proteins were transferred
to a PVDF membrane and blocked with 5% non-fat milk in TBST for 2 hour at room temperature. The primary antibody (1/1000) and Loading control antibody (Beta Actin, HY-P80438, 1/10000) was
used in 5% non-fat milk in TBST at 4°C overnight. Goat Anti-Mouse/Rabbit IgG-HRP Secondary Antibody (1/10000) was used for 1 hour at room temperature.
MedchemExpress Validation
Western blot analysis of extracts from THP-1(lane 2(20μg), Jurkat (lane 3(20μg) and NIH3T3(lane 4(20μg) using FOXO1A (HY-P80132) Rabbit mAb. Proteins were transferred
to a PVDF membrane and blocked with 5% non-fat milk in TBST for 2 hour at room temperature. The primary antibody (1/1000) and Loading control antibody (Beta Actin, HY-P80438, 1/10000) was
used in 5% non-fat milk in TBST at 4°C overnight. Goat Anti-Mouse/Rabbit IgG-HRP Secondary Antibody (1/10000) was used for 1 hour at room temperature.
MedchemExpress Validation
Western blot analysis of extracts from THP-1(lane 2(20μg), Jurkat (lane 3(20μg) and NIH3T3(lane 4(20μg) using FOXO1A (HY-P80132) Rabbit mAb. Proteins were transferred
to a PVDF membrane and blocked with 5% non-fat milk in TBST for 2 hour at room temperature. The primary antibody (1/1000) and Loading control antibody (Beta Actin, HY-P80438, 1/10000) was
used in 5% non-fat milk in TBST at 4°C overnight. Goat Anti-Mouse/Rabbit IgG-HRP Secondary Antibody (1/10000) was used for 1 hour at room temperature.