製品: Ferritin Heavy Chain Antibody
カタログ: DF4828
タンパク質の説明: Rabbit polyclonal antibody to Ferritin Heavy Chain
アプリケーション: WB IF/ICC
Cited expt.: WB
反応性: Human, Mouse, Rat
予測: Pig, Bovine, Horse, Rabbit, Dog, Xenopus
分子量: 21 KD; 21kD(Calculated).
ユニプロット: P02794
RRID: AB_2837193

類似製品を見る>>

   サイズ 価格 在庫状況
 100ul $280 在庫あり
 200ul $350 在庫あり

リードタイム: 当日配達

For pricing and ordering contact:
お問い合わせ先

製品説明

ソース:
Rabbit
アプリケーション:
WB 1:500-1:1000, IF/ICC 1:100-1:500
*The optimal dilutions should be determined by the end user. For optimal experimental results, antibody reuse is not recommended.
*Tips:

WB: For western blot detection of denatured protein samples. IHC: For immunohistochemical detection of paraffin sections (IHC-p) or frozen sections (IHC-f) of tissue samples. IF/ICC: For immunofluorescence detection of cell samples. ELISA(peptide): For ELISA detection of antigenic peptide.

反応性:
Human,Mouse,Rat
予測:
Pig(88%), Bovine(88%), Horse(86%), Rabbit(88%), Dog(88%), Xenopus(88%)
クローナリティ:
Polyclonal
特異性:
Ferritin Heavy Chain Antibody detects endogenous levels of total Ferritin Heavy Chain.
RRID:
AB_2837193
引用形式: Affinity Biosciences Cat# DF4828, RRID:AB_2837193.
コンジュゲート:
Unconjugated.
精製:
The antiserum was purified by peptide affinity chromatography using SulfoLink™ Coupling Resin (Thermo Fisher Scientific).
保存:
Rabbit IgG in phosphate buffered saline , pH 7.4, 150mM NaCl, 0.02% sodium azide and 50% glycerol. Store at -20 °C. Stable for 12 months from date of receipt.
別名:

折りたたみ/展開

Apoferritin; Cell proliferation inducing gene 15 protein; Cell proliferation-inducing gene 15 protein; F HC; Ferritin H subunit; Ferritin heavy chain; Ferritin heavy polypeptide 1; FHC; FRIH; FRIH_HUMAN; FTH 1; FTH; FTH1; FTH1 protein; FTHL 6; FTHL6; Iron overload autosomal dominant; MGC104426; N-terminally processed; OK/SW-cl.84; PIG 15; PIG15; Placenta immunoregulatory factor; PLIF; Proliferation inducing gene 15 protein; Proliferation inducing protein 15;

免疫原

免疫原:

A synthesized peptide derived from human Ferritin Heavy Chain, corresponding to a region within C-terminal amino acids.

Uniprot:
遺伝子(ID):
発現特異性:
P02794 FRIH_HUMAN:

Expressed in the liver.

タンパク質配列:
MTTASTSQVRQNYHQDSEAAINRQINLELYASYVYLSMSYYFDRDDVALKNFAKYFLHQSHEEREHAEKLMKLQNQRGGRIFLQDIKKPDCDDWESGLNAMECALHLEKNVNQSLLELHKLATDKNDPHLCDFIETHYLNEQVKAIKELGDHVTNLRKMGAPESGLAEYLFDKHTLGDSDNES

種類予測

種類予測:

Score>80(red) has high confidence and is suggested to be used for WB detection. *The prediction model is mainly based on the alignment of immunogen sequences, the results are for reference only, not as the basis of quality assurance.

Species
Results
Score
Pig
88
Bovine
88
Dog
88
Xenopus
88
Rabbit
88
Horse
86
Sheep
0
Zebrafish
0
Chicken
0
Model Confidence:
High(score>80) Medium(80>score>50) Low(score<50) No confidence

研究背景

機能:

Stores iron in a soluble, non-toxic, readily available form. Important for iron homeostasis. Has ferroxidase activity. Iron is taken up in the ferrous form and deposited as ferric hydroxides after oxidation. Also plays a role in delivery of iron to cells. Mediates iron uptake in capsule cells of the developing kidney (By similarity).

組織特異性:

Expressed in the liver.

タンパク質ファミリー:

Belongs to the ferritin family.

研究領域

· Cellular Processes > Cell growth and death > Ferroptosis.   (View pathway)

· Cellular Processes > Cell growth and death > Necroptosis.   (View pathway)

· Organismal Systems > Digestive system > Mineral absorption.

参考文献

1). β-elemene promotes ferroptosis to improve the sensitivity of imatinib in gastrointestinal stromal tumours by targeting N6AMT1. Clinical and translational medicine, 2025 (PubMed: 40866937) [IF=7.9]

Application: WB    Species: Mouse    Sample:

FIGURE 1 Imatinib resistance is associated with ferroptosis activity in gastrointestinal stromal tumour (GIST). (A) Heatmap of differentially expressed genes (DEGs) in imatinib-naïve and -resistant GISTs from the GSE132542 dataset. (B) Gene ontology analysis of DEGs between imatinib-naïve and -resistant GISTs from the GSE132542 dataset (all absolute log2 fold change > .5, false discovery rate (FDR) < 10%). (C) Gene set enrichment analysis (GSEA) plots of negative regulation of cell death signalling pathway. (D) Western blotting analysis of caspase-3, cleaved caspase-3, caspase7, cleaved caspase-7, phosphorylated RIP1, total RIP1, phosphorylated RIP3, total RIP3, GSDME, cleaved GSDME, GSDMD, cleaved GSDMD, ferritin heavy chain (FTH1) and glutathione peroxidase 4 (GPX4), solute carrier family 7 member 11 (SLC7A11), FSP1 and dihydroorotate dehydrogenase (DHODH) expression in parental and imatinib-resistant (IR) GIST-882 cells treated with 882 20 µM imatinib for 24 h (for GIST-882 and 20 nM for GIST-T1, 24 h). Vinculin was included as a loading control. (E) Western blotting analysis of caspase-3, cleaved caspase-3, caspase7, cleaved caspase-7, phosphorylated RIP1, total RIP1, phosphorylated RIP3, total RIP3, GSDME, cleaved GSDME, GSDMD, cleaved GSDMD, FTH1 and GPX4, SLC7A11, FSP1 and DHODH expression in parental and IR GIST-T1 cells treated with 20 nM imatinib for 24 h. Vinculin was included as a loading control. (F) The expression of FTH1 and GPX4 in imatinib-sensitive and imatinib-resistant GIST specimens using immunohistochemistry (IHC) staining assay (Mann–Whitney U test). (G) Statistics of FTH1 expression in imatinib-sensitive (n = 30) and imatinib-resistant GIST specimens (n = 10) and percentage of GIST specimens with high or low FTH1 expression. (H) Statistics of GPX4 expression in imatinib-sensitive (n = 30) and imatinib-resistant GIST specimens (n = 10) and percentage of GIST specimens with high or low GPX4 expression. (I) Western blotting analysis showing the protein levels of FTH1, GPX4, SLC7A11, FSP1 and DHODH in six GIST specimens, including three samples from patients with imatinib-treated PD(Progressive Disease) and three samples from patients with imatinib-treated PR(Partial Response). Data represent the mean ± standard deviation (SD); *p < .05; **p < .01; ***p < .001. An unpaired t-test was used unless otherwise stated.

Application: IHC    Species: Mouse    Sample:

FIGURE 1 Imatinib resistance is associated with ferroptosis activity in gastrointestinal stromal tumour (GIST). (A) Heatmap of differentially expressed genes (DEGs) in imatinib-naïve and -resistant GISTs from the GSE132542 dataset. (B) Gene ontology analysis of DEGs between imatinib-naïve and -resistant GISTs from the GSE132542 dataset (all absolute log2 fold change > .5, false discovery rate (FDR) < 10%). (C) Gene set enrichment analysis (GSEA) plots of negative regulation of cell death signalling pathway. (D) Western blotting analysis of caspase-3, cleaved caspase-3, caspase7, cleaved caspase-7, phosphorylated RIP1, total RIP1, phosphorylated RIP3, total RIP3, GSDME, cleaved GSDME, GSDMD, cleaved GSDMD, ferritin heavy chain (FTH1) and glutathione peroxidase 4 (GPX4), solute carrier family 7 member 11 (SLC7A11), FSP1 and dihydroorotate dehydrogenase (DHODH) expression in parental and imatinib-resistant (IR) GIST-882 cells treated with 882 20 µM imatinib for 24 h (for GIST-882 and 20 nM for GIST-T1, 24 h). Vinculin was included as a loading control. (E) Western blotting analysis of caspase-3, cleaved caspase-3, caspase7, cleaved caspase-7, phosphorylated RIP1, total RIP1, phosphorylated RIP3, total RIP3, GSDME, cleaved GSDME, GSDMD, cleaved GSDMD, FTH1 and GPX4, SLC7A11, FSP1 and DHODH expression in parental and IR GIST-T1 cells treated with 20 nM imatinib for 24 h. Vinculin was included as a loading control. (F) The expression of FTH1 and GPX4 in imatinib-sensitive and imatinib-resistant GIST specimens using immunohistochemistry (IHC) staining assay (Mann–Whitney U test). (G) Statistics of FTH1 expression in imatinib-sensitive (n = 30) and imatinib-resistant GIST specimens (n = 10) and percentage of GIST specimens with high or low FTH1 expression. (H) Statistics of GPX4 expression in imatinib-sensitive (n = 30) and imatinib-resistant GIST specimens (n = 10) and percentage of GIST specimens with high or low GPX4 expression. (I) Western blotting analysis showing the protein levels of FTH1, GPX4, SLC7A11, FSP1 and DHODH in six GIST specimens, including three samples from patients with imatinib-treated PD(Progressive Disease) and three samples from patients with imatinib-treated PR(Partial Response). Data represent the mean ± standard deviation (SD); *p < .05; **p < .01; ***p < .001. An unpaired t-test was used unless otherwise stated.

2). The plant extract PNS mitigates atherosclerosis via promoting Nrf2-mediated inhibition of ferroptosis through reducing USP2-mediated Keap1 deubiquitination. British journal of pharmacology, 2024 (PubMed: 39228119) [IF=6.8]

Application: WB    Species: Mouse    Sample:

FIGURE 4 Panax notoginseng saponins (PNS) suppresses ferroptosis by regulating iron metabolism and reducing lipid peroxidation. (a) Analysis of high-fat diet (HFD)-induced iron deposition in the aortic root of mice. The aortic root sections were stained with Prussian Blue and the iron content was quantified, n = 10. (b) Immunofluorescence analysis of GPX4 in aortic root sections from apoE−/− mice, and mean fluorescence intensity was quantified, n = 10. (c–e) Serum MDA, SOD and CAT levels of apoE−/− mice were measured by Elisa assay kits, n = 10. (f) Quantification of expression of genes encoding for lipid peroxide clearance (Gpx4 and Slc7A11), peroxide generation (Acsl4 and Lpcat3) and iron metabolism (Fth), with qRT-PCR, in peritoneal macrophages from apoE−/− mice, n = 6. (g) Quantification of NCOA4, SLC7A11, FtH and GPX4 protein expression via western blotting in peritoneal macrophages from apoE−/− mice, n = 6. Data shown are means ± SEM (n = 6). *P < 0.05, significantly different from control (Ctrl).

Restrictive clause

 

Affinity Biosciences tests all products strictly. Citations are provided as a resource for additional applications that have not been validated by Affinity Biosciences. Please choose the appropriate format for each application and consult Materials and Methods sections for additional details about the use of any product in these publications.

For Research Use Only.
Not for use in diagnostic or therapeutic procedures. Not for resale. Not for distribution without written consent. Affinity Biosciences will not be held responsible for patent infringement or other violations that may occur with the use of our products. Affinity Biosciences, Affinity Biosciences Logo and all other trademarks are the property of Affinity Biosciences LTD.