AibGenesis™ Mouse Anti-FER1 Antibody (CBMOAB-33229FYC)


Cat: CBMOAB-33229FYC

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Lot Number

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Sub Cat Clonality Species Reactivity Application Clone Conjugate Size  
CBMOAB-33229FYC Monoclonal A. thaliana (Arabidopsis thaliana), C. elegans (Caenorhabditis elegans), Fruit fly (Drosophila melanogaster), Rice (Oryza) WB, ELISA MO33229FC 100 µg
CBMOAB-16746FYA Monoclonal Fruit fly (Drosophila melanogaster) WB, ELISA MO16746FYA 100 µg
CBMOAB-03927HCB Monoclonal C. elegans (Caenorhabditis elegans) WB, ELISA MO03927HB 100 µg
CBMOAB-22700FYB Monoclonal Rice (Oryza) WB, ELISA MO22700FYB 100 µg
MO-DKB-01693W Polyclonal A. thaliana (Arabidopsis thaliana) WB 100 µg

Specifications

Host speciesMouse (Mus musculus)
Species ReactivityA. thaliana (Arabidopsis thaliana), C. elegans (Caenorhabditis elegans), Fruit fly (Drosophila melanogaster), Rice (Oryza)
CloneMO33229FC
SpecificityThis antibody binds to Arabidopsis FER1.
FormatLiquid or Lyophilized
StorageStore at 4°C: short-term (1-2weeks)
Store at -20°C: long-term and future use
Purity> 90% was determined by SDS-PAGE
PurificationPurified with Protein A or G affinity chromatography
Cellular LocalizationChloroplast; Mitochondrion; Plasma Membrane; Other locations

Application Information

ApplicationWB, ELISA
Application NotesELISA: 1:1000-1:3000
Other applications are to be developed. The optimal dilution should be determined by the end user.

Target

IntroductionStores 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. (From uniprot, under CC BY 4.0)
Product OverviewMouse Anti-Arabidopsis FER1 Antibody is a mouse antibody against FER1. It can be used for FER1 detection in Western Blot, Enzyme-Linked Immunosorbent Assay.
Alternative NamesFerritin-1, chloroplastic; AtFer1; EC 1.16.3.1; FER1; At5g01600
UniProt IDQ39101
Protein RefseqThe length of the protein is 255 amino acids long. The sequence is show below: MASNALSSFTAANPALSPKPLLPHGSASPSVSLGFSRKVGGGRAVVVAAATVDTNNMPMTGVVFQPFEEVKKADLAIPITSHASLARQRFADASEAVINEQINVEYNVSYVYHSMYAYFDRDNVAMKGLAKFFKESSEEERGHAEKFMEYQNQRGGRVKLHPIVSPISEFEHAEKGDALYAMELALSLEKLTNEKLLNVHKVASENNDPQLADFVESEFLGEQIEAIKKISDYITQLRMIGKGHGVWHFDQMLLN.

Reference

Reference1. Ravet, K., Touraine, B., Boucherez, J., Briat, J. F., Gaymard, F., & Cellier, F. (2009). Ferritins control interaction between iron homeostasis and oxidative stress in Arabidopsis. The Plant Journal, 57(3), 400-412.
2. Finkemeier, I., König, A. C., Heard, W., Nunes-Nesi, A., Pham, P. A., Leister, D., ... & Sweetlove, L. J. (2013). Transcriptomic analysis of the role of carboxylic acids in metabolite signaling in Arabidopsis leaves. Plant physiology, 162(1), 239-253.
3. Ravet, K., Touraine, B., Kim, S. A., Cellier, F., Thomine, S., Guerinot, M. L., ... & Gaymard, F. (2009). Post-translational regulation of AtFER2 ferritin in response to intracellular iron trafficking during fruit development in Arabidopsis. Molecular Plant, 2(5), 1095-1106.
4. Long, J. C., Sommer, F., Allen, M. D., Lu, S. F., & Merchant, S. S. (2008). FER1 and FER2 encoding two ferritin complexes in Chlamydomonas reinhardtii chloroplasts are regulated by iron. Genetics, 179(1), 137-147.

Relate Reference Data

Figure 1 In the QRT-PCR analysis, LHCA3 was down-regulated by the following metabolites with decreasing strength: acetate> Suc> isocitrate> citrate.

For Research Use Only | Not For Clinical Use.
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