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Обзор
Каталожный номерHF662014
Реактивность видовHuman
ПримененияELISA, IHC, WB
Хозяинский видRabbit
КлоональностьPolyclonal
ИзотипIgG
Иммуноген E. coli - derived recombinant Human UFL1 (Gly276-Lys417).
Цель Multiple alpha-helix protein located at ER, KIAA0776, Regulator of C53/LZAP and DDRGK1, Novel LZAP-binding protein, E3 UFM1-protein ligase 1, NLBP, RCAD, MAXER, E3 UFM1-protein transferase 1, UFL1
Очистка Purified by antigen affinity column.
Номер доступа O94874
Форма Liquid
Буфер хранения 0.01M PBS, pH 7.4, 50% Glycerol, 0.05% Proclin 300.

Пожалуйста, обратитесь к конкретной информации о буфере в печатной версии даташита или в индивидуальном сертификате качества (COA) для партии.

Информация об использовании продукта
Применение Разбавление
ELISA 1:5000-1:20000
IHC 1:50-1:500
WB 1:500-1:2000
Устойчивость и хранение Use a manual defrost freezer and avoid repeated freeze thaw cycles. Store at 2 to 8°C for frequent use. Store at -20 to -80°C for twelve months from the date of receipt.
Фон

E3 UFM1-protein ligase 1 (UFL1) is a ~89 kDa protein. E3 protein ligase that mediates ufmylation, the covalent attachment of the ubiquitin-like modifier UFM1 to lysine residues on target proteins, and which plays a key role in various processes, such as ribosome recycling, response to DNA damage, interferon response or reticulophagy (also called ER-phagy). Catalyzes ufmylation of many protein, such as CD274/PD-L1, CDK5RAP3, CYB5R3, DDRGK1, EIF6, histone H4, MRE11, P4HB, PDCD1/PD-1, TRIP4, RPN1, RPS20/uS10, RPL10/uL16, RPL26/uL24, SYVN1/HRD1 and TP53/p53. As part of the UREL complex, plays a key role in ribosome recycling by catalyzing mono-ufmylation of RPL26/uL24 subunit of the 60S ribosome. Ufmylation of RPL26/uL24 occurs on free 60S ribosomes following ribosome dissociation: it weakens the junction between post-termination 60S subunits and SEC61 translocons, promoting release and recycling of the large ribosomal subunit from the endoplasmic reticulum membrane. Ufmylation of RPL26/uL24 and subsequent 60S ribosome recycling either take place after normal termination of translation or after ribosome stalling during cotranslational translocation at the endoplasmic reticulum.

1. Tatsumi, K. et al. (2010) The Journal of biological chemistry 285, 5417-27. PMID: 20018847
2. Kwon, J. et al. (2010) The Journal of biological chemistry 285, 12232-40. PMID: 20164180
3. Wu, J. et al. (2010) The Journal of biological chemistry 285, 15126-15136. PMID: 20228063
4. Yoo, HM. et al. (2014) Molecular cell 56, 261-274. PMID: 25219498
5. DeJesus, R. et al. (2016) eLife 5. PMID: 27351204
6. Walczak, CP. et al. (2019) Proceedings of the National Academy of Sciences of the United States of America 116, 1299-1308. PMID: 30626644
7. Wang, Z. et al. (2019) Nucleic acids research 47, 4124-4135. PMID: 30783677
8. Liang, JR. et al. (2020) Cell 180, 1160-1177.e20. PMID: 32160526
9. Liu, J. et al. (2020) Nature cell biology 22, 1056-1063. PMID: 32807901
10. Snider, DL. et al. (2022) Proceedings of the National Academy of Sciences of the United States of America 119, e2119531119. PMID: 35394863
Примечание For research use only.
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Ссылки
Formula
Mass (g) = Concentration (mol/L) × Volume (L) × MW (g/mol)
Enter any 2 of Mass, Concentration, Volume + Molecular Weight to solve for the unknown.
Mass
=
Concentration
×
Volume
Molecular Weight *
g/mol
Formula
C₁ × V₁ = C₂ × V₂
Enter any 3 of the 4 values to solve for the unknown.
Stock Solution
C₁ (Stock Conc.)
×
V₁ (Stock Vol.)
=
Working Solution
C₂ (Working Conc.)
×
V₂ (Working Vol.)
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