RLBP1 Protein, Human
RLBP1 Protein, Human is the recombinant human-derived RLBP1, expressed by E. coli , with tag Free labeled tag. ,
- Species: Human
- Source: E. coli
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Storage:Stored at -80°C for 1 year from date of receipt. It is stable at -20°C for 3 months after opening. It is recommended to freeze aliquots at -80°C for extended storage. Avoid repeated freeze-thaw cycles.
Biological Activity
RLBP1 Protein, Human is the recombinant human-derived RLBP1, expressed by E. coli , with tag Free labeled tag. ,
CRALBP is a soluble retinoid carrier essential for the proper function of both rod and cone photoreceptors. It participates in the regeneration of active 11-cis-retinol and 11-cis-retinaldehyde from the inactive 11-trans products of the rhodopsin photocycle and in the de novo synthesis of these retinoids from 11-trans metabolic precursors. The cycling of retinoids between photoreceptor and adjacent pigment epithelium cells is known as the 'visual cycle'.
Technical Parameters
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Species Human
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Source E. coli
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Tag Tag Free
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Accession
P12271 (M1-F317)
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Gene ID6017
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Protein Length
Full Length
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Synonyms
RLBP1; Retinaldehyde-Binding Protein 1; Retinaldehyde Binding Protein 1; Cellular Retinaldehyde-Binding Protein; CRALBP; Cellular Retinaldehyde-Binding Protein-1
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AA Sequence
MSEGVGTFRMVPEEEQELRAQLEQLTTKDHGPVFGPCSQLPRHTLQKAKDELNEREETREEAVRELQEMVQAQAASGEELAVAVAERVQEKDSGFFLRFIRARKFNVGRAYELLRGYVNFRLQYPELFDSLSPEAVRCTIEAGYPGVLSSRDKYGRVVMLFNIENWQSQEITFDEILQAYCFILEKLLENEETQINGFCIIENFKGFTMQQAASLRTSDLRKMVDMLQDSFPARFKAIHFIHQPWYFTTTYNVVKPFLKSKLLERVFVHGDDLSGFYQEIDENILPSDFGGTLPKYDGKAVAEQLFGPQAQAENTAF
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Predicted Molecular Mass
36.6 kDa
Product Properties
Solution.
<1 EU/μg, determined by LAL method.
Please use rapid thawing with running water to thaw the protein.
Stored at -80°C for 1 year from date of receipt. It is stable at -20°C for 3 months after opening. It is recommended to freeze aliquots at -80°C for extended storage. Avoid repeated freeze-thaw cycles.
Shipping with dry ice.
Documentation
Calculators
Concentration (start) × Volume (start) = Concentration (final) × Volume (final)