Literature DB >> 27830500

Functions of Intracellular Retinoid Binding-Proteins.

Joseph L Napoli1.   

Abstract

Multiple binding and transport proteins facilitate many aspects of retinoid biology through effects on retinoid transport, cellular uptake, metabolism, and nuclear delivery. These include the serum retinol binding protein sRBP (aka Rbp4), the plasma membrane sRBP receptor Stra6, and the intracellular retinoid binding-proteins such as cellular retinol-binding proteins (CRBP) and cellular retinoic acid binding-proteins (CRABP). sRBP transports the highly lipophilic retinol through an aqueous medium. The major intracellular retinol-binding protein, CRBP1, likely enhances efficient retinoid use by providing a sink to facilitate retinol uptake from sRBP through the plasma membrane or via Stra6, delivering retinol or retinal to select enzymes that generate retinyl esters or retinoic acid, and protecting retinol/retinal from excess catabolism or opportunistic metabolism. Intracellular retinoic acid binding-proteins (CRABP1 and 2, and FABP5) seem to have more diverse functions distinctive to each, such as directing retinoic acid to catabolism, delivering retinoic acid to specific nuclear receptors, and generating non-canonical actions. Gene ablation of intracellular retinoid binding-proteins does not cause embryonic lethality or gross morphological defects. Metabolic and functional defects manifested in knockouts of CRBP1, CRBP2 and CRBP3, however, illustrate their essentiality to health, and in the case of CRBP2, to survival during limited dietary vitamin A. Future studies should continue to address the specific molecular interactions that occur between retinoid binding-proteins and their targets and their precise physiologic contributions to retinoid homeostasis and function.

Entities:  

Keywords:  Acyl-CoA:diacylglycerol acyltransferase; Acyl-CoA:monoacylglycerol acyltransferase; Acyl-CoA:retinol acyltransferase; Cellular retinoic acid binding-protein; Cellular retinol binding-protein; Cytochrome P-450; Lecithin:retinol acyltransferase; Peroxisomal proliferator activated receptor δ/β; Retinal; Retinal dehydrogenase; Retinoic acid; Retinoic acid receptor; Retinol; Retinol dehydrogenase; Retinyl ester hydrolase; Serum retinol binding-protein

Mesh:

Substances:

Year:  2016        PMID: 27830500      PMCID: PMC5493979          DOI: 10.1007/978-94-024-0945-1_2

Source DB:  PubMed          Journal:  Subcell Biochem        ISSN: 0306-0225


  288 in total

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