Literature DB >> 11591437

Gene structure, intracellular localization, and functional roles of sterol carrier protein-2.

A M Gallegos1, B P Atshaves, S M Storey, O Starodub, A D Petrescu, H Huang, A L McIntosh, G G Martin, H Chao, A B Kier, F Schroeder.   

Abstract

Since its discovery three decades ago, sterol carrier protein-2 (SCP-2) has remained a fascinating protein whose physiological function in lipid metabolism remains an enigma. Its multiple proposed functions arise from its complex gene structure, post-translational processing, intracellular localization, and ligand specificity. The SCP-2 gene has two initiation sites coding for proteins that share a common 13 kDa SCP-2 C-terminus: (1) One site codes for 58 kDa SCP-x which is partially post-translationally cleaved to 13 kDa SCP-2 and a 45 kDa protein. (2) A second site codes for 15 kDa pro-SCP-2 which is completely post-translationally cleaved to 13 kDa SCP-2. Very little is yet known regarding how the relative proportions of the two transcripts are regulated. Although all three proteins contain a C-terminal SKL peroxisomal targeting sequence, it is unclear why all three proteins are not exclusively localized in peroxisomes. However, the recent demonstration that the SCP-2 N-terminal presequence in pro-SCP-2 dramatically modulated the intracellular targeting coded by the C-terminal peroxisomal targeting sequence may account for the observation that as much as half of total SCP-2 is localized outside the peroxisome. The tertiary and secondary structure of the 13 kDa SCP-2, but not that of 15 kDa pro-SCP-2 and 58 kDa SCP-x, are now resolved. Increasing evidence suggests that the 58 kDa SCP-x and 45 kDa proteins are peroxisomal 3-ketoacyl-CoA-thiolases involved in the oxidation of branched chain fatty acids. Since 15 kDa pro-SCP-2 is post-translationally completely cleaved to 13 kDa SCP-2, relatively little attention has been focused on this protein. Finally, although the 13 kDa SCP-2 is the most studied of these proteins, because it exhibits diversity of its ligand partners (fatty acids, fatty acyl CoAs, cholesterol, phospholipids), new potential physiological function(s) are still being proposed and questions regarding potential compensation by other proteins with overlapping specificity are only beginning to be resolved.

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Year:  2001        PMID: 11591437     DOI: 10.1016/s0163-7827(01)00015-7

Source DB:  PubMed          Journal:  Prog Lipid Res        ISSN: 0163-7827            Impact factor:   16.195


  92 in total

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2.  A conserved ER targeting motif in three families of lipid binding proteins and in Opi1p binds VAP.

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4.  NMR and X-ray structures of the putative sterol carrier protein 2 from Thermus thermophilus HB8 show conformational changes.

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Authors:  Joo-Youn Cho; Dong Wook Kang; Xiaochao Ma; Sung-Hoon Ahn; Kristopher W Krausz; Hans Luecke; Jeffrey R Idle; Frank J Gonzalez
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Review 8.  Translocation as a means of disseminating lipid hydroperoxide-induced oxidative damage and effector action.

Authors:  Albert W Girotti
Journal:  Free Radic Biol Med       Date:  2007-12-15       Impact factor: 7.376

Review 9.  Estrogenic compounds, estrogen receptors and vascular cell signaling in the aging blood vessels.

Authors:  Dia A Smiley; Raouf A Khalil
Journal:  Curr Med Chem       Date:  2009       Impact factor: 4.530

10.  StarD4-mediated translocation of 7-hydroperoxycholesterol to isolated mitochondria: deleterious effects and implications for steroidogenesis under oxidative stress conditions.

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