Literature DB >> 23159414

The glycolipid transfer protein (GLTP) domain of phosphoinositol 4-phosphate adaptor protein-2 (FAPP2): structure drives preference for simple neutral glycosphingolipids.

Ravi Kanth Kamlekar1, Dhirendra K Simanshu, Yong-guang Gao, Roopa Kenoth, Helen M Pike, Franklyn G Prendergast, Lucy Malinina, Julian G Molotkovsky, Sergei Yu Venyaminov, Dinshaw J Patel, Rhoderick E Brown.   

Abstract

Phosphoinositol 4-phosphate adaptor protein-2 (FAPP2) plays a key role in glycosphingolipid (GSL) production using its C-terminal domain to transport newly synthesized glucosylceramide away from the cytosol-facing glucosylceramide synthase in the cis-Golgi for further anabolic processing. Structural homology modeling against human glycolipid transfer protein (GLTP) predicts a GLTP-fold for FAPP2 C-terminal domain, but no experimental support exists to warrant inclusion in the GLTP superfamily. Here, the biophysical properties and glycolipid transfer specificity of FAPP2-C-terminal domain have been characterized and compared with other established GLTP-folds. Experimental evidence for a GLTP-fold includes: i) far-UV circular dichroism (CD) showing secondary structure with high alpha-helix content and a low thermally-induced unfolding transition (~41°C); ii) near-UV-CD indicating only subtle tertiary conformational change before/after interaction with membranes containing/lacking glycolipid; iii) Red-shifted tryptophan (Trp) emission wavelength maximum (λ(max)~352nm) for apo-FAPP2-C-terminal domain consistent with surface exposed intrinsic Trp residues; iv) 'signature' GLTP-fold Trp fluorescence response, i.e., intensity decrease (~30%) accompanied by strongly blue-shifted λ(max) (~14nm) upon interaction with membranes containing glycolipid, supporting direct involvement of Trp in glycolipid binding and enabling estimation of partitioning affinities. A structurally-based preference for other simple uncharged GSLs, in addition to glucosylceramide, makes human FAPP2-GLTP more similar to fungal HET-C2 than to plant AtGLTP1 (glucosylceramide-specific) or to broadly GSL-selective human GLTP. These findings along with the distinct mRNA exon/intron organizations originating from single-copy genes on separate human chromosomes suggest adaptive evolutionary divergence by these two GLTP-folds.
Copyright © 2012 Elsevier B.V. All rights reserved.

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Year:  2012        PMID: 23159414      PMCID: PMC3654534          DOI: 10.1016/j.bbalip.2012.10.010

Source DB:  PubMed          Journal:  Biochim Biophys Acta        ISSN: 0006-3002


  52 in total

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2.  Charged membrane surfaces impede the protein-mediated transfer of glycosphingolipids between phospholipid bilayers.

Authors:  P Mattjus; H M Pike; J G Molotkovsky; R E Brown
Journal:  Biochemistry       Date:  2000-02-08       Impact factor: 3.162

3.  DICHROWEB, an online server for protein secondary structure analyses from circular dichroism spectroscopic data.

Authors:  Lee Whitmore; B A Wallace
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Authors:  Chetan S Rao; Xin Lin; Helen M Pike; Julian G Molotkovsky; Rhoderick E Brown
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7.  Structural basis for glycosphingolipid transfer specificity.

Authors:  Lucy Malinina; Margarita L Malakhova; Alexei Teplov; Rhoderick E Brown; Dinshaw J Patel
Journal:  Nature       Date:  2004-08-26       Impact factor: 49.962

8.  Human glycolipid transfer protein: probing conformation using fluorescence spectroscopy.

Authors:  Xin-Min Li; Margarita L Malakhova; Xin Lin; Helen M Pike; Taeowan Chung; Julian G Molotkovsky; Rhoderick E Brown
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Authors:  Sergei Yu Venyaminov; Elena S Klimtchuk; Zeljko Bajzer; Theodore A Craig
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10.  FAPPs control Golgi-to-cell-surface membrane traffic by binding to ARF and PtdIns(4)P.

Authors:  Anna Godi; Antonella Di Campli; Athanasios Konstantakopoulos; Giuseppe Di Tullio; Dario R Alessi; Gursant S Kular; Tiziana Daniele; Pierfrancesco Marra; John M Lucocq; M Antonietta De Matteis
Journal:  Nat Cell Biol       Date:  2004-04-25       Impact factor: 28.824

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  12 in total

1.  Functional evaluation of tryptophans in glycolipid binding and membrane interaction by HET-C2, a fungal glycolipid transfer protein.

Authors:  Roopa Kenoth; Xianqiong Zou; Dhirendra K Simanshu; Helen M Pike; Lucy Malinina; Dinshaw J Patel; Rhoderick E Brown; Ravi Kanth Kamlekar
Journal:  Biochim Biophys Acta Biomembr       Date:  2018-01-03       Impact factor: 3.747

2.  Sphingolipid transfer proteins defined by the GLTP-fold.

Authors:  Lucy Malinina; Dhirendra K Simanshu; Xiuhong Zhai; Valeria R Samygina; RaviKanth Kamlekar; Roopa Kenoth; Borja Ochoa-Lizarralde; Margarita L Malakhova; Julian G Molotkovsky; Dinshaw J Patel; Rhoderick E Brown
Journal:  Q Rev Biophys       Date:  2015-03-23       Impact factor: 5.318

3.  Modulation of hepatitis C virus genome replication by glycosphingolipids and four-phosphate adaptor protein 2.

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Journal:  J Virol       Date:  2014-08-13       Impact factor: 5.103

4.  Arabidopsis accelerated cell death 11, ACD11, is a ceramide-1-phosphate transfer protein and intermediary regulator of phytoceramide levels.

Authors:  Dhirendra K Simanshu; Xiuhong Zhai; David Munch; Daniel Hofius; Jonathan E Markham; Jacek Bielawski; Alicja Bielawska; Lucy Malinina; Julian G Molotkovsky; John W Mundy; Dinshaw J Patel; Rhoderick E Brown
Journal:  Cell Rep       Date:  2014-01-09       Impact factor: 9.423

5.  Phosphatidylserine Stimulates Ceramide 1-Phosphate (C1P) Intermembrane Transfer by C1P Transfer Proteins.

Authors:  Xiuhong Zhai; Yong-Guang Gao; Shrawan K Mishra; Dhirendra K Simanshu; Ivan A Boldyrev; Linda M Benson; H Robert Bergen; Lucy Malinina; John Mundy; Julian G Molotkovsky; Dinshaw J Patel; Rhoderick E Brown
Journal:  J Biol Chem       Date:  2016-12-23       Impact factor: 5.157

6.  Structural analyses of 4-phosphate adaptor protein 2 yield mechanistic insights into sphingolipid recognition by the glycolipid transfer protein family.

Authors:  Borja Ochoa-Lizarralde; Yong-Guang Gao; Alexander N Popov; Valeria R Samygina; Xiuhong Zhai; Shrawan K Mishra; Ivan A Boldyrev; Julian G Molotkovsky; Dhirendra K Simanshu; Dinshaw J Patel; Rhoderick E Brown; Lucy Malinina
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7.  Ceramide-1-phosphate transfer protein (CPTP) regulation by phosphoinositides.

Authors:  Yong-Guang Gao; Xiuhong Zhai; Ivan A Boldyrev; Julian G Molotkovsky; Dinshaw J Patel; Lucy Malinina; Rhoderick E Brown
Journal:  J Biol Chem       Date:  2021-03-26       Impact factor: 5.157

8.  Ceramide-1-phosphate transfer protein promotes sphingolipid reorientation needed for binding during membrane interaction.

Authors:  Yong-Guang Gao; Jeffrey McDonald; Lucy Malinina; Dinshaw J Patel; Rhoderick E Brown
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9.  Vesicular and non-vesicular transport feed distinct glycosylation pathways in the Golgi.

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Review 10.  Emerging roles for human glycolipid transfer protein superfamily members in the regulation of autophagy, inflammation, and cell death.

Authors:  Shrawan K Mishra; Yong-Guang Gao; Xianqiong Zou; Daniel J Stephenson; Lucy Malinina; Edward H Hinchcliffe; Charles E Chalfant; Rhoderick E Brown
Journal:  Prog Lipid Res       Date:  2020-04-24       Impact factor: 14.673

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