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Analysis of Phosphoinositide-Binding Properties and Subcellular Localization of GFP-Fusion Proteins

Title
Analysis of Phosphoinositide-Binding Properties and Subcellular Localization of GFP-Fusion Proteins
Author(s)
Jun, Yong-WooKim, SangyeolKim, Kun-HyungLee, Jin-ALim, Chae-SeokChang, IksooSuh, Byung-ChangKaang, Bong-KiunJang, Deok-Jin
Issued Date
2015-04
Citation
Lipids, v.50, no.4, pp.427 - 436
Type
Article
Author Keywords
GFP-fusion proteinPhosphoinositidePI(3,4,5)P-3Aplysia Sec7In vitro protein-phosphoinositide bindingNeurite outgrowth
Keywords
PLECKSTRIN HOMOLOGY DOMAINNUCLEOTIDE EXCHANGE FACTORHIGH-AFFINITYPHOSPHATIDYLINOSITOL 4,5-BISPHOSPHATEAPLYSIA NEURONSPLASMA-MEMBRANEARNOOVEREXPRESSIONRECOGNITIONADHESION
ISSN
0024-4201
Abstract
Specific protein-phosphoinositide (PI) interactions are known to play a key role in the targeting of proteins to specific cellular membranes. Investigation of these interactions would be greatly facilitated if GFP-fusion proteins expressed in mammalian cells and used for their subcellular localization could also be employed for in vitro lipid binding. In this study, we found that lysates of cells overexpressing GFP-fusion proteins could be used for in vitro protein-PI binding assays. We applied this approach to examine the PI-binding properties of Aplysia Sec7 protein (ApSec7) and its isoform ApSec7(VPKIS), in which a VPKIS sequence is inserted into the PH domain of ApSec7. EGFP-ApSec7 but not EGFP-ApSec7(VPKIS) did specifically bind to PI(3,4,5)P3 in an in vitro lipid-coated bead assay. Overexpression of EGFP-ApSec7 but not EGFP-ApSec7(VPKIS) did induce neurite outgrowth in Aplysia sensory neurons. Structure modeling analysis revealed that the inserted VPKIS caused misfolding around the PI(3,4,5)P3-binding pocket of ApSec7 and disturbed the binding of PI(3,4,5)P3 to the pleckstrin homology (PH) domain. Our data indicate that plasma membrane localization of EGFP-ApSec7 via the interaction between its PH domain and PI(3,4,5)P3 might play a key role in neurite outgrowth in Aplysia. © 2015 AOCS.
URI
http://hdl.handle.net/20.500.11750/1574
DOI
10.1007/s11745-015-3994-z
Publisher
SPRINGER HEIDELBERG
Related Researcher
  • 서병창 Suh, Byung-Chang
  • Research Interests Molecular mechanisms of epilepsy and sensory pain transmission; Signaling mechanism of ion channel regulation and membrane excitability; 분자전기생리; 간질 및 통증의 분자적 기전 연구
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Appears in Collections:
Department of Brain Sciences Theoretical and Computational Biophysics Laboratory 1. Journal Articles
Department of Brain Sciences Laboratory of Brain Signal and Synapse Research 1. Journal Articles

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