Literature DB >> 18214371

Nondetergent isolation of rafts.

Mehul B Shah1, Pravin B Sehgal.   

Abstract

Raft and caveolar microdomains have been proposed to participate in numerous cellular functions including signal transduction, cholesterol trafficking, and vesicular sorting. Traditional methods of isolation of rafts from cultured cells and tissue samples have exploited the biochemical properties of these microdomains, i.e., their relative resistance to solubilization by nonionic detergents (at 4 degrees C) and their light buoyant density attributable to their high content of cholesterol and sphingolipids. Thus, a common way to isolate raft microdomains has been their separation on a density gradient in the presence of 0.5-1% Triton X-100 (Bochringer Mannheim Roche Applied Sciences Indianapolis, IN or Sigma-Aldrich, St. Louis, MO). This and other detergent-based methods have been discussed. However, the use of detergents may not be favorable because of artifacts that may arise with their use. (The possibility of rafts solely as detergent-induced artifacts appears to have been diffused by a number of biochemical and biophysical studies that strongly demonstrate the presence of a liquid-ordered phase within biological membranes.) In this chapter, three methods are reviewed to isolate rafts from cultured cells without the use of detergents. Two of these, the sodium carbonate and OptiPrep (Sigma-Aldrich St. Louis, MO) methods, are based on gradient separation and can be used to isolate rafts in general, whereas the third is a magnetic-bead immunoisolation approach and might be used to isolate subpopulations of rafts enriched for different markers such as caveolin-1, flotillin (reggie proteins), or other suitable markers. Together these methods allow for a detergent-free isolation of rafts for biochemical, proteomic, and microscopic studies.

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Year:  2007        PMID: 18214371     DOI: 10.1007/978-1-59745-513-8_3

Source DB:  PubMed          Journal:  Methods Mol Biol        ISSN: 1064-3745


  14 in total

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4.  Expression profile of flotillin-2 and its pathophysiological role after spinal cord injury.

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5.  A sensitive S-Trap-based approach to the analysis of T cell lipid raft proteome.

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7.  Isolation of rafts from mouse brain tissue by a detergent-free method.

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9.  Attenuating Staphylococcus aureus Virulence by Targeting Flotillin Protein Scaffold Activity.

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10.  Exploring the existence of lipid rafts in bacteria.

Authors:  Marc Bramkamp; Daniel Lopez
Journal:  Microbiol Mol Biol Rev       Date:  2015-03       Impact factor: 11.056

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