Literature DB >> 17042549

Direct reconstitution of plasma membrane lipids and proteins in nanotube-vesicle networks.

Brigitte Bauer1, Max Davidson, Owe Orwar.   

Abstract

We demonstrate here that nanotube-vesicle networks can be constructed directly from plasma membranes of cultured cells. We used a combination of dithiothreitol (DTT) and formaldehyde to produce micron-sized plasma membrane vesicles that were subsequently shaped into networks using micromanipulation methods previously used on purely synthetic systems. Only a single cell is required to derive material sufficient to build a small network. This protocol covers the advantages of reconstitution in vesicles, such as full control over the solution environment, while keeping the proteins in their original surroundings with the proper orientation. Furthermore, control of membrane protein and lipid content in the networks is achievable by employing different cell types, for example, by overexpression of a desired protein or the use of specialized cell-types as sources for rare proteins and lipids. In general, the method provides simple accessibility for functional studies of plasma membrane constituents. Specifically, it provides a direct means to functionalize nanotube-vesicle networks with desired proteins and lipids for studies of transport activity both across membranes (protein-mediated) and across nanotubes (diffusion), and substrate conversion down to the single-molecule limit. Nanotube-vesicle networks can adopt different geometries and topologies and undergo shape changes at will, providing a flexible system for changing the physical and chemical environment around, for example, a membrane protein. Furthermore, the method offers unique possibilities for extracting membrane and protein material for nanotechnological sensor and analytical devices based on lipid membrane networks.

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Year:  2006        PMID: 17042549     DOI: 10.1021/la060828k

Source DB:  PubMed          Journal:  Langmuir        ISSN: 0743-7463            Impact factor:   3.882


  9 in total

Review 1.  Model membrane systems and their applications.

Authors:  Yee-Hung M Chan; Steven G Boxer
Journal:  Curr Opin Chem Biol       Date:  2007-11-19       Impact factor: 8.822

2.  Generation of phospholipid vesicle-nanotube networks and transport of molecules therein.

Authors:  Aldo Jesorka; Natalia Stepanyants; Haijiang Zhang; Bahanur Ortmen; Bodil Hakonen; Owe Orwar
Journal:  Nat Protoc       Date:  2011-05-19       Impact factor: 13.491

Review 3.  Cell membrane biophysics with optical tweezers.

Authors:  H Moysés Nussenzveig
Journal:  Eur Biophys J       Date:  2017-11-21       Impact factor: 1.733

Review 4.  Intercellular nanotubes: insights from imaging studies and beyond.

Authors:  Johan Hurtig; Daniel T Chiu; Björn Onfelt
Journal:  Wiley Interdiscip Rev Nanomed Nanobiotechnol       Date:  2010 May-Jun

5.  HAMLET interacts with lipid membranes and perturbs their structure and integrity.

Authors:  Ann-Kristin Mossberg; Maja Puchades; Øyvind Halskau; Anne Baumann; Ingela Lanekoff; Yinxia Chao; Aurora Martinez; Catharina Svanborg; Roger Karlsson
Journal:  PLoS One       Date:  2010-02-23       Impact factor: 3.240

6.  Radial sizing of lipid nanotubes using membrane displacement analysis.

Authors:  Natalia Stepanyants; Gavin D M Jeffries; Owe Orwar; Aldo Jesorka
Journal:  Nano Lett       Date:  2012-02-24       Impact factor: 11.189

7.  Formation of oligovesicular vesicles by micromanipulation.

Authors:  Yukihisa Okumura; Tohru Ohmiya; Toshiki Yamazaki
Journal:  Membranes (Basel)       Date:  2011-09-26

8.  Modeling membrane nanotube morphology: the role of heterogeneity in composition and material properties.

Authors:  Haleh Alimohamadi; Ben Ovryn; Padmini Rangamani
Journal:  Sci Rep       Date:  2020-02-13       Impact factor: 4.379

9.  Membrane elastic properties and cell function.

Authors:  Bruno Pontes; Yareni Ayala; Anna Carolina C Fonseca; Luciana F Romão; Racκele F Amaral; Leonardo T Salgado; Flavia R Lima; Marcos Farina; Nathan B Viana; Vivaldo Moura-Neto; H Moysés Nussenzveig
Journal:  PLoS One       Date:  2013-07-03       Impact factor: 3.240

  9 in total

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