Literature DB >> 27163494

Conformational equilibrium of talin is regulated by anionic lipids.

Xin Ye1, Mark A McLean1, Stephen G Sligar1.   

Abstract

A critical step in the activation of integrin receptors is the binding of talin to the cytoplasmic domain of the β subunits. This interaction leads to separation of the integrin α and β transmembrane domains and significant conformational changes in the extracellular domains, resulting in a dramatic increase in integrin's affinity for ligands. It has long been shown that the membrane bilayer also plays a critical role in the talin-integrin interaction. Anionic lipids are required for proper interaction, yet the specificity for specific anionic headgroups is not clear. In this report, we document talin-membrane interactions with bilayers of controlled composition using Nanodiscs and a FRET based binding and structural assay. We confirm that recruitment of the talin head domain to the membrane surface is governed by charge in the absence of other adapter proteins. In addition, measurement of the donor-acceptor distance is consistent with the hypothesis that anionic lipids promote a conformational change in the talin head domain allowing interaction of the F3 domain with the phospholipid bilayer. The magnitude of the F3 domain movement is altered by the identity of the phospholipid headgroup with phosphatidylinositides promoting the largest change. Our results suggest that phoshpatidylinositol-4,5-bisphosphate plays key a role in converting talin head domain to a conformation optimized for interactions with the bilayer and subsequently integrin cytoplasmic tails.
Copyright © 2016 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Conformational change; Lipid bilayer; Phosphatidylinositol; Phosphatidylserine; Talin

Mesh:

Substances:

Year:  2016        PMID: 27163494      PMCID: PMC8957309          DOI: 10.1016/j.bbamem.2016.05.005

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


  41 in total

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Authors:  D A Calderwood; R Zent; R Grant; D J Rees; R O Hynes; M H Ginsberg
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2.  Mapping and consensus sequence identification for multiple vinculin binding sites within the talin rod.

Authors:  Alexandre R Gingras; Wolfgang H Ziegler; Ronald Frank; Igor L Barsukov; Gordon C K Roberts; David R Critchley; Jonas Emsley
Journal:  J Biol Chem       Date:  2005-08-30       Impact factor: 5.157

3.  The structure of the integrin alphaIIbbeta3 transmembrane complex explains integrin transmembrane signalling.

Authors:  Tong-Lay Lau; Chungho Kim; Mark H Ginsberg; Tobias S Ulmer
Journal:  EMBO J       Date:  2009-03-12       Impact factor: 11.598

4.  The structure of an integrin/talin complex reveals the basis of inside-out signal transduction.

Authors:  Nicholas J Anthis; Kate L Wegener; Feng Ye; Chungho Kim; Benjamin T Goult; Edward D Lowe; Ioannis Vakonakis; Neil Bate; David R Critchley; Mark H Ginsberg; Iain D Campbell
Journal:  EMBO J       Date:  2009-10-01       Impact factor: 11.598

5.  Affinity of talin-1 for the β3-integrin cytosolic domain is modulated by its phospholipid bilayer environment.

Authors:  David T Moore; Patrik Nygren; Hyunil Jo; Kathleen Boesze-Battaglia; Joel S Bennett; William F DeGrado
Journal:  Proc Natl Acad Sci U S A       Date:  2011-12-30       Impact factor: 11.205

6.  Structural basis for phosphatidylinositol phosphate kinase type Igamma binding to talin at focal adhesions.

Authors:  Jose M de Pereda; Kate L Wegener; Eugenio Santelli; Neil Bate; Mark H Ginsberg; David R Critchley; Iain D Campbell; Robert C Liddington
Journal:  J Biol Chem       Date:  2004-12-28       Impact factor: 5.157

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Authors:  W H Goldmann; R Senger; S Kaufmann; G Isenberg
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Review 8.  The tail of integrin activation.

Authors:  Nicholas J Anthis; Iain D Campbell
Journal:  Trends Biochem Sci       Date:  2011-01-06       Impact factor: 13.807

9.  Recruitment and regulation of phosphatidylinositol phosphate kinase type 1 gamma by the FERM domain of talin.

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Journal:  Nature       Date:  2002-11-07       Impact factor: 49.962

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Authors:  Chungho Kim; Feng Ye; Xiaohui Hu; Mark H Ginsberg
Journal:  J Cell Biol       Date:  2012-05-28       Impact factor: 10.539

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  13 in total

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Authors:  Tyler Camp; Stephen G Sligar
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2.  The hydrodynamic motion of Nanodiscs.

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Journal:  Chem Phys Lipids       Date:  2019-02-22       Impact factor: 3.329

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Authors:  James Schiemer; Andrew Bohm; Li Lin; Glenn Merrill-Skoloff; Robert Flaumenhaft; Jin-Sheng Huang; Guy C Le Breton; Athar H Chishti
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Review 4.  Nanodiscs in Membrane Biochemistry and Biophysics.

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Journal:  Chem Rev       Date:  2017-02-08       Impact factor: 60.622

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Review 6.  Regulation of actin assembly by PI(4,5)P2 and other inositol phospholipids: An update on possible mechanisms.

Authors:  Paul A Janmey; Robert Bucki; Ravi Radhakrishnan
Journal:  Biochem Biophys Res Commun       Date:  2018-08-13       Impact factor: 3.575

7.  CLIC1 recruits PIP5K1A/C to induce cell-matrix adhesions for tumor metastasis.

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8.  Nanodiscs: A Controlled Bilayer Surface for the Study of Membrane Proteins.

Authors:  Mark A McLean; Michael C Gregory; Stephen G Sligar
Journal:  Annu Rev Biophys       Date:  2018-03-01       Impact factor: 12.981

9.  Emerging Diversity in Lipid-Protein Interactions.

Authors:  Valentina Corradi; Besian I Sejdiu; Haydee Mesa-Galloso; Haleh Abdizadeh; Sergei Yu Noskov; Siewert J Marrink; D Peter Tieleman
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10.  Dark, Ultra-Dark and Ultra-Bright Nanodiscs for membrane protein investigations.

Authors:  Mark A McLean; Ilia G Denisov; Yelena V Grinkova; Stephen G Sligar
Journal:  Anal Biochem       Date:  2020-08-01       Impact factor: 3.365

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