Structural insights into positive and negative allosteric regulation of a G protein-coupled receptor through protein-lipid interactions

被引:0
|
作者
Agustín Bruzzese
Carles Gil
James A. R. Dalton
Jesús Giraldo
机构
[1] Laboratory of Molecular Neuropharmacology and Bioinformatics,Department of Biochemistry and Molecular Biology
[2] Institut de Neurociències and Unitat de Bioestadística,undefined
[3] Universitat Autònoma de Barcelona,undefined
[4] Network Biomedical Research Centre on Mental Health (CIBERSAM),undefined
[5] Institut de Neurociències,undefined
[6] Universitat Autònoma de Barcelona,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Lipids are becoming known as essential allosteric modulators of G protein-coupled receptor (GPCRs). However, how they exert their effects on GPCR conformation at the atomic level is still unclear. In light of recent experimental data, we have performed several long-timescale molecular dynamics (MD) simulations, totalling 24 μs, to rigorously map allosteric modulation and conformational changes in the β2 adrenergic receptor (β2AR) that occur as a result of interactions with three different phospholipids. In particular, we identify different sequential mechanisms behind receptor activation and deactivation, respectively, mediated by specific lipid interactions with key receptor regions. We show that net negatively charged lipids stabilize an active-like state of β2AR that is able to dock Gsα protein. Clustering of anionic lipids around the receptor with local distortion of membrane thickness is also apparent. On the other hand, net-neutral zwitterionic lipids inactivate the receptor, generating either fully inactive or intermediate states, with kinetics depending on lipid headgroup charge distribution and hydrophobicity. These chemical differences alter membrane thickness and density, which differentially destabilize the β2AR active state through lateral compression effects.
引用
收藏
相关论文
共 50 条
  • [31] Structural Basis for G Protein-Coupled Receptor Activation
    Manglik, Aashish
    Kruse, Andrew C.
    BIOCHEMISTRY, 2017, 56 (42) : 5628 - 5634
  • [32] Structural basis of G protein-coupled receptor function
    Schöneberg, T
    Schultz, G
    Gudermann, T
    MOLECULAR AND CELLULAR ENDOCRINOLOGY, 1999, 151 (1-2) : 181 - 193
  • [33] Structural Basis for G Protein-Coupled Receptor Signaling
    Erlandson, Sarah C.
    McMahon, Conor
    Kruse, Andrew C.
    ANNUAL REVIEW OF BIOPHYSICS, VOL 47, 2018, 47 : 1 - 18
  • [34] Computational design of G Protein-Coupled Receptor allosteric signal transductions
    Kuang-Yui Michael Chen
    Daniel Keri
    Patrick Barth
    Nature Chemical Biology, 2020, 16 : 77 - 86
  • [35] Computational design of G Protein-Coupled Receptor allosteric signal transductions
    Chen, Kuang-Yui Michael
    Keri, Daniel
    Barth, Patrick
    NATURE CHEMICAL BIOLOGY, 2020, 16 (01) : 77 - +
  • [36] Study sheds light on G protein-coupled receptor allosteric signaling
    Koutsouki, Evgenia
    FUTURE MEDICINAL CHEMISTRY, 2013, 5 (18) : 2123 - 2123
  • [37] Allosteric control of an asymmetric transduction in a G protein-coupled receptor heterodimer
    Liu, Junke
    Zhang, Zongyong
    Moreno-Delgado, David
    Dalton, James A. R.
    Rovira, Xavier
    Trapero, Ana
    Goudet, Cyril
    Llebaria, Amadeu
    Giraldo, Jesus
    Yuan, Qilin
    Rondard, Philippe
    Huang, Siluo
    Liu, Jianfeng
    Pin, Jean-Philippe
    ELIFE, 2017, 6
  • [38] Allosteric modulation of G protein-coupled receptors
    May, Lauren T.
    Leach, Katie
    Sexton, Patrick M.
    Christopoulos, Arthur
    ANNUAL REVIEW OF PHARMACOLOGY AND TOXICOLOGY, 2007, 47 : 1 - 51
  • [39] Allosteric modulation of G protein-coupled receptors
    May, LT
    Avlani, VA
    Sexton, PM
    Christopoulos, A
    CURRENT PHARMACEUTICAL DESIGN, 2004, 10 (17) : 2003 - 2013
  • [40] Allosteric ligand receptor G protein interactions in lipid vesicles
    Jakubik, J
    Haga, T
    Tucek, S
    LIFE SCIENCES, 1997, 60 (13-14) : 15 - 15