The Epigenetic Dimension of Protein Structure Is an Intrinsic Weakness of the AlphaFold Program

被引:31
作者
Azzaz, Fodil [1 ]
Yahi, Nouara [1 ]
Chahinian, Henri [1 ]
Fantini, Jacques [1 ]
机构
[1] Aix Marseille Univ, Dept Biol, INSERM, UMR S 1072, F-13015 Marseille, France
关键词
alphafold; AI; protein structure; lipid rafts; ganglioside; membrane; therapy; molecular modeling; pathology; HIGH-AFFINITY RECEPTOR; LIPID RAFTS; BINDING DOMAINS; SYNAPTOTAGMIN-I; BETA-SHEET; CHOLESTEROL; MEMBRANE; IDENTIFICATION; SYNUCLEIN; PEPTIDE;
D O I
10.3390/biom12101527
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
One of the most important lessons we have learned from sequencing the human genome is that not all proteins have a 3D structure. In fact, a large part of the human proteome is made up of intrinsically disordered proteins (IDPs) which can adopt multiple structures, and therefore, multiple functions, depending on the ligands with which they interact. Under these conditions, one can wonder about the value of algorithms developed for predicting the structure of proteins, in particular AlphaFold, an AI which claims to have solved the problem of protein structure. In a recent study, we highlighted a particular weakness of AlphaFold for membrane proteins. Based on this observation, we have proposed a paradigm, referred to as "Epigenetic Dimension of Protein Structure" (EDPS), which takes into account all environmental parameters that control the structure of a protein beyond the amino acid sequence (hence "epigenetic"). In this new study, we compare the reliability of the AlphaFold and Robetta algorithms' predictions for a new set of membrane proteins involved in human pathologies. We found that Robetta was generally more accurate than AlphaFold for ascribing a membrane-compatible topology. Raft lipids (e.g., gangliosides), which control the structural dynamics of membrane protein structure through chaperone effects, were identified as major actors of the EDPS paradigm. We conclude that the epigenetic dimension of a protein structure is an intrinsic weakness of AI-based protein structure prediction, especially AlphaFold, which warrants further development.
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页数:16
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共 66 条
[21]   Gene Therapy Strategy for Alzheimer's and Parkinson's Diseases Aimed at Preventing the Formation of Neurotoxic Oligomers in SH-SY5Y Cells [J].
El-Battari, Assou ;
Rodriguez, Lea ;
Chahinian, Henri ;
Delezay, Olivier ;
Fantini, Jacques ;
Yahi, Nouara ;
Di Scala, Coralie .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (21)
[22]   Engineered botulinum neurotoxin B with improved binding to human receptors has enhanced efficacy in preclinical models [J].
Elliott, Mark ;
Favre-Guilmard, Christine ;
Liu, Sai Man ;
Maignel, Jacquie ;
Masuyer, Geoffrey ;
Beard, Matthew ;
Boone, Christopher ;
Carre, Denis ;
Kalinichev, Mikhail ;
Lezmi, Stephane ;
Mir, Imran ;
Nicoleau, Camille ;
Palan, Shilpa ;
Perier, Cindy ;
Raban, Elsa ;
Zhang, Sicai ;
Dong, Min ;
Stenmark, Pal ;
Krupp, Johannes .
SCIENCE ADVANCES, 2019, 5 (01)
[23]   Assessment of α-Synuclein Secretion in Mouse and Human Brain Parenchyma [J].
Emmanouilidou, Evangelia ;
Elenis, Dimitris ;
Papasilekas, Themis ;
Stranjalis, Georgios ;
Gerozissis, Kyriaki ;
Ioannou, Penelopi C. ;
Vekrellis, Kostas .
PLOS ONE, 2011, 6 (07)
[24]   How sphingolipids bind and shape proteins: molecular basis of lipid-protein interactions in lipid shells, rafts and related biomembrane domains [J].
Fantini, J .
CELLULAR AND MOLECULAR LIFE SCIENCES, 2003, 60 (06) :1027-1032
[25]  
Fantini J., 2015, Brain Lipids in Synaptic Function and Neurological Disease: Clues to Innovative Therapeutic Strategies for Brain Disorders
[26]   Interaction of proteins with lipid rafts through glycolipid-binding domains: Biochemical background and potential therapeutic applications [J].
Fantini, Jacques .
CURRENT MEDICINAL CHEMISTRY, 2007, 14 (27) :2911-2917
[27]  
Fantini Jacques, 2002, Expert Rev Mol Med, V4, P1, DOI 10.1017/S1462399402005392
[28]   Progress toward Alzheimer's disease treatment: Leveraging the Achilles' heel of Aβ oligomers? [J].
Fantini, Jacques ;
Chahinian, Henri ;
Yahi, Nouara .
PROTEIN SCIENCE, 2020, 29 (08) :1748-1759
[29]   The Driving Force of Alpha-Synuclein Insertion and Amyloid Channel Formation in the Plasma Membrane of Neural Cells: Key Role of Ganglioside-and and Cholesterol-Binding Domains [J].
Fantini, Jacques ;
Yahi, Nouara .
LIPID-MEDIATED PROTEIN SIGNALING, 2013, 991 :15-26
[30]   Molecular Basis for the Glycosphingolipid-Binding Specificity of α-Synuclein: Key Role of Tyrosine 39 in Membrane Insertion [J].
Fantini, Jacques ;
Yahi, Nouara .
JOURNAL OF MOLECULAR BIOLOGY, 2011, 408 (04) :654-669