Molecular modeling of LDLR aids interpretation of genomic variants

被引:8
作者
Klee, Eric W. [1 ,2 ]
Zimmermann, Michael T. [3 ]
机构
[1] Mayo Clin, Div Biomed Stat & Informat, Dept Hlth Sci Res, Rochester, MN USA
[2] Mayo Clin, Ctr Individualized Med, Rochester, MN USA
[3] Med Coll Wisconsin, Bioinformat Res & Dev Lab, Genom Sci & Precis Med Ctr, Milwaukee, WI 53226 USA
来源
JOURNAL OF MOLECULAR MEDICINE-JMM | 2019年 / 97卷 / 04期
关键词
Low-density lipoprotein receptor; Familial hypercholesterolemia; Molecular modeling; Genomic interpretation; Variant prioritization; LOW-DENSITY-LIPOPROTEIN; FAMILIAL HYPERCHOLESTEROLEMIA; RECEPTOR; SEQUENCE; BINDING; DOMAIN; DATABASE; REPEATS; GENE;
D O I
10.1007/s00109-019-01755-3
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Genetic variants in low-density lipoprotein receptor (LDLR) are known to cause familial hypercholesterolemia (FH), occurring in up to 1 in 200 people (Youngblom E. et al. 1993 and Nordestgaard BG et al. 34:3478-3490a, 2013) and leading to significant risk for heart disease. Clinical genomics testing using high-throughput sequencing is identifying novel genomic variants of uncertain significance (VUS) in individuals suspected of having FH, but for whom the causal link to the disease remains to be established (Nordestgaard BG et al. 34:3478-3490a, 2013). Unfortunately, experimental data about the atomic structure of the LDL binding domains of LDLR at extracellular pH does not exist. This leads to an inability to apply protein structure-based methods for assessing novel variants identified through genetic testing. Thus, the ambiguities in interpretation of LDLR variants are a barrier to achieving the expected clinical value for personalized genomics assays for management of FH. In this study, we integrated data from the literature and related cellular receptors to develop high-resolution models of full-length LDLR at extracellular conditions and use them to predict which VUS alter LDL binding. We believe that the functional effects of LDLR variants can be resolved using a combination of structural bioinformatics and functional assays, leading to a better correlation with clinical presentation. We have completed modeling of LDLR in two major physiologic conditions, generating detailed hypotheses for how each of the 1007 reported protein variants may affect function.Key messages center dot Hundreds of variants are observed in the LDLR, but most lack interpretation.center dot Molecular modeling is aided by biochemical knowledge.center dot We generated context-specific 3D protein models of LDLR.center dot Our models allowed mechanistic interpretation of many variants.center dot We interpreted both rare and common genomic variants in their physiologic context.center dot Effects of genomic variants are often context-specific.
引用
收藏
页码:533 / 540
页数:8
相关论文
共 41 条
  • [1] Exploring the complete mutational space of the LDL receptor LA5 domain using molecular dynamics: linking SNPs with disease phenotypes in familial hypercholesterolemia
    Angarica, Vladimir Espinosa
    Orozco, Modesto
    Sancho, Javier
    [J]. HUMAN MOLECULAR GENETICS, 2016, 25 (06) : 1233 - 1246
  • [2] [Anonymous], PYMOL MOL GRAPH SYST
  • [3] ConSurf 2010: calculating evolutionary conservation in sequence and structure of proteins and nucleic acids
    Ashkenazy, Haim
    Erez, Elana
    Martz, Eric
    Pupko, Tal
    Ben-Tal, Nir
    [J]. NUCLEIC ACIDS RESEARCH, 2010, 38 : W529 - W533
  • [4] UniProt: the universal protein knowledgebase
    Bateman, Alex
    Martin, Maria Jesus
    O'Donovan, Claire
    Magrane, Michele
    Alpi, Emanuele
    Antunes, Ricardo
    Bely, Benoit
    Bingley, Mark
    Bonilla, Carlos
    Britto, Ramona
    Bursteinas, Borisas
    Bye-A-Jee, Hema
    Cowley, Andrew
    Da Silva, Alan
    De Giorgi, Maurizio
    Dogan, Tunca
    Fazzini, Francesco
    Castro, Leyla Garcia
    Figueira, Luis
    Garmiri, Penelope
    Georghiou, George
    Gonzalez, Daniel
    Hatton-Ellis, Emma
    Li, Weizhong
    Liu, Wudong
    Lopez, Rodrigo
    Luo, Jie
    Lussi, Yvonne
    MacDougall, Alistair
    Nightingale, Andrew
    Palka, Barbara
    Pichler, Klemens
    Poggioli, Diego
    Pundir, Sangya
    Pureza, Luis
    Qi, Guoying
    Rosanoff, Steven
    Saidi, Rabie
    Sawford, Tony
    Shypitsyna, Aleksandra
    Speretta, Elena
    Turner, Edward
    Tyagi, Nidhi
    Volynkin, Vladimir
    Wardell, Tony
    Warner, Kate
    Watkins, Xavier
    Zaru, Rossana
    Zellner, Hermann
    Xenarios, Ioannis
    [J]. NUCLEIC ACIDS RESEARCH, 2017, 45 (D1) : D158 - D169
  • [5] BIOVIA Dassault Systemes BIOVIA, 2017, BIOVIA DASS SYST BIO
  • [6] Blackburn PR, 2017, CSH MOL CASE STUD, V3, DOI 10.1101/mcs.a001743
  • [7] ACID-DEPENDENT LIGAND DISSOCIATION AND RECYCLING OF LDL RECEPTOR MEDIATED BY GROWTH-FACTOR HOMOLOGY REGION
    DAVIS, CG
    GOLDSTEIN, JL
    SUDHOF, TC
    ANDERSON, RGW
    RUSSELL, DW
    BROWN, MS
    [J]. NATURE, 1987, 326 (6115) : 760 - 765
  • [8] ESSER V, 1988, J BIOL CHEM, V263, P13282
  • [9] The Genetic Spectrum of Familial Hypercholesterolemia (FH) in the Iranian Population
    Fairoozy, R. H.
    Futema, M.
    Vakili, R.
    Abbaszadegan, M. R.
    Hosseini, S.
    Aminzadeh, M.
    Zaeri, H.
    Mobini, M.
    Humphries, S. E.
    Sahebkar, A.
    [J]. SCIENTIFIC REPORTS, 2017, 7
  • [10] Molecular basis of familial hypercholesterolaemia from structure of LDL receptor module
    Fass, D
    Blacklow, S
    Kim, PS
    Berger, JM
    [J]. NATURE, 1997, 388 (6643) : 691 - 693