Predictors for a dementia gene mutation based on gene-panel next-generation sequencing of a large dementia referral series.
Journal
Molecular psychiatry
ISSN: 1476-5578
Titre abrégé: Mol Psychiatry
Pays: England
ID NLM: 9607835
Informations de publication
Date de publication:
12 2020
12 2020
Historique:
received:
26
01
2018
accepted:
18
07
2018
revised:
28
06
2018
pubmed:
4
10
2018
medline:
15
5
2021
entrez:
4
10
2018
Statut:
ppublish
Résumé
Next-generation genetic sequencing (NGS) technologies facilitate the screening of multiple genes linked to neurodegenerative dementia, but there are few reports about their use in clinical practice. Which patients would most profit from testing, and information on the likelihood of discovery of a causal variant in a clinical syndrome, are conspicuously absent from the literature, mostly for a lack of large-scale studies. We applied a validated NGS dementia panel to 3241 patients with dementia and healthy aged controls; 13,152 variants were classified by likelihood of pathogenicity. We identified 354 deleterious variants (DV, 12.6% of patients); 39 were novel DVs. Age at clinical onset, clinical syndrome and family history each strongly predict the likelihood of finding a DV, but healthcare setting and gender did not. DVs were frequently found in genes not usually associated with the clinical syndrome. Patients recruited from primary referral centres were compared with those seen at higher-level research centres and a national clinical neurogenetic laboratory; rates of discovery were comparable, making selection bias unlikely and the results generalisable to clinical practice. We estimated penetrance of DVs using large-scale online genomic population databases and found 71 with evidence of reduced penetrance. Two DVs in the same patient were found more frequently than expected. These data should provide a basis for more informed counselling and clinical decision making.
Identifiants
pubmed: 30279455
doi: 10.1038/s41380-018-0224-0
pii: 10.1038/s41380-018-0224-0
pmc: PMC6330090
mid: EMS78693
doi:
Types de publication
Journal Article
Research Support, Non-U.S. Gov't
Langues
eng
Sous-ensembles de citation
IM
Pagination
3399-3412Subventions
Organisme : Medical Research Council
ID : MR/M008592/1
Pays : United Kingdom
Organisme : Wellcome Trust
ID : 103838
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/M009076/1
Pays : United Kingdom
Organisme : Medical Research Council
ID : MC_UU_00024/1
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/M008525/1
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/K013041/1
Pays : United Kingdom
Organisme : Medical Research Council
ID : G0600237
Pays : United Kingdom
Organisme : Medical Research Council
ID : G0300429
Pays : United Kingdom
Organisme : Wellcome Trust
ID : 200181/Z/15/Z
Pays : United Kingdom
Organisme : Department of Health
ID : BRC149/NS/MH
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/L501517/1
Pays : United Kingdom
Organisme : Medical Research Council
ID : MC_UU_00005/12
Pays : United Kingdom
Organisme : Medical Research Council
ID : G0902227
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/L023784/1
Pays : United Kingdom
Organisme : Medical Research Council
ID : G9810900
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/M023664/1
Pays : United Kingdom
Organisme : Medical Research Council
ID : MC_U105597119
Pays : United Kingdom
Organisme : Wellcome Trust
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/J009482/1
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/L023784/2
Pays : United Kingdom
Références
Winblad B, Amouyel P, Andrieu S, Ballard C, Brayne C, Brodaty H, et al. Defeating Alzheimer’s disease and other dementias: a priority for European science and society. Lancet Neurol. 2016;15:455–532.
doi: 10.1016/S1474-4422(16)00062-4
Hardy J, Selkoe DJ. The amyloid hypothesis of Alzheimer’s disease: progress and problems on the road to therapeutics. Science. 2002;297:353–6.
doi: 10.1126/science.1072994
Bateman RJ, Xiong C, Benzinger TL, Fagan AM, Goate A, Fox NC, et al. Clinical and biomarker changes in dominantly inherited Alzheimer’s disease. N Engl J Med. 2012;367:795–804.
doi: 10.1056/NEJMoa1202753
Irwin DJ, Cairns NJ, Grossman M, McMillan CT, Lee EB, Van Deerlin VM, et al. Frontotemporal lobar degeneration: defining phenotypic diversity through personalized medicine. Acta Neuropathol. 2015;129:469–91.
doi: 10.1007/s00401-014-1380-1
Hensman Moss DJ, Poulter M, Beck J, Hehir J, Polke JM, Campbell T, et al. C9orf72 expansions are the most common genetic cause of Huntington disease phenocopies. Neurology. 2014;82:292–9.
doi: 10.1212/WNL.0000000000000061
Rohrer JD, Isaacs AM, Mizielinska S, Mead S, Lashley T, Wray S, et al. C9orf72 expansions in frontotemporal dementia and amyotrophic lateral sclerosis. Lancet Neurol. 2015;14:291–301.
doi: 10.1016/S1474-4422(14)70233-9
Beck J, Pittman A, Adamson G, Campbell T, Kenny J, Houlden H, et al. Validation of next-generation sequencing technologies in genetic diagnosis of dementia. Neurobiol Aging. 2014;35:261–5.
doi: 10.1016/j.neurobiolaging.2013.07.017
Goldman JS, Farmer JM, Wood EM, Johnson JK, Boxer A, Neuhaus J, et al. Comparison of family histories in FTLD subtypes and related tauopathies. Neurology. 2005;65:1817–9.
doi: 10.1212/01.wnl.0000187068.92184.63
Beck J, Rohrer JD, Campbell T, Isaacs A, Morrison KE, Goodall EF, et al. A distinct clinical, neuropsychological and radiological phenotype is associated with progranulin gene mutations in a large UK series. Brain. 2008;131:706–20.
doi: 10.1093/brain/awm320
Genomes Project C, Auton A, Brooks LD, Durbin RM, Garrison EP, Kang HM, et al. A global reference for human genetic variation. Nature. 2015;526:68–74.
doi: 10.1038/nature15393
Purcell S, Neale B, Todd-Brown K, Thomas L, Ferreira MA, Bender D, et al. PLINK: a tool set for whole-genome association and population-based linkage analyses. Am J Hum Genet. 2007;81:559–75.
doi: 10.1086/519795
Yohe S, Thyagarajan B. Review of clinical next-generation sequencing. Arch Pathol Lab Med. 2017;141:1544–57.
doi: 10.5858/arpa.2016-0501-RA
Renton AE, Majounie E, Waite A, Simon-Sanchez J, Rollinson S, Gibbs JR, et al. A hexanucleotide repeat expansion in C9ORF72 is the cause of chromosome 9p21-linked ALS-FTD. Neuron. 2011;72:257–68.
doi: 10.1016/j.neuron.2011.09.010
Wadsworth JD, Powell C, Beck JA, Joiner S, Linehan JM, Brandner S, et al. Molecular diagnosis of human prion disease. Methods Mol Biol. 2008;459:197–227.
doi: 10.1007/978-1-59745-234-2_14
McLaren W, Gil L, Hunt SE, Riat HS, Ritchie GR, Thormann A, et al. The Ensembl variant effect predictor. Genome Biol. 2016;17:122.
doi: 10.1186/s13059-016-0974-4
Richards S, Aziz N, Bale S, Bick D, Das S, Gastier-Foster J, et al. Standards and guidelines for the interpretation of sequence variants: a joint consensus recommendation of the American College of Medical Genetics and Genomics and the Association for Molecular Pathology. Genet Med. 2015;17:405–24.
doi: 10.1038/gim.2015.30
Desmet FO, Hamroun D, Lalande M, Collod-Beroud G, Claustres M, Beroud C. Human Splicing Finder: an online bioinformatics tool to predict splicing signals. Nucleic Acids Res. 2009;37:e67.
doi: 10.1093/nar/gkp215
Minikel EV, Vallabh SM, Lek M, Estrada K, Samocha KE, Sathirapongsasuti JF, et al. Quantifying prion disease penetrance using large population control cohorts. Sci Transl Med. 2016;8:322ra9.
doi: 10.1126/scitranslmed.aad5169
Lek M, Karczewski KJ, Minikel EV, Samocha KE, Banks E, Fennell T, et al. Analysis of protein-coding genetic variation in 60,706 humans. Nature. 2016;536:285–91.
doi: 10.1038/nature19057
Lashley T, Rohrer JD, Mahoney C, Gordon E, Beck J, Mead S, et al. A pathogenic progranulin mutation and C9orf72 repeat expansion in a family with frontotemporal dementia. Neuropathol Appl Neurobiol. 2014;40:502–13.
doi: 10.1111/nan.12100
Mignarri A, Battistini S, Tomai Pitinca ML, Monti L, Burroni L, Ginanneschi F, et al. Double trouble? Progranulin mutation and C9ORF72 repeat expansion in a case of primary non-fluent aphasia. J Neurol Sci. 2014;341:176–8.
doi: 10.1016/j.jns.2014.03.030
Testi S, Tamburin S, Zanette G, Fabrizi GM. Co-occurrence of the C9ORF72 expansion and a novel GRN mutation in a family with alternative expression of frontotemporal dementia and amyotrophic lateral sclerosis. J Alzheimers Dis. 2015;44:49–56.
doi: 10.3233/JAD-141794
van Blitterswijk M, van Es MA, Hennekam EA, Dooijes D, van Rheenen W, Medic J, et al. Evidence for an oligogenic basis of amyotrophic lateral sclerosis. Hum Mol Genet. 2012;21:3776–84.
doi: 10.1093/hmg/dds199
Guerreiro R, Wojtas A, Bras J, Carrasquillo M, Rogaeva E, Majounie E, et al. TREM2 variants in Alzheimer’s disease. N Engl J Med. 2013;368:117–27.
doi: 10.1056/NEJMoa1211851
Koriath CA, Bocchetta M, Brotherhood E, Woollacott IO, Norsworthy P, Simon-Sanchez J, et al. The clinical, neuroanatomical, and neuropathologic phenotype of TBK1-associated frontotemporal dementia: a longitudinal case report. Alzheimers Dement (Amst). 2017;6:75–81.
doi: 10.1016/j.dadm.2016.10.003
Baets J, Duan X, Wu Y, Smith G, Seeley WW, Mademan I, et al. Defects of mutant DNMT1 are linked to a spectrum of neurological disorders. Brain. 2015;138:845–61.
doi: 10.1093/brain/awv010
Cacace R, Sleegers K, Van Broeckhoven C. Molecular genetics of early-onset Alzheimer’s disease revisited. Alzheimers Dement. 2016;12:733–48.
doi: 10.1016/j.jalz.2016.01.012
Coyle-Gilchrist IT, Dick KM, Patterson K, Vazquez Rodriquez P, Wehmann E, Wilcox A, et al. Prevalence, characteristics, and survival of frontotemporal lobar degeneration syndromes. Neurology. 2016;86:1736–43.
doi: 10.1212/WNL.0000000000002638
Cruts M, Theuns J, Van Broeckhoven C. Locus-specific mutation databases for neurodegenerative brain diseases. Hum Mutat. 2012;33:1340–4.
doi: 10.1002/humu.22117
Stevens JC, Beck J, Lukic A, Ryan N, Abbs S, Collinge J, et al. Familial Alzheimer’s disease and inherited prion disease in the UK are poorly ascertained. J Neurol Neurosurg Psychiatry. 2011;82:1054–7.
doi: 10.1136/jnnp.2009.199653
Steinbart EJ, Smith CO, Poorkaj P, Bird TD. Impact of DNA testing for early-onset familial Alzheimer disease and frontotemporal dementia. Arch Neurol. 2001;58:1828–31.
doi: 10.1001/archneur.58.11.1828
Fowler A, Mahamdallie S, Ruark E et al. Accurate clinical detection of exon copy number variants in a targeted NGS panel using DECoN [version 1; referees: awaiting peer review]. Wellcome Open Res 2016, 1:20 (doi: 10.12688/wellcomeopenres.10069.1)