Genome-wide association analyses identify 95 risk loci and provide insights into the neurobiology of post-traumatic stress disorder.
- Authors
- Nievergelt, Caroline M; Maihofer, Adam X; Atkinson, Elizabeth G; Chen, Chia-Yen; Choi, Karmel W; Coleman, Jonathan R I; Daskalakis, Nikolaos P; Duncan, Laramie E; Polimanti, Renato; Aaronson, Cindy; Amstadter, Ananda B; Andersen, Soren B; Andreassen, Ole A; Arbisi, Paul A; Ashley-Koch, Allison E; Austin, S Bryn; AvdibegoviΓ§, Esmina; BabiΔ, Dragan; Bacanu, Silviu-Alin; Baker, Dewleen G; Batzler, Anthony; Beckham, Jean C; Belangero, Sintia; Benjet, Corina; Bergner, Carisa; Bierer, Linda M; Biernacka, Joanna M; Bierut, Laura J; Bisson, Jonathan I; Boks, Marco P; Bolger, Elizabeth A; Brandolino, Amber; Breen, Gerome; Bressan, Rodrigo Affonseca; Bryant, Richard A; Bustamante, Angela C; Bybjerg-Grauholm, Jonas; BΓ¦kvad-Hansen, Marie; BΓΈrglum, Anders D; BΓΈrte, Sigrid; Cahn, Leah; Calabrese, Joseph R; Caldas-de-Almeida, Jose Miguel; Chatzinakos, Chris; Cheema, Sheraz; Clouston, Sean A P; Colodro-Conde, LucΓa; Coombes, Brandon J; Cruz-Fuentes, Carlos S; Dale, Anders M; Dalvie, Shareefa; Davis, Lea K; Deckert, JΓΌrgen; Delahanty, Douglas L; Dennis, Michelle F; Desarnaud, Frank; DiPietro, Christopher P; Disner, Seth G; Docherty, Anna R; Domschke, Katharina; Dyb, Grete; KulenoviΔ, Alma DΕΎubur; Edenberg, Howard J; Evans, Alexandra; Fabbri, Chiara; Fani, Negar; Farrer, Lindsay A; Feder, Adriana; Feeny, Norah C; Flory, Janine D; Forbes, David; Franz, Carol E; Galea, Sandro; Garrett, Melanie E; Gelaye, Bizu; Gelernter, Joel; Geuze, Elbert; Gillespie, Charles F; Goleva, Slavina B; Gordon, Scott D; GoΓ§i, Aferdita; Grasser, Lana Ruvolo; Guindalini, Camila; Haas, Magali; Hagenaars, Saskia; Hauser, Michael A; Heath, Andrew C; Hemmings, Sian M J; Hesselbrock, Victor; Hickie, Ian B; Hogan, Kelleigh; Hougaard, David Michael; Huang, Hailiang; Huckins, Laura M; Hveem, Kristian; JakovljeviΔ, Miro; Javanbakht, Arash; Jenkins, Gregory D; Johnson, Jessica; Jones, Ian; Jovanovic, Tanja; Karstoft, Karen-Inge; Kaufman, Milissa L; Kennedy, James L; Kessler, Ronald C; Khan, Alaptagin; Kimbrel, Nathan A; King, Anthony P; Koen, Nastassja; Kotov, Roman; Kranzler, Henry R; Krebs, Kristi; Kremen, William S; Kuan, Pei-Fen; Lawford, Bruce R; Lebois, Lauren A M; Lehto, Kelli; Levey, Daniel F; Lewis, Catrin; Liberzon, Israel; Linnstaedt, Sarah D; Logue, Mark W; Lori, Adriana; Lu, Yi; Luft, Benjamin J; Lupton, Michelle K; Luykx, Jurjen J; Makotkine, Iouri; Maples-Keller, Jessica L; Marchese, Shelby; Marmar, Charles; Martin, Nicholas G; MartΓnez-Levy, Gabriela A; McAloney, Kerrie; McFarlane, Alexander; McLaughlin, Katie A; McLean, Samuel A; Medland, Sarah E; Mehta, Divya; Meyers, Jacquelyn; Michopoulos, Vasiliki; Mikita, Elizabeth A; Milani, Lili; Milberg, William; Miller, Mark W; Morey, Rajendra A; Morris, Charles Phillip; Mors, Ole; Mortensen, Preben Bo; Mufford, Mary S; Nelson, Elliot C; Nordentoft, Merete; Norman, Sonya B; Nugent, Nicole R; O'Donnell, Meaghan; Orcutt, Holly K; Pan, Pedro M; Panizzon, Matthew S; Pathak, Gita A; Peters, Edward S; Peterson, Alan L; Peverill, Matthew; Pietrzak, Robert H; Polusny, Melissa A; Porjesz, Bernice; Powers, Abigail; Qin, Xue-Jun; Ratanatharathorn, Andrew; Risbrough, Victoria B; Roberts, Andrea L; Rothbaum, Alex O; Rothbaum, Barbara O; Roy-Byrne, Peter; Ruggiero, Kenneth J; Rung, Ariane; Runz, Heiko; Rutten, Bart P F; de Viteri, Stacey Saenz; Salum, Giovanni AbrahΓ£o; Sampson, Laura; Sanchez, Sixto E; Santoro, Marcos; Seah, Carina; Seedat, Soraya; Seng, Julia S; Shabalin, Andrey; Sheerin, Christina M; Silove, Derrick; Smith, Alicia K; Smoller, Jordan W; Sponheim, Scott R; Stein, Dan J; Stensland, Synne; Stevens, Jennifer S; Sumner, Jennifer A; Teicher, Martin H; Thompson, Wesley K; Tiwari, Arun K; Trapido, Edward; Uddin, Monica; Ursano, Robert J; ValdimarsdΓ³ttir, Unnur; Van Hooff, Miranda; Vermetten, Eric; Vinkers, Christiaan H; Voisey, Joanne; Wang, Yunpeng; Wang, Zhewu; Waszczuk, Monika; Weber, Heike; Wendt, Frank R; Werge, Thomas; Williams, Michelle A; Williamson, Douglas E; Winsvold, Bendik S; Winternitz, Sherry; Wolf, Christiane; Wolf, Erika J; Xia, Yan; Xiong, Ying; Yehuda, Rachel; Young, Keith A; Young, Ross McD; Zai, Clement C; Zai, Gwyneth C; Zervas, Mark; Zhao, Hongyu; Zoellner, Lori A; Zwart, John-Anker; deRoon-Cassini, Terri; van Rooij, Sanne J H; van den Heuvel, Leigh L; AURORA Study; Estonian Biobank Research Team; FinnGen Investigators; HUNT All-In Psychiatry; Stein, Murray B; Ressler, Kerry J; Koenen, Karestan C
- Year
- 2024
- Journal
- Nature genetics
- PMID
- 38637617
- DOI
- 10.1038/s41588-024-01707-9
- PMCID
- PMC11396662
Post-traumatic stress disorder (PTSD) genetics are characterized by lower discoverability than most other psychiatric disorders. The contribution to biological understanding from previous genetic studies has thus been limited. We performed a multi-ancestry meta-analysis of genome-wide association studies across 1,222,882 individuals of European ancestry (137,136 cases) and 58,051 admixed individuals with African and Native American ancestry (13,624 cases). We identified 95 genome-wide significant loci (80 new). Convergent multi-omic approaches identified 43 potential causal genes, broadly classified as neurotransmitter and ion channel synaptic modulators (for example, GRIA1, GRM8 and CACNA1E), developmental, axon guidance and transcription factors (for example, FOXP2, EFNA5 and DCC), synaptic structure and function genes (for example, PCLO, NCAM1 and PDE4B) and endocrine or immune regulators (for example, ESR1, TRAF3 and TANK). Additional top genes influence stress, immune, fear and threat-related processes, previously hypothesized to underlie PTSD neurobiology. These findings strengthen our understanding of neurobiological systems relevant to PTSD pathophysiology, while also opening new areas for investigation.
Data sources and analyses in PTSD Freeze 3.a, Data sources of genome-wide association studies (GWAS) included in PGC-PTSD Freeze 3. Collections of contributing studies are pictured as bubble plots where each circle represents a contributing study. Circle areas are proportional to sample size and colors indicate the ancestry classification of participants (blue, EA; red, AA; purple, LAT). Arrowed lines indicate data sources being pooled together to perform GWAS meta-analyses stratified by ancestry. b, Methods applied for genetic characterization of PTSD, gene prioritization analyses, and translational applications. Abbreviations: EA, European ancestry, AA, African ancestry, LAT, Native American (Latin American) ancestry; EHR, electronic health record
MAGMA cell-type enrichment analysis in midbrain.MAGMA gene-property analysis of 25 midbrain cell types (GSE76381) indicate enrichment of GABAergic neurons, GABAergic neuroblasts, and mediolateral neuroblasts. Vertical bars depict -log10 p-values. Significant cell types are colored blue and grey if not. The dotted horizontal line indicates statistical significance adjusted for the number of comparisons (p < 0.05/25). The asterisk (*) indicates that GABAergic neurons remained significant in stepwise conditional analysis of the other significant cell types. Abbreviations: Gaba - GABAergic neurons; NbGaba - neuroblast gabaergic; NbML1β5, mediolateral neuroblasts; DA0β2 - dopaminergicneurons; Sert, serotonergic; RN, red nucleus; Rgl 1β3, radial glia-like cells; NbM, medial neuroblast; OPC, oligodendrocyte precursor cells. ProgFPL - progenitor lateral floorplate; OMTN - oculomotor and trochlear nucleus; Endo, endothelial cells; ProgM, progenitor midline;NProg, neuronal progenitor; ProgBP, progenitorbasal plate; Mgl, microglia; ProgFPM, progenitor medial floorplate; Peric β pericytes.
PTSD genes in SynGO.Sunburst plots show enrichment of PTSD-related genes in SynGO cellular components. The synapse is at the center ring, pre- and post-synaptic locations are at the first rings, and child terms are in subsequent outer rings. a, enrichment test results for all 415 genes mapped to PTSD GWAS loci by FUMA from one of three gene-mapping strategies (positional, expression quantitative trait loci, and chromatin interaction mapping). b, enrichment test results for 43 genes prioritized into Tier 1 using a gene prioritization strategy. Plots are colored by -log10 Q-value (see color code in the bar at left) from enrichment of PTSD genes relative to a brain expressed background set.
Genetic correlations and polygenic overlap between PTSD and other psychiatric disorders.a, Genetic correlations (rg) between PTSD and other psychiatric disorders are indicated by circles that are drawn along the x axis. Red dots indicate SNP based heritability (h2SNP) z-score > 6 in the psychiatric disorder GWAS and colored grey to indicate z-score < 6 (rg estimates may be unreliable). The first author and publication year of source summary data is noted in parenthesis following the disorder name. b, Quantification of the polygenic overlap between PTSD and other psychiatric disorders. Euler diagrams depict Bivariate MiXeR analysis of PTSD (blue circles) and bipolar disorder (BIP), major depression (MDD), and schizophrenia (SCZ) (red circles). Values in the overlapping part of the Euler diagrams denote shared polygenicity (expressed as the number of influential variants, in thousands, with SE in parenthesis), and values in the non-overlapping part indicate dataset-specific variation. rg between dataset pairs are noted in the boxes below the Euler plots. Abbreviations: ADHD, attention deficit hyperactive disorder; alc. dep, alcohol dependence; BIP, bipolar disorder; MDD, major depression; OCD, obsessive compulsive disorder; SCZ, schizophrenia.
GWAS meta-analyses in European and multi-ancestry individuals identify a total of 95 PTSD risk loci.Overlaid Manhattan plots of European ancestry (EA; 137,136 cases and 1,085,746 controls) and multi-ancestry meta-analyses (150,760 cases and 1,130,173 controls), showing 81 genome-wide significant (GWS) loci for the EA (full circles) and 85 GWS loci for the multi-ancestry (hollow circles) analyses. Circle colors alternate between chromosomes, with even chromosomes colored blue and odd chromosomes colored black. The y-axis refers to βlog10 P-values from two-sided z-tests for meta-analysis effect estimates. The horizontal red bar indicates the threshold for GWS associations (P < 5 Γ 10β8).
Manhattan plots of PTSD associations in multi-omic analyses.a,b, Gene expression data from 13 brain tissue types and the pituitary were used to conduct transcriptome-wide association study (TWAS) identifying 9 loci with differential expression between PTSD cases and controls (a) and expression quantitative trait locus summary based Mendelian randomization (eQTL SMR) identifying 4 loci where gene expression has putative causal effects on PTSD (b). c, Blood protein quantitative trait locus (pQTL) SMR identify 16 blood proteins whose abundance has a putative causal effect on PTSD. The y-axis refers to βlog10 P-values from two-sided z-tests for TWAS, two-sided Chi-square tests for eQTL SMR, and two-sided Chi-square tests for pQTL SMR. The horizontal red bars indicate gene-wide significance (P < 0.05/14,935 for TWAS, P < 0.05/9,903 for eQTL SMR, and P < 0.05/1,209 for pQTL SMR). Significant findings are labeled.
Gene prioritization in PTSD loci.Summary of evidence categories of prioritized genes (Tier 1 or 2) for the top 20% of PTSD loci (as ranked by leading SNP P-value). Locus number, prioritized genes within locus, gene locations (in terms of cytogenic band), and gene tier ranks (Tier 1, orange; Tier 2, blue) are indicated on the left. Categories of evidence are grouped and colored according to the domain they belong to. CADD scores, pLI scores and fine-mapping PIPs are written within their respective squares. The total weighted scores taken across all 9 evidence categories are shown on the rightmost squares. Abbreviations: eQTL, expression QTL; CI, chromatin interaction; CADD, combined annotation dependent depletion; RDB, regulome DB; pLI, predicted loss of impact; PIP, posterior importance probability; TWAS, transcriptome-wide association study; SMR, summary Mendelian randomization; pQTL, protein QTL.
Polygenic risk score analysis for PTSD across different data sets and ancestries.PGC-PTSD Freeze 2 and Freeze 3 European ancestry (EA) based genetic risk score (PRS) predictions into independent samples of different ancestries. The y-axis represents PTSD risk relative to the lowest quintile of PRS with 95% confidence intervals. For EA, predictions based on Freeze 3 training data (10,334 cases and 55,504 controls; blue circles) demonstrate a significant performance increase compared to predictions based on the previous Freeze 2 training GWAS11 (yellow circles). Based on Freeze 3 EA training data, EA individuals in the highest quintile of PRS have 2.40 (95% CI = [2.26,2.56]) fold the risk of PTSD relative to individuals in the lowest quintile PRS (blue circles). Lower prediction accuracies are found for individuals of African (AA; 10,151 cases and 22,420 controls; red circles) and Native American (LAT; 5,346 cases and 10,821 controls; purple circles) ancestries, indicating poor PRS transferability across ancestries.
Comparison of the genetic architecture of PTSD in the three main data sources.Quantification of polygenicity and polygenic overlap in the three main data subsets based on (1) symptom scores in clinical studies and cohorts assessed on a variety of instruments in Freeze 2.5 (yellow; 26,080 cases and 192,966 controls), (2) PCL (for DSM-IV) based symptom scores in the MVP (red; 32,372 cases and 154,317 controls), and (3) ICD9/10 codes in EHR studies (blue; 78,684 cases and 738,463 controls) indicate a similar genetic architecture. The circles on the top half of the plot depict univariate MiXeR estimates of the total polygenicity for each data subset. Numbers within circles indicate polygenicity values, expressed as the number of variants (in thousands, with SE in parenthesis) necessary to explain 90% of SNP based heritability (h2SNP). h2SNP estimates are written in the boxes at the bottom of the circles. The Euler diagrams on the bottom half of the plot depict bivariate MiXeR estimates of the polygenic overlap between data subsets. Values in the overlapping part of the Euler diagrams denote shared polygenicity and values on the non-overlapping parts note dataset-specific polygenicity. Genetic correlations (rg) between dataset pairs are noted in the boxes below the Euler diagrams. Arrowed lines are drawn between univariate and bivariate results to indicate which dataset pairs are being evaluated. Abbreviations: Neff, effective sample size.
Manhattan plot of the PTSD GWAS meta-analysis in individuals of European ancestry (EA).Results of the EA GWAS meta-analysis (137,136 PTSD cases, 1,085,746 controls) identifying 81 genome-wide significant PTSD loci. The y axis refers to the βlog10 p-value from a meta-analysis using a sample size weighted fixed-effects model. Circle colors alternate between chromosomes: even chromosomes are colored blue and odd chromosomes are colored black. The horizontal red bar indicates genome-wide significant associations (p < 5Γ10β8).
Significant PTSD gene-sets.MAGMA gene-set analysis using the Molecular Signatures database (MSigDB) identifies 11 significant gene-sets. The dotted line indicates significance adjusted for the number of comparisons (p < 0.05/15,483 gene-sets). Bars depict -log10 p-values. Corresponding gene-set names are indicated to the left of bars. Terms are clustered and colored according to their Gene Ontology term category (biological processes, yellow; molecular function, blue; cellular component, red).
MAGMA tissue enrichment analysis.MAGMA gene-property analysis in 53 specific tissue types from GTEx v8 shows enrichment of PTSD-related genes in 13 brain tissue types and in the pituitary. Bars depict -log10 p-values. Corresponding tissue names are indicated below bars. The dotted horizontal line indicates statistical significance adjusted for the number of comparisons (p < 0.05/53). Significant tissues are colored red.
| Name | Type |
|---|---|
| 1000 Genomes Phase 3 (KGP3) local | cohort |
| 1000 Genomes Project | cohort |
| 17q21.31 local | variant |
| 33k sample cohort local | cohort |
| 3k sample cohort local | cohort |
| AA | cohort |
| AA meta-analysis local | cohort |
| AFR | cohort |
| African American | cohort |
| African and African-Americans (AA) local | cohort |
| AFR population local | cohort |
| AGDS | cohort |
| AMR | cohort |
| AMR population local | cohort |
| amygdala | anatomy |
| amygdala nuclei local | anatomy |
| ANAPC4 local | gene |
| ANNOVAR | drug |
| anterior cingulate cortex | anatomy |
| antipsychotics | drug |
| ARHGAP27 local | gene |
| ARL17A local | gene |
| ARL17B local | gene |
| Assault victims local | cohort |
| attention deficit hyperactivity disorder | phenotype |
| Avoidance | phenotype |
| biobank subset local | cohort |
| BIOV local | cohort |
| BPD | phenotype |
| brain | anatomy |
| Braineac | cohort |
| brain expressed genes local | gene |
| C17orf58 | gene |
| CACNA1E | gene |
| CACNA2D2 | gene |
| CADD | drug |
| CAMKV local | gene |
| cardiovascular disease | phenotype |
| CD40 local | gene |
| cerebellum | anatomy |
| chronic opioid use local | drug |
| Cochran test local | drug |
| cognition | phenotype |
| Combat survivors local | cohort |
| CommonMind Consortium | cohort |
| composite panel local | cohort |
| cortex | anatomy |
| CRHR1 | gene |
| Cross-ancestry analyses local | cohort |
| CTNND1 | gene |
| CYP2D6 | gene |
| DCC | gene |
| depression | phenotype |
| dlPFC | anatomy |
| DRD2 | gene |
| drug class analysis local | phenotype |
| drug classes | drug |
| drugs | drug |
| drug sets local | drug |
| drug target analysis local | phenotype |
| EA | cohort |
| EA Freeze 3 PTSD GWAS local | cohort |
| EA GWAS local | cohort |
| EA PTSD GWAS local | cohort |
| EAS population local | cohort |
| EFNA5 | gene |
| EHR cohorts local | cohort |
| ENSG00000262633 local | gene |
| ENSG00000273919 local | gene |
| eQTL local | gene |
| ESBB local | cohort |
| ESR1 | gene |
| Estonia Biobank local | cohort |
| estrogen | drug |
| EUR | cohort |
| European ancestry | cohort |
| European and European Americans (EA) local | cohort |
| European population | cohort |
| European samples of the 1000G local | cohort |
| EUR population local | cohort |
| Eutherian constrained regions local | cohort |
| FAM215B local | gene |
| fear | phenotype |
| FING local | cohort |
| FinnGen | cohort |
| Foxp2 | gene |
| Freeze 2 local | drug |
| Freeze 3 | drug |
| FUMA | drug |
| GABA | phenotype |
| Gabbr1 | gene |
| gene | gene |
| General trauma vulnerability local | phenotype |
| global reference panel local | cohort |
| glucocorticoid | drug |
| GMPPB local | gene |
| GRCh37 reference build local | cohort |
| GRIA1 | gene |
| GRM8 | gene |
| GTEx brain tissue local | anatomy |
| GTEx project version 8 local | cohort |
| GTEx v8 brain tissue local | cohort |
| GWAS | cohort |
| H3K4me1 | drug |
| H3K9ac peaks local | drug |
| HapMap 3 SNPs local | variant |
| HCG17 local | gene |
| HiC local | drug |
| hippocampus | anatomy |
| Hispanic | phenotype |
| HPA axis | anatomy |
| HRC | cohort |
| HUNT | cohort |
| HUNT Study local | cohort |
| hyperarousal | phenotype |
| hypothalamus | anatomy |
| independent risk loci local | phenotype |
| INKA1 local | gene |
| intrusive thoughts | phenotype |
| iPSYCH | cohort |
| Jun | gene |
| KANSL1 | gene |
| KGP3 local | cohort |
| KGP3 EUR local | cohort |
| KGP3 European data local | cohort |
| KGP3 European populations local | cohort |
| KOR1 local | drug |
| LAT local | cohort |
| Latin Americans (LAT) local | cohort |
| LAT meta-analysis local | cohort |
| LDSC | drug |
| LINC02210-CRHR1 local | gene |
| LRFN5 | gene |
| LRRC37A2 local | gene |
| MAGMA/FUMA analyses local | cohort |
| major depressive disorder | phenotype |
| Mapt | gene |
| Mass General Brigham Biobank | cohort |
| Mayo Clinicβs MayoGC local | cohort |
| MDFIC local | gene |
| MDGA2 local | gene |
| meta-analysis | cohort |
| midbrain | anatomy |
| Million Veteran Program | cohort |
| MiXeR | drug |
| mood disorders | phenotype |
| MOR1 local | drug |
| Motherβs age at death local | phenotype |
| Mount Sinaiβs BioMe local | cohort |
| MST1R | gene |
| multi-ancestry meta-analysis local | drug |
| Multi-site chronic pain local | phenotype |
| MVP | cohort |
| MVP cohort | cohort |
| MVP release 3 GWAS local | cohort |
| Native Americans | cohort |
| Nausea and vomiting local | phenotype |
| NCAM1 | gene |
| Negative alterations in cognitions and mood local | phenotype |
| non-European ancestry | cohort |
| obesity | phenotype |
| OLFM1 local | gene |
| opioid | drug |
| opioid dependence | phenotype |
| Pan-UKB local | cohort |
| Pan-UKB54 local | cohort |
| PCLO | gene |
| Pde4b | gene |
| PEBP1 local | gene |
| PGC | cohort |
| PGC meta-analysis | cohort |
| PGC-PTSD local | cohort |
| PGC-PTSD21 Freeze 3 local | cohort |
| PGC-PTSD data local | cohort |
| pituitary gland | anatomy |
| pituitary tissue local | anatomy |
| Pituitary tissue local | anatomy |
| Plasma proteins local | drug |
| PLEKHM1 local | gene |
| Poisoning by psychotropic agents local | phenotype |
| PolyFun | drug |
| polygenic risk score | cohort |
| post-synapse local | anatomy |
| Post-Traumatic Stress Disorder | phenotype |
| Posttraumatic Stress Disorder Checklist (PCL for DSM-IV) local | drug |
| prefrontal cortical tissue local | anatomy |
| pre-synapse local | anatomy |
| Probable Recurrent major depression (severe) local | phenotype |
| protein-coding gene | gene |
| PRS | drug |
| PsychENCODE | cohort |
| PsychEncode Consortium Phase 1 local | cohort |
| psychiatric disorders | phenotype |
| Psychiatric Genomic Consortium for PTSD local | cohort |
| psycholeptics | drug |
| QIM2 local | cohort |
| QIMR | cohort |
| RBM6 local | gene |
| RCOG local | cohort |
| Recent restlessness local | phenotype |
| RegulomeDB | drug |
| risk loci | cohort |
| risk locus local | variant |
| RNF123 local | gene |
| rs3132388 local | variant |
| rs34811474 local | variant |
| SAS population local | cohort |
| schizophrenia | phenotype |
| SCZ | phenotype |
| SEMA3F local | gene |
| Sertraline prescription local | drug |
| SISu panel local | cohort |
| SLC12A5 | gene |
| SNP | cohort |
| SORCS3 | gene |
| SPPL2C local | gene |
| stanozolol local | drug |
| stress | phenotype |
| stress-related neural circuits local | anatomy |
| STR-STAGE local | cohort |
| SuSiE | drug |
| SWED local | cohort |
| synapse | anatomy |
| TANK local | gene |
| Tier 1 genes local | cohort |
| TNF | gene |
| TNFRSF13C local | gene |
| TRAF3 | gene |
| trauma and stress-related disorders local | phenotype |
| Trauma-exposed adults local | cohort |
| trauma exposure | phenotype |
| UKB2 local | cohort |
| UKBB | cohort |
| UK Biobank | cohort |
| UK Biobank Pharma Proteomics Project local | cohort |
| UKB participants local | cohort |
| Vanderbilt University Medical Centerβs BioVu local | cohort |
| ventromedial prefrontal cortex | anatomy |
| VETS local | cohort |
| VSIG10 local | gene |
| WNT3 | gene |
| WSB2 local | gene |
| X chromosome | drug |
| ZCAN9 local | gene |
No uploaded files.
| Citation | PMID | DOI | Status |
|---|---|---|---|
| AutonA A global reference for human genetic variation. Nature 526, 68β74 (2015).26432245 10.1038/nature15393PMC4750478 | β | β | β |
| BarbeiraAN Exploiting the GTEx resources to decipher the mechanisms at GWAS loci. Genome Biol 22, 49 (2021).33499903 10.1186/s13059-020-02252-4PMC7836161 | β | β | β |
| BarbeiraAN Exploring the phenotypic consequences of tissue specific gene expression variation inferred from GWAS summary statistics. Nat Commun 9, 1825 (2018).29739930 10.1038/s41467-018-03621-1PMC5940825 | β | β | β |
| BassettD, BuchwaldD & MansonS Posttraumatic stress disorder and symptoms among American Indians and Alaska Natives: a review of the literature. Soc Psychiatry Psychiatr Epidemiol 49, 417β433 (2014).24022752 10.1007/s00127-013-0759-yPMC3875613 | β | β | β |
| BassilK In vitro modeling of the neurobiological effects of glucocorticoids: A review. Neurobiol Stress 23, 100530 (2023).10.1016/j.ynstr.2023.100530PMC998664836891528 | β | β | β |
| BellenguezC New insights into the genetic etiology of Alzheimerβs disease and related dementias. Nat Genet 54, 412β436 (2022).35379992 10.1038/s41588-022-01024-zPMC9005347 | β | β | β |
| BoyleAP Annotation of functional variation in personal genomes using RegulomeDB. Genome Res 22, 1790β1797 (2012).22955989 10.1101/gr.137323.112PMC3431494 | β | β | β |
| BradyKT, KilleenTK, BrewertonT & LuceriniS Comorbidity of psychiatric disorders and posttraumatic stress disorder. J Clin Psychiatry 61 Suppl 7, 22β32 (2000).10795606 | β | β | β |
| BreenG Translating genome-wide association findings into new therapeutics for psychiatry. Nat Neurosci 19, 1392β1396 (2016).27786187 10.1038/nn.4411PMC5676453 | β | β | β |
| BryoisJ Cell-type-specific cis-eQTLs in eight human brain cell types identify novel risk genes for psychiatric and neurological disorders. Nat Neurosci 25, 1104β1112 (2022).35915177 10.1038/s41593-022-01128-z | β | β | β |
| Bulik-SullivanB An atlas of genetic correlations across human diseases and traits. Nat Genet 47, 1236β1241 (2015).26414676 10.1038/ng.3406PMC4797329 | β | β | β |
| Bulik-SullivanBK LD Score regression distinguishes confounding from polygenicity in genome-wide association studies. Nat Genet 47, 291β295 (2015).25642630 10.1038/ng.3211PMC4495769 | β | β | β |
| BullmanTA & KangHK Posttraumatic stress disorder and the risk of traumatic deaths among Vietnam veterans. J Nerv Ment Dis 182, 604β610 (1994).7964667 10.1097/00005053-199411000-00002 | β | β | β |
| BycroftC The UK Biobank resource with deep phenotyping and genomic data. Nature 562, 203β209 (2018).30305743 10.1038/s41586-018-0579-zPMC6786975 | β | β | β |
| Campbell-SillsL Dissecting the heterogeneity of posttraumatic stress disorder: differences in polygenic risk, stress exposures, and course of PTSD subtypes. Psychol Med 52, 1β9 (2021).10.1017/S0033291721000428PMC977291033947479 | β | β | β |
| ChangCC Second-generation PLINK: rising to the challenge of larger and richer datasets. Gigascience 4, 7 (2015).25722852 10.1186/s13742-015-0047-8PMC4342193 | β | β | β |
| ChatzinakosC Single-Nucleus Transcriptome Profiling of Dorsolateral Prefrontal Cortex: Mechanistic Roles for Neuronal Gene Expression, Including the 17q21.31 Locus, in PTSD Stress Response. Am J Psychiatry 180, 739β754 (2023).37491937 10.1176/appi.ajp.20220478PMC11406458 | β | β | β |
| ChatzinakosC TWAS pathway method greatly enhances the number of leads for uncovering the molecular underpinnings of psychiatric disorders. Am J Med Genet B Neuropsychiatr Genet 183, 454β463 (2020).32954640 10.1002/ajmg.b.32823PMC7756231 | β | β | β |
| ChenCY Improved ancestry inference using weights from external reference panels. Bioinformatics 29, 1399β1406 (2013).23539302 10.1093/bioinformatics/btt144PMC3661048 | β | β | β |
| ChenWM, ManichaikulA & RichSS A generalized family-based association test for dichotomous traits. Am J Hum Genet 85, 364β376 (2009).19732865 10.1016/j.ajhg.2009.08.003PMC2771538 | β | β | β |
| ChoiKW Prospective study of polygenic risk, protective factors, and incident depression following combat deployment in US Army soldiers. Psychol Med 50, 737β745 (2020).30982473 10.1017/S0033291719000527PMC8293300 | β | β | β |
| CloverK, CarterGL & WhyteIM Posttraumatic stress disorder among deliberate self-poisoning patients. J Trauma Stress 17, 509β517 (2004).15730070 10.1007/s10960-004-5800-1 | β | β | β |
| DalvieS Genomic influences on self-reported childhood maltreatment. Transl Psychiatry 10, 38 (2020).32066696 10.1038/s41398-020-0706-0PMC7026037 | β | β | β |
| DavisLL The Economic Burden of Posttraumatic Stress Disorder in the United States From a Societal Perspective. J Clin Psychiatry 83, 21m14116 (2022).10.4088/JCP.21m1411635485933 | β | β | β |
| de BakkerPI & RaychaudhuriS Interrogating the major histocompatibility complex with high-throughput genomics. Hum Mol Genet 21, R29βR36 (2012).22976473 10.1093/hmg/dds384PMC3459647 | β | β | β |
| de LeeuwCA, MooijJM, HeskesT & PosthumaD MAGMA: Generalized Gene-Set Analysis of GWAS Data. PLoS Comput Biol 11, e1004219 (2015).10.1371/journal.pcbi.1004219PMC440165725885710 | β | β | β |
| DemontisD Genome-wide analyses of ADHD identify 27 risk loci, refine the genetic architecture and implicate several cognitive domains. Nat Genet 55, 198β208 (2023).36702997 10.1038/s41588-022-01285-8PMC10914347 | β | β | β |
| DunsmoorJE, CislerJM, FonzoGA, CreechSK & NemeroffCB Laboratory models of post-traumatic stress disorder: The elusive bridge to translation. Neuron 110, 1754β1776 (2022).35325617 10.1016/j.neuron.2022.03.001PMC9167267 | β | β | β |
| Ferland-BeckhamC Systematic review and methodological considerations for the use of single prolonged stress and fear extinction retention in rodents. Front Behav Neurosci 15, 652636 (2021).10.3389/fnbeh.2021.652636PMC816278934054443 | β | β | β |
| FinucaneHK Partitioning heritability by functional annotation using genome-wide association summary statistics. Nat Genet 47, 1228β1235 (2015).26414678 10.1038/ng.3404PMC4626285 | β | β | β |
| FreiO Bivariate causal mixture model quantifies polygenic overlap between complex traits beyond genetic correlation. Nat Commun 10, 2417 (2019).31160569 10.1038/s41467-019-10310-0PMC6547727 | β | β | β |
| FreshourSL Integration of the Drug-Gene Interaction Database (DGIdb 4.0) with open crowdsource efforts. Nucleic Acids Res 49, D1144βD1151 (2021).33237278 10.1093/nar/gkaa1084PMC7778926 | β | β | β |
| GasparHA & BreenG Drug enrichment and discovery from schizophrenia genome-wide association results: an analysis and visualisation approach. Sci Rep 7, 12460 (2017).28963561 10.1038/s41598-017-12325-3PMC5622077 | β | β | β |
| GelernterJ Genome-wide association study of post-traumatic stress disorder reexperiencing symptoms in >165,000 US veterans. Nat Neurosci 22, 1394β1401 (2019).31358989 10.1038/s41593-019-0447-7PMC6953633 | β | β | β |
| GeT, ChenC-Y, NiY, FengY-CA & SmollerJW Polygenic prediction via Bayesian regression and continuous shrinkage priors. Nat Commun 10, 1776 (2019).30992449 10.1038/s41467-019-09718-5PMC6467998 | β | β | β |
| GirgentiMJ Transcriptomic organization of the human brain in post-traumatic stress disorder. Nat Neurosci 24, 24β33 (2021).33349712 10.1038/s41593-020-00748-7 | β | β | β |
| GradusJL Posttraumatic Stress Disorder and Gastrointestinal Disorders in the Danish Population. Epidemiology 28, 354β360 (2017).28099266 10.1097/EDE.0000000000000622PMC5523445 | β | β | β |
| GrotzingerAD Genetic architecture of 11 major psychiatric disorders at biobehavioral, functional genomic and molecular genetic levels of analysis. Nat Genet 54, 548β559 (2022).35513722 10.1038/s41588-022-01057-4PMC9117465 | β | β | β |
| GroveJ Identification of common genetic risk variants for autism spectrum disorder. Nat Genet 51, 431β444 (2019).30804558 10.1038/s41588-019-0344-8PMC6454898 | β | β | β |
| GTEx Consortium. The GTEx Consortium atlas of genetic regulatory effects across human tissues. Science 369, 1318β1330 (2020).32913098 10.1126/science.aaz1776PMC7737656 | β | β | β |
| HerreroMJ Sex-Specific Social Behavior and Amygdala Proteomic Deficits in Foxp2 (+/β) Mutant Mice. Front Behav Neurosci 15, 706079 (2021).10.3389/fnbeh.2021.706079PMC837443334421555 | β | β | β |
| HodesGE & EppersonCN Sex Differences in Vulnerability and Resilience to Stress Across the Life Span. Biol Psychiatry 86, 421β432 (2019).31221426 10.1016/j.biopsych.2019.04.028PMC8630768 | β | β | β |
| HoffmanGE CommonMind Consortium provides transcriptomic and epigenomic data for Schizophrenia and Bipolar Disorder. Scientific Data 6, 180 (2019).31551426 10.1038/s41597-019-0183-6PMC6760149 | β | β | β |
| HollandD Beyond SNP heritability: Polygenicity and discoverability of phenotypes estimated with a univariate Gaussian mixture model. PLoS Genet 16, e1008612 (2020).10.1371/journal.pgen.1008612PMC727210132427991 | β | β | β |
| HowardDM Genome-wide meta-analysis of depression identifies 102 independent variants and highlights the importance of the prefrontal brain regions. Nat Neurosci 22, 343β352 (2019).30718901 10.1038/s41593-018-0326-7PMC6522363 | β | β | β |
| HugginsA Smaller Total and Subregional Cerebellar Volumes in Posttraumatic Stress Disorder: A Mega-Analysis by the ENIGMA-PGC PTSD Workgroup. Biol Psychiatry 93, S44 (2023).10.1038/s41380-023-02352-0PMC1115316138195980 | β | β | β |
| JaffeAE Decoding Shared Versus Divergent Transcriptomic Signatures Across Cortico-Amygdala Circuitry in PTSD and Depressive Disorders. Am J Psychiatry 179, 673β686 (2022).35791611 10.1176/appi.ajp.21020162PMC10697016 | β | β | β |
| KesslerRC, ChiuWT, DemlerO & WaltersEE Prevalence, Severity, and Comorbidity of 12-Month DSM-IV Disorders in the National Comorbidity Survey Replication. Arch Gen Psychiatry 62, 617β627 (2005).15939839 10.1001/archpsyc.62.6.617PMC2847357 | β | β | β |
| KesslerRC, SonnegaA, BrometE, HughesM & NelsonCB Posttraumatic Stress Disorder in the National Comorbidity Survey. Arch Gen Psychiatry 52, 1048β1060 (1995).7492257 10.1001/archpsyc.1995.03950240066012 | β | β | β |
| KindS & OtisJD The Interaction Between Chronic Pain and PTSD. Curr Pain Headache Rep 23, 91 (2019).31781875 10.1007/s11916-019-0828-3 | β | β | β |
| KoenenKC Posttraumatic stress disorder in the World Mental Health Surveys. Psychol Med 47, 2260β2274 (2017).28385165 10.1017/S0033291717000708PMC6034513 | β | β | β |
| KoopmansF SynGO: An Evidence-Based, Expert-Curated Knowledge Base for the Synapse. Neuron 103, 217β234.e4 (2019).31171447 10.1016/j.neuron.2019.05.002PMC6764089 | β | β | β |
| KremenWS, KoenenKC, AfariN & LyonsMJ Twin studies of posttraumatic stress disorder: differentiating vulnerability factors from sequelae. Neuropharmacology 62, 647β653 (2012).21443892 10.1016/j.neuropharm.2011.03.012PMC3153636 | β | β | β |
| La MannoG Molecular Diversity of Midbrain Development in Mouse, Human, and Stem Cells. Cell 167, 566β580.e19 (2016).27716510 10.1016/j.cell.2016.09.027PMC5055122 | β | β | β |
| LamM RICOPILI: Rapid Imputation for COnsortias PIpeLIne. Bioinformatics 36, 930β933 (2020).31393554 10.1093/bioinformatics/btz633PMC7868045 | β | β | β |
| LiberzonA The Molecular Signatures Database (MSigDB) hallmark gene set collection. Cell Syst 1, 417β425 (2015).26771021 10.1016/j.cels.2015.12.004PMC4707969 | β | β | β |
| LoboJJ Polygenic risk scoring to assess genetic overlap and protective factors influencing posttraumatic stress, depression, and chronic pain after motor vehicle collision trauma. Transl Psychiatry 11, 359 (2021).34226500 10.1038/s41398-021-01486-5PMC8257703 | β | β | β |
| LogueMW Gene expression in the dorsolateral and ventromedial prefrontal cortices implicates immune-related gene networks in PTSD. Neurobiol Stress 15, 100398 (2021).10.1016/j.ynstr.2021.100398PMC849845934646915 | β | β | β |
| LogueMW The Psychiatric Genomics Consortium Posttraumatic Stress Disorder Workgroup: Posttraumatic Stress Disorder Enters the Age of Large-Scale Genomic Collaboration. Neuropsychopharmacology 40, 2287β2297 (2015).25904361 10.1038/npp.2015.118PMC4538342 | β | β | β |
| LohP-R Efficient Bayesian mixed-model analysis increases association power in large cohorts. Nat Genet 47, 284β290 (2015).25642633 10.1038/ng.3190PMC4342297 | β | β | β |
| LvT Electroacupuncture alleviates PTSD-like behaviors by modulating hippocampal synaptic plasticity via Wnt/Ξ²-catenin signaling pathway. Brain Res Bull 202, 110734 (2023).10.1016/j.brainresbull.2023.11073437586426 | β | β | β |
| MahoneyCT, MoshierSJ, KeaneTM & MarxBP Heightened healthcare utilization & risk of mental disorders among Veterans with comorbid opioid use disorder & posttraumatic stress disorder. Addict Behav 112, 106572 (2021).10.1016/j.addbeh.2020.10657232861102 | β | β | β |
| MaihoferAX Enhancing Discovery of Genetic Variants for Posttraumatic Stress Disorder Through Integration of Quantitative Phenotypes and Trauma Exposure Information. Biol Psychiatry 91, 626β636 (2022).34865855 10.1016/j.biopsych.2021.09.020PMC8917986 | β | β | β |
| MaihoferAX nievergeltlab/PTSDF3: Release V0.99. Zenodo. 10.5281/zenodo.10182702 (2023). | β | β | β |
| MartinAR Human Demographic History Impacts Genetic Risk Prediction across Diverse Populations. Am J Hum Genet 100, 635β649 (2017).28366442 10.1016/j.ajhg.2017.03.004PMC5384097 | β | β | β |
| MbatchouJ Computationally efficient whole-genome regression for quantitative and binary traits. Nat Genet 53, 1097β1103 (2021).34017140 10.1038/s41588-021-00870-7 | β | β | β |
| McCarthyS A reference panel of 64,976 haplotypes for genotype imputation. Nat Genet 48, 1279β1283 (2016).27548312 10.1038/ng.3643PMC5388176 | β | β | β |
| McClellan FranceJ & JovanovicT Human fear neurobiology reimagined: Can brain-derived biotypes predict fear-based disorders after trauma? Neurosci Biobehav Rev 144, 104988 (2023).10.1016/j.neubiorev.2022.104988PMC1096096036470327 | β | β | β |
| MendezD ChEMBL: towards direct deposition of bioassay data. Nucleic Acids Res 47, D930βD940 (2019).30398643 10.1093/nar/gky1075PMC6323927 | β | β | β |
| MullinsN Genome-wide association study of more than 40,000 bipolar disorder cases provides new insights into the underlying biology. Nat Genet 53, 817β829 (2021).34002096 10.1038/s41588-021-00857-4PMC8192451 | β | β | β |
| NachtigallEG, de FreitasJDR, deCMJ & FuriniCRG Role of Hippocampal Wnt Signaling Pathways on Contextual Fear Memory Reconsolidation. Neuroscience 524, 108β119 (2023).37286160 10.1016/j.neuroscience.2023.05.028 | β | β | β |
| NievergeltCM International meta-analysis of PTSD genome-wide association studies identifies sex- and ancestry-specific genetic risk loci. Nat Commun 10, 4558 (2019).31594949 10.1038/s41467-019-12576-wPMC6783435 | β | β | β |
| NishimiK Post-traumatic stress disorder and risk for hospitalization and death following COVID-19 infection. Transl Psychiatry 12, 482 (2022).36411283 10.1038/s41398-022-02156-wPMC9678873 | β | β | β |
| OtowaT Meta-analysis of genome-wide association studies of anxiety disorders. Mol Psychiatry 21, 1391β1399 (2016).26754954 10.1038/mp.2015.197PMC4940340 | β | β | β |
| PanagiotouOA, WillerCJ, HirschhornJN & IoannidisJP The power of meta-analysis in genome-wide association studies. Annu Rev Genomics Hum Genet 14, 441β65 (2013).23724904 10.1146/annurev-genom-091212-153520PMC4040957 | β | β | β |
| PaolaG-R Using three-dimensional regulatory chromatin interactions from adult and fetal cortex to interpret genetic results for psychiatric disorders and cognitive traits. bioRxiv, 406330 (2019). | β | β | β |
| PasmanJA GWAS of lifetime cannabis use reveals new risk loci, genetic overlap with psychiatric traits, and a causal effect of schizophrenia liability. Nat Neurosci 21, 1161β1170 (2018).30150663 10.1038/s41593-018-0206-1PMC6386176 | β | β | β |
| PathakGA Genetically regulated multi-omics study for symptom clusters of posttraumatic stress disorder highlights pleiotropy with hematologic and cardio-metabolic traits. Mol Psychiatry 27, 1394β1404 (2022).35241783 10.1038/s41380-022-01488-9PMC9210390 | β | β | β |
| PolimantiR Understanding the comorbidity between posttraumatic stress severity and coronary artery disease using genome-wide information and electronic health records. Mol Psychiatry 27, 3961β3969 (2022).35986173 10.1038/s41380-022-01735-zPMC10986859 | β | β | β |
| PruimRJ LocusZoom: regional visualization of genome-wide association scan results. Bioinformatics 26, 2336β2337 (2010).20634204 10.1093/bioinformatics/btq419PMC2935401 | β | β | β |
| RamasamyA Genetic variability in the regulation of gene expression in ten regions of the human brain. Nat Neurosci 17, 1418β1428 (2014).25174004 10.1038/nn.3801PMC4208299 | β | β | β |
| RaviM, StevensJS & MichopoulosV Neuroendocrine pathways underlying risk and resilience to PTSD in women. Front Neuroendocrinol 55, 100790 (2019).10.1016/j.yfrne.2019.100790PMC687684431542288 | β | β | β |
| RentzschP, WittenD, CooperGM, ShendureJ & KircherM CADD: predicting the deleteriousness of variants throughout the human genome. Nucleic Acids Res 47, D886βD894 (2019).30371827 10.1093/nar/gky1016PMC6323892 | β | β | β |
| ResslerKJ Post-traumatic stress disorder: clinical and translational neuroscience from cells to circuits. Nat Rev Neurol 18, 273β288 (2022).35352034 10.1038/s41582-022-00635-8PMC9682920 | β | β | β |
| Revealing the complex genetic architecture of obsessive-compulsive disorder using meta-analysis. Mol Psychiatry 23, 1181β1188 (2018).28761083 10.1038/mp.2017.154PMC6660151 | β | β | β |
| RobertsAL, GilmanSE, BreslauJ, BreslauN & KoenenKC Race/ethnic differences in exposure to traumatic events, development of post-traumatic stress disorder, and treatment-seeking for post-traumatic stress disorder in the United States. Psychol Med 41, 71β83 (2011).20346193 10.1017/S0033291710000401PMC3097040 | β | β | β |
| RobertsAL, KubzanskyLD, ChibnikLB, RimmEB & KoenenKC Association of Posttraumatic Stress and Depressive Symptoms With Mortality in Women. JAMA Netw Open 3, e2027935 (2020).10.1001/jamanetworkopen.2020.27935PMC771860433275156 | β | β | β |
| RomeroC Exploring the genetic overlap between twelve psychiatric disorders. Nat Genet 54, 1795β1802 (2022).36471075 10.1038/s41588-022-01245-2 | β | β | β |
| RothBL, LopezE, PatelS & KroezeWK The Multiplicity of Serotonin Receptors: Uselessly Diverse Molecules or an Embarrassment of Riches? The Neuroscientist 6, 252β262 (2000). | β | β | β |
| SchlengerWE A Prospective Study of Mortality and Trauma-Related Risk Factors Among a Nationally Representative Sample of Vietnam Veterans. Am J Epidemiol 182, 980β990 (2015).26634285 10.1093/aje/kwv217 | β | β | β |
| SchmittAD A Compendium of Chromatin Contact Maps Reveals Spatially Active Regions in the Human Genome. Cell Rep 17, 2042β2059 (2016).27851967 10.1016/j.celrep.2016.10.061PMC5478386 | β | β | β |
| SeahC Modeling gene Γ environment interactions in PTSD using human neurons reveals diagnosis-specific glucocorticoid-induced gene expression. Nat Neurosci 25, 1434β1445 (2022).36266471 10.1038/s41593-022-01161-yPMC9630117 | β | β | β |
| SheilsTK TCRD and Pharos 2021: mining the human proteome for disease biology. Nucleic Acids Res 49, D1334βD1346 (2021).33156327 10.1093/nar/gkaa993PMC7778974 | β | β | β |
| SteinMB & RothbaumBO 175 Years of Progress in PTSD Therapeutics: Learning From the Past. Am J Psychiatry 175, 508β516 (2018).29869547 10.1176/appi.ajp.2017.17080955 | β | β | β |
| SteinMB Genome-wide association analyses of post-traumatic stress disorder and its symptom subdomains in the Million Veteran Program. Nat Genet 53, 174β184 (2021).33510476 10.1038/s41588-020-00767-xPMC7972521 | β | β | β |
| SunBB Plasma proteomic associations with genetics and health in the UK Biobank. Nature 622, 329β338 (2022).10.1038/s41586-023-06592-6PMC1056755137794186 | β | β | β |
| TrubetskoyV Mapping genomic loci implicates genes and synaptic biology in schizophrenia. Nature 604, 502β508 (2022).35396580 10.1038/s41586-022-04434-5PMC9392466 | β | β | β |
| UpadhyayJ Neurocircuitry basis of the opioid use disorder-post-traumatic stress disorder comorbid state: conceptual analyses using a dimensional framework. Lancet Psychiatry 9, 84β96 (2022).34774203 10.1016/S2215-0366(21)00008-0 | β | β | β |
| WaltersRK Transancestral GWAS of alcohol dependence reveals common genetic underpinnings with psychiatric disorders. Nat Neurosci 21, 1656β1669 (2018).30482948 10.1038/s41593-018-0275-1PMC6430207 | β | β | β |
| WangD Comprehensive functional genomic resource and integrative model for the human brain. Science 362, eaat8464 (2018).10.1126/science.aat8464PMC641332830545857 | β | β | β |
| WangK, LiM & HakonarsonH ANNOVAR: functional annotation of genetic variants from high-throughput sequencing data. Nucleic Acids Res 38, e164βe164 (2010).20601685 10.1093/nar/gkq603PMC2938201 | β | β | β |
| WaszczukMA Discovery and replication of blood-based proteomic signature of PTSD in 9/11 responders. Transl Psychiatry 13, 8 (2023).36631443 10.1038/s41398-022-02302-4PMC9834302 | β | β | β |
| WatanabeK, TaskesenE, van BochovenA & PosthumaD Functional mapping and annotation of genetic associations with FUMA. Nat Commun 8, 1826 (2017).29184056 10.1038/s41467-017-01261-5PMC5705698 | β | β | β |
| WatsonHJ Genome-wide association study identifies eight risk loci and implicates metabo-psychiatric origins for anorexia nervosa. Nat Genet 51, 1207β1214 (2019).31308545 10.1038/s41588-019-0439-2PMC6779477 | β | β | β |
| WeissbrodO Functionally informed fine-mapping and polygenic localization of complex trait heritability. Nat Genet 52, 1355β1363 (2020).33199916 10.1038/s41588-020-00735-5PMC7710571 | β | β | β |
| WendtFR The Relationship of Attention-Deficit/Hyperactivity Disorder With Posttraumatic Stress Disorder: A Two-Sample Mendelian Randomization and Population-Based Sibling Comparison Study. Biol Psychiatry 93, 362β369 (2023).36335070 10.1016/j.biopsych.2022.08.012PMC10496427 | β | β | β |
| WermeJ, van der SluisS, PosthumaD & de LeeuwCA An integrated framework for local genetic correlation analysis. Nat Genet 54, 274β282 (2022).35288712 10.1038/s41588-022-01017-y | β | β | β |
| WillerCJ, LiY & AbecasisGR METAL: fast and efficient meta-analysis of genomewide association scans. Bioinformatics 26, 2190β2191 (2010).20616382 10.1093/bioinformatics/btq340PMC2922887 | β | β | β |
| WingoTS Integrating human brain proteomes with genome-wide association data implicates novel proteins in post-traumatic stress disorder. Mol Psychiatry 27, 3075β3084 (2022).35449297 10.1038/s41380-022-01544-4PMC9233006 | β | β | β |
| WolfEJ A classical twin study of PTSD symptoms and resilience: Evidence for a single spectrum of vulnerability to traumatic stress. Depress Anxiety 35, 132β139 (2018).29283198 10.1002/da.22712PMC5794534 | β | β | β |
| YangJ, LeeSH, GoddardME & VisscherPM GCTA: a tool for genome-wide complex trait analysis. Am J Hum Genet 88, 76β82 (2011).21167468 10.1016/j.ajhg.2010.11.011PMC3014363 | β | β | β |
| YooM DSigDB: drug signatures database for gene set analysis. Bioinformatics 31, 3069β3071 (2015).25990557 10.1093/bioinformatics/btv313PMC4668778 | β | β | β |
| YuD Interrogating the Genetic Determinants of Touretteβs Syndrome and Other Tic Disorders Through Genome-Wide Association Studies. Am J Psychiatry 176, 217β227 (2019).30818990 10.1176/appi.ajp.2018.18070857PMC6677250 | β | β | β |
| ZhouW Efficiently controlling for case-control imbalance and sample relatedness in large-scale genetic association studies. Nat Genet 50, 1335β1341 (2018).30104761 10.1038/s41588-018-0184-yPMC6119127 | β | β | β |
| ZhouX & StephensM Genome-wide efficient mixed-model analysis for association studies. Nat Genet 44, 821β824 (2012).22706312 10.1038/ng.2310PMC3386377 | β | β | β |
| ZhuZ Integration of summary data from GWAS and eQTL studies predicts complex trait gene targets. Nat Genet 48, 481β487 (2016).27019110 10.1038/ng.3538 | β | β | β |
| ZoellnerLA, Roy-ByrnePP, MavissakalianM & FeenyNC Doubly Randomized Preference Trial of Prolonged Exposure Versus Sertraline for Treatment of PTSD. Am J Psychiatry 176, 287β296 (2019).30336702 10.1176/appi.ajp.2018.17090995 | β | β | β |
| ZouY, CarbonettoP, WangG & StephensM Fine-mapping from summary data with the βSum of Single Effectsβ model. PLoS Genet 18, e1010299 (2022).10.1371/journal.pgen.1010299PMC933770735853082 | β | β | β |
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| Trans-ancestry GWAS of hot flashes reveals potent treatment target and overlap with psychiatric disorders. | Werwath KE et al. | β | 2026 | β |
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| An Update on the Psychiatric Genomics of Posttraumatic Stress Disorder (PTSD). | Norrholm SD | β | 2025 | β |
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| Differences and similarities between the genetic architecture of lifetime substance use across different substances. | Bright U et al. | β | 2025 | β |
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| Exploring the association between lower serum BDNF levels and delayed-onset PTSD in physically injured patients with vulnerable personality traits: A two-year prospective study. | Kim JM et al. | β | 2025 | β |
| From Clinic to Mechanisms: Multi-Omics Provide New Insights into Cerebrospinal Fluid Metabolites and the Spectrum of Psychiatric Disorders. | Wen J et al. | β | 2025 | β |
| Gain of Alternative Allele Expression of LINC02449 at rs149707223 in Schizophrenia and Bipolar Disorder: Inducing Synaptic Transmission and Behavioral Deficits in Mice. | Yang T et al. | β | 2025 | β |
| Genetic variants associated with chronic postsurgical pain: evidence from the China Surgery and Anaesthesia Cohort study. | Song J et al. | β | 2025 | β |
| [Genetic variants associated with the development of stress disorders: A systematic review of GWAS]. | Zorkina YA et al. | β | 2025 | β |
| Genome-wide association study provides insights into the genetic basis of Lewy body dementia. | Zhu P et al. | β | 2025 | β |
| Hyperactivity and Differential Gene Expression in <i>lbx1a<sup>(</sup><sup>-/</sup><sup>-)</sup></i> Zebrafish Larvae. | Drepper C et al. | β | 2025 | β |
| Identifying Neurobehavioral Biomarkers of Anxiety and Treatment Response Using Virtual Reality, Electroencephalography, Magnetic Resonance Imaging, and Related Multimodal Assessments: A Longitudinal Study Protocol. | Oh H et al. | β | 2025 | β |
| Implications of gene Γ environment interactions in post-traumatic stress disorder risk and treatment. | Seah C et al. | β | 2025 | β |
| Integrating Aversive Memories in the Basolateral Amygdala. | Liu J et al. | β | 2025 | β |
| Integration of Metabolomic and Brain Imaging Data Highlights Pleiotropy Among Posttraumatic Stress Disorder, Glycoprotein Acetyls, and Pallidum Structure. | LΓΈkhammer S et al. | β | 2025 | β |
| Integrative DNA methylation and transcriptome analysis reveal cell-type specific patterns in response to elevated allostatic load. | Emery O et al. | β | 2025 | β |
| Investigating the shared genetic architecture between post-traumatic stress disorder and neurodegenerative diseases: a large-scale genomewide cross-trait analysis. | Shi Y et al. | β | 2025 | β |
| Leveraging genomic and transcriptomic data of diverse ancestry to uncover mechanisms of psychiatric risk in the adult and developing brain. | Jajoo A et al. | β | 2025 | β |
| Multi-ancestry investigation of the genomics of erectile dysfunction. | Bright U et al. | β | 2025 | β |
| Novel psychedelic interventions for post-traumatic stress disorder and their promise for precision medicine. | Dodds C et al. | β | 2025 | β |
| Observational and Genetic Analyses of Traumatic Experiences and Endometriosis. | Koller D et al. | β | 2025 | β |
| Predicting post-traumatic stress disorder in relatives of critically ill patients. | Dupont T et al. | β | 2025 | β |
| Preliminary Insights Into the Relationship Between the Gut Microbiome and Host Genome in Posttraumatic Stress Disorder. | O'Hare MA et al. | β | 2025 | β |
| Prioritizing missense mutations via a deep learning phosphorylation prediction model. | Xu Y et al. | β | 2025 | β |
| Progress in spatiotemporal regulation of fear memory: neural circuit mechanisms and implications for PTSD. | Xu R et al. | β | 2025 | β |
| Psychiatric genetics in the diverse landscape of Latin American populations. | Bruxel EM et al. | β | 2025 | β |
| Sex and experience dependent regulation of synaptic protein turnover | Heo S et al. | β | 2025 | β |
| Shared genetic architecture of posttraumatic stress disorder with cardiovascular imaging, risk, and diagnoses. | Shen J et al. | β | 2025 | β |
| Single-cell transcriptomic and chromatin dynamics of the human brainΒ in PTSD. | Hwang A et al. | β | 2025 | β |
| Spatial Cell Atlas of Lateral Septum Reveals Changes Underlying Anxiety and Fear Learning Deficits in Mice with Abnormal Immunity. | Wang Y et al. | β | 2025 | β |
| Stress-induced changes in the molecular processes underlying fear memories: implications for PTSD and relevant animal models. | Andero R | β | 2025 | β |
| Stress Molecular Signaling in Interaction With Cognition. | LugenbΓΌhl JF et al. | β | 2025 | β |
| Telomere Dynamics in Post-Traumatic Stress Disorder: A Critical Synthesis. | Rajkumar RP | β | 2025 | β |
| The Effects of Repetitive Transcranial Magnetic Stimulation on Post-Traumatic Stress Disorder and Parameter Discussion: A Meta-Analysis Based on Randomized Controlled Trials. | Wang YX et al. | β | 2025 | β |
| The Genetic Architecture of the Human Corpus Callosum and its Subregions. | Bhatt RR et al. | β | 2025 | β |
| The impact of the BDNF Val66Met genotype on intrusive memories following trauma exposure and in PTSD is moderated by sex and timing of trauma exposure. | Nicholson EL et al. | β | 2025 | β |
| The impact of trauma and how to intervene: a narrative review of psychotraumatology over the past 15 years. | Olff M et al. | β | 2025 | β |
| The Psychiatric Genomics Consortium: discoveries and directions. | Agrawal A et al. | β | 2025 | β |
| Understanding the Comorbidities Among Psychiatric Disorders, Chronic Low Back Pain, and Spinal Degenerative Disease Using Observational and Genetically Informed Analyses. | Qiu D et al. | β | 2025 | β |
| Unveiling causal relationship between white matter tracts and psychiatric disorders. | Yu Y et al. | β | 2025 | β |
| What is the role of paternal genetic transmission on risk for PTSD and internalizing and externalizing disorders? | Amstadter AB et al. | β | 2025 | β |
| An Honest Reckoning With the Amygdala and Mental Illness. | Fox AS et al. | β | 2024 | β |
| cAMP-PKA signaling pathway and anxiety: Where do we go next? | Chen D et al. | β | 2024 | β |
| Decoding Sex Differences in PTSD Heritability: A Comprehensive Twin Study. | Katrinli S et al. | β | 2024 | β |
| Distinguishing vulnerability and resilience to posttraumatic stress disorder evaluating traumatic experiences, genetic risk and electronic health records. | LΓΈkhammer S et al. | β | 2024 | β |
| Effect of post-traumatic stress disorder on type 2 diabetes and the mediated effect of obesity: a Mendelian randomization study. | Yu Y et al. | β | 2024 | β |
| Epigenome-wide association studies identify novel DNA methylation sites associated with PTSD: a meta-analysis of 23 military and civilian cohorts. | Katrinli S et al. | β | 2024 | β |
| Novel mechanisms of Anshen Dingzhi prescription against PTSD: Inhibiting DCC to modulate synaptic function and inflammatory responses. | Hu J et al. | β | 2024 | β |
| PDE4B Missense Variant Increases Susceptibility to Post-traumatic Stress Disorder-Relevant Phenotypes in Mice. | Lipina TV et al. | β | 2024 | β |
| Potassium channels in animal models of post-traumatic stress disorder: mechanistic and therapeutic implications. | Rajkumar RP | β | 2024 | β |
| The genetic architecture of substance use and its diverse correlations with mental health traits. | Wormington B et al. | β | 2024 | β |