Assessing molecular gene by treatment interactions using a population of neural progenitors exposed to valproic acid and lithium.
The 20 matches · 6 of them tie a paragraph to a whole file, not to given lines: weak matches, whose lines are not tinted
- [1] § Results › Regulatory elements with drug dependent effects on gene expression ↔ Peak_or_Gene_base/Peak_Gene_corr/corr.GenePeak.04.getCorr.R, lines 1–52 · score 0.79 · peak gene correlations, gene peak pairs, correlating chromatin accessibility, gene expression, Mb, transcription
- [2] § Results › Regulatory elements with drug dependent effects on gene expression ↔ Peak_or_Gene_base/Peak_Gene_corr/corr.GenePeak.01.R, the whole file · a weak match · score 0.76 · gene peak pairs, nearby peaks, correlating chromatin accessibility, gene expression, Mb, distance
- [3] § Materials and methods › RNA-seq data preprocessing ↔ Peak_or_Gene_base/DESeq_analysis/RNA/00.DEG.bran.mkRmList.R, lines 41–84 · score 0.71 · duplication rates, VerifyBamID, mapping rates, RIN, STAR, seq
- [4] § Materials and methods › ATAC-seq data preprocessing ↔ 00.Preprocessing/ATACseq/WASP.3.remapBWAmem.sh, the whole file · a weak match · score 0.71 · BWA MEM, ATAC seq, reference genome, remapped, WASP, hg38
- [5] § Materials and methods › ATAC-seq data preprocessing ↔ 00.Preprocessing/ATACseq/WASP.3.remapBWAmem.R, the whole file · a weak match · score 0.62 · BWA MEM, reference genome, remapped, WASP, seq, hg38
- [6] § Materials and methods › Chromatin accessibility quantitative trait loci (caQTL) mapping ↔ QTLs/caQTLs/RASQUAL_Output_Processing/00_ConditionSpecific_CombineandFilter_Output.R, the whole file · a weak match · score 0.59 · likelihood ratio, eigenMT, LiCl, RASQUAL, mapped, allele
- [7] § Results › Genetic effects on gene regulation altered by VPA or Li ↔ QTLs/eQTLs/11.prep.reqtl.step2.bran.R, lines 56–120 · score 0.57 · eSNP, eGene, SNPs, drug, VPA
- [8] § Results › TWAS highlights drug-dependent gene-trait associations ↔ QTLs/eQTLs/gwasOlap/gwasOlap.eQTLs.R, lines 43–102 · score 0.56 · Cortical surface area, bipolar disorder, thickness, Intelligence, ASD, variants
- [9] § Results › TWAS highlights drug-dependent gene-trait associations ↔ QTLs/eQTLs/gwasOlap/gwasOlap.reQTLs.R, lines 38–95 · score 0.56 · Cortical surface area, bipolar disorder, thickness, Intelligence, ASD, variants
- [10] § Results › Measuring alterations in gene regulation in hNPCs due to VPA and Li ↔ Peak_or_Gene_base/DESeq_analysis/ATAC/util/05.PartHerit.R, lines 315–375 · score 0.56 · brain structure, ADHD, PD, MDD, SCZ, BP
- [11] § Materials and methods › RNA-seq data preprocessing ↔ 00.Preprocessing/RNAseq/02_StarAlignment_01_indexCreation.sh, the whole file · a weak match · score 0.56 · RNA seq, reference genome, Ensembl, STAR, preprocessing
- [12] § Results › Measuring alterations in gene regulation in hNPCs due to VPA and Li ↔ QTLs/eQTLs/gwasOlap/gwasOlap.eQTLs.R, lines 43–102 · score 0.55 · cortical surface area, bipolar disorder, depressive, SCZ, BP, thickness
- [13] § Materials and methods › Gene expression quantitative trait loci (eQTL) mapping ↔ QTLs/eQTLs/12.batch.run.reQTL.bdl.R, lines 65–129 · score 0.55 · variant filtering, limix_qtl, kinship, covariates, interactions, mapping
- [14] § Materials and methods › Differential chromatin accessibility and gene expression analyses ↔ Peak_or_Gene_base/DESeq_analysis/ATAC/util/02.TF.enrich.bran.2023.R, lines 13–150 · score 0.54 · log2 fold change, shrinkage, binding, enrichment, FDR, gene
- [15] § Materials and methods › Gene expression quantitative trait loci (eQTL) mapping ↔ QTLs/caQTLs/RASQUAL_Output_Processing/00_ConditionSpecific_CombineandFilter_Output.R, the whole file · a weak match · score 0.54 · Benjamini Hochberg, status, LiCl, positions, matrix, genotype
- [16] § Results › Genetic effects on gene regulation altered by VPA or Li ↔ QTLs/eQTLs/gwasOlap/gwasOlap.eQTLs.ecav.03.input.R, lines 1–89 · score 0.52 · eGene, eQTLs, SNPs, drug, Li, VPA
- [17] § Results › DARs linked to brain-trait heritability ↔ QTLs/eQTLs/gwasOlap/gwasOlap.reQTLs.R, lines 38–95 · score 0.52 · cortical surface area, bipolar disorder, thickness, SNP
- [18] § Results › Characteristics of Condition Dependent Regulatory QTLs ↔ QTLs/caQTLs/ClinicalvsWnt/Plot_pLOEUFScores.R, lines 43–131 · score 0.52 · LOEUF scores, gnomAD, loss, metric, QTLs, genes
- [19] § Results › Characteristics of Condition Dependent Regulatory QTLs ↔ QTLs/caQTLs/ClinicalvsWnt/Plot_pLOEUFScores_Comparison.R, lines 43–89 · score 0.51 · LOEUF scores, gnomAD, loss, metric, QTLs, genes
- [20] § Materials and methods › Differential chromatin accessibility and gene expression analyses ↔ Peak_or_Gene_base/DESeq_analysis/ATAC/util/04.GO.bran.R, lines 7–91 · score 0.50 · log2 fold change, binding, threshold, enrichment, FDR, gene
Paper
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The authors' code
R · 57 lines · 3.7 KB · no license · 2 matches
- #Script for filtering of RASQUAL output for eigenMT input
- #JMV 10/21
- library(dplyr);
- library(stringr);
- rm(list=ls())
- options(stringsAsFactors=FALSE);
- #################################
- #Loops for input file production#
- #################################
- Conditions <- c("Veh","LiCl", "VPA")
- Chromosomes <- c(1:22, "X") #Not currently running X chromosome
- for (j in 1:3){
- Well_Condition <- Conditions[j]
- print(paste0("Condition:", Well_Condition))
- #Creating dataframe to hold combined RASQUAL output for each condition
- Full_condition <- as.data.frame(matrix(0, nrow=1, ncol=26))
- colnames(Full_condition) <- c("Feature", "rs ID", "Chromosome", "SNP Position", "Ref Allele", "Alt allele", "Allele Frequency", "HWE Chi_Square Statistic", "Imputation Quality (IA)", "Log_10 Benjamini-Hochberg Q-value", "Chi square statistic (2 x log Likelihood ratio)", "Effect Size", "Sequencing/mapping error rate (Delta)", "Reference allele mapping bias (Phi)", "Overdispersion", "SNP ID within the region", "No. of feature SNPs", "No. of tested SNPs", "No. of iterations for null hypothesis", "No. of iterations for alternative hypothesis", "Random location of ties", "Log likelihood of the null hypothesis", "Convergence status", "Squared correlation between prior and posterior genotypes (fSNPs)", "Squared correlation between prior and posterior genotypes (rSNP)", "PValue")
- for (c in Chromosomes){
- print(paste0("Chr:", c))
- ###########################
- #Loading in RASQUAL Output#
- ###########################
- RASQUAL_File <- paste0("/work/users/j/m/jmvalone/00_Wnt_Clinical/rasqual/2024/Results/", Well_Condition, "/00_RAW/chr", c, "_", Well_Condition, "_RASQUALResults_25kb.txt")
- RASQUAL <- read.delim(RASQUAL_File, header = FALSE)
- colnames(RASQUAL) <- c("Feature", "rs ID", "Chromosome", "SNP Position", "Ref Allele", "Alt allele", "Allele Frequency", "HWE Chi_Square Statistic", "Imputation Quality (IA)", "Log_10 Benjamini-Hochberg Q-value", "Chi square statistic (2 x log Likelihood ratio)", "Effect Size", "Sequencing/mapping error rate (Delta)", "Reference allele mapping bias (Phi)", "Overdispersion", "SNP ID within the region", "No. of feature SNPs", "No. of tested SNPs", "No. of iterations for null hypothesis", "No. of iterations for alternative hypothesis", "Random location of ties", "Log likelihood of the null hypothesis", "Convergence status", "Squared correlation between prior and posterior genotypes (fSNPs)", "Squared correlation between prior and posterior genotypes (rSNP)")
- #Calculating pvalue
- RASQUAL$PValue <- pchisq(RASQUAL$`Chi square statistic (2 x log Likelihood ratio)`, 1, lower.tail = F)
- #Filtering out skipped entries
- RASQUAL <- filter(RASQUAL, RASQUAL$`SNP Position` != "-1")
- #Filtering for r2 between prior and posterior
- RASQUAL <- filter(RASQUAL, RASQUAL$`Squared correlation between prior and posterior genotypes (rSNP)` >= 0.8)
- #Writing out filtered version
- Output_File <- paste0("/work/users/j/m/jmvalone/00_Wnt_Clinical/rasqual/2024/Results/", Well_Condition, "/01_Filtered/chr", c, "_", Well_Condition, "RASQUALResults_25kb.txt")
- write.table(RASQUAL, Output_File, col.names = TRUE, row.names = FALSE)
- #Adding to final full data frame
- Full_condition <- rbind(Full_condition, RASQUAL)
- }
- #Trimming off empty placeholder row
- Full_condition <- Full_condition[-1,]
- #Writing out full condition RASQUAL output table
- FullOutput_File <- paste0("/work/users/j/m/jmvalone/00_Wnt_Clinical/rasqual/2024/Results/", Well_Condition, "/01_Filtered/", Well_Condition, "_FullFilteredRASQUALResults_25kb.txt")
- write.csv(Full_condition, FullOutput_File, col.names = TRUE, row.names = FALSE)
- }
00_ConditionSpecific_CombineandFilter_Output.R at commit a961ab4, no license · at the source
Overview
- Department of Genetics, University of North Carolina at Chapel Hill,Chapel Hill, NC USA
- UNC Neuroscience Center, University of North Carolina at Chapel Hill,Chapel Hill, NC USA
- Carolina Institute for Developmental Disabilities,Carrboro, NC USA
- Present Address: University of Wisconsin–Madison, Genetics,Madison, WI USA
- Department of Biostatistics, University of North Carolina at Chapel Hill,Chapel Hill, NC USA
Abstract
The abstract is not reproduced here: the paper's license (CC BY-NC-ND) does not allow it. Read it in the paper, at the publisher or on Europe PMC.
Repository
Its files are read in the Code ↔ Paper reader above, with 20 matches between paragraphs and lines of code.
steinlabunc/clinical_rqtls
a961ab430b09f802067d09b115b0270cc00c0409, 10 January 2026Availability: 1 check, the latest on 28 September 2026: the link answers
- 28 September 2026: the link answers
200 files
- 00.Preprocessing/
ATACseq/ , Shell, 32 lines00_00_md5sum.sh - 00.Preprocessing/
ATACseq/ , Shell, 45 lines00_01_checkreadbal.sh - 00.Preprocessing/
ATACseq/ , Shell, 27 lines00_02_fastqc.sh - 00.Preprocessing/
ATACseq/ , Shell, 14 lines00_03_multiqc.sh - 00.Preprocessing/
ATACseq/ , Shell, 28 lines00_04_fastqcTrimmed.sh - 00.Preprocessing/
ATACseq/ , Shell, 18 lines00_05_multiqcTrimmed.sh - 00.Preprocessing/
ATACseq/ , Shell, 45 lines00_06_ataqv.sh - 00.Preprocessing/
ATACseq/ , Shell, 45 lines00_07_verifyBAMid.sh - 00.Preprocessing/
ATACseq/ , R, 58 lines00_07_verifyBAMid_analys is.R - 00.Preprocessing/
ATACseq/ , R, 86 lines00_08_mergeQC_vLocal.R - 00.Preprocessing/
ATACseq/ , Shell, 40 lines01_trimNexteraAdapters.s h - 00.Preprocessing/
ATACseq/ , Shell, 33 lines02_index_Old.sh - 00.Preprocessing/
ATACseq/ , Shell, 12 lines02_index_SSUB_Old.sh - 00.Preprocessing/
ATACseq/ , Shell, 39 lines02_mapReadsBWAmem.sh - 00.Preprocessing/
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ATACseq/ , Shell, 21 lines03_sortIndex_rerun.sh - 00.Preprocessing/
ATACseq/ , R, 50 linesQC_omit.R - 00.Preprocessing/
ATACseq/ , Shell, 26 linesWASP.1.HDF5SNPs.sh - 00.Preprocessing/
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ATACseq/ , R, 180 linesataqv_summariseMetrics.R - 00.Preprocessing/
RNAseq/ , Shell, 32 lines00_00_md5sum.sh - 00.Preprocessing/
RNAseq/ , Shell, 45 lines00_01_checkreadbal.sh - 00.Preprocessing/
RNAseq/ , Shell, 28 lines00_02_fastqc.sh - 00.Preprocessing/
RNAseq/ , Shell, 16 lines00_03_multiqc.sh - 00.Preprocessing/
RNAseq/ , Shell, 28 lines00_04_fastqcTrimmed.sh - 00.Preprocessing/
RNAseq/ , Shell, 18 lines00_05_multiqcTrimmed.sh - 00.Preprocessing/
RNAseq/ , Shell, 45 lines00_07_verifyBAMid.sh - 00.Preprocessing/
RNAseq/ , Shell, 41 lines01_trimNexteraAdapters.s h - 00.Preprocessing/
RNAseq/ , Shell, 30 lines, 1 match02_StarAlignment_01_inde xCreation.sh - 00.Preprocessing/
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RNAseq/ , Shell, 36 lines02_markDupesPicard.sh - 00.Preprocessing/
RNAseq/ , Shell, 30 lines03_indexsort.sh - 00.Preprocessing/
RNAseq/ , Shell, 12 lines03_indexsort_SSUB.sh - 00.Preprocessing/
RNAseq/ , Shell, 26 linesWASP.1.HDF5SNPs_OG.sh - 00.Preprocessing/
RNAseq/ , R, 34 linesWASP.2.findIntersectingS NPs_RNA.R - 00.Preprocessing/
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RNAseq/ , R, 52 linesWASP.7.rmBLMT_OG.R - 00.Preprocessing/
RNAseq/ , Shell, 40 linesWASP.7.rmBLMT_OG.sh - Peak_or_Gene_base/
DESeq_analysis/ , R, 308 linesATAC/ pipeline.DAR.240828.R - Peak_or_Gene_base/
DESeq_analysis/ , R, 310 lines, 1 matchATAC/ util/ 02.TF.enrich.bran.2023.R - Peak_or_Gene_base/
DESeq_analysis/ , R, 111 linesATAC/ util/ 03.Annotation.bran.R - Peak_or_Gene_base/
DESeq_analysis/ , R, 190 lines, 1 matchATAC/ util/ 04.GO.bran.R - Peak_or_Gene_base/
DESeq_analysis/ , R, 489 lines, 1 matchATAC/ util/ 05.PartHerit.R - Peak_or_Gene_base/
DESeq_analysis/ , R, 157 lines, 1 matchRNA/ 00.DEG.bran.mkRmList.R - Peak_or_Gene_base/
DESeq_analysis/ , R, 59 linesRNA/ 01.01.DEG.bran.featureCo unts.R - Peak_or_Gene_base/
DESeq_analysis/ , R, 53 linesRNA/ 01.02.DEG.bran.mergefeat ureCounts.R - Peak_or_Gene_base/
DESeq_analysis/ , R, 49 linesRNA/ 01.03.DEG.bran.rmQCsampl es.R - Peak_or_Gene_base/
DESeq_analysis/ , R, 180 linesRNA/ 02.01.DEG.bran.runDEseq2 .R - Peak_or_Gene_base/
DESeq_analysis/ , R, 124 linesRNA/ 02.02.DEG.bran.count.R - Peak_or_Gene_base/
DESeq_analysis/ , R, 163 linesRNA/ 03.01.DEG.bran.GO.R - Peak_or_Gene_base/
Peak_Calling/ , R, 132 lines01.00.csaw.fragLengths.R - Peak_or_Gene_base/
Peak_Calling/ , R, 67 lines01.01.csaw.counts.R - Peak_or_Gene_base/
Peak_Calling/ , R, 78 lines01.02.csaw.cqnNorm.R - Peak_or_Gene_base/
Peak_Gene_corr/ , R, 586 lines05_02.DAR_DEG.corr.R - Peak_or_Gene_base/
Peak_Gene_corr/ , R, 273 linescorr.DARDEG.summary.01.R - Peak_or_Gene_base/
Peak_Gene_corr/ , R, 57 lines, 1 matchcorr.GenePeak.01.R - Peak_or_Gene_base/
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Peak_Gene_corr/ , R, 109 linescorr.GenePeak.07.res3.R - Peak_or_Gene_base/
Peak_Gene_corr/ , R, 574 linespeakGeneCorr.00.R - QTLs/
caQTLs/ , R, 103 linesClinicalvsWnt/ 01_DetermineLD.R - QTLs/
caQTLs/ , Shell, 14 linesClinicalvsWnt/ 01_DetermineLD_Sub.sh - QTLs/
caQTLs/ , R, 113 linesClinicalvsWnt/ 02_DetermineOverlap.R - QTLs/
caQTLs/ , Shell, 15 linesClinicalvsWnt/ 02_DetermineOverlap.sh - QTLs/
caQTLs/ , R, 126 linesClinicalvsWnt/ 02_DetermineOverlap_WntC onditions.R - QTLs/
caQTLs/ , Shell, 15 linesClinicalvsWnt/ 02_DetermineOverlap_WntC onditions.sh - QTLs/
caQTLs/ , R, 151 linesClinicalvsWnt/ 02_DetermineOverlap_reca QTL.R - QTLs/
caQTLs/ , Shell, 15 linesClinicalvsWnt/ 02_DetermineOverlap_reca QTL.sh - QTLs/
caQTLs/ , R, 37 linesClinicalvsWnt/ 03_OverlapCalc_Optional4 Percents.R - QTLs/
caQTLs/ , R, 157 linesClinicalvsWnt/ 04_Calc_ConditionFreq.R - QTLs/
caQTLs/ , R, 86 linesClinicalvsWnt/ 04_Calc_ConditionFreq_re caQTL.R - QTLs/
caQTLs/ , R, 131 lines, 1 matchClinicalvsWnt/ Plot_pLOEUFScores.R - QTLs/
caQTLs/ , R, 159 lines, 1 matchClinicalvsWnt/ Plot_pLOEUFScores_Compar ison.R - QTLs/
caQTLs/ , R, 159 linesGWAS_Overlap/ 00_caQTLGWASOverlap_GetS NPList_Run.R - QTLs/
caQTLs/ , R, 35 linesGWAS_Overlap/ 00_caQTLGWASOverlap_GetS NPList_Sub.R - QTLs/
caQTLs/ , R, 79 linesGWAS_Overlap/ 01_caQTLGWASOverlap_Form atSNPList.R - QTLs/
caQTLs/ , Shell, 27 linesGWAS_Overlap/ 01_caQTLGWASOverlap_Form atSNPList.sh - QTLs/
caQTLs/ , Shell, 14 linesGWAS_Overlap/ 02_caQTLGWAS_Overlap_LD_ JobRun.sh - QTLs/
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caQTLs/ , R, 380 linesGWAS_Overlap/ 03_caQTLGWAS_MakeMassive _Run.R - QTLs/
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caQTLs/ , R, 92 linesGWAS_Overlap/ 06_caQTLGWAS_CombineAllR esults.R - QTLs/
caQTLs/ , R, 149 linesRASQUAL_Input_Processing / 00_RASQUAL_ATAC_PCA.MDS_ Covariate_Final.R - QTLs/
caQTLs/ , R, 67 linesRASQUAL_Input_Processing / 01_RASQUAL_ConditionSpec iifc_Reordered_BAMs_DNAI Ds.R - QTLs/
caQTLs/ , R, 39 linesRASQUAL_Input_Processing / 02_RASQUAL_DonorFiltered VCF.R - QTLs/
caQTLs/ , R, 39 linesRASQUAL_Input_Processing / 03_ASVCF_JobSubmission.R - QTLs/
caQTLs/ , R, 35 linesRASQUAL_Input_Processing / 04_ASVCF_Tabix.R - QTLs/
caQTLs/ , R, 162 linesRASQUAL_Input_Processing / 05_RASQUAL_Counts_Offset _Info_FileProduction_Fin al.R - QTLs/
caQTLs/ , R, 49 linesRASQUAL_Input_Processing / 06_RASQUAL_Run_Multithre ad.R - QTLs/
caQTLs/ , Shell, 65 linesRASQUAL_Input_Processing / 06_RASQUAL_Run_Multithre ad.sh - QTLs/
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caQTLs/ , R, 57 lines, 2 matchesRASQUAL_Output_Processin g/ 00_ConditionSpecific_Com bineandFilter_Output.R - QTLs/
caQTLs/ , R, 61 linesRASQUAL_Output_Processin g/ 01_EigenMTLeadSNP_Adjust ment.R - QTLs/
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caQTLs/ , R, 42 linesRASQUAL_Output_Processin g/ 04_CombineFullMTC_RASQUA LOutput.R - QTLs/
caQTLs/ , R, 54 linesRASQUAL_Output_Processin g/ 05_01_MakeLDSNPList.R - QTLs/
caQTLs/ , R, 31 linesRASQUAL_Output_Processin g/ 05_02_MakePlinkFiles.R - QTLs/
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caQTLs/ , R, 77 linescaQTL_eQTL_Overlap/ 00_caQTLeQTL_Overlap_LD_ SNPList.R - QTLs/
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caQTLs/ , R, 54 lineschromHMM/ Enrichment_chromHMM_Fish ers.R - QTLs/
caQTLs/ , R, 60 lineschromHMM/ Enrichment_chromHMM_Plot ting_CompareScores.R - QTLs/
caQTLs/ , R, 41 lineschromHMM/ Enrichment_chromHMM_Plot ting_PValues.R - QTLs/
caQTLs/ , R, 76 lineschromHMM/ chromHMM_Enrichment_AllP eaks.R - QTLs/
caQTLs/ , R, 91 lineschromHMM/ chromHMM_Enrichment_DARs .R - QTLs/
caQTLs/ , R, 93 lineschromHMM/ chromHMM_Enrichment_caPe aks.R - QTLs/
caQTLs/ , R, 433 lineseCAVIAR/ 00_caQTL_ecaviar_InputPr ep_Run.R - QTLs/
caQTLs/ , R, 49 lineseCAVIAR/ 00_caQTL_ecaviar_InputPr ep_Sub.R - QTLs/
caQTLs/ , R, 82 lineseCAVIAR/ 01_Z_CorrectLDDirection. R - QTLs/
caQTLs/ , R, 88 lineseCAVIAR/ 02_Run_ecaviar.R - QTLs/
caQTLs/ , Shell, 14 lineseCAVIAR/ 02_Run_ecaviar.sh - QTLs/
caQTLs/ , R, 203 lineseCAVIAR/ 03_Processing_01_ecaviar .R - QTLs/
caQTLs/ , R, 48 lineseCAVIAR/ 03_Processing_01_ecaviar _Sub.R - QTLs/
caQTLs/ , R, 41 lineseCAVIAR/ 04_CombineProcessed.R - QTLs/
caQTLs/ , R, 187 linesmotifbreakR/ 01_motifbreakR_Run.R - QTLs/
caQTLs/ , Shell, 22 linesmotifbreakR/ 01_motifbreakR_Sub.sh - QTLs/
caQTLs/ , R, 48 linesmotifbreakR/ 02_motifbreakR.calcPValu e.R - QTLs/
caQTLs/ , Shell, 21 linesmotifbreakR/ 02_motifbreakR.calcPValu e.sh - QTLs/
caQTLs/ , Shell, 17 linesresponse_caQTL/ 00_LMM_RASQUALFiltered_C SVBuilder.sh - QTLs/
caQTLs/ , R, 467 linesresponse_caQTL/ 00_LMM_RASQUALFiltered_C SVBuilder_UncommonDonors .R - QTLs/
caQTLs/ , R, 84 linesresponse_caQTL/ 01_RunLMM_PCRand_JobRun. R - QTLs/
caQTLs/ , Shell, 20 linesresponse_caQTL/ 01_RunLMM_PCRand_JobRun. sh - QTLs/
caQTLs/ , R, 46 linesresponse_caQTL/ 02_Combine_LMMOutputs.R - QTLs/
caQTLs/ , R, 40 linesresponse_caQTL/ 03_BHFDR.R - QTLs/
caQTLs/ , R, 162 linesresponse_caQTL/ 04_BuildDF_withLDBuddies .R - QTLs/
caQTLs/ , R, 31 linesresponse_caQTL/ 04_BuildDF_withLDBuddies _Sub.R - QTLs/
caQTLs/ , R, 34 linesresponse_caQTL/ 05_CompileDF_LDBuddies.R - QTLs/
caQTLs/ , R, 16 linesssimp/ 00_AddChr21KG.R - QTLs/
caQTLs/ , R, 28 linesssimp/ 00_ProcessGWAS.R - QTLs/
eQTLs/ , R, 461 lines00.prep.eqtl.data.bdl.R - QTLs/
eQTLs/ , R, 167 lines01.batch.run.eqtl.bdl.R - QTLs/
eQTLs/ , R, 204 lines10.prep.reqtl.data.bdl.R - QTLs/
eQTLs/ , R, 178 lines, 1 match11.prep.reqtl.step2.bran .R - QTLs/
eQTLs/ , R, 129 lines, 1 match12.batch.run.reQTL.bdl.R - QTLs/
eQTLs/ , R, 163 linesgwasOlap/ gwasOlap.LD.R - QTLs/
eQTLs/ , R, 84 linesgwasOlap/ gwasOlap.LD.combineRes.R - QTLs/
eQTLs/ , R, 366 lines, 2 matchesgwasOlap/ gwasOlap.eQTLs.R - QTLs/
eQTLs/ , Shell, 79 linesgwasOlap/ gwasOlap.eQTLs.SUB.sh - QTLs/
eQTLs/ , R, 107 linesgwasOlap/ gwasOlap.eQTLs.ecav.01.L D.R - QTLs/
eQTLs/ , R, 129 linesgwasOlap/ gwasOlap.eQTLs.ecav.02.p repGwas.R - QTLs/
eQTLs/ , R, 185 lines, 1 matchgwasOlap/ gwasOlap.eQTLs.ecav.03.i nput.R - QTLs/
eQTLs/ , R, 158 linesgwasOlap/ gwasOlap.eQTLs.ecav.04.r unECAV.R - QTLs/
eQTLs/ , R, 52 linesgwasOlap/ gwasOlap.eQTLs.ecav.05.c atRes.R - QTLs/
eQTLs/ , R, 476 linesgwasOlap/ gwasOlap.eQTLs.ecaviar.R - QTLs/
eQTLs/ , Shell, 145 linesgwasOlap/ gwasOlap.eQTLs.ecaviar.s h - QTLs/
eQTLs/ , R, 399 lines, 2 matchesgwasOlap/ gwasOlap.reQTLs.R - QTLs/
eQTLs/ , R, 120 linesgwasOlap/ gwasOlap.screen2.R - README.md, Text, 27 lines
Code availability statement
The paper has a code availability statement. Its license (CC BY-NC-ND) does not allow reproducing it here; in short, from what the harvester recognized in it:
- it points to the authors' code: steinlabunc/
clinical_rqtls
Read it in the paper: doi.org/10.1038/s41380-026-03578-4.
Tracing map
Proposed by the machine: these links were found in the paper and verified at the source, without human review. The map will receive a Zenodo DOI once one of the paper's authors has validated it with their ORCID.
What the map holds:
- 1 repository of the authors' code, each at its verified commit, with its license and how the link was found in the paper;
- 199 scripts, each with its path and the digest of its content;
- 20 matches between paragraphs of the paper and lines of the code (method lexical-v1);
- neither the text of the paper nor the code itself.
Its JSON (tracing-map.json) is deposited on Zenodo with its DOI once the map is validated.
Data
No dataset and no data link were found in the paper.
Data availability statement
The paper has a data availability statement. Its license (CC BY-NC-ND) does not allow reproducing it here; in short, from what the harvester recognized in it:
- no repository, dataset or request procedure was recognized in it
Read it in the paper: doi.org/10.1038/s41380-026-03578-4.
Versions
The history of this record: each version stored by the harvester or made by a correction of its authors or of the maintainers of its code, and what changed in its facts. The texts of the paper (its abstract, its availability statements) are not part of it; versions that changed only those are not listed.
Version 2, 28 September 2026
- Publisher: n/a → Springer Nature
Version 1, 28 September 2026: the first record
Recorded: type, language, journal, volume, issue, pages, dates, 7 authors, 2 keywords, 10 MeSH terms, 2 funders, 104 references.
Cite
This paper
Valone, J. M., Le, B. D., Matoba, N., Mory, J. T., Wolter, J. M., Love, M. I., & Stein, J. L. (2026). Assessing molecular gene by treatment interactions using a population of neural progenitors exposed to valproic acid and lithium. Molecular psychiatry, 31(8), 4759-4773. https://
BibTeX
@article{valone2026asses
author = {Valone, Jordan M. and Le, Brandon D. and Matoba, Nana and Mory, Jessica T. and Wolter, Justin M. and Love, Michael I. and Stein, Jason L.},
title = {{Assessing molecular gene by treatment interactions using a population of neural progenitors exposed to valproic acid and lithium}},
journal = {Molecular psychiatry},
year = {2026},
month = apr,
volume = {31},
number = {8},
pages = {4759--4773},
publisher = {Springer Nature},
issn = {1359-4184},
doi = {10.1038/
url = {https://
pmid = {41935183},
pmcid = {PMC13364665}
}
RIS
TY - JOUR
AU - Valone, Jordan M.
AU - Le, Brandon D.
AU - Matoba, Nana
AU - Mory, Jessica T.
AU - Wolter, Justin M.
AU - Love, Michael I.
AU - Stein, Jason L.
TI - Assessing molecular gene by treatment interactions using a population of neural progenitors exposed to valproic acid and lithium
T2 - Molecular psychiatry
J2 - Mol Psychiatry
PY - 2026
DA - 2026/
VL - 31
IS - 8
SP - 4759
EP - 4773
SN - 1359-4184
PB - Springer Nature
DO - 10.1038/
UR - https://
LA - en
ER -
CSL-JSON
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