RET signaling as a mediator of estrogen receptor positive breast cancer brain metastasis.
The 3 matches · 1 of them tie a paragraph to a whole file, not to given lines: a weak match, whose lines are not tinted
- [1] § Methods › Analysis of gene expression from published & public datasets ↔ codes/02_Figure 1fg.ipynb, lines 59–93 · score 0.90 · disease free survival, surv_categorize, surv_cutpoint, PAM50 subtype, LumA, coxph
- [2] § Methods › Reverse phase protein array (RPPA) ↔ 2-Analysis/Helper_Scripts/21_Fig4_SupFig11_DNAm_Alterations.R, lines 313–434 · score 0.62 · logFC, limma package, linear, log2, vector, models
- [3] § Methods › In vivo xenograft study ↔ index/libs/bootstrap/bootstrap.min.js, the whole file · a weak match · score 0.60 · dimensions, placement, body, pre, pad, window
Paper
Loaded from Europe PMC by your browser, not stored by OSCR: doi.org · Europe PMC
The paper is loaded when this pane is shown.
The authors' code
Jupyter notebook · 137 lines · 3.9 KB · no license · 1 match
- # %% [markdown]
- # # Header
- # %%
- library(GSVA)
- library("survminer")
- library(dplyr)
- require("survival")
- library(gtools)
- # %%
- parse_gmt = function(gmt_path){
- db = readLines(gmt_path)
- geneset = list()
- for (line in db){
- line =
- words = as.vector(strsplit(line, "\\s{1,}")[[1]])
- set_name = words[1]
- genes = words[-c(1,2)]
- geneset[[set_name]] = genes
- }
- return(geneset)}
- coxConvert = function(x){ x <- summary(x)
- p.value<-signif(x$wald["pvalue"], digits=2)
- wald.test<-signif(x$wald["test"], digits=2)
- beta<-signif(x$coef[1], digits=2);#coeficient beta
- HR <-signif(x$coef[2], digits=2);#exp(beta)
- HR.confint.lower <- signif(x$conf.int[,"lower .95"], 2)
- HR.confint.upper <- signif(x$conf.int[,"upper .95"],2)
- HR <- paste0(HR, " (",
- HR.confint.lower, "-", HR.confint.upper, ")")
- res<-c(beta, HR, wald.test, p.value)
- names(res)<-c("beta", "HR (95% CI for HR)", "wald.test",
- "p.value")
- return(res)
- }
- # %%
- setwd('../')
- # %% [markdown]
- # # Load data
- # %%
- df = read.csv('data/metabric/nolan.surv.expr.csv', row.names = 1, check.names = F)
- expr = t(df[,8:19496])
- # %%
- dbpath = 'data/geneset/GDNF.gmt'
- geneset = parse_gmt(dbpath)
- resPrefix = 'data/gsva/Metabric_GDNF'
- #res = gsva(expr, geneset, method='gsva')
- #write.csv(res, file=paste(resPrefix, '.gsva.csv', sep=''), quote=F)
- # %% [markdown]
- # # ER+, GDNF
- # %%
- gsva = as.data.frame(t(read.csv('data/gsva/Metabric_GDNF.gsva.csv', check.names = F, row.names = 1)))
- GDNF = gsva[,1] - gsva[,2] # Up minus Dn
- gsva$GDNF = GDNF
- base = df[,1:12]
- gsva = gsva[rownames(base),]
- base$Sig = gsva$GDNF
- # ER pos and LumA
- ## select
- plot.dat = base[base[,"ER_IHC_status"]=='pos',] #& base[,"NOT_IN_OSLOVAL_Pam50Subtype"]=='LumA',]
- ########## ssgsea
- x.cut= surv_cutpoint(plot.dat, time="DSS.time", event="DSS.status", variables="Sig")
- x.cat <- surv_categorize(x.cut)
- plot.dat$cat = x.cat$Sig
- cox <- coxph(Surv(DSS.time, DSS.status) ~ Sig, data = plot.dat)
- print(summary(cox))
- res.cox = coxConvert(cox)
- print(res.cox)
- # beta HR (95% CI for HR) wald.test p.value
- # "0.57" "1.8 (1.4-2.2)" "26" "3.5e-07"
- fit <- survfit(Surv(DSS.time, DSS.status) ~ Sig, data = x.cat)
- g = ggsurvplot(fit, risk.table = TRUE, pval = TRUE, conf.int = FALSE, risk.table.height = 0.4)
- g$plot = g$plot + labs(y = "Disease Free Survival")
- pdf('plots/Metabric.DSS.GDNF_gsva.pdf', width=4.8, height=4, onefile=F)
- print(g)
- dev.off()
- # %% [markdown]
- # # ER+, RET
- # %%
- # gsva
- gsva = as.data.frame(t(read.csv('data/gsva/Metabric_GDNF.gsva.csv', check.names = F, row.names = 1)))
- GDNF = gsva[,1] - gsva[,2] # Up minus Dn
- gsva$GDNF = GDNF
- base = df[,1:12]
- gsva = gsva[rownames(base),]
- #--------
- # gsva
- RET = df$RET # Up minus Dn
- base = df[,1:12]
- base$Sig = RET
- # ER pos and LumA
- ## select
- plot.dat = base[base[,"ER_IHC_status"]=='pos',] #& base[,"NOT_IN_OSLOVAL_Pam50Subtype"]=='LumA',]
- ########## ssgsea
- x.cut= surv_cutpoint(plot.dat, time="DSS.time", event="DSS.status", variables="Sig")
- x.cat <- surv_categorize(x.cut)
- plot.dat$cat = x.cat$Sig
- cox <- coxph(Surv(DSS.time, DSS.status) ~ Sig, data = plot.dat)
- print(summary(cox))
- res.cox = coxConvert(cox)
- print(res.cox)
- # beta HR (95% CI for HR) wald.test p.value
- # "-0.0085" "0.99 (0.91-1.1)" "0.04" "0.85"
- fit <- survfit(Surv(DSS.time, DSS.status) ~ Sig, data = x.cat)
- g = ggsurvplot(fit, risk.table = TRUE, pval = TRUE, conf.int = FALSE, risk.table.height = 0.4)
- g$plot = g$plot + labs(y = "Disease Free Survival")
- pdf('plots/Metabric.DSS.RET.pdf', width=4.8, height=4, onefile=F)
- print(g)
- dev.off()
- # %%
02_Figure 1fg.ipynb at commit a9f7018, no license · at the source
Overview
- Women’s Cancer Research Center, UPMC Hillman Cancer Center and Magee-Womens Research Institute, Pittsburgh, PA USA
- School of Medicine, Tsinghua University, Beijing, China
- School of Medicine, University of Pittsburgh, Pittsburgh, PA USA
- Department of Pharmacology and Chemical Biology, University of Pittsburgh, Pittsburgh, PA USA
- Molecular Pharmacology Graduate Program (MPGP), University of Pittsburgh, Pittsburgh, PA 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.
Repositories
Its files are read in the Code ↔ Paper reader above, with 3 matches between paragraphs and lines of code.
ChelseaCHENX/RET-Brain-Metastasis-Analysis
a9f7018cf334233973b8d432f16b893292b73425, 5 September 2025Availability: 1 check, the latest on 28 September 2026: the link answers
- 28 September 2026: the link answers
7 files
- codes/
01_Figure 1a to e.ipynb , Jupyter, 268 lines - codes/
02_Figure 1fg.ipynb , Jupyter, 137 lines, 1 match - codes/
03_Figure S1 a to f.ipynb , Jupyter, 379 lines - codes/
04_Figure S1 gh.ipynb , Jupyter, 135 lines - codes/
GSVA.R , R, 52 lines - codes/
utils.py , Python, 50 lines - README.md, Text, 2 lines
leeoesterreich/ILC_CellLine_Encyclopedia
c7aace899dfbf96a78c3b82081fc983068b3067c, 18 February 2026Availability: 1 check, the latest on 28 September 2026: the link answers
- 28 September 2026: the link answers
61 files
- 2-Analysis/
Helper_Scripts/ , R, 295 lines01_SupFig1_Genotype_Simi larity.R - 2-Analysis/
Helper_Scripts/ , R, 1,116 lines02_Fig1_SupFig2_3_4_Mole cular_Subtyping.R - 2-Analysis/
Helper_Scripts/ , R, 335 lines03_Fig1C_SET_Signature.R - 2-Analysis/
Helper_Scripts/ , R, 642 lines04_Fig1D_Multiomics_Over view.R - 2-Analysis/
Helper_Scripts/ , R, 453 lines05_Fig1F_Alteration_barp lots.R - 2-Analysis/
Helper_Scripts/ , R, 141 lines06_SupFig5_ILC_NST_Alter ations.R - 2-Analysis/
Helper_Scripts/ , R, 158 lines07_SupFig6_Pathway_Alter ations.R - 2-Analysis/
Helper_Scripts/ , R, 296 lines08_Fig2C_CDH1_exonic_del etions.R - 2-Analysis/
Helper_Scripts/ , R, 34 lines08_Fig2_CDH1_Alteration_ Landscape_All.R - 2-Analysis/
Helper_Scripts/ , R, 138 lines09_Fig2D_Tumor_local_dis tant_Alteration_barplots .R - 2-Analysis/
Helper_Scripts/ , R, 126 lines10_Fig2E_CDH1_Protein_pa int_plot.R - 2-Analysis/
Helper_Scripts/ , R, 94 lines11_Fig2F_CDH1_Allele_Fre quency.R - 2-Analysis/
Helper_Scripts/ , R, 171 lines12_Fig2G_Cell_Tumor_Alte ration_barplots.R - 2-Analysis/
Helper_Scripts/ , R, 174 lines13_Fig2H_CDH1_Alteration _Landscape.R - 2-Analysis/
Helper_Scripts/ , R, 33 lines14_Fig3_SV_All.R - 2-Analysis/
Helper_Scripts/ , R, 169 lines14_SupFig8_TMB_SV_Prepar ation.R - 2-Analysis/
Helper_Scripts/ , R, 187 lines15_Fig3A_Genomic_Instabi lity.R - 2-Analysis/
Helper_Scripts/ , R, 120 lines16_Fig3B_Translocation_B reakpoints.R - 2-Analysis/
Helper_Scripts/ , R, 317 lines17_Fig3C_Identify_Chromo thripsis.R - 2-Analysis/
Helper_Scripts/ , R, 261 lines18_Fig3D_SupFig9_Prepare _Circos_Visualizations.R - 2-Analysis/
Helper_Scripts/ , R, 67 lines19_Fig3D_Circos_Selected _Samples.R - 2-Analysis/
Helper_Scripts/ , R, 894 lines20_Fig3E_3F_SupFig10_SV_ Fusions.R - 2-Analysis/
Helper_Scripts/ , R, 1,837 lines, 1 match21_Fig4_SupFig11_DNAm_Al terations.R - 2-Analysis/
Helper_Scripts/ , R, 762 lines22_Fig5_RNAi_Differentia l_Dependencies.R - 2-Analysis/
Helper_Scripts/ , R, 931 lines23_Fig6_Patient_Signatur es_Resemblance_Scores.R - 2-Analysis/
Helper_Scripts/ , R, 221 linesData_Loading/ 00_load_annotations.R - 2-Analysis/
Helper_Scripts/ , R, 329 linesData_Loading/ 01_load_all_data.R - 2-Analysis/
Helper_Scripts/ , R, 116 linesData_Loading/ 02_load_rppa_data.R - 2-Analysis/
Helper_Scripts/ , R, 131 linesData_Loading/ 03_load_rna_data.R - 2-Analysis/
Helper_Scripts/ , R, 122 linesData_Loading/ 04_load_cnv_data.R - 2-Analysis/
Helper_Scripts/ , R, 73 linesData_Loading/ 05_load_snv_data.R - 2-Analysis/
Helper_Scripts/ , R, 72 linesData_Loading/ 06_load_dnam_data.R - 2-Analysis/
Helper_Scripts/ , R, 193 linesData_Loading/ 07_load_sv_data.R - 2-Analysis/
Helper_Scripts/ , R, 215 linesData_Loading/ 08_load_external_data.R - 2-Analysis/
Helper_Scripts/ , R, 269 linesData_Loading/ 09_generate_gams.R - 2-Analysis/
Helper_Scripts/ , R, 890 linesHelper_Functions.R - 2-Analysis/
Helper_Scripts/ , R, 839 linessimem/ data_format_lib.R - 2-Analysis/
Helper_Scripts/ , R, 1,038 linessimem/ model_lib.R - 2-Analysis/
Helper_Scripts/ , R, 183 linessimem/ plot_lib.R - 2-Analysis/
Helper_Scripts/ , R, 714 linessimem/ simem_lib.R - 2-Analysis/
Main_Data_Analysis.Rmd , R, 680 lines - 2-Analysis/
config.R , R, 382 lines - 2-Analysis/
requirements.R , R, 304 lines - index/
libs/ , JavaScript, 7 lines, 1 matchbootstrap/ bootstrap.min.js - index/
libs/ , JavaScript, 7 linesclipboard/ clipboard.min.js - index/
libs/ , JavaScript, 9 linesquarto-html/ anchor.min.js - index/
libs/ , JavaScript, 145 linesquarto-html/ axe/ axe-check.js - index/
libs/ , JavaScript, 6 linesquarto-html/ popper.min.js - index/
libs/ , JavaScript, 847 linesquarto-html/ quarto.js - index/
libs/ , JavaScript, 95 linesquarto-html/ tabsets/ tabsets.js - index/
libs/ , JavaScript, 2 linesquarto-html/ tippy.umd.min.js - index_files/
libs/ , JavaScript, 7 linesbootstrap/ bootstrap.min.js - index_files/
libs/ , JavaScript, 7 linesclipboard/ clipboard.min.js - index_files/
libs/ , JavaScript, 9 linesquarto-html/ anchor.min.js - index_files/
libs/ , JavaScript, 145 linesquarto-html/ axe/ axe-check.js - index_files/
libs/ , JavaScript, 6 linesquarto-html/ popper.min.js - index_files/
libs/ , JavaScript, 847 linesquarto-html/ quarto.js - index_files/
libs/ , JavaScript, 95 linesquarto-html/ tabsets/ tabsets.js - index_files/
libs/ , JavaScript, 2 linesquarto-html/ tippy.umd.min.js - LICENSE, License, 201 lines
- README.md, Text, 2,597 lines
leeoesterreich/RET_Project_Analysis
2db5d19a3e78a4f6a95193b8df071bd200611021, 15 September 2025Availability: 1 check, the latest on 28 September 2026: the link answers
- 28 September 2026: the link answers
2 files
- RET Activity in BRCA Cell Lines.Rmd, R, 112 lines
- README.md, Text, 157 lines
leeoesterreich/RET-Brain-Metastasis-Analysis-Geoff
Availability: 1 check, the latest on 28 September 2026: the link is dead
- 28 September 2026: the link is dead
Zenodo 19501083
Availability: 1 check, the latest on 28 September 2026: the link answers (HTTP 200)
- 28 September 2026: the link answers (HTTP 200)
7 files
- codes/
01_Figure 1a to e.ipynb , Jupyter, 268 lines - codes/
02_Figure 1fg.ipynb , Jupyter, 137 lines - codes/
03_Figure S1 a to f.ipynb , Jupyter, 379 lines - codes/
04_Figure S1 gh.ipynb , Jupyter, 135 lines - codes/
GSVA.R , R, 52 lines - codes/
utils.py , Python, 50 lines - README.md, Text, 2 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: leeoesterreich/
RET-Brain-Metastasis-Ana , Zenodo 19501083lysis-Geoff
Read it in the paper: doi.org/10.1038/s42003-026-10252-6.
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:
- 5 repositories of the authors' code, each at its verified commit, with its license and how the link was found in the paper;
- 72 scripts, each with its path and the digest of its content;
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- no repository, dataset or request procedure was recognized in it
Read it in the paper: doi.org/10.1038/s42003-026-10252-6.
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Version 1, 28 September 2026: the first record
Recorded: type, language, journal, volume, issue, pages, dates, 10 authors, 2 keywords, 12 MeSH terms, 2 funders, 68 references, 5 RRIDs.
Cite
This paper
Liu, S., Pecar, G., Cao, Y., Chen, F., Wedn, A., Shah, O. S., Atkinson, J. M., Hooda, J., Oesterreich, S., & Lee, A. V. (2026). RET signaling as a mediator of estrogen receptor positive breast cancer brain metastasis. Communications biology, 9(1), 1209. https://
BibTeX
@article{liu2026ret,
author = {Liu, Simeng and Pecar, Geoffrey and Cao, Ye and Chen, Fangyuan and Wedn, Abdalla and Shah, Osama S and Atkinson, Jennifer M and Hooda, Jagmohan and Oesterreich, Steffi and Lee, Adrian V},
title = {{RET signaling as a mediator of estrogen receptor positive breast cancer brain metastasis}},
journal = {Communications biology},
year = {2026},
month = may,
volume = {9},
number = {1},
pages = {1209},
publisher = {Nature Publishing Group},
issn = {2399-3642},
doi = {10.1038/
url = {https://
pmid = {42162219},
pmcid = {PMC13582822}
}
RIS
TY - JOUR
AU - Liu, Simeng
AU - Pecar, Geoffrey
AU - Cao, Ye
AU - Chen, Fangyuan
AU - Wedn, Abdalla
AU - Shah, Osama S
AU - Atkinson, Jennifer M
AU - Hooda, Jagmohan
AU - Oesterreich, Steffi
AU - Lee, Adrian V
TI - RET signaling as a mediator of estrogen receptor positive breast cancer brain metastasis
T2 - Communications biology
J2 - Commun Biol
PY - 2026
DA - 2026/
VL - 9
IS - 1
SP - 1209
SN - 2399-3642
PB - Nature Publishing Group
DO - 10.1038/
UR - https://
LA - en
ER -
CSL-JSON
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