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LB2

Lung adenocarcinoma LUAD

Of 60,498 genes, 1,364 are higher in the tumor than in normal lung and in whole blood, and are not made by blood immune cells. 634 are protein-coding, and 624 of those have supporting plasma Cell-free RNA (cfRNA)RNA fragments that circulate in blood plasma outside cells. Most come from blood cells; a small share comes from other tissues, including tumors. evidence; the rest are mostly non-coding genes the plasma sources cannot check.

Samples compared

Tumor
513
TCGA primary tumors
Normal tissue
347
59 TCGA tumor-adjacent, 288 GTEx lung
Whole blood
337
GTEx samples from 328 donors
Survival
500
patients, 206 events (Survival endpointsCurated TCGA outcomes (Liu et al. 2018): OS is overall survival, PFI the progression-free interval and DSS disease-specific survival. LB2 uses whichever has the most events in each cancer type.)

Results in brief

1,364
candidate genes: 624 with plasma cfRNA evidence, 13 protein-coding without, 727 non-coding
204
genes in the tissue panel, Held-out AUCHow well an elastic-net model separates tumor from normal tissue, measured with nested cross-validation on samples the model did not train on. It describes tissue, not the accuracy of a blood test. 0.999
17
genes associated with progression-free interval (FDR < 0.05, 150 tested)
826
also candidates in lung squamous cell carcinoma, listed in the NSCLC shared view

Candidates

Filter by plasma evidence or discrimination, find a gene, and select any point or row for its full record. The table holds all 1,364 candidates.

Loading candidates…

How the candidates were selected

60,498 genes tested; 3,560 higher in tumor than in normal lung; 1,957 also higher than in whole blood; 1,364 remain after removing genes expressed in blood immune cells; 624 of these have plasma cfRNA evidence, 13 protein-coding candidates have none, and 727 are non-coding genes the plasma sources cannot list.

Figure 2. Genes remaining after each step in lung adenocarcinoma.

Each comparison uses a two-sided Wilcoxon rank-sum test. A gene passes when its q-value is below 0.05, its log2 fold change is at least 1, and the lower bound of the 95% confidence interval for its AUC is at least 0.70.

Genes made by any of 18 sorted blood immune cell types above 1 nTPM are then removed, because blood cells supply most plasma RNA. Genes missing from that reference, mostly non-coding, are kept.

Plasma evidence only reorders the list. A candidate not yet seen in plasma stays in, because every dataset misses genes. Read the full methods.

Tissue classifier panel

Genetoward normaltoward tumorCoef.
  1. LGR4+0.25
  2. GREB1+0.22
  3. ONECUT1+0.21
  4. SLC12A8−0.20
  5. PRDM12+0.19
  6. TERT+0.19
  7. ATP10B+0.19
  8. CA9+0.18
  9. FOXH1+0.17
  10. HS6ST2+0.17
  11. ZYG11A+0.17
  12. CHRNB4+0.17
  13. LHX2+0.16
  14. RASAL1+0.16
  15. PITX2+0.16
  16. TRPM8+0.16
  17. ENTPD8+0.15
  18. FGF11+0.15
  19. CDX1+0.15
  20. CGREF1+0.15
Show the other 184 genes
  1. MESP1+0.15
  2. MNX1+0.14
  3. ETV4+0.14
  4. RHBDL1+0.14
  5. CST1+0.14
  6. LCTL+0.14
  7. ATP6V1C2+0.14
  8. WFDC3+0.13
  9. DDIT4L+0.13
  10. KAT2A+0.13
  11. PLEKHN1+0.13
  12. FAM83A+0.13
  13. ONECUT2+0.13
  14. ABCA12+0.13
  15. SPP2+0.13
  16. FUT2+0.12
  17. DGKI+0.12
  18. FERMT1+0.12
  19. RAB26+0.12
  20. BARX1+0.12
  21. SYT12+0.12
  22. SPINK1+0.12
  23. TEKT5+0.12
  24. HHIPL2+0.11
  25. TFAP4+0.11
  26. NEIL3+0.11
  27. FAM131C+0.11
  28. BCL2L15+0.11
  29. CRABP2+0.10
  30. SRCIN1−0.10
  31. CCDC169+0.10
  32. DPEP1+0.10
  33. ADM2+0.10
  34. STX1A+0.10
  35. SLC7A11+0.10
  36. C16orf59+0.10
  37. MEX3A+0.10
  38. ECEL1+0.09
  39. FAM155B+0.09
  40. CDH24−0.09
  41. B3GNT6+0.09
  42. COL5A1−0.09
  43. COL10A1+0.09
  44. CHRNA5+0.09
  45. GAD1+0.09
  46. PERM1+0.09
  47. FKBP10−0.09
  48. CELSR3+0.09
  49. KRT80−0.09
  50. AQP11+0.09
  51. NFE2L3+0.08
  52. DUSP9+0.08
  53. C17orf96−0.08
  54. RGS17+0.08
  55. ARHGAP40+0.08
  56. SLC24A2+0.08
  57. MMP13+0.08
  58. C20orf144+0.07
  59. GRHL3+0.07
  60. ARHGAP39−0.07
  61. GCNT3+0.07
  62. XDH+0.07
  63. E2F8+0.07
  64. SYNGR4+0.07
  65. RHBG+0.07
  66. PKP3−0.07
  67. SLC22A18AS+0.07
  68. KRT16+0.07
  69. ARHGEF39+0.07
  70. MUC20−0.07
  71. GJB2+0.07
  72. PRR36−0.07
  73. SCRIB−0.06
  74. TFAP2A+0.06
  75. ALPK2+0.06
  76. ECE2+0.06
  77. CCNO+0.06
  78. IL1RL2+0.06
  79. EPCAM−0.06
  80. RHOV−0.06
  81. BCL9−0.06
  82. DONSON+0.06
  83. FA2H−0.06
  84. CARD14+0.06
  85. PLEKHA6−0.06
  86. CYP24A1+0.05
  87. GREB1L−0.05
  88. UNC5CL+0.05
  89. DNAH14+0.05
  90. DMBX1+0.05
  91. GINS1+0.05
  92. BARX2+0.05
  93. PODXL2+0.05
  94. RNFT2−0.04
  95. GAREML−0.04
  96. ADGRF4−0.04
  97. STK32A+0.04
  98. EPHA10+0.04
  99. CBLC+0.04
  100. OVOL1−0.04
  101. PAX9−0.04
  102. PPP1R14D+0.04
  103. SYT7+0.04
  104. B3GNT3+0.04
  105. SAPCD2+0.04
  106. COMP−0.04
  107. DEPDC1+0.04
  108. ITGA11−0.04
  109. XRCC2+0.04
  110. ASPM+0.04
  111. CILP2+0.04
  112. MMP1+0.04
  113. COL5A2−0.04
  114. ANO7+0.03
  115. ARHGAP11A−0.03
  116. CEACAM5−0.03
  117. MICALL2+0.03
  118. TMEM132A−0.03
  119. POLQ+0.03
  120. ADAMTS16−0.03
  121. FAM72C−0.03
  122. TRIM2−0.03
  123. ARL9−0.03
  124. C19orf26−0.03
  125. EFNA5−0.03
  126. ADAMTS14+0.03
  127. TMEM184A+0.03
  128. MANEAL+0.03
  129. KIF14+0.03
  130. FAM72D−0.03
  131. FOXM1+0.02
  132. SULF1−0.02
  133. CASC5+0.02
  134. DIO2−0.02
  135. CAMK2N2+0.02
  136. CASKIN1+0.02
  137. LINGO1+0.02
  138. COL22A1+0.02
  139. BAIAP2L1−0.02
  140. AKR7A3+0.02
  141. CENPA+0.02
  142. FRMD5+0.02
  143. MAST1+0.02
  144. SRRM3−0.02
  145. LRRC20−0.02
  146. YBX2+0.02
  147. CLCN2−0.02
  148. RECQL4+0.02
  149. MYEOV+0.01
  150. MCM8−0.01
  151. PLOD2−0.01
  152. CDC25C+0.01
  153. FAP+0.01
  154. IQGAP3+0.01
  155. OR51E1−0.01
  156. PRR19−0.01
  157. DNAJC22+0.01
  158. CCDC150+0.01
  159. HCN3−0.01
  160. IGSF9+0.01
  161. KIF4A+0.01
  162. PHKA1+0.01
  163. SMIM22−0.01
  164. KCNQ3+0.01
  165. P4HA3+0.01
  166. GSG2+0.01
  167. PITX1+0.01
  168. RCOR2−0.01
  169. MFAP2−0.01
  170. SPC25+0.01
  171. RAC3+0.01
  172. B4GALT2−0.01
  173. PTGFRN−0.00
  174. SCG5+0.00
  175. PGF+0.00
  176. PVRL4+0.00
  177. CP+0.00
  178. LGI2+0.00
  179. TOX3−0.00
  180. SIX1−0.00
  181. GTSE1+0.00
  182. GPRIN1−0.00
  183. C19orf48+0.00
  184. DNMT3B+0.00
Figure 3. Standardized elastic-net coefficients of the 204 genes selected to separate lung adenocarcinoma from normal lung, largest first.

An elastic-net logistic regression was trained on the 300 top-ranked candidates to tell tumor from normal tissue. Its Held-out AUCHow well an elastic-net model separates tumor from normal tissue, measured with nested cross-validation on samples the model did not train on. It describes tissue, not the accuracy of a blood test. is 0.999, from nested five-fold cross-validation.

Before training, the TCGA-versus-GTEx offset was removed from the expression matrix with the tumor/normal contrast protected, as in the tissue comparison. That correction is fitted once on all samples, so the held-out AUC is not fully independent of it.

This number describes tumor and normal tissue, where separation is expected to be near perfect. It is not the accuracy of a blood test: that has to be measured in plasma from patients and controls.

Association with survival

Gene0.250.5124HR per SD (95% CI)q-value
  1. ANLN1.34 (1.16–1.54)0.0099
  2. HSF2BP1.30 (1.12–1.50)0.020
  3. ASPM1.29 (1.12–1.48)0.020
  4. FAM83A1.28 (1.09–1.50)0.024
  5. CDC25C1.27 (1.11–1.47)0.021
  6. KIF4A1.27 (1.10–1.46)0.021
  7. CENPF1.27 (1.10–1.46)0.021
  8. EXO11.26 (1.10–1.45)0.021
  9. CDCA21.25 (1.09–1.44)0.021
  10. PBK1.25 (1.09–1.43)0.021
  11. NCAPG1.25 (1.09–1.43)0.021
  12. KIF141.25 (1.09–1.43)0.021
  13. DEPDC11.23 (1.07–1.42)0.035
  14. SKA31.23 (1.07–1.41)0.035
  15. MFI21.23 (1.06–1.41)0.044
  16. SPC251.22 (1.07–1.40)0.035
  17. CKAP2L1.22 (1.07–1.40)0.037
longer PFIshorter PFI
Figure 4. Hazard ratio per standard deviation of tumor expression with 95% confidence interval, log scale, for the 17 genes with FDR < 0.05.

For the 150 top-ranked candidates, a Cox model relates tumor expression, as a continuous value, to progression-free interval in 500 patients (206 events). No high/low cutpoint is searched for, since optimized cutpoints inflate false positives.

A Hazard ratio per SDFrom a Cox model with the gene’s tumor expression as a continuous variable: the change in hazard for each one-standard-deviation increase. Above 1, higher expression goes with a shorter time to the event; below 1, with a longer one. above 1 means higher expression goes with a shorter progression-free interval. These are associations in tissue, not evidence that a blood level predicts outcome.

Caveats for LUAD

  • The blood comparison sets TCGA tumors against GTEx blood. Study and biology cannot be separated there, which is why genes made by blood immune cells are removed as well.

Limitations that apply to every cancer type