4.4 Article

Accurate Reconstruction of the Temporal Order of Mutations in Neoplastic Progression

Journal

CANCER PREVENTION RESEARCH
Volume 4, Issue 7, Pages 1135-1144

Publisher

AMER ASSOC CANCER RESEARCH
DOI: 10.1158/1940-6207.CAPR-10-0374

Keywords

-

Categories

Funding

  1. NIH [R03 CA137811, P01 CA91955, P30 CA010815, R01 CA119224]
  2. Pew Charitable Trust
  3. Martha W. Rodgers Charitable Trust
  4. McLean Contributionship
  5. Landon AACR
  6. American Cancer Society [117209-RSG-09-163-01-CNE]
  7. [R01 CA140657]
  8. [T32 HG000046]

Ask authors/readers for more resources

The canonical route from normal tissue to cancer occurs through sequential acquisition of somatic mutations. Many studies have constructed a linear genetic model for tumorigenesis using the genetic alterations associated with samples at different stages of neoplastic progression from cross-sectional data. The common interpretation of these models is that they reflect the temporal order within any given tumor. Linear genetic methods implicitly neglect genetic heterogeneity within a neoplasm; each neoplasm is assumed to consist of one dominant clone. We modeled neoplastic progression of colorectal cancer using an agent-based model of a colon crypt and found clonal heterogeneity within our simulated neoplasms, as observed in vivo. Just 7.3% of cells within neoplasms acquired mutations in the same order as the linear model. In 41% of the simulated neoplasms, no cells acquired mutations in the same order as the linear model. We obtained similarly poor results when comparing the temporal order with oncogenetic tree models inferred from cross-sectional data. However, when we reconstructed the cell lineage of mutations within a neoplasm using several biopsies, we found that 99.7% cells within neoplasms acquired their mutations in an order consistent with the cell lineage mutational order. Thus, we find that using cross-sectional data to infer mutational order is misleading, whereas phylogenetic methods based on sampling intratumor heterogeneity accurately reconstructs the evolutionary history of tumors. In addition, we find evidence that disruption of differentiation is likely the first lesion in progression for most cancers and should be one of the few regularities of neoplastic progression across cancers. Cancer Prev Res; 4(7); 1135-44. (C)2011 AACR.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.4
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available