State-dependent evolutionary models reveal modes of solid tumour growth

Author:

Lewinsohn Maya A.ORCID,Bedford Trevor,Müller Nicola F.ORCID,Feder Alison F.ORCID

Abstract

AbstractSpatial properties of tumour growth have profound implications for cancer progression, therapeutic resistance and metastasis. Yet, how spatial position governs tumour cell division remains difficult to evaluate in clinical tumours. Here, we demonstrate that faster division on the tumour periphery leaves characteristic genetic patterns, which become evident when a phylogenetic tree is reconstructed from spatially sampled cells. Namely, rapidly dividing peripheral lineages branch more extensively and acquire more mutations than slower-dividing centre lineages. We develop a Bayesian state-dependent evolutionary phylodynamic model (SDevo) that quantifies these patterns to infer the differential division rates between peripheral and central cells. We demonstrate that this approach accurately infers spatially varying birth rates of simulated tumours across a range of growth conditions and sampling strategies. We then show that SDevo outperforms state-of-the-art, non-cancer multi-state phylodynamic methods that ignore differential sequence evolution. Finally, we apply SDevo to single-time-point, multi-region sequencing data from clinical hepatocellular carcinomas and find evidence of a three- to six-times-higher division rate on the tumour edge. With the increasing availability of high-resolution, multi-region sequencing, we anticipate that SDevo will be useful in interrogating spatial growth restrictions and could be extended to model non-spatial factors that influence tumour progression.

Funder

Achievement Rewards for College Scientists Foundation

United States National Library of Medicine Big Data in Genomics & Neuroscience training grant

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Howard Hughes Medical Institute

U.S. Department of Health & Human Services | NIH | National Institute of General Medical Sciences

Adolph C. and Mary Sprague Miller Institute for Basic Research in Science, University of California Berkeley

U.S. Department of Health & Human Services | NIH | National Cancer Institute

Publisher

Springer Science and Business Media LLC

Subject

Ecology,Ecology, Evolution, Behavior and Systematics

Reference105 articles.

1. Greenspan, H. P. Models for the growth of a solid tumor by diffusion. Stud. Appl. Math. 51, 317–340 (1972).

2. Freyer, J. P. & Sutherland, R. M. Proliferative and clonogenic heterogeneity of cells from EMT6/Ro multicellular spheroids induced by the glucose and oxygen supply. Cancer Res. 46, 3513–3520 (1986).

3. Freyer, J. P. & Sutherland, R. M. Regulation of growth saturation and development of necrosis in EMT6/Ro multicellular spheroids by the glucose and oxygen supply. Cancer Res. 46, 3504–3512 (1986).

4. Ward, J. P. & King, J. R. Mathematical modelling of avascular-tumour growth. Math. Med. Biol. 14, 39–69 (1997).

5. Petrulio, C. A., Kim-Schulze, S. & Kaufman, H. L. The tumour microenvironment and implications for cancer immunotherapy. Expert Opin. Biol. Ther. 6, 671–684 (2006).

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