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Evolutionary characterization of lung cancer metastasis

delete2026-04-29
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OA
AI
S
Sonya Hessey
A
Abigail Bunkum
A
Ariana Huebner
K
Kerstin Haase
K
Kristiana Grigoriadis
C
Cristina Naceur‐Lombardelli
W
Wing Kin Liu
C
Caitlin F. Harrigan
C
Charlotte Grieco
D
Daniele Marinelli
B
Boyue Ding
C
Carlos Martínez‐Ruiz
P
Piotr Pawlik
M
Mark S. Hill
O
Olivia Lucas
C
Corentin Richard
O
Oriol Pich
K
Kerstin Thol
T
Takahiro Karasaki
S
Sophia Ward
F
Foteini Athanasopoulou
M
Monica Sivakumar
S
Selvaraju Veeriah
A
Antonia Toncheva
A
Andrew J. Rowan
P
Paulina Prymas
H
Hayley Bridger
M
Miriam Mitchison
E
Elaine Borg
M
Mary Falzon
I
Ian Proctor
U
Ula Mahadeva
A
Anna Green
M
Martin D. Forster
S
Sarah Benafif
T
Tanya Ahmad
S
Siow Ming Lee
D
Dionysis Papadatos-Pastos
B
Babu Naidu
G
Gerald Langman
M
Matthew G. Krebs
P
Pedro Oliveira
F
Fiona H. Blackhall
Y
Yvonne Summers
J
Jamie Weaver
J
John Le Quesne
A
Anne Thomas
C
Cathy Richards
D
Dean A. Fennell
S
Sanjay Jogai
J
Judith Cave
P
Patricia Roxburgh
S
Sioban Fraser
A
Alan Kirk
K
Kevin G. Blyth
P
Peter Russell
C
Crispin T. Hiley
A
Allan Hackshaw
D
David A. Moore
S
Simone Zaccaria *
N
Nicholas McGranahan *
C
Charles Swanton *
M
Mariam Jamal‐Hanjani *
DOI:10.1038/s41586-026-10428-4delete
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Abstract

Abstract

En 中文
Limited understanding of the biological processes that govern metastatic dissemination hinders its prevention and treatment1. Here, using 501 longitudinally collected primary and metastatic tumour samples from 24 patients with non-small cell lung cancer (NSCLC) enrolled in the TRACERx lung study and PEACE autopsy programme, we infer tumour evolution from diagnosis to death. With DNA-sequencing data encompassing 70% of the metastases that were radiologically detected before death and paired multi-region sampled primary tumours, we show that the genomes of metastases diverge markedly from those of their ancestral primary tumour, with additional driver alterations and genome doubling events occurring after metastatic dissemination. In 62.5% of patients, multiple primary tumour subclones disseminated, each founding a distinct metastasis. These metastases served as sources of onward spread: more than half of the metastases sampled were seeded by other metastases. The duration that metastases existed in situ influenced their likelihood of seeding further metastases. Most metastatic migrations started and ended in the same anatomical cavity. The few subclones that exited the thorax to seed metastases disseminated widely and were enriched for somatic copy-number alterations, suggesting that chromosomal instability may facilitate extrathoracic spread. This spatial and temporal evolutionary analysis sheds light on the extent of metastatic diversity and seeding in advanced NSCLC—which tends to be underestimated in single metastasis biopsies—and identifies genomic and clinical mediators of metastatic progression. DNA-sequencing data from primary tumours and paired metastases from participants in the TRACERx lung study and PEACE autopsy programme are used to analyse the metastatic diversity of advanced non-small cell lung cancer and the seeding patterns that underpin it.
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