scAmp enables focal gene amplification analysis from single-cell data

M Matthew G. Jones N Natasha E. Weiser (Department of Dermatology, Center for Personal Dynamic Regulomes and Program in Epithelial Biology, Stanford University School of Medicine) K King L. Hung X Xiaowei Yan S Sangya Agarwal J Jens Luebeck A Aditi Gnanasekar S Shu Zhang I Ivy Tsz-Lo Wong J Jun Tang (The Dermatology Department of The First Affiliated Hospital of USTC, Division of Life Sciences and Medicine) B Brooke E. Howitt E Ellis J. Curtis (Department of Pathology, Stanford University School of Medicine, Stanford University) K Kevin Yu (Djavad Mowafaghian Centre for Brain Health, University of British Columbia) J John C. Rose K Katerina Kraft V Valeh Valiollah Pour Amiri L Leena Satpathy V Vineet Bafna P Paul S. Mischel H Howard Y. Chang

Abstract

Abstract Oncogene amplification on extrachromosomal DNA is a common driver of tumor progression and is associated with acquired drug resistance and poor patient survival. While bulk whole genome sequencing studies have revealed the landscape of genes amplified on extrachromosomal DNA in tumors, it remains challenging to study the subclonal heterogeneity and functional (e.g., transcriptomic) consequences of extrachromosomal DNA on tumors. To address this, we introduce scAmp : a probabilistic algorithm for detecting and analyzing extrachromosomal DNA from single-cell datasets. Using well-characterized cell lines, we demonstrate that scAmp has improved specificity over bulk genome sequencing in predicting extrachromosomal DNA status and can resolve the status of chromosomal amplifications that were historically extrachromosomal. We further showcase scAmp by analyzing 73 patient tumors profiled with single-cell assay for transposase-accessible chromatin by sequencing, where we characterize the subclonal evolution of subclones with extrachromosomal DNA and identify the effect of these amplifications on the chromatin accessibility landscape of cancer cells. Finally, we provide proof-of-concept analyses that scAmp aids in the detection of extrachromosomal DNA from clinical histopathology assays. Together, we anticipate that scAmp will broadly enable further studies – both retrospective and prospective – that dissect critical questions of how extrachromosomal DNAs affect cancer cells and the tumors in which they reside.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 08, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (20)

M

Matthew G. Jones

N

Natasha E. Weiser

Department of Dermatology, Center for Personal Dynamic Regulomes and Program in Epithelial Biology, Stanford University School of Medicine

K

King L. Hung

X

Xiaowei Yan

S

Sangya Agarwal

J

Jens Luebeck

A

Aditi Gnanasekar

S

Shu Zhang

I

Ivy Tsz-Lo Wong

J

Jun Tang

The Dermatology Department of The First Affiliated Hospital of USTC, Division of Life Sciences and Medicine

B

Brooke E. Howitt

E

Ellis J. Curtis

Department of Pathology, Stanford University School of Medicine, Stanford University

K

Kevin Yu

Djavad Mowafaghian Centre for Brain Health, University of British Columbia

J

John C. Rose

K

Katerina Kraft

V

Valeh Valiollah Pour Amiri

L

Leena Satpathy

V

Vineet Bafna

P

Paul S. Mischel

H

Howard Y. Chang