Correlates and consequences of clonal hematopoiesis expansion rate: a 16-year longitudinal study of 6976 women

Y Yash Pershad M Md. Mesbah Uddin (2Cardiovascular Research Center and Center for Genomic Medicine, Department of Medicine, Massachusetts General Hospital, Boston, MA) L Liying Xue J Jeffrey Haessler J Jason M. Collins (5Department of Epidemiology, Gillings School of Global Public Health, The University of North Carolina at Chapel Hill, Chapel Hill, NC) T Taralynn M. Mack E Elena Glick (6Department of Human Genetics, University of Michigan, Ann Arbor, MI) V Veronica Glaser (6Department of Human Genetics, University of Michigan, Ann Arbor, MI) K Kun Zhao S Siddhartha Jaiswal J JoAnn E. Manson U Urvashi Pandey (4Division of Public Health Sciences, Fred Hutchinson Cancer Center, Seattle, WA) P Pinkal Desai P Pradeep Natarajan M Michael C. Honigberg C Charles Kooperberg (Division of Public Health Sciences, Fred Hutchinson Cancer Center, Seattle, WA, USA.) E Eric A. Whitsel J Jacob O. Kitzman (6Department of Human Genetics, University of Michigan, Ann Arbor, MI) A Alexander G. Bick A Alexander P. Reiner

Abstract

Abstract Clonal hematopoiesis of indeterminate potential (CHIP) is associated with increased mortality and malignancy risk, yet the determinants of clonal expansion remain poorly understood. We performed sequencing at a depth of coverage of >4000× for CHIP mutations in 6976 postmenopausal women from the Women’s Health Initiative (WHI) at 2 time points: the WHI baseline examination and ∼16 years later at the Long Life Study (LLS) visit. Among 3685 CH mutations detected at baseline (variant allele fraction [VAF] of ≥0.5%), 24% were not detected at LLS, 26% were micro-CH at LLS (0.5% ≤ VAF < 2%), and 50% were CHIP (VAF ≥ 2%). We confirmed that clonal expansion is highly dependent on initial clone size and CHIP driver gene, with SF3B1 and JAK2 mutations exhibiting the fastest growth rate. We identified germ line variants in TERT, IL6R, TCL1A, and MSI2 that modulate clonal expansion rate. Measured baseline leukocyte telomere length showed differential effects on incident CHIP risk, with shorter baseline leukocyte telomere length predisposing to incident PPM1D mutations and longer baseline leukocyte telomere length favoring incident DNMT3A mutations. We discovered that the IL6R missense variant p.Asp358Ala specifically impairs TET2 clonal expansion, supported by direct measurements of soluble interleukin-6 receptor and interleukin-6. Faster clonal growth rate was associated with increased risk of cytopenia, leukemia, and all-cause mortality. Notably, CHIP clonal expansion rate mediated 34.4% and 43.7% of the clonal hematopoiesis risk score’s predictive value for leukemia and all-cause mortality, respectively. These findings reveal key biological determinants of CHIP progression and suggest that incorporating growth rate measurements could enhance risk stratification.

Article Details

Journal Blood
Volume / Issue Vol. 146, Issue 9
Published August 28, 2025
Pages 1078-1087
ISSN 0006-4971
Publisher Elsevier BV

Journal Info

Blood

Elsevier BV

ISSN: 0006-4971 Health Sciences

Authors (20)

Y

Yash Pershad

M

Md. Mesbah Uddin

2Cardiovascular Research Center and Center for Genomic Medicine, Department of Medicine, Massachusetts General Hospital, Boston, MA

L

Liying Xue

J

Jeffrey Haessler

J

Jason M. Collins

5Department of Epidemiology, Gillings School of Global Public Health, The University of North Carolina at Chapel Hill, Chapel Hill, NC

T

Taralynn M. Mack

E

Elena Glick

6Department of Human Genetics, University of Michigan, Ann Arbor, MI

V

Veronica Glaser

6Department of Human Genetics, University of Michigan, Ann Arbor, MI

K

Kun Zhao

S

Siddhartha Jaiswal

J

JoAnn E. Manson

U

Urvashi Pandey

4Division of Public Health Sciences, Fred Hutchinson Cancer Center, Seattle, WA

P

Pinkal Desai

P

Pradeep Natarajan

M

Michael C. Honigberg

C

Charles Kooperberg

Division of Public Health Sciences, Fred Hutchinson Cancer Center, Seattle, WA, USA.

E

Eric A. Whitsel

J

Jacob O. Kitzman

6Department of Human Genetics, University of Michigan, Ann Arbor, MI

A

Alexander G. Bick

A

Alexander P. Reiner