Exercise intensity and training alter the innate immune cell type and chromosomal origins of circulating cell-free DNA in humans

K Kameron B. Rodrigues (Department of Pathology, Stanford University School of Medicine) Z Ziming Weng Z Zachary A. Graham (Healthspan, Resilience and Performance Research, Florida Institute for Human and Machine Cognition) K Kaleen Lavin (Healthspan, Resilience and Performance Research, Florida Institute for Human and Machine Cognition) J Jeremy McAdam (Healthspan, Resilience and Performance Research, Florida Institute for Human and Machine Cognition) S S. Craig Tuggle (Healthspan, Resilience and Performance Research, Florida Institute for Human and Machine Cognition) B Brandon Peoples (Department of Cell, Developmental and Integrative Biology, University of Alabama at Birmingham) R Regina Seay (Department of Cell, Developmental and Integrative Biology, University of Alabama at Birmingham) S Sufen Yang (Department of Cell, Developmental and Integrative Biology, University of Alabama at Birmingham) M Marcas M. Bamman (Healthspan, Resilience and Performance Research, Florida Institute for Human and Machine Cognition) T Timothy J. Broderick (Healthspan, Resilience and Performance Research, Florida Institute for Human and Machine Cognition) S Stephen B. Montgomery

Abstract

Exercising regularly promotes health, but these benefits are complicated by acute inflammation induced by exercise. A potential source of inflammation is cell-free DNA (cfDNA), yet the cellular origins, molecular causes, and immune system interactions of exercise-induced cfDNA are unclear. To study these, 10 healthy individuals were randomized to a 12-wk exercise program of either high-intensity tactical training (HITT) or traditional moderate-intensity training (TRAD). Blood plasma was collected pre- and postexercise at weeks 0 and 12 and after 4 wk of detraining upon program completion. Whole-genome enzymatic methylation sequencing (EM-seq) with cell-type proportion deconvolution was applied to cfDNA obtained from the 50 plasma samples and paired to concentration measurements for 90 circulating cytokines. Acute exercise increased the release of cfDNA from neutrophils, dendritic cells (DCs), and macrophages proportional to exercise intensity. Exercise training reduced cfDNA released in HITT participants but not TRAD and from DCs and macrophages but not neutrophils. For most participants, training lowered mitochondrial cfDNA at rest, even after detraining. Using a sequencing analysis approach we developed, we concluded that rapid ETosis, a process of cell death where cells release DNA extracellular traps, was the likely source of cfDNA, demonstrated by enrichment of nuclear DNA. Further, several cytokines were induced by acute exercise, such as IL-6, IL-10, and IL-16, and training attenuated the induction of only IL-6 and IL-17F. Cytokine levels were not associated with cfDNA induction, suggesting that these cytokines are not the main cause of exercise-induced cfDNA. Overall, exercise intensity and training modulated cfDNA release and cytokine responses, contributing to the anti-inflammatory effects of regular exercise.

Article Details

Volume / Issue Vol. 122, Issue 3
Published January 21, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

K

Kameron B. Rodrigues

Department of Pathology, Stanford University School of Medicine

Z

Ziming Weng

Z

Zachary A. Graham

Healthspan, Resilience and Performance Research, Florida Institute for Human and Machine Cognition

K

Kaleen Lavin

Healthspan, Resilience and Performance Research, Florida Institute for Human and Machine Cognition

J

Jeremy McAdam

Healthspan, Resilience and Performance Research, Florida Institute for Human and Machine Cognition

S

S. Craig Tuggle

Healthspan, Resilience and Performance Research, Florida Institute for Human and Machine Cognition

B

Brandon Peoples

Department of Cell, Developmental and Integrative Biology, University of Alabama at Birmingham

R

Regina Seay

Department of Cell, Developmental and Integrative Biology, University of Alabama at Birmingham

S

Sufen Yang

Department of Cell, Developmental and Integrative Biology, University of Alabama at Birmingham

M

Marcas M. Bamman

Healthspan, Resilience and Performance Research, Florida Institute for Human and Machine Cognition

T

Timothy J. Broderick

Healthspan, Resilience and Performance Research, Florida Institute for Human and Machine Cognition

S

Stephen B. Montgomery