Oxidative stress is a shared characteristic of ME/CFS and Long COVID

V Vishnu Shankar (Program in Immunology, Stanford University School of Medicine) J Julie Wilhelmy (Myalgic Encephalomyelitis/Chronic Fatigue Syndrome Collaborative Research Center at Stanford, Stanford Genome Technology Center, Stanford University School of Medicine) E Ellis J. Curtis (Department of Pathology, Stanford University School of Medicine, Stanford University) B Basil Michael L Layla Cervantes (Myalgic Encephalomyelitis/Chronic Fatigue Syndrome Collaborative Research Center at Stanford, Stanford Genome Technology Center, Stanford University School of Medicine) V Vamsee Mallajosyula (Institute of Immunity, Transplantation and Infection, Stanford University) R Ronald W. Davis (Department of Biochemistry, School of Medicine, Stanford University) M Michael Snyder (Department of Genetics, Stanford University School of Medicine) S Shady Younis (Division of Immunology and Rheumatology, Department of Medicine, Stanford University School of Medicine) W William H. Robinson S Sadasivan Shankar (SLAC National Accelerator Laboratory) P Paul S. Mischel H Hector Bonilla (Division of Infectious Diseases and Geographic Medicine, Department of Medicine, Stanford University School of Medicine) M Mark M. Davis (Institute of Immunity, Transplantation and Infection, Stanford University)

Abstract

Over 65 million individuals worldwide are estimated to have Long COVID (LC), a complex multisystemic condition marked by fatigue, post-exertional malaise, and other symptoms resembling myalgic encephalomyelitis/chronic fatigue syndrome (ME/CFS). With no clinically approved treatments or reliable diagnostic markers, there is an urgent need to define the molecular underpinnings of these conditions. By studying bioenergetic characteristics of peripheral blood lymphocytes in 25 healthy controls, 27 ME/CFS, and 20 LC donors, we find both ME/CFS and LC donors exhibit signs of elevated oxidative stress, especially in the memory subset. Using a combination of flow cytometry, RNA-seq, mass spectrometry, and systems chemistry analysis, we observed aberrations in reactive oxygen species (ROS) clearance pathways including elevated glutathione levels, decreases in mitochondrial superoxide dismutase protein levels, and glutathione peroxidase 4–mediated lipid oxidative damage. Strikingly, these redox pathways changes show sex-specific trends. While ME/CFS females exhibit higher total ROS and mitochondrial calcium levels, males have normal ROS levels, with pronounced mitochondrial lipid oxidative damage. In females, these higher ROS levels correlate with T cell hyperproliferation, consistent with the known role of elevated ROS in initiating proliferation. This hyperproliferation can be attenuated by metformin, suggesting this Food and Drug Administration (FDA)-approved drug as a possible treatment, as also suggested by a recent clinical study of LC patients. Moreover, these results suggest a shared mechanistic basis for the systemic phenotypes of ME/CFS and LC, which can be detected by quantitative blood cell measurements, and that effective, patient-tailored drugs might be discovered using standard lymphocyte stimulation assays.

Article Details

Volume / Issue Vol. 122, Issue 28
Published July 15, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

V

Vishnu Shankar

Program in Immunology, Stanford University School of Medicine

J

Julie Wilhelmy

Myalgic Encephalomyelitis/Chronic Fatigue Syndrome Collaborative Research Center at Stanford, Stanford Genome Technology Center, Stanford University School of Medicine

E

Ellis J. Curtis

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

B

Basil Michael

L

Layla Cervantes

Myalgic Encephalomyelitis/Chronic Fatigue Syndrome Collaborative Research Center at Stanford, Stanford Genome Technology Center, Stanford University School of Medicine

V

Vamsee Mallajosyula

Institute of Immunity, Transplantation and Infection, Stanford University

R

Ronald W. Davis

Department of Biochemistry, School of Medicine, Stanford University

M

Michael Snyder

Department of Genetics, Stanford University School of Medicine

S

Shady Younis

Division of Immunology and Rheumatology, Department of Medicine, Stanford University School of Medicine

W

William H. Robinson

S

Sadasivan Shankar

SLAC National Accelerator Laboratory

P

Paul S. Mischel

H

Hector Bonilla

Division of Infectious Diseases and Geographic Medicine, Department of Medicine, Stanford University School of Medicine

M

Mark M. Davis

Institute of Immunity, Transplantation and Infection, Stanford University