Engineering a highly selective, hemoprotein-based scavenger as a carbon monoxide poisoning antidote with no hypertensive effect

M Matthew R. Dent (Heart, Lung, Blood, and Vascular Medicine Institute, Department of Medicine, University of Pittsburgh) A Anthony W. DeMartino (Department of Medicine, University of Maryland School of Medicine) Q Qinzi Xu (Department of Medicine, University of Maryland School of Medicine) X Xiukai Chen (Heart, Lung, Blood, and Vascular Medicine Institute, Department of Medicine, University of Pittsburgh) A Alay Gandhi (Department of Medicine, University of Maryland School of Medicine) H Hyon S. Hwang (Department of Medicine, University of Maryland School of Medicine) K Kaitlin A. Bocian (Heart, Lung, Blood, and Vascular Medicine Institute, Department of Medicine, University of Pittsburgh) J Jacob E. Correnti (Department of Medicine, University of Maryland School of Medicine) Y Youmna Abdelghany (Department of Medicine, University of Maryland School of Medicine) E Elmira Alipour (Department of Physics, Wake Forest University) K K. Burak Ucer (Department of Physics, Wake Forest University) S Stephen R. Baker (Department of Physics, Wake Forest University) A Ajay Ram Srimath Kandada (Department of Physics, Wake Forest University) A Angka Bulbul (Department of Physics, Wake Forest University) D Daniel B. Kim-Shapiro (Department of Physics, Wake Forest University) J Jason J. Rose (Department of Medicine, University of Maryland School of Medicine) J Jesus Tejero M Mark T. Gladwin (Department of Medicine, University of Maryland School of Medicine)

Abstract

Carbon monoxide (CO) poisoning causes 50,000 to 100,000 emergency department visits and ~1,500 deaths in the United States annually. Current treatments are limited to supplemental and/or hyperbaric oxygen to accelerate CO elimination. Even with oxygen therapy, nearly half of CO poisoning survivors suffer long-term cardiac and neurocognitive deficits related to slow CO clearance, highlighting a need for point of care antidotal therapies. Given the natural interaction between CO and ferrous heme, we hypothesized that the hemoprotein RcoM, a transcriptional regulator of microbial CO metabolism, would make an ideal platform for CO-selective scavenging from endogenous hemoproteins. We engineered an RcoM truncate (RcoM-HBD-CCC) that exhibits high CO affinity ( K a,CO = 2.8 × 10 10 M −1 ), remarkable selectivity for CO over oxygen ( K a,O2 = 1.4 × 10 5 M −1 ; K a,CO / K a,O2 = 1.9 × 10 5 ), thermal stability (T m = 72 °C), and slow autoxidation rate ( k ox = 1.1 h −1 ). In a murine model of acute CO poisoning, infused RcoM-HBD-CCC accelerated CO clearance from hemoglobin in red blood cells (RBCs) and was rapidly excreted in urine. Moreover, infused RcoM-HBD-CCC elicited minimal hypertension in mice compared to infused globins (hemoglobin, myoglobin, and neuroglobin), attributed to a comparatively limited reactivity toward nitric oxide (NO) via dioxygenation [ k NOD (RcoM) = 6 to 8 × 10 6 M −1 s −1 vs k NOD (Hb) = 6 to 8 × 10 7 M −1 s −1 ]. These data suggest that RcoM-HBD-CCC is a safe, selective, and efficacious CO scavenger. By limiting hypertension through minimal NO scavenging, RcoM-HBD-CCC improves end-organ adverse effects compared with other hemoprotein-based therapeutics.

Article Details

Volume / Issue Vol. 122, Issue 32
Published August 12, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (18)

M

Matthew R. Dent

Heart, Lung, Blood, and Vascular Medicine Institute, Department of Medicine, University of Pittsburgh

A

Anthony W. DeMartino

Department of Medicine, University of Maryland School of Medicine

Q

Qinzi Xu

Department of Medicine, University of Maryland School of Medicine

X

Xiukai Chen

Heart, Lung, Blood, and Vascular Medicine Institute, Department of Medicine, University of Pittsburgh

A

Alay Gandhi

Department of Medicine, University of Maryland School of Medicine

H

Hyon S. Hwang

Department of Medicine, University of Maryland School of Medicine

K

Kaitlin A. Bocian

Heart, Lung, Blood, and Vascular Medicine Institute, Department of Medicine, University of Pittsburgh

J

Jacob E. Correnti

Department of Medicine, University of Maryland School of Medicine

Y

Youmna Abdelghany

Department of Medicine, University of Maryland School of Medicine

E

Elmira Alipour

Department of Physics, Wake Forest University

K

K. Burak Ucer

Department of Physics, Wake Forest University

S

Stephen R. Baker

Department of Physics, Wake Forest University

A

Ajay Ram Srimath Kandada

Department of Physics, Wake Forest University

A

Angka Bulbul

Department of Physics, Wake Forest University

D

Daniel B. Kim-Shapiro

Department of Physics, Wake Forest University

J

Jason J. Rose

Department of Medicine, University of Maryland School of Medicine

J

Jesus Tejero

M

Mark T. Gladwin

Department of Medicine, University of Maryland School of Medicine