TY - JOUR
T1 - Mitochondrial DNA-Mediated Immune Activation After Resuscitation From Cardiac Arrest
AU - Rolland, Tyler J.
AU - Hudson, Emily R.
AU - Graser, Luke A.
AU - Zahra, Sumbule
AU - Cucinotta, Daniel
AU - Sonkawade, Swati D.
AU - Sharma, Umesh C.
AU - Weil, Brian R.
N1 - Publisher Copyright:
© 2025 The Author(s). Published on behalf of the American Heart Association, Inc., by Wiley. This is an open access article under the terms of the Creative Commons Attribution-NonCommercial- NoDerivs License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non-commercial and no modifications or adaptations are made.
PY - 2025/12/30
Y1 - 2025/12/30
N2 - BACKGROUND: Postcardiac arrest syndrome is characterized by systemic inflammation that contributes to poor outcomes after resuscitation from sudden cardiac arrest. Mitochondrial DNA (mtDNA) has been implicated as a proinflammatory stimulus in other contexts, but its role in postcardiac arrest syndrome is unclear. We determined if postcardiac arrest syndrome is characterized by a rise in circulating mtDNA, how mtDNA activates immune cells, and if targeting mtDNA-sensing pathways attenuates leukocyte activation. METHODS: Plasma mtDNA and nuclear DNA levels were measured ~4-hours after return of spontaneous circulation following sudden cardiac arrest in swine (n=8) and humans (n=57). Additionally, porcine peripheral blood mononuclear cells were treated with mtDNA or extracellular vesicles (EVs) isolated from porcine plasma collected after return of spontaneous circulation. Pharmacological agents were used to inhibit TLR9 (toll-like receptor 9)-and cGAS (cyclic GMP–AMP synthase)-mediated mtDNA sensing. RESULTS: A ~250-fold elevation in circulating mtDNA was observed after return of spontaneous circulation in swine despite negligible changes in circulating nuclear DNA, a finding that was corroborated in humans. Circulating mtDNA was largely encapsulated within EVs in both species, suggesting a conserved mechanism of release. In vitro studies demonstrated that peripheral blood mononuclear cell internalization of mtDNA-containing- EVs was required for leukocyte activation. This response was attenuated by EV disruption, DNA degradation, and blockade of TLR9 or cGAS pathways, identifying novel targets to modulate inflammation in postcardiac arrest syndrome. CONCLUSIONS: Brief whole-body ischemia and reperfusion in the context of resuscitation from sudden cardiac arrest elicits mtDNA release, primarily within EVs, that triggers leukocyte activation. Targeting mtDNA release or its downstream sensors may offer a new therapeutic strategy to improve outcomes after sudden cardiac arrest.
AB - BACKGROUND: Postcardiac arrest syndrome is characterized by systemic inflammation that contributes to poor outcomes after resuscitation from sudden cardiac arrest. Mitochondrial DNA (mtDNA) has been implicated as a proinflammatory stimulus in other contexts, but its role in postcardiac arrest syndrome is unclear. We determined if postcardiac arrest syndrome is characterized by a rise in circulating mtDNA, how mtDNA activates immune cells, and if targeting mtDNA-sensing pathways attenuates leukocyte activation. METHODS: Plasma mtDNA and nuclear DNA levels were measured ~4-hours after return of spontaneous circulation following sudden cardiac arrest in swine (n=8) and humans (n=57). Additionally, porcine peripheral blood mononuclear cells were treated with mtDNA or extracellular vesicles (EVs) isolated from porcine plasma collected after return of spontaneous circulation. Pharmacological agents were used to inhibit TLR9 (toll-like receptor 9)-and cGAS (cyclic GMP–AMP synthase)-mediated mtDNA sensing. RESULTS: A ~250-fold elevation in circulating mtDNA was observed after return of spontaneous circulation in swine despite negligible changes in circulating nuclear DNA, a finding that was corroborated in humans. Circulating mtDNA was largely encapsulated within EVs in both species, suggesting a conserved mechanism of release. In vitro studies demonstrated that peripheral blood mononuclear cell internalization of mtDNA-containing- EVs was required for leukocyte activation. This response was attenuated by EV disruption, DNA degradation, and blockade of TLR9 or cGAS pathways, identifying novel targets to modulate inflammation in postcardiac arrest syndrome. CONCLUSIONS: Brief whole-body ischemia and reperfusion in the context of resuscitation from sudden cardiac arrest elicits mtDNA release, primarily within EVs, that triggers leukocyte activation. Targeting mtDNA release or its downstream sensors may offer a new therapeutic strategy to improve outcomes after sudden cardiac arrest.
KW - inflammation
KW - leukocyte mobilization
KW - post-cardiac arrest syndrome
KW - sudden cardiac arrest
UR - https://www.scopus.com/pages/publications/105027116148
U2 - 10.1161/JAHA.125.046414
DO - 10.1161/JAHA.125.046414
M3 - Article
C2 - 41467403
AN - SCOPUS:105027116148
SN - 2047-9980
VL - 15
JO - Journal of the American Heart Association
JF - Journal of the American Heart Association
IS - 1
M1 - e46414
ER -