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A Modified Simple Method for Induction of Myocardial Infarction in Mice
Published on: December 3, 2021
Hearts deficient in both Mfn1 and Mfn2 are protected against acute myocardial infarction
A R Hall1, N Burke1, R K Dongworth1
1The Hatter Cardiovascular Institute, University College London, London, UK.
Abstract:
Mitochondria alter their shape by undergoing cycles of fusion and fission. Changes in mitochondrial morphology impact on the cellular response to stress, and their interactions with other organelles such as the sarcoplasmic reticulum (SR). Inhibiting mitochondrial fission can protect the heart against acute ischemia/reperfusion (I/R) injury. However, the role of the mitochondrial fusion proteins, Mfn1 and Mfn2, in the response of the adult heart to acute I/R injury is not clear, and is investigated in this study. To determine the effect of combined Mfn1/Mfn2 ablation on the susceptibility to acute myocardial I/R injury, cardiac-specific ablation of both Mfn1 and Mfn2 (DKO) was initiated in mice aged 4-6 weeks, leading to knockout of both these proteins in 8-10-week-old animals. This resulted in fragmented mitochondria (electron microscopy), decreased mitochondrial respiratory function (respirometry), and impaired myocardial contractile function (echocardiography). In DKO mice subjected to in vivo regional myocardial ischemia (30 min) followed by 24 h reperfusion, myocardial infarct size (IS, expressed as a % of the area-at-risk) was reduced by 46% compared with wild-type (WT) hearts. In addition, mitochondria from DKO animals had decreased MPTP opening susceptibility (assessed by Ca(2+)-induced mitochondrial swelling), compared with WT hearts. Mfn2 is a key mediator of mitochondrial/SR tethering, and accordingly, the loss of Mfn2 in DKO hearts reduced the number of interactions measured between these organelles (quantified by proximal ligation assay), attenuated mitochondrial calcium overload (Rhod2 confocal microscopy), and decreased reactive oxygen species production (DCF confocal microscopy) in response to acute I/R injury. No differences in isolated mitochondrial ROS emissions (Amplex Red) were detected in response to Ca(2+) and Antimycin A, further implicating disruption of mitochondria/SR tethering as the protective mechanism. In summary, despite apparent mitochondrial dysfunction, hearts deficient in both Mfn1 and Mfn2 are protected against acute myocardial infarction due to impaired mitochondria/SR tethering.
Insights
Mice lacking mitochondrial fusion proteins Mfn1 and Mfn2 showed reduced heart attack size after ischemia/reperfusion injury. This protection was linked to disrupted mitochondria-sarcoplasmic reticulum connections, not overall mitochondrial function.
Area of Science:
- Cardiovascular Biology
- Mitochondrial Biology
- Cellular Stress Response
Background:
- Mitochondrial dynamics, including fusion and fission, are crucial for cellular health and stress responses.
- Mitochondrial morphology impacts organelle interactions, such as with the sarcoplasmic reticulum (SR).
- Inhibiting mitochondrial fission offers protection against cardiac ischemia/reperfusion (I/R) injury, but the role of fusion proteins is unclear.
Purpose of the Study:
- To investigate the role of mitochondrial fusion proteins Mfn1 and Mfn2 in adult heart response to acute I/R injury.
- To determine the effect of combined Mfn1/Mfn2 ablation on myocardial susceptibility to I/R injury.
Main Methods:
- Cardiac-specific double knockout (DKO) mice lacking Mfn1 and Mfn2 were generated.
- Mice underwent in vivo regional myocardial I/R injury (30 min ischemia/24 h reperfusion).
- Mitochondrial morphology, respiratory function, contractile function, infarct size, MPTP opening, mitochondria-SR tethering, calcium handling, and ROS production were assessed.
Main Results:
- DKO hearts exhibited fragmented mitochondria, reduced respiratory function, and impaired contractile function.
- Myocardial infarct size was significantly reduced (46%) in DKO mice compared to wild-type.
- Reduced Mfn2 led to decreased mitochondria-SR tethering, attenuated mitochondrial calcium overload, and lower ROS production during I/R injury.
Conclusions:
- Despite signs of mitochondrial dysfunction, hearts deficient in Mfn1 and Mfn2 are protected against acute myocardial infarction.
- The protective mechanism involves impaired mitochondria-SR tethering, leading to reduced calcium overload and ROS production.
- Mfn1 and Mfn2 play a critical role in cardiac I/R injury response through their regulation of mitochondria-SR interactions.
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