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Irisin Preserves Cardiac Performance and Insulin Sensitivity in Response to Hemorrhage
Supaporn Kulthinee1, Lijiang Wang1, Naohiro Yano1
1Department of Surgery, Rhode Island Hospital, Brown University, Providence, RI 02903, USA.
Insights
Irisin, a muscle-derived hormone, protects against hemorrhage-induced cardiac dysfunction and insulin resistance. This study demonstrates irisin
Area of Science:
- Endocrinology
- Cardiovascular Physiology
- Metabolic Health
Background:
- Irisin, a fibronectin type III domain containing protein-5 (FNDC5) cleavage product, modulates insulin resistance.
- The protective effects of irisin against hemorrhage-induced organ damage are not well understood.
Purpose of the Study:
- To investigate the protective role of irisin against the adverse effects of simulated hemorrhage in mice.
- To assess irisin's impact on cardiac function, insulin sensitivity, and inflammation post-hemorrhage.
Main Methods:
- Simulated hemorrhage in male CD-1 mice, followed by resuscitation with or without irisin administration.
- Assessment of cardiac function (echocardiography, hemodynamics), insulin sensitivity (glucose tolerance test), and inflammatory markers (ELISA).
- Histological analysis for tissue damage and apoptosis (active-caspase 3).
Main Results:
- Hemorrhage impaired cardiac performance, increased insulin resistance, and reduced irisin levels, while elevating inflammatory cytokines (TNF-α, IL-1).
- Hemorrhage induced skeletal and cardiac muscle edema, inflammation, and apoptosis.
- Irisin treatment significantly improved cardiac function, enhanced insulin sensitivity, and attenuated inflammatory responses and tissue damage.
Conclusions:
- Irisin administration mitigates cardiac dysfunction and insulin resistance following hemorrhage.
- Irisin exhibits protective effects against hemorrhage-induced inflammation and tissue damage, potentially through insulin sensitivity modulation.
Abstract:
Irisin, a cleaved product of the fibronectin type III domain containing protein-5, is produced in the muscle tissue, which plays an important role in modulating insulin resistance. However, it remains unknown if irisin provides a protective effect against the detrimental outcomes of hemorrhage. Hemorrhages were simulated in male CD-1 mice to achieve a mean arterial blood pressure of 35-45 mmHg, followed by resuscitation. Irisin (50 ng/kg) and the vehicle (saline) were administrated at the start of resuscitation. Cardiac function was assessed by echocardiography, and hemodynamics were measured through femoral artery catheterization. A glucose tolerance test was used to evaluate insulin sensitivity. An enzyme-linked immunosorbent assay was performed to detect inflammatory factors in the muscles and blood serum. Western blot was carried out to assess the irisin production in skeletal muscles. Histological analyses were used to determine tissue damage and active-caspase 3 apoptotic signals. The hemorrhage suppressed cardiac performance, as indicated by a reduced ejection fraction and fractional shortening, which was accompanied by enhanced insulin resistance and hyperinsulinemia. Furthermore, the hemorrhage resulted in a marked decrease in irisin and an increase in the production of tumor necrosis factor-α (TNF-α) and interleukin-1 (IL-1). Additionally, the hemorrhage caused marked edema, inflammatory cell infiltration and active-caspase 3 positive signals in skeletal muscles and cardiac muscles. Irisin treatment led to a significant improvement in the cardiac function of animals exposed to a hemorrhage. In addition, irisin treatment improved insulin sensitivity, which is consistent with the suppressed inflammatory cytokine secretion elicited by hemorrhages. Furthermore, hemorrhage-induced tissue edema, inflammatory cell infiltration, and active-caspase 3 positive signaling were attenuated by irisin treatment. The results suggest that irisin protects against damage from a hemorrhage through the modulation of insulin sensitivity.
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