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Multiple facets of NF-κB in the heart: to be or not to NF-κB
Joseph W Gordon1, James A Shaw, Lorrie A Kirshenbaum
1Institute of Cardiovascular Sciences, St. Boniface General Hospital Research Centre, Winnipeg, Manitoba, Canada.
Insights
Nuclear factor kappa B (NF-κB) plays a dual role in heart failure, offering protection in acute injury but causing damage with prolonged activation. Understanding NF-κB
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cellular Signaling
Background:
- Heart failure progression involves cardiac myocyte loss via necrosis, apoptosis, and autophagy.
- Investigating molecular regulators of cell death pathways is crucial for therapeutic targets.
- Nuclear factor kappa B (NF-κB) is a transcription factor family involved in cell survival and inflammation.
Purpose of the Study:
- To elucidate the mechanisms behind the differential effects of NF-κB on cardiac cell fate.
- To propose a novel paradigm explaining NF-κB's context-dependent roles in myocardial injury.
- To identify potential therapeutic strategies targeting NF-κB signaling in heart failure.
Main Methods:
- Review and synthesis of existing literature on NF-κB signaling in cardiac myocytes.
- Analysis of studies investigating NF-κB's role in acute versus chronic cardiac conditions.
- Hypothesizing a mechanistic model based on timing, duration, and cellular context of NF-κB activation.
Main Results:
- NF-κB demonstrates cardioprotective effects during acute hypoxia and reperfusion injury.
- Prolonged NF-κB activation promotes heart failure through chronic inflammation and endoplasmic reticulum stress.
- Differential outcomes of NF-κB signaling are linked to its activation kinetics and cellular environment.
Conclusions:
- The timing, duration, and cellular context of NF-κB activation critically determine its impact on cardiac cell fate.
- A nuanced understanding of NF-κB signaling is essential for developing targeted heart failure therapies.
- Future interventions may involve modulating NF-κB responses to mitigate myocardial injury and prevent heart failure progression.
Abstract:
The progression from cardiac injury to symptomatic heart failure has been intensely studied over the last decade, and is largely attributable to a loss of functional cardiac myocytes through necrosis, intrinsic and extrinsic apoptosis pathways and autophagy. Therefore, the molecular regulation of these cellular programs has been rigorously investigated in the hopes of identifying a potential cell target that could promote cell survival and/or inhibit cell death to avert, or at least prolong, the degeneration toward symptomatic heart failure. The nuclear factor (NF)-κB super family of transcription factors has been implicated in the regulation of immune cell maturation, cell survival, and inflammation in many cell types, including cardiac myocytes. Recent studies have shown that NF-κB is cardioprotective during acute hypoxia and reperfusion injury. However, prolonged activation of NF-κB appears to be detrimental and promotes heart failure by eliciting signals that trigger chronic inflammation through enhanced elaboration of cytokines including tumor necrosis factor α, interleukin-1, and interleukin-6, leading to endoplasmic reticulum stress responses and cell death. The underlying mechanisms that account for the multifaceted and differential outcomes of NF-κB on cardiac cell fate are presently unknown. Herein, we posit a novel paradigm in which the timing, duration of activation, and cellular context may explain mechanistically the differential outcomes of NF-κB signaling in the heart that may be essential for future development of novel therapeutic interventions designed to target NF-κB responses and heart failure following myocardial injury.
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