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Updated: Jun 25, 2025

Measuring Caspase Activity Using a Fluorometric Assay or Flow Cytometry
Published on: March 24, 2023
Phosphorylation of caspase-8 by RSKs via organ-constrained effects controls the sensitivity to TNF-induced death
Peng He1, Tingting Ai2, Muzhen Qiao2
1Research Unit of Cellular Stress of CAMS, Xiang'an Hospital of Xiamen University, Cancer Research Center of Xiamen University, School of Medicine, Faculty of Medicine and Life Sciences, Xiamen University, Xiamen, 361102, China.
Abstract:
Caspase-8 (Casp8) serves as an initiator of apoptosis or a suppressor of necroptosis in context-dependent manner. Members of the p90 RSK family can phosphorylate caspase-8 at threonine-265 (T265), which can inactivate caspase-8 for bypassing caspase-8-mediated blockade of necroptosis and can also decrease caspase-8 level by promoting its degradation. Mutating T265 in caspase-8 to alanine (A) in mice blocked TNF-induced necroptotic cecum damage but resulted in unexpectedly massive injury in the small intestine. Here, we show RSK1, RSK2, and RSK3 redundantly function in caspase-8 phosphorylation, and the duodenum is the most severely affected part of the small intestine when T265 phosphorylation of caspase-8 was prevented. Eliminating caspase-8 phosphorylation resulted in a duodenum-specific increase in basal caspase-8 protein level, which shall be responsible for the increased sensitivity to TNF-induced damage. Apoptosis of intestinal epithelial cells (IECs) was predominant in the duodenum of TNF-treated Rsk1-/-Rsk2-/-Rsk3-/- and Casp8T265A/T265A mice, though necroptosis was also observed. The heightened duodenal injury amplified systemic inflammatory responses, as evidenced by the contribution of hematopoietic cells to the sensitization of TNF-induced animal death. Further analysis revealed that hematopoietic and non-hematopoietic cells contributed differentially to cytokine production in response to the increased cell death. Collectively, RSKs emerges as a previously overlooked regulator that, via tissue/organ-constrained inactivating caspase-8 and/or downregulating caspase-8 protein level, controls the sensitivity to TNF-induced organ injury and animal death.
Insights
p90 RSK kinases inactivate caspase-8 (Casp8) by phosphorylation, preventing necroptosis. Preventing this phosphorylation unexpectedly caused severe duodenal injury and increased sensitivity to TNF-induced death.
Area of Science:
- Cellular Biology
- Immunology
- Molecular Biology
Background:
- Caspase-8 (Casp8) plays a dual role in apoptosis and necroptosis.
- p90 RSK kinases phosphorylate Casp8 at Threonine-265 (T265), inhibiting its function.
- Previous studies showed T265 mutations altered TNF-induced injury patterns.
Purpose of the Study:
- Investigate the redundant roles of RSK1, RSK2, and RSK3 in Casp8 phosphorylation.
- Determine the impact of preventing T265 phosphorylation on TNF-induced injury, particularly in the small intestine.
- Elucidate the mechanisms underlying tissue-specific sensitivity to TNF-induced damage.
Main Methods:
- Utilized mouse models with genetic ablation of RSK kinases (Rsk1-/-Rsk2-/-Rsk3-/-) and Casp8 T265A mutation (Casp8T265A/T265A).
- Administered Tumor Necrosis Factor (TNF) to induce injury and assessed tissue damage, apoptosis, and necroptosis.
- Analyzed Casp8 protein levels and inflammatory responses, including cytokine production and the role of hematopoietic cells.
Main Results:
- RSK1, RSK2, and RSK3 were found to redundantly phosphorylate Casp8.
- Preventing T265 phosphorylation led to duodenum-specific increases in basal Casp8 levels and heightened sensitivity to TNF-induced damage.
- Apoptosis of intestinal epithelial cells (IECs) was the predominant cell death pathway in the duodenum of treated mice, amplifying systemic inflammation.
Conclusions:
- RSK kinases are critical regulators of Casp8 activity and stability.
- Tissue-specific inactivation of Casp8 by RSKs controls sensitivity to TNF-induced organ injury and death.
- Targeting RSK-mediated Casp8 regulation may offer therapeutic strategies for inflammatory diseases.
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