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Myoglobin-induced apoptosis: two pathways related to endoplasmic reticulum stress
Jianhui Zhou1, Deyang Kong, Xu Zhang
1State Key Laboratory of Kidney Disease, Institute of Nephrology, General Hospital of Chinese PLA, Beijing, China.
Abstract:
Myoglobin plays an important role in rhabdomyolysis-induced acute kidney injury (AKI), but the underlying mechanisms are still unclear. The present study investigates myoglobin-induced apoptosis in HK-2 cells (human renal proximal tubule cells) to discover some of the mechanisms involved in rhabdomyolysis related AKI. Metmyoglobin is reduced to ferrous myoglobin by ascorbic acid, and then the HK-2 cells are incubated with ferrous myoglobin. Cell viability is measured by 3-(4,5)-dimethylthiahiazo(-z-y1)-3,5-di-phenytetrazoliumromide (MTT) assay, and cell injury is tested by supernatant lactose dehydrogenase (LDH). Cell apoptosis is evaluated by fluorescent microscopy of Hoechst staining and by flow cytometry of Annexin V/PI double staining. The apoptosis related protein expression is determined by Western blot. HK-2 cells were incubated with 200 µM ferrous myoglobin for 24 h, the cell viability decreased and supernatant LDH release increased. Hoechst staining indicated more apoptosis after incubation. Molecular chaperone glucose-related protein 78 (GRP78), cytochrome C, caspase-9 started to increase within 3 h after incubation while caspase-4, caspase-8 showed no significant change. (iii) When the inositol triphosphate receptor (IP3R) calcium channel was blocked by 2-aminoethoxydiphenyl-borinate (2-APB), caspase-9 was completely inhibited, GRP78 and caspase-4 increased dramatically, and caspase-3 expression was not affected. The apoptosis in HK-2 cells showed no significant change. Apoptosis in HK-2 cells incubated with ferrous myoglobin is an endoplasmic reticulum stress induced, IP3R calcium channel mediated, caspase-9 dependent intrinsic pathway. When the intrinsic pathway was inhibited using an IP3R calcium channel blocker, endoplasmic reticulum stress increased, resulting in the activation of caspase-4 that cleaved caspase-3 and generated a substitutive pathway of apoptosis.
Insights
Myoglobin causes kidney cell apoptosis via an endoplasmic reticulum stress pathway. Blocking this pathway activates a different cell death route involving caspase-4.
Area of Science:
- Nephrology
- Cell Biology
- Biochemistry
Background:
- Myoglobin is implicated in rhabdomyolysis-induced acute kidney injury (AKI).
- The precise mechanisms of myoglobin-induced kidney damage remain unclear.
- Understanding these mechanisms is crucial for developing AKI treatments.
Purpose of the Study:
- To investigate the mechanisms of myoglobin-induced apoptosis in human renal proximal tubule cells (HK-2).
- To elucidate the role of endoplasmic reticulum stress and calcium channels in myoglobin-induced AKI.
Main Methods:
- HK-2 cells were incubated with ferrous myoglobin.
- Cell viability assessed using MTT assay; cell injury by LDH release.
- Apoptosis evaluated via Hoechst staining and Annexin V/PI flow cytometry.
- Protein expression (GRP78, cytochrome C, caspases) analyzed by Western blot.
- Inositol triphosphate receptor (IP3R) calcium channel blocker (2-APB) used to investigate pathway involvement.
Main Results:
- Ferrous myoglobin decreased HK-2 cell viability and increased LDH release.
- Myoglobin induced apoptosis, evidenced by increased GRP78, cytochrome C, and caspase-9.
- Blocking IP3R calcium channels inhibited caspase-9 but increased GRP78 and caspase-4.
- Inhibition of the intrinsic pathway led to a compensatory apoptosis pathway involving caspase-4.
Conclusions:
- Myoglobin-induced apoptosis in HK-2 cells involves an endoplasmic reticulum stress-mediated, IP3R calcium channel-dependent, caspase-9 intrinsic pathway.
- Inhibition of this intrinsic pathway activates a caspase-4 mediated extrinsic pathway, highlighting complex cellular responses to myoglobin injury.
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