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Multiple alphaII-spectrin breakdown products distinguish calpain and caspase dominated necrotic and apoptotic cell
Zhiqun Zhang1, Stephen F Larner, Ming Cheng Liu
1Center of Innovative Research, Banyan Biomarkers Inc., Alachua, FL 32615, USA. zqzhang@banyanbio.com
Abstract:
Apoptosis and oncotic necrosis in neuronal and glial cells have been documented in many neurological diseases. Distinguishing between these two major types of cell death in different neurological diseases is needed in order to better reveal the injury mechanisms so as to open up opportunities for therapy development. Accumulating evidence suggests apoptosis and oncosis epitomize the extreme ends of a broad spectrum of morphological and biochemical events. Biochemical markers that can distinguish between the calpain and caspase dominated types of cell death would help in this process. In this study, three chemical agents, maitotoxin (MTX), staurosporine (STS) and thylenediaminetetraacetic acid (EDTA), were used to induce different types of cell death in PC12 neuronal-like cells. MTX-induced necrosis, as determined by the increased levels of calpain-specific cleaved fragments of spectrin by antibodies specific to the calpain-cleaved 150 kDa alphaII-spectrin breakdown product (SBDP150) and 145 kDa alphaII-spectrin breakdown product (SBDP145). In this paradigm, there were no detectable SBDP150i and SBDP120 fragments as determined by antibodies specific to the caspase-cleaved specific fragments similar to those seen in the EDTA-mediated apoptotic PC-12 cells. In contrast to the calpain specific MTX necrosis treatment and the caspase EDTA apoptotic treatment is the STS treatment which induced both proteases as shown by the increase in all the SBDP fragments. Furthermore, compared to SBDP150, SBDP145 appears to be a more specific and sensitive biomarker for calpain activation. Taken together, our results suggested calpains and caspases which dominate the two major types of cell death could be independently discriminated by specifically examining the multiple alphaII-spectrin cleavage breakdown products.
Insights
This study identifies specific alphaII-spectrin breakdown products as biomarkers to differentiate between calpain-mediated necrosis and caspase-mediated apoptosis in neuronal cells, aiding neurological disease research.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Neurological diseases involve apoptosis and oncotic necrosis in neuronal and glial cells.
- Distinguishing between these cell death types is crucial for understanding injury mechanisms and developing therapies.
- Apoptosis and oncosis represent a spectrum, necessitating biochemical markers to differentiate protease dominance.
Purpose of the Study:
- To identify distinct biochemical markers for distinguishing calpain- and caspase-mediated cell death.
- To investigate the utility of alphaII-spectrin breakdown products (SBDPs) as specific indicators of cell death pathways.
Main Methods:
- PC12 neuronal-like cells were treated with maitotoxin (MTX), staurosporine (STS), and ethylenediaminetetraacetic acid (EDTA) to induce cell death.
- Antibodies specific to caspase-cleaved fragments (SBDP150i, SBDP120) and calpain-cleaved fragments (SBDP150, SBDP145) of alphaII-spectrin were used.
- Levels of SBDPs were analyzed to determine the dominant protease activity in each treatment group.
Main Results:
- MTX induced necrosis, characterized by increased calpain-specific SBDP150 and SBDP145, with no detectable caspase-specific fragments.
- EDTA induced apoptosis, showing caspase-specific fragments but not calpain-specific ones.
- STS induced both necrosis and apoptosis, indicated by the presence of all SBDP fragments.
- SBDP145 emerged as a more specific and sensitive biomarker for calpain activation than SBDP150.
Conclusions:
- AlphaII-spectrin cleavage breakdown products can independently discriminate between calpain- and caspase-dominated cell death.
- SBDP145 is a sensitive marker for calpain activation in cell death.
- This approach offers a method to distinguish major cell death pathways in neurological disease research.
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