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Increased production of amyloid precursor protein provides a substrate for caspase-3 in dying motoneurons
N Y Barnes1, L Li, K Yoshikawa
1Department of Neurobiology and Anatomy and the Neuroscience Program, Wake Forest University School of Medicine, Winston-Salem, North Carolina 27157, USA.
Abstract:
Biochemical and molecular mechanisms of neuronal cell death are currently an area of intense research. It is well documented that the lumbar spinal motoneurons of the chick embryo undergo a period of naturally occurring programmed cell death (PCD) requiring new gene expression and activation of caspases. To identify genes that exhibit changed expression levels in dying motoneurons, we used a PCR-based subtractive hybridization protocol to identify messages uniquely expressed in motoneurons deprived of trophic support as compared with their healthy counterparts. We report that one upregulated message in developing motoneurons undergoing cell death is the mRNA for amyloid precursor protein (APP). Increased levels of APP and beta-amyloid protein are also detected within dying motoneurons. The predicted peptide sequence of APP indicates two potential cleavage sites for caspase-3 (CPP-32), a caspase activated in dying motoneurons. When peptide inhibitors of caspase-3 are administered to motoneurons destined to undergo PCD, decreased levels of APP protein and greatly reduced beta-amyloid production are observed. Furthermore, we show that APP is cleaved by caspase-3. Our results suggest that differential gene expression results in increased levels of APP, providing a potential substrate for one of the cell death-activated caspases that may ultimately cause the demise of the cell. These results, combined with information on the toxic role of APP and its proteolytic by-product beta-amyloid, in the neurodegenerative disease Alzheimer's, suggest that events of developmental PCD may be reactivated in early stages of pathological neurodegeneration.
Insights
Researchers identified amyloid precursor protein (APP) as a key factor in programmed cell death (PCD) of spinal motoneurons. Increased APP levels and caspase-3 activity contribute to neuronal demise, potentially linking developmental cell death to neurodegeneration.
Area of Science:
- Neuroscience
- Molecular Biology
- Developmental Biology
Background:
- Neuronal cell death mechanisms are under intense investigation.
- Chick embryo lumbar spinal motoneurons exhibit programmed cell death (PCD) involving gene expression and caspases.
Purpose of the Study:
- To identify genes with altered expression in motoneurons undergoing PCD.
- To investigate the role of amyloid precursor protein (APP) in neuronal cell death.
Main Methods:
- PCR-based subtractive hybridization to compare gene expression in healthy vs. dying motoneurons.
- Detection of APP and beta-amyloid protein levels.
- Inhibition of caspase-3 activity using peptide inhibitors.
Main Results:
- Amyloid precursor protein (APP) mRNA and protein levels are upregulated in dying motoneurons.
- APP is cleaved by caspase-3, a caspase activated during PCD.
- Caspase-3 inhibition reduces APP levels and beta-amyloid production.
Conclusions:
- Upregulated APP serves as a substrate for activated caspase-3, contributing to motoneuron death.
- These findings suggest a link between developmental PCD and early-stage neurodegenerative processes like Alzheimer's disease.