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Stress protein and proto-oncogene expression as indicators of neuronal pathophysiology after ischemia
T S Nowak1, O C Osborne, S Suga
1Laboratory of Neuropathology and Neuroanatomical Sciences, National Institute of Neurological Disorders and Stroke, National Institutes of Health, Bethesda, MD 20892.
Abstract:
Induction of hsp70 mRNA and protein appear to provide useful markers for delineating stages in the progression of neuronal pathophysiology after ischemia. Detection of hsp70 encoded by the induced mRNA is dependent on complex interactions between the time course of mRNA expression and recovery of protein synthesis in a given neuron population, and perhaps other factors relating to specific aspects of hsp70 physiology, during recirculation intervals of hours to days. Transient mRNA expression and subsequent detection of immunoreactive hsp70 protein appear to identify neurons more likely to survive ischemia and other insults, while prolonged expression of hsp70 mRNA is associated with more severe neuronal injury. Fos and Jun immunoreactivities are also increased after ischemia, and provide indexes of functional gene expression during earlier recirculation periods. The accumulation of Fos immunoreactivity in particular designates neurons in which rapid recovery of protein synthesis during 1-3 h recirculation has allowed translation of the very transiently expressed c-fos mRNA. Jun-like immunoreactivity allows an evaluation of events at later recirculation intervals, and provides a clear demonstration of synthesis and accumulation of induced protein in CA1 neurons at 6 h following 2 min ischemia. Detailed understanding of the significance of such interactions between transcriptional and translational events will continue to evolve as information accumulates regarding the expression of additional mRNAs and proteins after ischemia. The present demonstration that Jun-like immunoreactivity accumulates in CA1 neurons after brief ischemia indicates that widespread changes in gene expression, expected as a consequence of such primary effects on transcription factor activity, are likely to contribute to the phenomenon of induced ischemic tolerance and to other persistent changes in the brain following diverse insults.
Insights
Heat shock protein 70 (hsp70) mRNA and protein levels serve as key indicators of neuronal injury and survival following ischemia. Their expression patterns help delineate the severity and progression of brain damage after ischemic events.
Area of Science:
- Neuroscience
- Molecular Biology
- Pathophysiology
Background:
- Ischemia induces complex changes in neuronal gene expression.
- Heat shock proteins (HSPs) are critical for cellular stress response.
- Understanding gene expression dynamics post-ischemia is vital for predicting neuronal fate.
Purpose of the Study:
- To investigate the role of hsp70 mRNA and protein as markers for neuronal pathophysiology after ischemia.
- To correlate the expression patterns of hsp70, Fos, and Jun with neuronal survival and injury.
- To elucidate the interplay between transcriptional and translational events in ischemic tolerance.
Main Methods:
- Analysis of hsp70 mRNA and protein expression over time post-ischemia.
- Immunohistochemical detection of Fos and Jun immunoreactivity.
- Correlation of protein and mRNA expression with neuronal survival outcomes.
Main Results:
- Transient hsp70 mRNA expression with subsequent protein detection indicates neuronal survival.
- Prolonged hsp70 mRNA expression correlates with severe neuronal injury.
- Fos and Jun immunoreactivities serve as early and late markers of functional gene expression, respectively.
- Jun accumulation in CA1 neurons after brief ischemia suggests widespread gene expression changes contributing to ischemic tolerance.
Conclusions:
- hsp70 mRNA and protein are valuable biomarkers for assessing neuronal injury stages after ischemia.
- The temporal dynamics of gene expression, including hsp70, Fos, and Jun, are crucial for determining neuronal fate.
- Induced ischemic tolerance involves widespread gene expression changes mediated by transcription factor activity.