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Differential patterns of ERK and STAT3 phosphorylation after sciatic nerve transection in the rat
J Y Sheu1, D J Kulhanek, F P Eckenstein
1Department of Cell and Developmental Biology, Oregon Health Sciences University, Portland, Oregon, 97201, USA.
Abstract:
Peripheral nerve injury induces a specific pattern of expression of growth factors and cytokines, which regulate injury responses and regeneration. Distinct classes of growth factors and cytokines signal through specific intracellular phosphorylation cascades. For example, the ERK phosphorylation cascade mediates signaling through transmembrane tyrosine kinase receptors and the JAK/STAT cascade mediates signaling through the GP130 receptor complex. We tested whether specific phosphorylation patterns of ERK and STAT3 result from nerve injury and whether such phosphorylation correlates with the expression of specific growth factors and cytokines. At sites adjacent to a nerve transection, we observed that ERK phosphorylation peaked early, persisted throughout 16 days, and was equally intense at proximal and distal sites. In contrast, STAT3 phosphorylation peaked later than ERK but did not persist as long and was stronger in the proximal than in the distal segment adjacent to the injury. In addition, in distal segments further away from the injury site, ERK became phosphorylated with a delayed time course, while STAT3 remained unphosphorylated. These patterns of phosphorylation correlated well with the expression of neurotrophin and interleukin-6 mRNAs in the distal stump. In addition, we found that the pattern of SAPK phosphorylation is similar to the pattern observed for STAT3, while the pattern of macrophage infiltration into the transected nerve was distinct from all the phosphorylation patterns observed. Together, these observations suggest that ERK activation is important in the establishment of a regeneration-promoting extracellular environment in the far distal stump of transected nerves and that STAT3 activation is important in the control of cellular responses close to the site of injury.
Insights
Peripheral nerve injury triggers distinct phosphorylation patterns of ERK and STAT3, influencing growth factor expression and regeneration. ERK activation supports distal nerve regeneration, while STAT3 activation is crucial for cellular responses near the injury site.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Signaling
Background:
- Peripheral nerve injury triggers complex molecular responses, including growth factor and cytokine expression.
- Specific intracellular signaling pathways, such as ERK and JAK/STAT cascades, are activated by these factors.
- Understanding these signaling pathways is crucial for elucidating nerve injury and regeneration mechanisms.
Purpose of the Study:
- To investigate the temporal and spatial patterns of ERK and STAT3 phosphorylation following peripheral nerve injury.
- To correlate these phosphorylation patterns with the expression of specific growth factors and cytokines.
- To differentiate signaling pathway activation from other injury responses like macrophage infiltration.
Main Methods:
- Nerve transection model in rodents.
- Western blot analysis to detect phosphorylated ERK and STAT3.
- Quantitative real-time PCR to measure neurotrophin and interleukin-6 mRNA expression.
- Immunohistochemistry to assess macrophage infiltration.
Main Results:
- ERK phosphorylation peaked early, persisted, and was uniform proximally and distally to the nerve transection.
- STAT3 phosphorylation peaked later, was transient, and stronger proximally than distally.
- Distal segments showed delayed ERK phosphorylation and no STAT3 phosphorylation, correlating with neurotrophin and IL-6 mRNA levels.
- SAPK phosphorylation mirrored STAT3 patterns, while macrophage infiltration differed significantly.
Conclusions:
- ERK activation in the distal nerve stump is vital for creating a pro-regenerative environment.
- STAT3 activation near the injury site plays a key role in regulating local cellular responses.
- Distinct spatiotemporal signaling patterns suggest specialized roles for ERK and STAT3 in nerve repair.