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MK2 plays an important role for the increased vascular permeability that follows thermal injury
Wei Wu1, Qiaobing Huang1, Jingxia Miao2
1Department of Pathophysiology, Key Lab for Shock and Microcirculation Research of Guangdong, Southern Medical University, Guangzhou 510515, P.R. China.
Abstract:
We previously reported Rho kinase is involved in vessel hyper-permeability caused by burns. Here we further explore the Rho kinase downstream signaling, it is found that its specific inhibitor Y27632 significantly diminishes the activation of JNK and p38 MAPKs but not ERK that induced by serum from burned rats (burn-serum). JNK activation was found involved in the expression of HUVEC adhesion molecules following thermal injury, although not in the process of stress fiber formation. Inhibition of various MAPKs by specific inhibitors showed that SB203580 (inhibitor of p38), but neither SP600125 (inhibitor of JNK) nor PD98059 (inhibitor of ERK), abolish activation of the p38 downstream kinase MK2. Demonstration of stress fibers by fluorescent-labeled phalloidin showed that inhibition of MK2, either by its specific inhibitor or by dominant negative adeno-viral-carried constructs, significantly reduced burn-serum-induced HUVEC stress-fiber formation, while inhibition of another downstream p38 MAPK kinase, PRAK, had no such effects. Transfection of dominant negative adeno-viral MK2 (Ad-MK2(A)) significantly inhibited thermal injury-induced blood vessel hyper-permeability in rats and, moreover, prolonged the survival of burned rats beyond 72 h following thermal injury. One of the mechanisms behind these phenomena is that Ad-MK2(A) causes a significant depression of burn-serum-induced HSP27-phosphorylation, while the adeno-viral transported dominant negative PRAK (Ad-PRAK(A)) does not block. Although the effect of blockade of MK2 through its adeno-viral approach requires further study and investigation of alternatives to know for sure, we may have found a new pathway behind thermal-injury-induced blood vessel hyper-permeability, namely: Rho kinase>p38>MK2>HSP27.
Insights
We identified a new pathway involving Rho kinase, p38, MK2, and HSP27 that contributes to blood vessel hyper-permeability after burns. Inhibiting this pathway reduced swelling and improved survival in burned rats.
Area of Science:
- Biochemistry
- Cell Biology
- Physiology
Background:
- Rho kinase is implicated in burn-induced vessel hyper-permeability.
- Burn serum activates JNK and p38 MAPKs in HUVECs, but not ERK.
- JNK activation influences adhesion molecule expression, but not stress fiber formation.
Purpose of the Study:
- To investigate the downstream signaling pathways of Rho kinase in response to burn serum.
- To identify key kinases involved in thermal injury-induced vascular hyper-permeability.
- To explore the role of p38 MAPK pathway components in stress fiber formation and vascular permeability.
Main Methods:
- Inhibition of MAPKs (JNK, p38, ERK) and downstream kinases (MK2, PRAK) using specific inhibitors and dominant-negative adenoviral constructs.
- Assessment of stress fiber formation via fluorescent-labeled phalloidin.
- Measurement of blood vessel hyper-permeability in a rat burn model.
- Evaluation of HSP27 phosphorylation levels.
Main Results:
- Y27632 (Rho kinase inhibitor) reduced p38 and JNK activation.
- SB203580 (p38 inhibitor) blocked MK2 activation, while SP600125 (JNK inhibitor) and PD98059 (ERK inhibitor) did not.
- MK2 inhibition, but not PRAK inhibition, reduced burn serum-induced stress fiber formation and vascular hyper-permeability.
- Dominant-negative MK2 significantly inhibited thermal injury-induced hyper-permeability and improved rat survival.
- MK2 inhibition suppressed burn serum-induced HSP27 phosphorylation.
Conclusions:
- A novel signaling pathway: Rho kinase > p38 > MK2 > HSP27 is identified in thermal injury-induced vascular hyper-permeability.
- MK2 plays a critical role in burn-induced stress fiber formation and vascular permeability.
- Targeting the MK2 pathway may offer a therapeutic strategy for managing burn injuries.
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