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Published on: April 11, 2012
Molecular Regulation of Acute Tie2 Suppression in Sepsis
Kristina Thamm1, Claudia Schrimpf2, Jennifer Retzlaff1
1Department of Nephrology and Hypertension, Hannover Medical School, Hannover, Germany.
Objectives:
Tie2 is a tyrosine kinase receptor expressed by endothelial cells that maintains vascular barrier function. We recently reported that diverse critical illnesses acutely decrease Tie2 expression and that experimental Tie2 reduction suffices to recapitulate cardinal features of the septic vasculature. Here we investigated molecular mechanisms driving Tie2 suppression in settings of critical illness.
Design:
Laboratory and animal research, postmortem kidney biopsies from acute kidney injury patients and serum from septic shock patients.
Setting:
Research laboratories and ICU of Hannover Medical School, Harvard Medical School, and University of Groningen.
Patients:
Deceased septic acute kidney injury patients (n = 16) and controls (n = 12) and septic shock patients (n = 57) and controls (n = 22).
Interventions:
Molecular biology assays (Western blot, quantitative polymerase chain reaction) + in vitro models of flow and transendothelial electrical resistance experiments in human umbilical vein endothelial cells; murine cecal ligation and puncture and lipopolysaccharide administration.
Measurements And Main Results:
We observed rapid reduction of both Tie2 messenger RNA and protein in mice following cecal ligation and puncture. In cultured endothelial cells exposed to tumor necrosis factor-α, suppression of Tie2 protein was more severe than Tie2 messenger RNA, suggesting distinct regulatory mechanisms. Evidence of protein-level regulation was found in tumor necrosis factor-α-treated endothelial cells, septic mice, and septic humans, all three of which displayed elevation of the soluble N-terminal fragment of Tie2. The matrix metalloprotease 14 was both necessary and sufficient for N-terminal Tie2 shedding. Since clinical settings of Tie2 suppression are often characterized by shock, we next investigated the effects of laminar flow on Tie2 expression. Compared with absence of flow, laminar flow induced both Tie2 messenger RNA and the expression of GATA binding protein 3. Conversely, septic lungs exhibited reduced GATA binding protein 3, and knockdown of GATA binding protein 3 in flow-exposed endothelial cells reduced Tie2 messenger RNA. Postmortem tissue from septic patients showed a trend toward reduced GATA binding protein 3 expression that was associated with Tie2 messenger RNA levels (p < 0.005).
Conclusions:
Tie2 suppression is a pivotal event in sepsis that may be regulated both by matrix metalloprotease 14-driven Tie2 protein cleavage and GATA binding protein 3-driven flow regulation of Tie2 transcript.
Insights
Critical illness lowers Tie2 receptor expression, crucial for vascular barrier function. This study reveals Tie2 suppression in sepsis involves protein cleavage by MMP-14 and flow-dependent GATA3 regulation.
Area of Science:
- Molecular biology
- Endothelial cell biology
- Sepsis research
Background:
- Tie2 receptor is vital for endothelial barrier function.
- Critical illnesses acutely decrease Tie2 expression.
- Tie2 reduction mimics septic vasculature features.
Purpose of the Study:
- Investigate molecular mechanisms of Tie2 suppression in critical illness.
- Elucidate Tie2 regulation in sepsis.
- Identify pathways contributing to vascular dysfunction in sepsis.
Main Methods:
- Utilized laboratory and animal research, including murine models (cecal ligation and puncture, LPS administration).
- Analyzed postmortem kidney biopsies from acute kidney injury patients and serum from septic shock patients.
- Employed molecular biology assays (Western blot, qPCR) and in vitro endothelial cell models.
Main Results:
- Observed rapid Tie2 mRNA and protein reduction in septic mice.
- Identified matrix metalloprotease 14 (MMP-14) mediated N-terminal Tie2 shedding.
- Demonstrated GATA binding protein 3 (GATA3) regulates Tie2 mRNA expression in response to laminar flow, with reduced GATA3 in septic lungs.
Conclusions:
- Tie2 suppression in sepsis is a key event.
- Mechanisms include MMP-14 driven protein cleavage and GATA3-mediated flow regulation of Tie2 transcript.
- Findings offer insights into sepsis-induced vascular barrier dysfunction.
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