Nagoya University · Medicine
Professor Naoyuki Matsuda's research lab focuses on the molecular and cellular mechanisms underlying sepsis and acute organ dysfunction, with particular emphasis on endothelial dysfunction, inflammatory signaling pathways, and apoptosis in critical illness. The lab investigates key mediators such as NF-κB, FADD, and G(sα) protein in septic organ failure, especially acute lung injury and myocardial depression. Innovative therapeutic strategies, including gene therapy using siRNA and NF-κB decoy oligonucleotides, are explored to modulate pathological responses in sepsis. The lab also examines hemodynamic regulation, particularly the role of sympathomimetic agents like ephedrine in managing hypotension in clinical settings such as obstetric anesthesia.
Figures are computed from collected data and may differ slightly.
In recent years, extensive basic science research has led to a clear understanding of the molecular mechanisms contributing to the pathophysiology of sepsis. Sepsis is now defined as a systemic inflammatory response syndrome (SIRS) in which there is an identifiable focus of infection. SIRS can be also precipitated by non-infective events such as trauma, pancreatitis, and surgery. As a consequence of an overactive SIRS response, the function of various organ systems may be compromised, resulting
Sepsis is the leading cause of mortality in critically ill patients. In this pathological syndrome, septic shock and sequential multiple organ failure correlate with poor outcome. The pathophysiology of sepsis with acute organ dysfunction involves a highly complex, integrated response that includes activation of number of cell types, inflammatory mediators, and the hemostatic system. Central to this process may be alterations in vascular functions. This review article provides a growing body of
These results indicate the pathophysiologic significance of the death receptor apoptotic pathway, including FADD, in septic ALI and the potential usefulness of FADD siRNA for gene therapy of the septic syndrome.
The indirectly sympathomimetic property of l-ephedrine may be one of the mechanisms to explain why ephedrine is preferred over alpha-adrenergic agonists as a vasopressor for treatment of intraspinal anesthesia-induced hypotension in obstetrics.
Impairment of myocardial functional responsiveness to beta-adrenoceptor stimulation appears in the early stage of sepsis. The impaired response to beta-adrenoceptor stimulation in the heart in this pathologic state may result in part from a decreased level of G(s alpha) protein which occurs at the level of gene expression.
Nuclear factor-kappaB (NF-kappaB) plays a key role in regulating expression of several genes involved in the pathophysiology of endotoxic shock. We investigated whether in vivo introduction of synthetic double-stranded DNA with high affinity for the NF-kappaB binding site could block expression of genes mediating pulmonary vascular permeation and thereby provide effective therapy for septic lung failure. Endotoxic shock was induced by an intravenous injection of 10 mg/kg Escherichia coli endotox
Acute pancreatitis accompanied by a subsequent infectious attack can often lead to multisystem organ dysfunction, including acute lung injury (ALI), but the molecular mechanisms are poorly defined. In this study, we explored the role of the priming insult by induction of cerulein pancreatitis, which was followed by the second attack due to endotoxemia, in the development of ALI in mice. Experiments revealed that LPS injection in mice with acute pancreatitis caused the development of ALI, as indi
Recent evidence suggests that apoptotic cell death plays an important role in the pathophysiology of sepsis. Because there is extensive apoptosis of vascular endothelial cells in sepsis, we examined whether the death receptor pathway of apoptotic signaling is altered in thoracic aortas from mice with polymicrobial sepsis, as produced by cecal ligation and puncture (CLP). In septic aorta, total and surface expression levels of the two death receptors tumor necrosis factor receptor 1 and Fas were
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