Our research project is designed to test our central hypothesis that the contact activation system contributes to pathologic mechanisms that lead to vascular dysfunction, thrombin generation, and inflammatory responses during systemic bacterial challenge by specific pathogens. Despite the availability of effective antibiotics, sepsis remains a prevalent clinical syndrome and significant cause of severe in-hospital morbidity and mortality, brought about by a sequence of rapidly advancing dynamic molecular and cellular events that occur upon exposure to and subsequent systemic infection by certain pathogens. Complicating the problem is the increasing prevalence of multiresistant bacterial pathogens. At present, after more than half a century of research, drug development, and countless clinical trials, there are still no FDA-approved marketed drugs specifically indicated for the treatment of sepsis. Sepsis can lead to multiple organ system failure, including failure of vasoregulation, poor tissue perfusion, edema, and systemic hypotension, which are hallmarks of severe sepsis. By triggering cardiopulmonary and vascular collapse, it is often lethal even with available supportive and antibiotic treatments. Sepsis may be accompanied by disseminated intravascular coagulation (DIC), which can lead to both thrombosis and bleeding due to the consumptive coagulopathy. We focus on the contact activation system, because 1) there appears to be a causal relationship between activation of coagulation factor XII and the poor prognosis of some forms of sepsis, and 2) targeting the contact activation system as a therapeutic approach is unlikely to have detrimental consequences for the host such as bleeding. We will study the role of the molecular steps in the contact activation system in the development and outcome of experimental bacterial infection, in vivo. We will define the roles of FXII (Aim 1) and its procoagulant substrate FXI (Aim 2), and translate our mechanistic in vitro studies to characterize the pathological role of contact activation in two distinct baboon models of bacterial infection. The potential translational relevance of our project will be the identification of safe and druggable molecular targets and mechanisms within the contact activation system. Our research may ultimately provide rationale for the development of selective contact activation inhibitors that could safely benefit patients that have or are at risk of infections by pathogens that can cause contact system activation.

Public Health Relevance

Sepsis remains a surprisingly common and underappreciated suddenly developing and life-threatening disease condition that can lead to death within hours to days, even with the most advanced medical treatment, including powerful antibiotics and organ support systems. While there remains a critical and unmet medical and societal need to develop a safe and effective treatment for sepsis, numerous attempts and failed drugs in a large number of clinical trials of the past keeps discouraging the pharma industry from investing in sepsis research and development. Despite failures of the past, we remain optimistic and propose to continue intensive and improved search for a medical solution to sepsis through identification of novel mechanisms and drug targets that detrimentally contribute to the poor prognosis and high mortality of the disease, and, if successful, promote the evaluation and development of fundamentally new attempts to prevent or combat sepsis with fundamentally new medicines.

Agency
National Institute of Health (NIH)
Institute
National Institute of Allergy and Infectious Diseases (NIAID)
Type
Research Project (R01)
Project #
1R01AI157037-01
Application #
10138222
Study Section
Special Emphasis Panel (ZRG1)
Program Officer
Huntley, Clayton C
Project Start
2020-09-23
Project End
2025-08-31
Budget Start
2020-09-23
Budget End
2021-08-31
Support Year
1
Fiscal Year
2020
Total Cost
Indirect Cost
Name
Oregon Health and Science University
Department
Biomedical Engineering
Type
Schools of Medicine
DUNS #
096997515
City
Portland
State
OR
Country
United States
Zip Code
97239