Human neutrophil elastase mediates fibrinolysis shutdown through competitive degradation of plasminogen and generation of angiostatin
JOURNAL OF TRAUMA AND ACUTE CARE SURGERY
Authors: Barrett, Christopher D.; Moore, Hunter B.; Banerjee, Anirban; Silliman, Christopher C.; Moore, Ernest E.; Yaffe, Michael B.
Abstract
BACKGROUND A subset of trauma patients undergo fibrinolysis shutdown rather than pathologic hyperfibrinolysis, contributing to organ failure. The molecular basis for fibrinolysis shutdown in trauma is incompletely understood. Elastase released from primed/activated human neutrophils (HNE) has historically been described as fibrin(ogen)olytic. However, HNE can also degrade plasminogen (PLG) to angiostatin (ANG), retaining the kringle domains but not the proteolytic function, and could thereby compete for generation of active plasmin by tissue plasminogen activator (tPA). We hypothesized that HNE can drive fibrinolysis shutdown rather than fibrinolysis. METHODS Turbidometry was performed using light scatter ( = 620 nm) in a purified fibrinogen + PLG system and in healthy citrate plasma clotted with Ca2+/thrombin tPA, HNE, and +/- ANG to evaluate HNE effects on fibrinolysis, quantified by time to transition midpoint (T-m). T-m from control is reported as percent of control +/- 95% CI. Purified HNE coincubated with PLG or tPA was analyzed by western blot to identify cleavage products. Exogenous HNE was mixed ex vivo with healthy volunteer blood (n = 7) and used in TEG +/- tPA to evaluate effects on fibrinolysis. RESULTS HNE did not cause measurable fibrinolysis on fibrin clots, clotted plasma, or whole blood as assessed by turbidometry or TEG in the absence of tPA. Upon tPA treatment, all three methods of evaluating fibrinolysis showed delays and decreases in fibrinolysis caused by HNE relative to control: fibrin clot turbidometry T-m = 110.7% (CI 105.0-116.5%), clotted citrate plasma (n = 6 healthy volunteers) T-m = 126.1% (CI 110.4-141.8%), and whole blood native TEG (n = 7 healthy volunteers) with LY30 = 28% (p = 0.043). Western blot analysis of HNE-PLG co-incubation confirmed that HNE generates angiostatin K1-3, and plasma turbidity assays treated with angiostatin K1-3 delayed fibrinolysis. CONCLUSION HNE degrades PLG and generates angiostatin K1-3, which predominates over HNE cleavage of fibrin(ogen). These findings suggest that neutrophil release of elastase may underlie trauma-induced fibrinolytic shutdown.
LPA Variants Are Associated With Residual Cardiovascular Risk in Patients Receiving Statins
CIRCULATION
Authors: Wei, Wei-Qi; Li, Xiaohui; Feng, Qiping; Kubo, Michiaki; Kullo, Iftikhar J.; Peissig, Peggy L.; Karlson, Elizabeth W.; Jarvik, Gail P.; Lee, Ming Ta Michael; Shang, Ning; Larson, Eric A.; Edwards, Todd; Shaffer, Christian M.; Mosley, Jonathan D.; Maeda, Shiro; Horikoshi, Momoko; Ritchie, Marylyn; Williams, Marc S.; Larson, Eric B.; Crosslin, David R.; Bland, Sarah T.; Pacheco, Jennifer A.; Rasmussen-Torvik, Laura J.; Cronkite, David; Hripcsak, George; Cox, Nancy J.; Wilke, Russell A.; Stein, C. Michael; Rotter, Jerome I.; Momozawa, Yukihide; Roden, Dan M.; Krauss, Ronald M.; Denny, Joshua C.
Abstract
Background: Coronary heart disease (CHD) is a leading cause of death globally. Although therapy with statins decreases circulating levels of low-density lipoprotein cholesterol and the incidence of CHD, additional events occur despite statin therapy in some individuals. The genetic determinants of this residual cardiovascular risk remain unknown. Methods: We performed a 2-stage genome-wide association study of CHD events during statin therapy. We first identified 3099 cases who experienced CHD events (defined as acute myocardial infarction or the need for coronary revascularization) during statin therapy and 7681 controls without CHD events during comparable intensity and duration of statin therapy from 4 sites in the Electronic Medical Records and Genomics Network. We then sought replication of candidate variants in another 160 cases and 1112 controls from a fifth Electronic Medical Records and Genomics site, which joined the network after the initial genome-wide association study. Finally, we performed a phenome-wide association study for other traits linked to the most significant locus. Results: The meta-analysis identified 7 single nucleotide polymorphisms at a genome-wide level of significance within the LPA/PLG locus associated with CHD events on statin treatment. The most significant association was for an intronic single nucleotide polymorphism within LPA/PLG (rs10455872; minor allele frequency, 0.069; odds ratio, 1.58; 95% confidence interval, 1.35-1.86; P=2.6x10(-10)). In the replication cohort, rs10455872 was also associated with CHD events (odds ratio, 1.71; 95% confidence interval, 1.14-2.57; P=0.009). The association of this single nucleotide polymorphism with CHD events was independent of statin-induced change in low-density lipoprotein cholesterol (odds ratio, 1.62; 95% confidence interval, 1.17-2.24; P=0.004) and persisted in individuals with low-density lipoprotein cholesterol 70 mg/dL (odds ratio, 2.43; 95% confidence interval, 1.18-4.75; P=0.015). A phenome-wide association study supported the effect of this region on coronary heart disease and did not identify noncardiovascular phenotypes. Conclusions: Genetic variations at the LPA locus are associated with CHD events during statin therapy independently of the extent of low-density lipoprotein cholesterol lowering. This finding provides support for exploring strategies targeting circulating concentrations of lipoprotein(a) to reduce CHD events in patients receiving statins.