BACKGROUND:Sepsis-induced coagulopathy (SIC) was introduced to identify early coagulation abnormalities in sepsis and to predict progression to overt disseminated intravascular coagulation (DIC). However, inclusion of the Sequential Organ Failure Assessment (SOFA) may conflate coagulation-specific biology with overall illness severity. OBJECTIVES:This study aimed to evaluate whether removal of the SOFA component preserves the diagnostic and prognostic performance of SIC and to determine whether a simplified coagulation-centered construct (SIC-2) maintains clinical utility. METHODS:In a retrospective cohort of 18 086 patients with sepsis from the Medical Information Mart for Intensive Care IV database, we compared the original SIC with SIC-2 using a noninferiority framework. Predictive performance for overt DIC within 5 intensive care unit days, 28-day mortality, and organ support-free outcomes was evaluated for both discrimination and calibration using the area under the receiver operating characteristic curve (AUC) and calibration slopes. RESULTS:Both definitions showed comparable and excellent discrimination for overt DIC (AUC 0.850 vs 0.854; P = .37). For 28-day mortality, SIC demonstrated modest but slightly higher discrimination than SIC-2 (AUC 0.621 vs 0.614; P < .001), although the absolute difference (ΔAUC = 0.007) was small. Associations with intensive care unit-free and ventilator-free days were significant for both scores, with marginally stronger separation for SIC. Under a noninferiority interpretation, the removal of SOFA preserved the prediction of the overt DIC trajectory. CONCLUSION:The predictive contribution of SOFA within SIC primarily reflects downstream organ dysfunction severity rather than coagulation-specific biology. The simplified, coagulation-centered SIC-2 maintains overt DIC prediction while improving conceptual clarity. These findings support considering SIC-2 as a screening phenotype for early sepsis-associated coagulopathy rather than a composite severity index.
Over the past few decades, healthcare has made remarkable advances. Across nearly all fields, diseases are better understood, and diagnostic and therapeutic options have expanded dramatically. Laboratory medicine is also developing at a rapid pace and is playing an increasingly central role in the diagnostic process, as well as in the monitoring of therapy and disease progression. For many conditions-including cardiovascular disease and cancer-patient outcomes have improved spectacularly. However, this success has also created new challenges. Death from acute illness has increasingly been replaced by survival with chronic disease. An aging-though not necessarily healthy-population demands substantial personal, financial, and organizational support. Hyperspecialization is poorly suited to meeting these complex needs. Moreover, efficiency-driven centralization of care, encompassing both clinical services and laboratories, may be necessary but often introduces new problems that can only be addressed through innovation and technology. Most importantly, strong professional leadership is essential. With healthcare professionals in the lead, we can ensure a resilient and sustainable healthcare system, supported by high-quality laboratory services, in which complex issues such as superspecialization, centralization, and efficiency are addressed in an optimal and integrated manner.
Abstract Background Disseminated intravascular coagulation (DIC) is characterized by systemic coagulation activation, anticoagulation pathway impairment, and persistent fibrinolysis suppression, resulting in widespread microvascular thrombosis, followed by hemorrhagic consumption coagulopathy and multiple organ dysfunction syndrome. This article aimed to provide a comprehensive and updated DIC overview. Main body The International Society on Thrombosis and Hemostasis provides definitions, underlying disorders, diagnostic algorithms, and management guidelines for DIC. Two clinical features of DIC are hemorrhagic consumption coagulopathy, characterized by oozing and difficult-to-control bleeding, and microvascular thrombosis, leading to dysfunctions in multiple vital organs. Histones derived from cellular damage play central roles in the innate-immune-based coagulation model, comprising the initiation, amplification, propagation, and reinforcement phases, which, if dysregulated, develop into DIC. Thus, the innate immune-mediated pathogenic pathways in DIC have become clear. Cell death, damage-associated molecular patterns (including histones), crosstalk between hypoxic inflammation and coagulation, and the serine protease network (comprising coagulation and fibrinolysis, the Kallikrein–Kinin system, and complement pathways) play major roles in DIC pathogenesis. Conversely, these pathogenic pathways and DIC synergistically contribute to organ dysfunction, leading to poor prognoses. Effective DIC management requires treating the underlying condition, along with substitution therapies and, in some cases, antifibrinolytics. Anticoagulant use has been extensively debated; however, the selection of optimal target patients could optimize their application and improve patient outcomes in the near future. Conclusions This review provides an updated overview of DIC, aiming to help readers understand various aspects of DIC today.
Compelling evidence supports the need to update the 2001 definition and diagnosis of disseminated intravascular coagulation (DIC) to reflect our current understanding of disease pathophysiology. DIC has been long considered a critical and untreatable sequela of various underlying causes, with resolution only after treatment of the eliciting etiology. Recent views have evolved to appreciate that DIC-associated mortality may be reduced by detection and treatment at an early stage. The International Society on Thrombosis and Haemostasis Scientific and Standardization Committee on DIC proposes an updated definition of DIC: “an acquired, life-threatening intravascular disorder characterized by systemic coagulation activation, dysregulated fibrinolysis, and endothelial injury, resulting in microthrombosis. DIC arises from various underlying etiologies and progresses from a potentially asymptomatic early phase to an advanced phase with hemorrhage and/or organ dysfunction.” In accordance with this more comprehensive definition, we propose to establish more tailored diagnostic criteria that detect early-phase DIC based on the underlying disease. We also propose a modification to overt DIC diagnostic criteria and scoring for late-phase DIC. These consensus-driven modifications reflect knowledge obtained since the original 2001 definition, which advanced clinical practice and research on DIC. This revised framework is anticipated to foster more precise and earlier diagnoses, improve patient stratification in clinical studies, and facilitate the development of targeted therapies dependent on pathophysiological context.
BACKGROUND:Disseminated intravascular coagulation (DIC) is characterized by systemic coagulation activation, anticoagulation pathway impairment, and persistent fibrinolysis suppression, resulting in widespread microvascular thrombosis, followed by hemorrhagic consumption coagulopathy and multiple organ dysfunction syndrome. This article aimed to provide a comprehensive and updated DIC overview. MAIN BODY:The International Society on Thrombosis and Hemostasis provides definitions, underlying disorders, diagnostic algorithms, and management guidelines for DIC. Two clinical features of DIC are hemorrhagic consumption coagulopathy, characterized by oozing and difficult-to-control bleeding, and microvascular thrombosis, leading to dysfunctions in multiple vital organs. Histones derived from cellular damage play central roles in the innate-immune-based coagulation model, comprising the initiation, amplification, propagation, and reinforcement phases, which, if dysregulated, develop into DIC. Thus, the innate immune-mediated pathogenic pathways in DIC have become clear. Cell death, damage-associated molecular patterns (including histones), crosstalk between hypoxic inflammation and coagulation, and the serine protease network (comprising coagulation and fibrinolysis, the Kallikrein-Kinin system, and complement pathways) play major roles in DIC pathogenesis. Conversely, these pathogenic pathways and DIC synergistically contribute to organ dysfunction, leading to poor prognoses. Effective DIC management requires treating the underlying condition, along with substitution therapies and, in some cases, antifibrinolytics. Anticoagulant use has been extensively debated; however, the selection of optimal target patients could optimize their application and improve patient outcomes in the near future. CONCLUSIONS:This review provides an updated overview of DIC, aiming to help readers understand various aspects of DIC today.
Disseminated intravascular coagulation (DIC) is characterized by systemic coagulation activation, anticoagulation pathway impairment, and persistent fibrinolysis suppression, resulting in widespread microvascular thrombosis, followed by hemorrhagic consumption coagulopathy and multiple organ dysfunction syndrome. This article aimed to provide a comprehensive and updated DIC overview. The International Society on Thrombosis and Hemostasis provides definitions, underlying disorders, diagnostic algorithms, and management guidelines for DIC. Two clinical features of DIC are hemorrhagic consumption coagulopathy, characterized by oozing and difficult-to-control bleeding, and microvascular thrombosis, leading to dysfunctions in multiple vital organs. Histones derived from cellular damage play central roles in the innate-immune-based coagulation model, comprising the initiation, amplification, propagation, and reinforcement phases, which, if dysregulated, develop into DIC. Thus, the innate immune-mediated pathogenic pathways in DIC have become clear. Cell death, damage-associated molecular patterns (including histones), crosstalk between hypoxic inflammation and coagulation, and the serine protease network (comprising coagulation and fibrinolysis, the Kallikrein–Kinin system, and complement pathways) play major roles in DIC pathogenesis. Conversely, these pathogenic pathways and DIC synergistically contribute to organ dysfunction, leading to poor prognoses. Effective DIC management requires treating the underlying condition, along with substitution therapies and, in some cases, antifibrinolytics. Anticoagulant use has been extensively debated; however, the selection of optimal target patients could optimize their application and improve patient outcomes in the near future. This review provides an updated overview of DIC, aiming to help readers understand various aspects of DIC today.
Coagulopathy alongside micro- and macrovascular thrombotic events were frequent characteristics of patients presenting with acute COVID-19 during the initial stages of the pandemic. However, over the past 4 years, the incidence and manifestations of COVID-19-associated coagulopathy have changed due to immunity from natural infection and vaccination, and the appearance of new SARS-CoV-2 variants. Diagnostic criteria and management strategies based on early experience and studies for COVID-19-associated coagulopathy thus require re-evaluation. As many other infectious disease states are also associated with hemostatic dysfunction, the coagulopathy associated with COVID-19 may be compounded, especially throughout the winter months, in patients with diverse etiologies of COVID-19 and other infections. This commentary examines what we have learned about COVID-19-associated coagulopathy throughout the pandemic and how we might best prepare to mitigate the hemostatic consequences of emerging infection agents.
Tissue microcirculation is essential for the maintenance of organ homeostasis. Following acute infections, activation of coagulation and inflammation, which are critical interconnected responses, lead to thromboinflammation and microthrombosis, thereby contributing to multiorgan dysfunction. Sepsis is the most common underlying disease and has been extensively studied. However, the COVID-19 pandemic further illustrated the pathomechanisms of diseases in which thromboinflammation plays a critical role. During thromboinflammation, injury to monocytes, neutrophils, platelets, and endothelial cells, along with coagulation and complement activation, was further characterized. Thrombin is pivotal in orchestrating thrombosis and inflammation and has long been considered a potential therapeutic target in sepsis. Although thromboprophylaxis for venous thromboembolism with heparins is part of standard management for COVID-19, it also potentially attenuates organ dysfunction due to thrombotic sequela. In contrast, the effectiveness of anticoagulation with heparin, antithrombin, or thrombomodulin to reduce mortality has not conclusively been proven in sepsis. Nonetheless, thromboinflammation has also been reported as an important pathophysiologic mechanism in other critical illnesses, including heatstroke, trauma, and ischemia/reperfusion injury, and may provide a potential therapeutic target for future clinical studies.
Hereditary angioedema is a rare, genetic disorder characterized by painful, debilitating and potentially life-threatening angioedema attacks in subcutaneous and submucosal tissue. While usually unpredictable, attacks can be provoked by a variety of triggers including physical injury and certain medication and are often preceded by prodromal symptoms. Hereditary angioedema has a profound influence on the patients' lives. The fundamental cause of hereditary angioedema in almost all patients is a mutation in the SERPING1 gene leading to a deficiency in C1-inhibitor. Subsequently, the contact activation cascade and kallikrein-kinin pathway are insufficiently inhibited, resulting in excessive bradykinin production triggering vascular leakage. While C1-inhibitor is an important regulator of the intrinsic coagulation pathway, fibrinolytic system and complement cascade, patients do not have an increased risk of coagulopathy, autoimmune conditions or immunodeficiency disorders. Hereditary angioedema is diagnosed based on C1-inhibitor level and function. Genetic analysis is only required in rare cases where hereditary angioedema with normal C1-inhibitor is found. In recent years, new, highly specific therapies have greatly improved disease control and angioedema-related quality of life. This article reviews the clinical picture of hereditary angioedema, the underlying pathophysiology, diagnostic process and currently available as well as investigational therapeutic options.
Dysregulated innate immunity participates in the pathomechanisms of disseminated intravascular coagulation (DIC) in trauma-induced coagulopathy. Accidental and regulated cell deaths and neutrophil extracellular traps release damage-associated molecular patterns (DAMPs), such as histones, nuclear and mitochondrial DNA, and high-mobility group box 1, into circulation immediately after trauma. DAMP-induced inflammation activation releases tissue factor-bearing procoagulant extracellular vesicles through gasdermin D-mediated pore formation and plasma membrane rupture by regulated cell death. DAMPs also evoke systemic inflammation, platelet, coagulation activation, and impaired fibrinolysis associated with endothelial injury, leading to the dysfunction of anticoagulation systems, which are the main pathophysiological mechanisms of DIC. All these processes induce systemic thrombin generation in vivo, not restricted to the injury sites immediately after trauma. Thrombin generation at the site of injury stops bleeding and maintains homeostasis. However, DIC associated with endothelial injury generates massive thrombin, enhancing protease-activated, receptormediated bidirectional interplays between inflammation and coagulation, aggravating the diverse actions of thrombin and disturbing homeostasis. Insufficiently regulated thrombin causes disseminated microvascular thrombosis, resulting in tissue hypoxia due to reduced oxygen delivery, and mitochondrial dysfunction due to DAMPs causes tissue dysoxia. In addition, DAMP-induced calcium influx and overload, as well as neutrophil activation, play a role in endothelial cell injury. Tissue hypoxia and cytotoxicity result in multiple organ dysfunction in DIC after trauma. Controls against dysregulated innate immunity evoking systemic inflammation, thrombin generation, and cytotoxicity are key issues in improving the prognosis of DIC in trauma-induced coagulopathy.
Sepsis is frequently associated with disseminated intravascular coagulation (DIC) and multiple organ damage. It is widely accepted that DIC is not merely a complication but also plays a role in the development of organ dysfunction. Thrombus formation in the microvasculature leads to impaired tissue perfusion and organ damage. Activated neutrophils interacting with platelets, endothelial injury, and an imbalance of coagulation and fibrinolysis are the essence of thromboinflammation induced in sepsis-associated DIC. The above mechanisms are typically seen in sepsis-associated acute kidney injury (AKI), and the development of AKI is known to be strongly associated with the severity of sepsis. It is important to recognize the pathway of this mechanism in the context of sepsis management.
Rising temperatures associated with climate change have significantly increased the risk of heatstroke. Unfortunately, the trend is anticipated to persist and increasingly threaten vulnerable populations, particularly older adults. According to Japan's environment ministry, over 1000 people died from heatstroke in 2021, and 86% of deaths occurred in those above 65. Since the precise mechanism of heatstroke is not fully understood, we examined the pathophysiology by focusing on the microcirculatory derangement. Online search of published medical literature through MEDLINE and Web of Science using the term "heatstroke," "heat-related illness," "inflammation," "thrombosis," "coagulation," "fibrinolysis," "endothelial cell," and "circulation." Articles were chosen for inclusion based on their relevance to heatstroke, inflammation, and thrombosis. Reference lists were reviewed to identify additional relevant articles. Other than preexisting conditions (genetic background, age, etc.), factors such as hydration status, acclimatization, dysregulated coagulation, and inflammation are the additional major factors that promote tissue malcirculation in heatstroke. The fundamental pathophysiologic mechanisms significantly overlap with those seen in the systemic inflammatory response to sepsis, and as a result, coagulation-predominant coagulopathy develops during heat stress. Although a bleeding tendency is not common, bleeding frequently occurs in the microcirculation, causing additional injury. Sterile inflammation is mediated by proinflammatory cytokines, chemokines, and other humoral mediators in concert with cellular factors, including monocytes, neutrophils, platelets, and endothelial cells. Excess inflammation results in inflammatory cell death, including pyroptosis and necroptosis, and the release of danger signals that further propagate systemic inflammation and coagulopathy. Consequently, thromboinflammation is the critical factor that induces microcirculatory disturbance in heatstroke.
Inflammation and coagulation are critical self-defense mechanisms for mitigating infection that can nonetheless induce tissue injury and organ dysfunction. In severe cases, like sepsis, a dysregulated thromboinflammatory response may result in multiorgan dysfunction. Sepsis-associated acute kidney injury (AKI) is a significant contributor to patient morbidity and mortality. The connection between AKI and thromboinflammation is largely due to unique aspects of the renal vasculature. Specifically, the interaction between blood cells with the endothelial, glomerular, and peritubular capillary systems during thromboinflammation reduces oxygen supply to tubular epithelial cells. Previous studies have focused on tubular epithelial cell damage due to hypoxia, oxidative stress, and nephrotoxins. Although these factors are pivotal in acute tubular injury or necrosis, recent studies have demonstrated that AKI in sepsis encompasses a mixture of tubular and glomerular damage subtypes. In cases of sepsis-induced coagulopathy, thromboinflammation within the glomerulus and peritubular capillaries is an important pathogenic mechanism for AKI. Unfortunately, and despite the use of renal replacement therapy, the development of AKI in sepsis continues to be associated with high morbidity, mortality, and clinical challenges requiring alternative approaches. This review introduces the important role of thromboinflammation in AKI pathogenesis and details innovative vascular-targeting therapeutic strategies.
When confronted with an unexpected clinical observation, such as a remarkable symptom in a patient with an unrelated rare disease, clinicians increasingly apply online literature search to support the observed correlation. Against a background of an exponential rise in medical publications and the well-documented problem of publication bias, the easy access to literature carries the risk of suggesting spurious correlations. The current paper expounds on this phenomenon. Queries in medical search engines often provide a number of hits, regardless of the plausibility of the correlation searched for. To quantify this, we recently performed a study involving 30.000 automated queries in PubMed using completely random search terms drawn from lists of diseases, symptoms and medications. This provided a background rate of PubMed hits. The data support that several hits by no means automatically indicate a relevant correlation, and underline need for judicious critical appraisal when searching for a correlation observed in daily practice.
Background: Exertional dyspnea is a frequently encountered complaint in clinical practice. However, the prevalence of pulmonary embolism (PE) among patients with dyspnea on exertion has not been reported. Objective: The objective of this study was to assess the prevalence of objectively confirmed PE among consecutive patients visiting an emergency department because of recent onset of exertional dyspnea. Methods: Patients aged <= 75 years with recent (<1 month) marked exertional dyspnea had a systematic workup for PE, irrespective of concomitant signs or symptoms of venous thromboembolism and alternative explanations for dyspnea. PE was excluded on the basis of a low pretest clinical probability and normal age -adjusted D-dimer. All other patients had computed tomography pulmonary angi-ography. An interim analysis after inclusion of 400 patients would stop recruit-ment if the 95% confidence interval (CI) of the PE prevalence had a lower limit exceeding 20%. Results: The study was prematurely terminated after the inclusion of 417 patients. In 134 patients (32.1%), PE was excluded based on low clinical probability and normal D-dimer. PE was found in 134 (47.3%) of the remaining 283 patients, for an overall prevalence of 32.1% (95% CI, 27.8-36.8). PE was present in 40 of 204 (19.6%) patients without other findings suspicious for PE and in 94 of 213 patients (44.1%) with such findings. PE involved a main pulmonary artery in 37% and multiple lobes in 87% of the patients. Conclusion: The angiographic demonstration of PE is common in patients presenting with recent onset of marked exertional dyspnea, including 20% without other findings suggesting pulmonary embolism.
Disseminated intravascular coagulation (DIC) is not a disease criterion but a pathomechanistic process that accompanies various underlying diseases. According to the International Society on Thrombosis and Haemostasis definition, endothelial injury is an essential component in addition to systemic coagulation activation. Despite this definition, current diagnostic criteria for DIC do not include biomarkers for vascular endothelial injury. Endothelial cells are critical for hemostatic regulation because they produce various antithrombotic substances and express anticoagulant factors at the same time as facilitating coagulation, inflammatory reactions, platelet aggregation, and fibrinolysis with acute injury. Endothelial cells also exhibit various receptors, adhesion molecules, and the critical role of glycocalyx that regulates cellular interactions in thromboinflammation. For clinicians, biomarkers suitable for assessing endothelial injury are not readily available. Although we still do not have ideal biomarkers, antithrombin activity and von Willebrand factor can be candidates for the endothelium-related markers because those reflect the severity and are available in most clinical settings. Further, the dysfunction of endothelial cell in DIC arising from various underlying diseases is likely highly variable. For example, the involvement of endothelial dysfunction is significant in sepsis-induced coagulopathy, while moderate in trauma-induced coagulopathy, and variable in hematologic malignancy-associated coagulopathy. Because of the complexity of disease status associated with DIC, further research searching clinically available endothelium-related biomarkers is expected to establish individualized diagnostic criteria and potential therapeutic approaches.
Patients with chronic thromboembolic pulmonary hypertension represent a subgroup of patients suffering from pulmonary hypertension. The disease is characterized by chronic, non-resolving thromboembolic obstruction of pulmonary arteries following one or more episodes of pulmonary embolism and involving both large vessel and small vessel dysfunction in the lungs [ [1] Piazza G. Goldhaber S.Z. Chronic thromboembolic pulmonary hypertension. N Engl J Med. 2011; 364: 351-360 Crossref PubMed Scopus (285) Google Scholar ]. Clinically, the most important manifestations are shortness of breath, fatigue and symptoms as a consequence of right sided heart failure, all resulting in a significantly affected quality of life and even enhanced mortality.