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Janssen LLG, van Leeuwen-Kerkhoff N, Westers TM, de Gruijl TD, van de Loosdrecht AA. The immunoregulatory role of monocytes and thrombomodulin in myelodysplastic neoplasms. Front Oncol 2024; 14:1414102. [PMID: 39132505 PMCID: PMC11310157 DOI: 10.3389/fonc.2024.1414102] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/08/2024] [Accepted: 07/12/2024] [Indexed: 08/13/2024] Open
Abstract
Myelodysplastic neoplasms (MDS) are clonal disorders of the myeloid lineage leading to peripheral blood cytopenias. Dysregulation of innate immunity is hypothesized to be a potent driver of MDS. A recent study revealed increased thrombomodulin (TM) expression on classical monocytes in MDS, which was associated with prolonged survival. TM is a receptor with immunoregulatory capacities, however, its exact role in MDS development remains to be elucidated. In this review we focus on normal monocyte biology and report on the involvement of monocytes in myeloid disease entities with a special focus on MDS. Furthermore, we delve into the current knowledge on TM and its function in monocytes in health and disease and explore the role of TM-expressing monocytes as driver, supporter or epiphenomenon in the MDS bone marrow environment.
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Affiliation(s)
- Luca L. G. Janssen
- Department of Hematology, Amsterdam University Medical Center (UMC), Vrije Universiteit, Amsterdam, Netherlands
- Cancer Center Amsterdam, Cancer Biology and Immunology, Amsterdam, Netherlands
| | - Nathalie van Leeuwen-Kerkhoff
- Department of Hematology, Amsterdam University Medical Center (UMC), Vrije Universiteit, Amsterdam, Netherlands
- Cancer Center Amsterdam, Cancer Biology and Immunology, Amsterdam, Netherlands
| | - Theresia M. Westers
- Department of Hematology, Amsterdam University Medical Center (UMC), Vrije Universiteit, Amsterdam, Netherlands
- Cancer Center Amsterdam, Cancer Biology and Immunology, Amsterdam, Netherlands
| | - Tanja D. de Gruijl
- Cancer Center Amsterdam, Cancer Biology and Immunology, Amsterdam, Netherlands
- Department of Medical Oncology, Amsterdam University Medical Center (UMC), Vrije Universiteit, Amsterdam, Netherlands
- Amsterdam Institute for Immunity and Infectious Diseases, Amsterdam, Netherlands
| | - Arjan A. van de Loosdrecht
- Department of Hematology, Amsterdam University Medical Center (UMC), Vrije Universiteit, Amsterdam, Netherlands
- Cancer Center Amsterdam, Cancer Biology and Immunology, Amsterdam, Netherlands
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Lactobacillus casei CRL431 modulates hemostatic activation induced by protein malnourishment and pneumococcal respiratory infection. Appl Microbiol Biotechnol 2020; 104:10669-10683. [PMID: 33079228 DOI: 10.1007/s00253-020-10957-6] [Citation(s) in RCA: 3] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/09/2020] [Revised: 09/21/2020] [Accepted: 10/12/2020] [Indexed: 10/24/2022]
Abstract
Previously, we demonstrated that Lactobacillus casei CRL431, a well-known immunomodulatory bacterium, beneficially regulates coagulation activation, fibrin formation in lung, and the pro-inflammatory state induced by protein malnourishment and pneumococcal infection. In this study, we deepen in the understanding of the mechanisms involved in the immunoregulatory activity of L. casei CRL431 during a nutritional repletion process by evaluating (a) platelet and endothelial activation, (b) tissue factor (TF) expression, and (c) protease-activated receptor (PAR) activation in an experimental bacterial respiratory infection model in malnourished mice. Our findings demonstrate for the first time that the repletion diet supplemented with L. casei CRL431 was effective to normalize platelet counts in blood, modulate platelet activation and their recruitment into the lung, and regulate local and systemic TF expression and endothelial activation, which were affected by malnourishment. Streptococcus pneumoniae challenge induced local and systemic increase of platelet counts, PARs activation, P-selectin and TF expression, as well as endothelial activation in both well-nourished and malnourished mice. Malnourished animals evidenced the highest alterations of the parameters evaluated while the mice fed with the probiotic bacterium had similar behavior to normal controls but with lower PAR activation in lung. These results demonstrate that supplementation of repletion diet with L. casei CRL431 is effective to modulate alterations induced by malnourishment and pneumococcal infection, restraining coagulation activation, the inflammatory process, and lung damage. These observations contribute to set the basis for the application of probiotic functional foods to modulate the inflammation-hemostasis interactions altered by malnourishment or bacterial respiratory infections. KEY POINTS: • Pneumococcal infection increases pro-coagulant state induced by protein malnourishment. • Repletion with L. casei CRL431 modulates platelet, TF, and endothelial activation. • L. casei CRL431 improves immune-coagulative response in protein malnourishment.
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3
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Chen Q, Liu J, Xu H, He W, Li Y, Jiao L, Xiang Y, Zhan C, Chen J, Yang X, Huang S, Yang Y. Association Between Eosinophilic Leukocyte Count and Hematoma Expansion in Acute Spontaneous Intracerebral Hemorrhage. Front Neurol 2019; 10:1164. [PMID: 31736868 PMCID: PMC6834787 DOI: 10.3389/fneur.2019.01164] [Citation(s) in RCA: 6] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/26/2019] [Accepted: 10/15/2019] [Indexed: 01/21/2023] Open
Abstract
Background/Objective: Hematoma expansion (HE) predicts poor outcome and is an appealing treatment target in spontaneous intracerebral hemorrhage (ICH). Clinical evidence has shown an association of HE with peripheral white blood cells (WBC) count, but the individual contributions of leukocyte subtypes between literatures are described inconsistently. Our aim was to determine the relationship between admission absolute and differential leukocyte counts and HE by using different growth definitions. Methods: We analyzed spontaneous ICH patients who underwent baseline cranial computed tomography and blood sampling within 6 h of stroke onset in our institution between September 2013 and August 2018. Hematoma volume was calculated using a semiautomated 3-dimensional reconstruction algorithm. According to commonly used absolute or relative growth definitions (>6 mL, >12.5 mL, or >33%), we defined 5 types of HE. A propensity score-matching analysis was performed to evaluate the influence of complete blood count components on HE across the various growth definitions. The receiver operating characteristic analysis assessed the predictive ability of leukocyte counts for HE. Results: A total of 1,066 patients were included, of whom 11–21% met the 5 HE definitions. After propensity score-matching, except using the definition of >12.5 mL growth or its combination with >33% growth, both WBC and neutrophil count were independently associated with reduced risk of HE (odds ratio [OR] for 103 cells increase; OR, 0.86–0.99; all p < 0.05) after adjusting confounders in multivariate analyses. However, monocyte count was correlated with increased risk of HE under the usage of >12.5 mL expansion definition only (OR, 1.43; p = 0.024). There was no association between lymphocyte count and HE (all p > 0.05). Regardless of the growth definition, admission eosinophil count was directly associated with the risk of HE (OR, 6.92–31.60; all p < 0.05), and was the best predictive subtype with area under the curve 0.64, sensitivity 69.5%, and specificity 58.9% at the optimal cut-off value of 45 cells/μL. Conclusions: Growth definition affects the relationship of HE with leukocyte subtypes counting. Eosinophil count robustly predicts HE, and may be a surrogate when using an inflammatory marker to help select acute ICH patients with high expansion risk for hemostasis treatment in clinical trial and practice.
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Affiliation(s)
- Qian Chen
- Department of Radiology, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, China
| | - Jinjin Liu
- Department of Radiology, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, China
| | - Haoli Xu
- Department of Radiology, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, China
| | - Wenwen He
- Department of Radiology, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, China
| | - Yanxuan Li
- Department of Radiology, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, China
| | - Lizhuo Jiao
- Department of Radiology, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, China
| | - Yilan Xiang
- Department of Radiology, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, China
| | - Chenyi Zhan
- Department of Radiology, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, China
| | - Jie Chen
- Department of Radiology, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, China
| | - Xiaoming Yang
- Department of Radiology, Sir Run Run Shaw Hospital, Zhejiang University School of Medicine, Hangzhou, China
| | - Shengwei Huang
- Zhejiang Provincial Key Laboratory of Aging and Neurological Disorder Research, Department of Neurosurgery, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, China
| | - Yunjun Yang
- Department of Radiology, The First Affiliated Hospital of Wenzhou Medical University, Wenzhou, China
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4
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Morotti A, Phuah CL, Anderson CD, Jessel MJ, Schwab K, Ayres AM, Pezzini A, Padovani A, Gurol ME, Viswanathan A, Greenberg SM, Goldstein JN, Rosand J. Leukocyte Count and Intracerebral Hemorrhage Expansion. Stroke 2016; 47:1473-8. [PMID: 27103016 DOI: 10.1161/strokeaha.116.013176] [Citation(s) in RCA: 88] [Impact Index Per Article: 11.0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/15/2016] [Accepted: 03/22/2016] [Indexed: 12/30/2022]
Abstract
BACKGROUND AND PURPOSE Acute leukocytosis is a well-established response to intracerebral hemorrhage (ICH). Leukocytes, because of their interaction with platelets and coagulation factors, may in turn play a role in hemostasis. We investigated whether admission leukocytosis was associated with reduced bleeding after acute ICH. METHODS Consecutive patients with primary ICH were prospectively collected from 1994 to 2015 and retrospectively analyzed. We included subjects with a follow-up computed tomographic scan available and automated complete white blood cell count performed within 48 hours from onset. Baseline and follow-up hematoma volumes were calculated with semiautomated software, and hematoma expansion was defined as volume increase >30% or 6 mL. The association between white blood cell count and ICH expansion was investigated with multivariate logistic regression. RESULTS A total of 1302 subjects met eligibility criteria (median age, 75 years; 55.8% men), of whom 207 (15.9%) experienced hematoma expansion. Higher leukocyte count on admission was associated with reduced risk of hematoma expansion (odds ratio for 1000 cells increase, 0.91; 95% confidence interval, 0.86-0.96; P=0.001). The risk of hematoma expansion was inversely associated with neutrophil count (odds ratio, 0.90; 95% confidence interval, 0.85-0.96; P=0.001) and directly associated with monocyte count (odds ratio, 2.71; 95% confidence interval, 1.08-6.83; P=0.034). There was no association between lymphocyte count and ICH expansion (odds ratio, 0.96; 95% confidence interval, 0.79-1.17; P=0.718). CONCLUSIONS Higher admission white blood cell count is associated with lower risk of hematoma expansion. This highlights a potential role of the inflammatory response in modulating the coagulation cascade after acute ICH.
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Affiliation(s)
- Andrea Morotti
- From the Neurology Unit, Department of Clinical and Experimental Sciences, University of Brescia, Brescia, Italy (A.M., A. Pezzini, A. Padovani); Division of Neurocritical Care and Emergency Neurology, Department of Neurology (A.M., C.-L.P., C.D.A., M.J.J., J.N.G., J.R.), Hemorrhagic Stroke Research Center (A.M., C.-L.P., C.D.A., M.J.J., K.S., A.A., M.E.G., A.V., S.M.G., J.N.G., J.R.), and Department of Emergency Medicine (J.N.G.), Massachusetts General Hospital, Boston.
| | - Chia-Ling Phuah
- From the Neurology Unit, Department of Clinical and Experimental Sciences, University of Brescia, Brescia, Italy (A.M., A. Pezzini, A. Padovani); Division of Neurocritical Care and Emergency Neurology, Department of Neurology (A.M., C.-L.P., C.D.A., M.J.J., J.N.G., J.R.), Hemorrhagic Stroke Research Center (A.M., C.-L.P., C.D.A., M.J.J., K.S., A.A., M.E.G., A.V., S.M.G., J.N.G., J.R.), and Department of Emergency Medicine (J.N.G.), Massachusetts General Hospital, Boston
| | - Christopher D Anderson
- From the Neurology Unit, Department of Clinical and Experimental Sciences, University of Brescia, Brescia, Italy (A.M., A. Pezzini, A. Padovani); Division of Neurocritical Care and Emergency Neurology, Department of Neurology (A.M., C.-L.P., C.D.A., M.J.J., J.N.G., J.R.), Hemorrhagic Stroke Research Center (A.M., C.-L.P., C.D.A., M.J.J., K.S., A.A., M.E.G., A.V., S.M.G., J.N.G., J.R.), and Department of Emergency Medicine (J.N.G.), Massachusetts General Hospital, Boston
| | - Michael J Jessel
- From the Neurology Unit, Department of Clinical and Experimental Sciences, University of Brescia, Brescia, Italy (A.M., A. Pezzini, A. Padovani); Division of Neurocritical Care and Emergency Neurology, Department of Neurology (A.M., C.-L.P., C.D.A., M.J.J., J.N.G., J.R.), Hemorrhagic Stroke Research Center (A.M., C.-L.P., C.D.A., M.J.J., K.S., A.A., M.E.G., A.V., S.M.G., J.N.G., J.R.), and Department of Emergency Medicine (J.N.G.), Massachusetts General Hospital, Boston
| | - Kristin Schwab
- From the Neurology Unit, Department of Clinical and Experimental Sciences, University of Brescia, Brescia, Italy (A.M., A. Pezzini, A. Padovani); Division of Neurocritical Care and Emergency Neurology, Department of Neurology (A.M., C.-L.P., C.D.A., M.J.J., J.N.G., J.R.), Hemorrhagic Stroke Research Center (A.M., C.-L.P., C.D.A., M.J.J., K.S., A.A., M.E.G., A.V., S.M.G., J.N.G., J.R.), and Department of Emergency Medicine (J.N.G.), Massachusetts General Hospital, Boston
| | - Alison M Ayres
- From the Neurology Unit, Department of Clinical and Experimental Sciences, University of Brescia, Brescia, Italy (A.M., A. Pezzini, A. Padovani); Division of Neurocritical Care and Emergency Neurology, Department of Neurology (A.M., C.-L.P., C.D.A., M.J.J., J.N.G., J.R.), Hemorrhagic Stroke Research Center (A.M., C.-L.P., C.D.A., M.J.J., K.S., A.A., M.E.G., A.V., S.M.G., J.N.G., J.R.), and Department of Emergency Medicine (J.N.G.), Massachusetts General Hospital, Boston
| | - Alessandro Pezzini
- From the Neurology Unit, Department of Clinical and Experimental Sciences, University of Brescia, Brescia, Italy (A.M., A. Pezzini, A. Padovani); Division of Neurocritical Care and Emergency Neurology, Department of Neurology (A.M., C.-L.P., C.D.A., M.J.J., J.N.G., J.R.), Hemorrhagic Stroke Research Center (A.M., C.-L.P., C.D.A., M.J.J., K.S., A.A., M.E.G., A.V., S.M.G., J.N.G., J.R.), and Department of Emergency Medicine (J.N.G.), Massachusetts General Hospital, Boston
| | - Alessandro Padovani
- From the Neurology Unit, Department of Clinical and Experimental Sciences, University of Brescia, Brescia, Italy (A.M., A. Pezzini, A. Padovani); Division of Neurocritical Care and Emergency Neurology, Department of Neurology (A.M., C.-L.P., C.D.A., M.J.J., J.N.G., J.R.), Hemorrhagic Stroke Research Center (A.M., C.-L.P., C.D.A., M.J.J., K.S., A.A., M.E.G., A.V., S.M.G., J.N.G., J.R.), and Department of Emergency Medicine (J.N.G.), Massachusetts General Hospital, Boston
| | - M Edip Gurol
- From the Neurology Unit, Department of Clinical and Experimental Sciences, University of Brescia, Brescia, Italy (A.M., A. Pezzini, A. Padovani); Division of Neurocritical Care and Emergency Neurology, Department of Neurology (A.M., C.-L.P., C.D.A., M.J.J., J.N.G., J.R.), Hemorrhagic Stroke Research Center (A.M., C.-L.P., C.D.A., M.J.J., K.S., A.A., M.E.G., A.V., S.M.G., J.N.G., J.R.), and Department of Emergency Medicine (J.N.G.), Massachusetts General Hospital, Boston
| | - Anand Viswanathan
- From the Neurology Unit, Department of Clinical and Experimental Sciences, University of Brescia, Brescia, Italy (A.M., A. Pezzini, A. Padovani); Division of Neurocritical Care and Emergency Neurology, Department of Neurology (A.M., C.-L.P., C.D.A., M.J.J., J.N.G., J.R.), Hemorrhagic Stroke Research Center (A.M., C.-L.P., C.D.A., M.J.J., K.S., A.A., M.E.G., A.V., S.M.G., J.N.G., J.R.), and Department of Emergency Medicine (J.N.G.), Massachusetts General Hospital, Boston
| | - Steven M Greenberg
- From the Neurology Unit, Department of Clinical and Experimental Sciences, University of Brescia, Brescia, Italy (A.M., A. Pezzini, A. Padovani); Division of Neurocritical Care and Emergency Neurology, Department of Neurology (A.M., C.-L.P., C.D.A., M.J.J., J.N.G., J.R.), Hemorrhagic Stroke Research Center (A.M., C.-L.P., C.D.A., M.J.J., K.S., A.A., M.E.G., A.V., S.M.G., J.N.G., J.R.), and Department of Emergency Medicine (J.N.G.), Massachusetts General Hospital, Boston
| | - Joshua N Goldstein
- From the Neurology Unit, Department of Clinical and Experimental Sciences, University of Brescia, Brescia, Italy (A.M., A. Pezzini, A. Padovani); Division of Neurocritical Care and Emergency Neurology, Department of Neurology (A.M., C.-L.P., C.D.A., M.J.J., J.N.G., J.R.), Hemorrhagic Stroke Research Center (A.M., C.-L.P., C.D.A., M.J.J., K.S., A.A., M.E.G., A.V., S.M.G., J.N.G., J.R.), and Department of Emergency Medicine (J.N.G.), Massachusetts General Hospital, Boston
| | - Jonathan Rosand
- From the Neurology Unit, Department of Clinical and Experimental Sciences, University of Brescia, Brescia, Italy (A.M., A. Pezzini, A. Padovani); Division of Neurocritical Care and Emergency Neurology, Department of Neurology (A.M., C.-L.P., C.D.A., M.J.J., J.N.G., J.R.), Hemorrhagic Stroke Research Center (A.M., C.-L.P., C.D.A., M.J.J., K.S., A.A., M.E.G., A.V., S.M.G., J.N.G., J.R.), and Department of Emergency Medicine (J.N.G.), Massachusetts General Hospital, Boston
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5
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Wang KC, Li YH, Shi GY, Tsai HW, Luo CY, Cheng MH, Ma CY, Hsu YY, Cheng TL, Chang BI, Lai CH, Wu HL. Membrane-Bound Thrombomodulin Regulates Macrophage Inflammation in Abdominal Aortic Aneurysm. Arterioscler Thromb Vasc Biol 2015; 35:2412-22. [DOI: 10.1161/atvbaha.115.305529] [Citation(s) in RCA: 30] [Impact Index Per Article: 3.3] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/25/2015] [Accepted: 08/18/2015] [Indexed: 01/30/2023]
Abstract
Objective—
Thrombomodulin (TM), a glycoprotein constitutively expressed in the endothelium, is well known for its anticoagulant and anti-inflammatory properties. Paradoxically, we recently found that monocytic membrane-bound TM (ie, endogenous TM expression in monocytes) triggers lipopolysaccharide- and gram-negative bacteria–induced inflammatory responses. However, the significance of membrane-bound TM in chronic sterile vascular inflammation and the development of abdominal aortic aneurysm (AAA) remains undetermined.
Approach and Results—
Implicating a potential role for membrane-bound TM in AAA, we found that TM signals were predominantly localized to macrophages and vascular smooth muscle cells in human aneurysm specimens. Characterization of the CaCl
2
-induced AAA in mice revealed that during aneurysm development, TM expression was mainly localized in infiltrating macrophages and vascular smooth muscle cells. To investigate the function of membrane-bound TM in vivo, transgenic mice with myeloid- (LysMcre/TM
flox/flox
) and vascular smooth muscle cell–specific (SM22-cre
tg
/TM
flox/flox
) TM ablation and their respective wild-type controls (TM
flox/flox
and SM22-cre
tg
/TM
+/+
) were generated. In the mouse CaCl
2
-induced AAA model, deficiency of myeloid TM, but not vascular smooth muscle cell TM, inhibited macrophage accumulation, attenuated proinflammatory cytokine and matrix metalloproteinase-9 production, and finally mitigated elastin destruction and aortic dilatation. In vitro TM-deficient monocytes/macrophages, versus TM wild-type counterparts, exhibited attenuation of proinflammatory mediator expression, adhesion to endothelial cells, and generation of reactive oxygen species. Consistently, myeloid TM–deficient hyperlipidemic mice (ApoE
−/−
/LysMcre/TM
flox/flox
) were resistant to AAA formation induced by angiotensin II infusion, along with reduced macrophage infiltration, suppressed matrix metalloproteinase activities, and diminished oxidative stress.
Conclusions—
Membrane-bound TM in macrophages plays an essential role in the development of AAA by enhancing proinflammatory mediator elaboration, macrophage recruitment, and oxidative stress.
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Affiliation(s)
- Kuan-Chieh Wang
- From the Department of Biochemistry and Molecular Biology (K.-C.W., G.-Y.S., M.-H.C., C.-Y.M., Y.-Y.H., B.-I.C., H.-L.W.), Institute of Basic Medical Sciences (K.-C.W.), Cardiovascular Research Center (K.-C.W., Y.-H.L., G.-Y.S., C.-Y.L., C.-Y.M., Y.-Y.H., B.-I.C., C.-H.L., H.-L.W.), Department of Internal Medicine (Y.-H.L.), Department of Pathology (H.-W.T.), and Department of Surgery (C.-Y.L., C.-H.L.), National Cheng Kung University Hospital, College of Medicine, National Cheng Kung University,
| | - Yi-Heng Li
- From the Department of Biochemistry and Molecular Biology (K.-C.W., G.-Y.S., M.-H.C., C.-Y.M., Y.-Y.H., B.-I.C., H.-L.W.), Institute of Basic Medical Sciences (K.-C.W.), Cardiovascular Research Center (K.-C.W., Y.-H.L., G.-Y.S., C.-Y.L., C.-Y.M., Y.-Y.H., B.-I.C., C.-H.L., H.-L.W.), Department of Internal Medicine (Y.-H.L.), Department of Pathology (H.-W.T.), and Department of Surgery (C.-Y.L., C.-H.L.), National Cheng Kung University Hospital, College of Medicine, National Cheng Kung University,
| | - Guey-Yueh Shi
- From the Department of Biochemistry and Molecular Biology (K.-C.W., G.-Y.S., M.-H.C., C.-Y.M., Y.-Y.H., B.-I.C., H.-L.W.), Institute of Basic Medical Sciences (K.-C.W.), Cardiovascular Research Center (K.-C.W., Y.-H.L., G.-Y.S., C.-Y.L., C.-Y.M., Y.-Y.H., B.-I.C., C.-H.L., H.-L.W.), Department of Internal Medicine (Y.-H.L.), Department of Pathology (H.-W.T.), and Department of Surgery (C.-Y.L., C.-H.L.), National Cheng Kung University Hospital, College of Medicine, National Cheng Kung University,
| | - Hung-Wen Tsai
- From the Department of Biochemistry and Molecular Biology (K.-C.W., G.-Y.S., M.-H.C., C.-Y.M., Y.-Y.H., B.-I.C., H.-L.W.), Institute of Basic Medical Sciences (K.-C.W.), Cardiovascular Research Center (K.-C.W., Y.-H.L., G.-Y.S., C.-Y.L., C.-Y.M., Y.-Y.H., B.-I.C., C.-H.L., H.-L.W.), Department of Internal Medicine (Y.-H.L.), Department of Pathology (H.-W.T.), and Department of Surgery (C.-Y.L., C.-H.L.), National Cheng Kung University Hospital, College of Medicine, National Cheng Kung University,
| | - Chawn-Yau Luo
- From the Department of Biochemistry and Molecular Biology (K.-C.W., G.-Y.S., M.-H.C., C.-Y.M., Y.-Y.H., B.-I.C., H.-L.W.), Institute of Basic Medical Sciences (K.-C.W.), Cardiovascular Research Center (K.-C.W., Y.-H.L., G.-Y.S., C.-Y.L., C.-Y.M., Y.-Y.H., B.-I.C., C.-H.L., H.-L.W.), Department of Internal Medicine (Y.-H.L.), Department of Pathology (H.-W.T.), and Department of Surgery (C.-Y.L., C.-H.L.), National Cheng Kung University Hospital, College of Medicine, National Cheng Kung University,
| | - Min-Hua Cheng
- From the Department of Biochemistry and Molecular Biology (K.-C.W., G.-Y.S., M.-H.C., C.-Y.M., Y.-Y.H., B.-I.C., H.-L.W.), Institute of Basic Medical Sciences (K.-C.W.), Cardiovascular Research Center (K.-C.W., Y.-H.L., G.-Y.S., C.-Y.L., C.-Y.M., Y.-Y.H., B.-I.C., C.-H.L., H.-L.W.), Department of Internal Medicine (Y.-H.L.), Department of Pathology (H.-W.T.), and Department of Surgery (C.-Y.L., C.-H.L.), National Cheng Kung University Hospital, College of Medicine, National Cheng Kung University,
| | - Chih-Yuan Ma
- From the Department of Biochemistry and Molecular Biology (K.-C.W., G.-Y.S., M.-H.C., C.-Y.M., Y.-Y.H., B.-I.C., H.-L.W.), Institute of Basic Medical Sciences (K.-C.W.), Cardiovascular Research Center (K.-C.W., Y.-H.L., G.-Y.S., C.-Y.L., C.-Y.M., Y.-Y.H., B.-I.C., C.-H.L., H.-L.W.), Department of Internal Medicine (Y.-H.L.), Department of Pathology (H.-W.T.), and Department of Surgery (C.-Y.L., C.-H.L.), National Cheng Kung University Hospital, College of Medicine, National Cheng Kung University,
| | - Yun-Yan Hsu
- From the Department of Biochemistry and Molecular Biology (K.-C.W., G.-Y.S., M.-H.C., C.-Y.M., Y.-Y.H., B.-I.C., H.-L.W.), Institute of Basic Medical Sciences (K.-C.W.), Cardiovascular Research Center (K.-C.W., Y.-H.L., G.-Y.S., C.-Y.L., C.-Y.M., Y.-Y.H., B.-I.C., C.-H.L., H.-L.W.), Department of Internal Medicine (Y.-H.L.), Department of Pathology (H.-W.T.), and Department of Surgery (C.-Y.L., C.-H.L.), National Cheng Kung University Hospital, College of Medicine, National Cheng Kung University,
| | - Tsung-Lin Cheng
- From the Department of Biochemistry and Molecular Biology (K.-C.W., G.-Y.S., M.-H.C., C.-Y.M., Y.-Y.H., B.-I.C., H.-L.W.), Institute of Basic Medical Sciences (K.-C.W.), Cardiovascular Research Center (K.-C.W., Y.-H.L., G.-Y.S., C.-Y.L., C.-Y.M., Y.-Y.H., B.-I.C., C.-H.L., H.-L.W.), Department of Internal Medicine (Y.-H.L.), Department of Pathology (H.-W.T.), and Department of Surgery (C.-Y.L., C.-H.L.), National Cheng Kung University Hospital, College of Medicine, National Cheng Kung University,
| | - Bi-Ing Chang
- From the Department of Biochemistry and Molecular Biology (K.-C.W., G.-Y.S., M.-H.C., C.-Y.M., Y.-Y.H., B.-I.C., H.-L.W.), Institute of Basic Medical Sciences (K.-C.W.), Cardiovascular Research Center (K.-C.W., Y.-H.L., G.-Y.S., C.-Y.L., C.-Y.M., Y.-Y.H., B.-I.C., C.-H.L., H.-L.W.), Department of Internal Medicine (Y.-H.L.), Department of Pathology (H.-W.T.), and Department of Surgery (C.-Y.L., C.-H.L.), National Cheng Kung University Hospital, College of Medicine, National Cheng Kung University,
| | - Chao-Han Lai
- From the Department of Biochemistry and Molecular Biology (K.-C.W., G.-Y.S., M.-H.C., C.-Y.M., Y.-Y.H., B.-I.C., H.-L.W.), Institute of Basic Medical Sciences (K.-C.W.), Cardiovascular Research Center (K.-C.W., Y.-H.L., G.-Y.S., C.-Y.L., C.-Y.M., Y.-Y.H., B.-I.C., C.-H.L., H.-L.W.), Department of Internal Medicine (Y.-H.L.), Department of Pathology (H.-W.T.), and Department of Surgery (C.-Y.L., C.-H.L.), National Cheng Kung University Hospital, College of Medicine, National Cheng Kung University,
| | - Hua-Lin Wu
- From the Department of Biochemistry and Molecular Biology (K.-C.W., G.-Y.S., M.-H.C., C.-Y.M., Y.-Y.H., B.-I.C., H.-L.W.), Institute of Basic Medical Sciences (K.-C.W.), Cardiovascular Research Center (K.-C.W., Y.-H.L., G.-Y.S., C.-Y.L., C.-Y.M., Y.-Y.H., B.-I.C., C.-H.L., H.-L.W.), Department of Internal Medicine (Y.-H.L.), Department of Pathology (H.-W.T.), and Department of Surgery (C.-Y.L., C.-H.L.), National Cheng Kung University Hospital, College of Medicine, National Cheng Kung University,
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Thrombomodulin gene proximal promoter polymorphisms in premature acute coronary syndrome patients in Bahrain. Blood Coagul Fibrinolysis 2015; 26:919-24. [PMID: 26226255 DOI: 10.1097/mbc.0000000000000361] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.2] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/17/2023]
Abstract
Thrombomodulin is expressed on endothelial cells and monocytes (mTM) where it has an anticoagulant function. Enzymatic cleavage from the cell surface produces soluble thrombomodulin (sTM) in plasma. Abnormal levels of sTM and mutations in the thrombomodulin gene (THBD) are linked to cardiovascular disease. The aim of this study was to investigate THBD proximal promoter mutations and levels of sTM and mTM in men presenting with premature acute coronary syndrome (ACS). This prospective cross-sectional study included 100 adult men with premature ACS (age <55 years) and 60 healthy age-matched controls. Plasma sTM was assayed by ELISA. mTM expression was assessed by flow cytometry with CD141 antibody. The -33 G/A polymorphism was identified by PCR-restriction fragment length polymorphism analysis and the THBD proximal promoter region was sequenced. Significantly lower sTM (P < 0.001) and higher mTM (P < 0.001) were seen in ACS patients. Heterozygous THBD promoter polymorphisms -33 G/A and -9/-10 GG/AT were found in eight patients and five control individuals. In patients and control individuals, allele frequencies of A were 0.02 and 0.025, and that of AT were 0.025 and 0.017, respectively. There were no significant associations of these polymorphisms with ACS, sTM levels or mTM expression. THBD polymorphisms -33 G/A and -9/-10 GG/AT are present in low frequency in our patient population, and are more frequent in the South Asians as compared to the Arabs. The frequency of -33 G/A is lower, whereas that of -9/-10 GG/AT is higher than that reported in the Orientals. The presence of THBD proximal promoter polymorphisms do not explain variations in levels of sTM and mTM in this patient population.
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Decreased thrombomodulin mRNA expression on peripheral monocytes in disseminated intravascular coagulation patients relates to poor outcomes: The ex vivo effects of lipopolysaccharide and thrombin on monocyte thrombomodulin and CD14 mRNA. Thromb Res 2013; 132:392-7. [DOI: 10.1016/j.thromres.2013.07.025] [Citation(s) in RCA: 5] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/18/2013] [Revised: 06/17/2013] [Accepted: 07/30/2013] [Indexed: 11/17/2022]
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Laboratory Diagnosis of Disseminated Intravascular Coagulation in Dogs and Cats: The Past, the Present, and the Future. Vet Clin North Am Small Anim Pract 2012; 42:189-202. [DOI: 10.1016/j.cvsm.2011.09.011] [Citation(s) in RCA: 7] [Impact Index Per Article: 0.6] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/24/2022]
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