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1.
J Surg Res ; 301: 287-295, 2024 Jul 11.
Article in English | MEDLINE | ID: mdl-38996719

ABSTRACT

INTRODUCTION: Hypoxia is a significant cause of secondary insult in the critically ill trauma or surgical patient. The cause of increased mortality following a brief period of hypoxia is not well understood. The aim of this study is to determine the effect of acute, isolated deviations in oxygen concentration on proinflammatory cytokine release and markers of endothelial stress in a murine model. METHODS: Mice were randomized to either control, hypoxia, or hyperoxia group. The control group was exposed to room air for 60 min, the hyperoxia group was exposed to 70% fraction of inspired oxygen, and the hypoxia group was exposed to 10% fraction of inspired oxygen for 60 min. Whole blood collection was completed via cardiac puncture. Serum concentrations of proinflammatory cytokines and endothelial stress markers were analyzed via enzyme-linked immunosorbent assay. RESULTS: Following exposure to hypoxic conditions, there was a significant increase in interleukin (IL)-1α (IL-1 α), IL-1 ß, IL-3, IL-4, IL-6, IL-10, tumor necrosis factor α . Following exposure to hyperoxic conditions, there was a significant increase in monocyte chemoattractant protein-1 and regulated upon activation normal T cell expressed and presumably secreted, as well as a significant decrease in IL-12, and IL-17. No clinically significant difference was noted in serum concentration of endothelial stress markers between the treatment groups. DISCUSSION: Exposure to oxygen extremes induces systemic inflammation as measured by proinflammatory cytokines in a murine model. Hyperoxia also demonstrates the ability to downregulate certain inflammatory pathways while inducing others. No effect on serum concentration of endothelial stress markers is observed following acute, isolated hypoxic or hyperoxic conditions.

2.
J Surg Res ; 302: 376-384, 2024 Aug 16.
Article in English | MEDLINE | ID: mdl-39153358

ABSTRACT

INTRODUCTION: Recent studies have evaluated patient perception of physician attire; however, few studies have considered physician perceptions of workplace attire. This study aimed to assess current trends regarding attire preferences among surgeons. METHODS: A national, population-based survey was distributed via email and "X" (Twitter). Participants were asked to complete an online questionnaire regarding their perception of the white coat, preferred attire in clinical settings, and reasons for choice of attire. RESULTS: Of 481 participants, 172 (36%) were attendings, 164 (34%) were residents, 125 (26%) were medical students, and 20 (4%) were fellows. Those who practiced in the Midwest region were more likely to wear a white coat daily (35.1% versus 28.5% South, 23.5% Northeast, 20.0% West, P < 0.05). Late career surgeons (practicing >20 y) were more likely to wear a white coat in the hospital and wear it daily (56% versus 36% of middle-career surgeons, 34% early-career surgeons, and 26% in training, P < 0.05). Women surgeons more frequently wore a white coat in clinic (64% versus 54% men, P < 0.05), reported that wearing a white coat was influenced by their program's culture (61% versus 46% of men surgeons, P < 0.05), that they would stop wearing a white coat if other members of their department stopped (50% versus 35% of men, P < 0.05), and that they believe the white coat helps distinguish female doctors from nurses (61% versus 50% of men surgeons, P < 0.05). CONCLUSIONS: This study demonstrates generational, regional, and gender differences among surgeons in their perception of the white coat at a national level.

3.
Transfus Apher Sci ; 63(2): 103890, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38355315

ABSTRACT

INTRODUCTION: The use of packed red blood cells (pRBCs) for resuscitation is limited by the red blood cell storage lesion, a series of biochemical and physiological changes that occur during the storage and aging of blood. Microvesicles (MVs) shed from pRBCs during this process are one component of the red blood cell storage lesion and lead to acute lung injury and pulmonary vascular microthrombi. We hypothesized that MVs from stored pRBCs lead to the release of P-selectin and von Willebrand factor (vWF) from endothelial cells and that this mechanism is mediated via activation of protein kinase C (PKC) or protein kinase A (PKA). METHODS: Leukoreduced, platelet-poor murine pRBCs were isolated from C57BL/6 8-12 week-old male mice via cardiac puncture, prepared via centrifugation using a Ficoll gradient, and stored for up to 14 days, the equivalent of 42 days of storage in humans. MVs were isolated from the stored pRBC units via sequential high-speed centrifugation. Murine lung endothelial cells (MLECs) were cultured and grown to confluence, then treated with MVs and either calphostin C, a PKC inhibitor (10 µg/mL), or PKI 14-22 amide, a PKA inhibitor (10 µM). The supernatant was collected after 1 h. P-selectin and vWF A2 concentrations were quantified via ELISA. Immunofluorescent staining for vWF was performed on MLECs. Statistical analysis was performed via unpaired t-test or ANOVA as indicated and reported as mean ± SD. Concentration is reported as pg/mL. RESULTS: MLECs treated with MVs isolated from stored pRBCs demonstrated increased release of P-selectin and vWF A2 in a dose-dependent fashion. MLECs treated with MVs prepared from stored as compared to fresh pRBCs demonstrated increased release of P-selectin (3751 ± 726 vs 359 ± 64 pg/mL, p < 0.0001) and vWF A2 (3141 ± 355 vs 977 ± 75 pg/mL, p < 0.0001) with increasing duration of storage. The treatment of MVs with calphostin C decreased the amount of P-selectin (1471 ± 444 vs 3751 ± 726 pg/mL, p < 0.0001) and VWF A2 (2401 ± 289 vs 3141 ± 355 pg/mL, p = 0.0017) released into the supernatant by MLECs compared to MVs alone. The treatment of MVs with PKI 14-22 increased the amount of P-selectin released compared to MVs alone (1999 ± 67 vs 1601 ± 135 pg/mL, p = 0.0018). CONCLUSIONS: MVs from stored pRBCs stimulate the release of P-selectin and VWF A2 from endothelial cells. The effect of MVs increases with both dose of MVs and age of stored pRBCs from which they are formed. This mechanism is dependent on activation of PKC and inhibition of this enzyme represents a potentially significant strategy to modulate the inflammatory response to resuscitation with stored pRBCs.


Subject(s)
Endothelial Cells , Naphthalenes , von Willebrand Factor , Animals , Male , Mice , Endothelial Cells/metabolism , Erythrocytes/metabolism , Mice, Inbred C57BL , P-Selectin , Protein Kinase C , von Willebrand Factor/metabolism
4.
J Trauma Acute Care Surg ; 97(1): 57-64, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38605437

ABSTRACT

BACKGROUND: Prior literature has implicated red blood cells (RBCs) in the initiation of thrombosis and suggests that posttransfusion hypercoagulability may occur secondary to the effects of RBCs. Elevated serum tissue factor is a known sequelae of acute trauma. Phosphatidylserine (PS) is a prothrombotic phospholipid present within the RBC cell membrane. We hypothesized that RBC aggregation is dependent on the interaction between RBC membrane bound (exposed) PS, extracellular calcium, and tissue factor. METHODS: Human whole blood (WB) was separated into components, including RBCs and platelet-rich plasma (PRP). Whole blood, PRP, and RBCs underwent impedance aggregometry utilizing arachidonic acid (AA), ADP, collagen, calcium, and tissue factor (TF)-based agonists. Red blood cells then underwent impedance aggregometry utilizing combined calcium and TF agonists. Red blood cells were pretreated with Annexin V, a known PS blocking agent, and underwent impedance aggregometry with combined calcium and TF agonists to determine if the mechanism of calcium/TF-induced RBC aggregability is dependent on PS. Red blood cells treated with calcium, TF, calcium+TF, and pre-treated with Annexin V followed by calcium+TF were perfused through an in vitro model of pulmonary microcirculatory flow. RESULTS: Red blood cell aggregation was significantly higher than that of WB and PRP when utilizing a TF agonist, an effect unique to TF. The combination of calcium and TF demonstrated significantly higher RBC aggregation than either agonist alone. Pretreatment with Annexin V resulted in a significantly reduced aggregability of RBC following treatment with TF + calcium. Red blood cells aged to 42 days did not exhibit significant change in aggregation. Exposure to calcium and TF significantly reduced time to thrombosis of RBCs perfused through a pulmonary microcirculatory model. CONCLUSION: Treatment with both TF and calcium synergistically induces RBC aggregation. Phosphatidylserine appears to play an integral role in the TF/calcium-based, age-independent RBC aggregation response. Red blood cells treated with TF + calcium exhibit more rapid thrombus formation in an in vitro model of pulmonary microcirculatory perfusion.


Subject(s)
Calcium , Erythrocytes , Phosphatidylserines , Thromboplastin , Thrombosis , Humans , Phosphatidylserines/metabolism , Thromboplastin/metabolism , Calcium/metabolism , Thrombosis/metabolism , Thrombosis/etiology , Erythrocytes/metabolism , Erythrocyte Aggregation/drug effects , Erythrocyte Membrane/metabolism , Platelet-Rich Plasma/metabolism
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