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1.
Mil Med ; 189(Supplement_3): 268-275, 2024 Aug 19.
Article in English | MEDLINE | ID: mdl-39160853

ABSTRACT

INTRODUCTION: Non-compressible torso hemorrhagic (NCTH) shock is the leading cause of potentially survivable trauma on the battlefield. New hypotensive drug therapies are urgently required to resuscitate and protect the heart and brain following NCTH. Our aim was to examine the strengths and limitations of permissive hypotension and discuss the development of small-volume adenosine, lidocaine, and Mg2+ (ALM) fluid resuscitation in rats and pigs. MATERIALS AND METHODS: For review of permissive hypotension, a literature search was performed from inception up to November 2023 using PubMed, Cochrane, and Embase databases, with inclusion of animal studies, clinical trials and reviews with military and clinical relevance. For the preclinical study, adult female pigs underwent laparoscopic liver resection. After 30 minutes of bleeding, animals were resuscitated with 4 mL/kg 3% NaCl ± ALM bolus followed 60 minutes later with 4 h 3 mL/kg/h 0.9% NaCl ± ALM drip (n = 10 per group), then blood transfusion. Mean arterial pressure (MAP) and cardiac output (CO) were continuously measured via a left ventricular pressure catheter and pulmonary artery catheter, respectively. Systemic vascular resistance (SVR) was calculated using the formula: 80 × (MAP - CVP)/CI. Oxygen delivery was calculated as the product of CO and arterial oxygen content. RESULTS: Targeting a MAP of ∼50 mmHg can be harmful or beneficial, depending on how CO and SVR are regulated. A theoretical example shows that for the same MAP of 50 mmHg, a higher CO and lower SVR can lead to a nearly 2-fold increase in O2 supply. We further show that in animal models of NCTH, 3% NaCl ALM bolus and 0.9% NaCl ALM drip induce a hypotensive, high flow, vasodilatory state with maintained tissue O2 supply and neuroprotection. ALM therapy increases survival by resuscitating the heart, reducing internal bleeding by correcting coagulopathy, and decreasing secondary injury. CONCLUSIONS: In rat and pig models of NCTH, small-volume ALM therapy resuscitates at hypotensive pressures by increasing CO and reducing SVR. This strategy is associated with heart and brain protection and maintained tissue O2 delivery. Translational studies are required to determine reproducibility and optimal component dosing. ALM therapy may find wide utility in prehospital and far-forward military environments.


Subject(s)
Adenosine , Hypotension , Resuscitation , Animals , Swine , Resuscitation/methods , Rats , Hypotension/etiology , Hypotension/physiopathology , Adenosine/administration & dosage , Adenosine/pharmacology , Lidocaine/pharmacology , Lidocaine/therapeutic use , Lidocaine/administration & dosage , Female , Shock, Hemorrhagic/therapy , Shock, Hemorrhagic/complications , Shock, Hemorrhagic/physiopathology
2.
Mil Med ; 189(Supplement_3): 471-479, 2024 Aug 19.
Article in English | MEDLINE | ID: mdl-39160888

ABSTRACT

INTRODUCTION: Achieving simultaneous cerebral blood flow (CBF) and oxygenation measures, specifically for point-of-care injury monitoring in prolonged field care, requires the implementation of appropriate methodologies and advanced medical device design, development, and evaluation. The near-infrared spectroscopy (NIRS) method measures the absorbance of light whose attenuation is related to cerebral blood volume and oxygenation. By contrast, diffuse correlation spectroscopy (DCS) allows continuous noninvasive monitoring of microvascular blood flow by directly measuring the degree of light scattering because of red blood cell (RBC) movement in tissue capillaries. Hence, this study utilizes these two optical approaches (DCS-NIRS) to obtain a more complete hemodynamic monitoring by providing cerebral microvascular blood flow, hemoglobin oxygenation and deoxygenation in hemorrhage, and hypoxia-induced injuries. MATERIALS AND METHODS: Piglet models of hemorrhage and hypoxia-induced brain injury were used with DCS and NIRS sensors placed over the preorbital to temporal skull regions. To induce hemorrhagic shock, up to 70% of the animal's total blood volume was withdrawn through graded hemorrhage serially via a syringe from a femoral artery cannula in 10 mL/kg aliquots over 1 minute every 10 minutes. A second group of animals was subjected to hypoxia for ∼1 hour through graded hypoxia by serial titration from normoxic fraction inspired oxygen of 21% to hypoxic fraction inspired oxygen of 6%. A subset of animals served as sham-controls undergoing anesthesia, instrumentation, and ventilation as the injury groups, yet experiencing no blood loss or hypoxia. RESULTS: We first investigated the relationship between hemorrhagic shock and no shock by using measured biomarkers, including blood flow index from DCS associated with CBF and oxygenated (HbO) and de-oxygenated hemoglobin from NIRS. The statistical analysis revealed a significant difference between no shock and hemorrhagic shock (P < .01). The HbO decreased with each blood loss as expected, yet the de-oxygenated hemoglobin was slightly changed. During hypoxia-induced global hypoxic-ischemic injury tests, the CBF results from graded hypoxia were consistent with the response previously measured during hemorrhagic shock. Moreover, HbO decreased when the animal was hypoxic, as expected. A statistical analysis was also conducted to compare the results with those of the sham controls. CONCLUSIONS: There is a consistency in blood flow measures in both injury mechanisms (hemorrhagic shock and hypoxia), which is significant as the new prototype system provides similar measures and trends for each brain injury type, suggesting that the optical system can be used in response to different injury mechanisms. Notably, the results support the idea that this optical system can probe the hemodynamic status of local cerebral cortical tissue and provide insight into the underlying changes of cerebral tissue perfusion at the microvascular level. These measurement capabilities can improve shock identification and monitoring of medical management of injuries, particularly hemorrhagic shock, in prolonged field care.


Subject(s)
Cerebrovascular Circulation , Hypoxia , Shock, Hemorrhagic , Spectroscopy, Near-Infrared , Animals , Shock, Hemorrhagic/physiopathology , Shock, Hemorrhagic/complications , Shock, Hemorrhagic/diagnosis , Shock, Hemorrhagic/therapy , Shock, Hemorrhagic/etiology , Swine , Spectroscopy, Near-Infrared/methods , Spectroscopy, Near-Infrared/instrumentation , Cerebrovascular Circulation/physiology , Hypoxia/physiopathology , Hypoxia/etiology , Hypoxia/complications , Monitoring, Physiologic/methods , Monitoring, Physiologic/instrumentation , Hemodynamics/physiology , Disease Models, Animal
3.
Anesthesiology ; 141(3): 554-565, 2024 Sep 01.
Article in English | MEDLINE | ID: mdl-38787807

ABSTRACT

BACKGROUND: Hemorrhagic shock (HS) and rhabdomyolysis (RM) are two important risk factors for acute kidney injury after severe trauma; however, the effects of the combination of RM and HS on kidney function are unknown. The purpose of this study was to determine the impact of RM and HS on renal function, oxygenation, perfusion, and morphology in a pig model. METHODS: Forty-seven female pigs were divided into five groups: sham, RM, HS, HS and moderate RM (RM4/HS), and HS and severe RM (RM8/HS). Rhabdomyolysis was induced by intramuscular injection of glycerol 50% with a moderate dose (4 ml/kg for the RM4/HS group) or a high dose (8 ml/kg for the RM and RM8/HS groups). Among animals with HS, after 90 min of hemorrhage, animals were resuscitated with fluid followed by transfusion of the withdrawn blood. Animals were followed for 48 h. Macro- and microcirculatory parameters measurements were performed. RESULTS: RM alone induced a decrease in creatinine clearance at 48 h (19 [0 to 41] vs. 102 [56 to 116] ml/min for RM and sham, respectively; P = 0.0006) without alteration in renal perfusion and oxygenation. Hemorrhagic shock alone impaired temporarily renal microcirculation, function, and oxygenation that were restored with fluid resuscitation. The RM4/HS and RM8/HS groups induced greater impairment of renal microcirculation and function than HS alone at the end of blood spoliation that was not improved by fluid resuscitation. Mortality was increased in the RM8/HS and RM4/HS groups in the first 48 h (73% vs. 56% vs. 9% for the RM8/HS, RM4/HS, and HS groups, respectively). CONCLUSIONS: The combination of HS and RM induced an early deleterious effect on renal microcirculation, function, and oxygenation with decreased response to resuscitation and transfusion compared with HS or RM alone.


Subject(s)
Disease Models, Animal , Kidney , Microcirculation , Rhabdomyolysis , Shock, Hemorrhagic , Animals , Shock, Hemorrhagic/physiopathology , Shock, Hemorrhagic/complications , Shock, Hemorrhagic/therapy , Female , Swine , Microcirculation/physiology , Rhabdomyolysis/physiopathology , Kidney/blood supply , Kidney/physiopathology , Renal Circulation/physiology , Oxygen/blood , Kidney Function Tests/methods
4.
Transplant Proc ; 56(3): 705-711, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38395660

ABSTRACT

BACKGROUND: Although non-human primates are the closest animals to humans to simulate physiological and metabolic responses, there is a paucity of primate hemorrhagic shock models that are standardized and reproducible. Herein, we describe a model that is a clinical replica of extreme class IV hemorrhagic shock with a step-by-step description of the procedure in cynomolgus macaque monkeys. METHODS: The physiological changes that occurred during the process were evaluated using hemodynamic parameters, echocardiogram, and laboratory values. Five female monkeys were subjected to trauma laparotomy, followed by cannulation of the abdominal aorta to achieve graded hemorrhage. A central line was placed in the right internal jugular vein, which was subsequently used for laboratory sampling and volume resuscitation. The withdrawal of blood was ceased when a predefined cardiac endpoint with cardiac arrhythmia or bradycardia was reached. The animals were then immediately resuscitated with transfusion. The primary cardiac endpoint was consistently reached in all 5 animals during the fourth hemorrhage when more than 70% of the estimated total blood volume was lost. RESULTS: No mortality occurred during the process. The blood pressure, cardiac output measured from an echocardiogram, and hemoglobin correlated well with increasing loss of circulating volume, whereas the pulse pressure variation did not. The echocardiogram was also a useful predictor for urgent volume replacement. CONCLUSION: This model offers a safe and reproducible surgical hemorrhagic model in non-human primates and simulates clinical practice. This could provide a useful platform on which further studies can be carried out to address unanswered questions in trauma management.


Subject(s)
Disease Models, Animal , Hemodynamics , Macaca fascicularis , Shock, Hemorrhagic , Animals , Shock, Hemorrhagic/physiopathology , Shock, Hemorrhagic/therapy , Female , Reproducibility of Results , Blood Pressure , Resuscitation/methods , Echocardiography
5.
Comput Math Methods Med ; 2022: 6394544, 2022.
Article in English | MEDLINE | ID: mdl-35186114

ABSTRACT

OBJECTIVE: To explore the protective effect of dexmedetomidine on renal function in patients with hemorrhagic shock and its possible mechanism. METHODS: Seventy patients with traumatic hemorrhagic shock requiring surgical treatment were randomly divided into the control group (group C) and the dexmedetomidine group (group D), with 35 patients in each group. Patients in both groups were actively treated with volumetric resuscitation while surgical hemostasis. Group D was given dexmedetomidine 0.5 µg/kg before skin incision after anesthesia induction, for 10 min, followed by intravenous infusion at a rate of 0.4 µg·kg-1·h-1 until 30 min before surgery, and group C was given equal volume of normal saline before skin resection (H1). Venous blood was collected 2 h (H2) and 4 h (H4) after skin resection, and plasma levels of BUN, creatinine (SCr), lipid peroxides (MDA), and inflammatory mediators IL-6 and IL-8 were measured on the 1st and 2nd day after surgery. RESULTS: Compared with H1, BUN and SCr levels had no significant difference at 2 h and 4 h after skin resection but significantly decreased at 1 and 2 postoperative days (D1) (P < 0.05). There were significant differences in MDA, IL-6, and IL-8 at 2 and 4 h after skin resection (P < 0.05), but there were no significant differences at 1 day after surgery (D1) and 2 days after surgery (D2). Compared with group C, the levels of MDA, IL-6, and IL-8 in group U were significantly decreased at 2 h and 4 h after skin resection (P < 0.05), and the levels of BUN and SCr in group U were significantly decreased at 1 and 2 days after skin resection (P < 0.05). CONCLUSION: Dexmedetomidine can effectively inhibit the release of oxygen free radicals in the shock stage and the shock recovery stage in patients with hemorrhagic trauma shock and has a protective effect on renal function.


Subject(s)
Dexmedetomidine/pharmacology , Kidney/drug effects , Shock, Hemorrhagic/drug therapy , Adolescent , Adrenergic alpha-2 Receptor Agonists/pharmacology , Adult , Computational Biology , Cytokines/blood , Female , Humans , Inflammation Mediators/blood , Kidney/physiopathology , Kidney Function Tests , Male , Oxidative Stress/drug effects , Protective Agents/pharmacology , Shock, Hemorrhagic/physiopathology , Shock, Hemorrhagic/surgery , Young Adult
6.
J Trauma Acute Care Surg ; 92(1): 12-20, 2022 01 01.
Article in English | MEDLINE | ID: mdl-34932039

ABSTRACT

BACKGROUND: The combined injury of traumatic brain injury and hemorrhagic shock has been shown to worsen coagulopathy and systemic inflammation, thereby increasing posttraumatic morbidity and mortality. Aeromedical evacuation to definitive care may exacerbate postinjury morbidity because of the inherent hypobaric hypoxic environment. We hypothesized that blood product resuscitation may mitigate the adverse physiologic effects of postinjury flight. METHODS: An established porcine model of controlled cortical injury was used to induce traumatic brain injury. Intracerebral monitors were placed to record intracranial pressure, brain tissue oxygenation, and cerebral perfusion. Each of the 42 pigs was hemorrhaged to a goal mean arterial pressure of 40 ± 5 mm Hg for 1 hour. Pigs were grouped according to resuscitation strategy used-Lactated Ringer's (LR) or shed whole blood (WB)-then placed in an altitude chamber for 2 hours at ground, 8,000 ft, or 22,000 ft, and then observed for 4 hours. Hourly blood samples were analyzed for proinflammatory cytokines and lactate. Internal jugular vein blood flow was monitored continuously for microbubble formation with altitude changes. RESULTS: Cerebral perfusion, tissue oxygenation, and intracranial pressure were unchanged among the six study groups. Venous microbubbles were not observed even with differing altitude or resuscitation strategy. Serum lactate levels from hour 2 of flight to the end of observation were significantly elevated in 22,000 + LR compared with 8,000 + LR and 22,000 + WB. Serum IL-6 levels were significantly elevated in 22,000 + LR compared with 22,000 + WB, 8,000 + LR and ground+LR at hour 1 of observation. Serum tumor necrosis factor-α was significantly elevated at hour 2 of flight in 8,000 + LR versus ground+LR, and in 22,000 + LR vs. 22,000 + WB at hour 1 of observation. Serum IL-1ß was significantly elevated hour 1 of flight between 8,000 + LR and ground+LR. CONCLUSION: Crystalloid resuscitation during aeromedical transport may cause a prolonged lactic acidosis and proinflammatory response that can predispose multiple-injury patients to secondary cellular injury. This physiologic insult may be prevented by using blood product resuscitation strategies.


Subject(s)
Air Ambulances , Blood Transfusion/methods , Brain Injuries, Traumatic , Crystalloid Solutions , Resuscitation/methods , Ringer's Lactate , Shock, Hemorrhagic , Animals , Brain Injuries, Traumatic/complications , Brain Injuries, Traumatic/physiopathology , Brain Injuries, Traumatic/therapy , Cerebrovascular Circulation/drug effects , Cerebrovascular Circulation/physiology , Crystalloid Solutions/administration & dosage , Crystalloid Solutions/adverse effects , Disease Models, Animal , Intracranial Pressure/drug effects , Intracranial Pressure/physiology , Multiple Trauma/physiopathology , Multiple Trauma/therapy , Neurophysiological Monitoring/methods , Oxygen Consumption/drug effects , Oxygen Consumption/physiology , Ringer's Lactate/administration & dosage , Ringer's Lactate/adverse effects , Shock, Hemorrhagic/complications , Shock, Hemorrhagic/physiopathology , Shock, Hemorrhagic/therapy , Swine , Treatment Outcome
7.
Shock ; 57(2): 264-273, 2022 02 01.
Article in English | MEDLINE | ID: mdl-34798632

ABSTRACT

ABSTRACT: Excessive sympathetic outflow following trauma can lead to cardiac dysfunction, inflammation, coagulopathy, and poor outcomes. We previously reported that buprenorphine analgesia decreased survival after hemorrhagic trauma. Our aim is to examine the underlying mechanisms of mortality in a non-compressible hemorrhage rat model resuscitated with saline or adenosine, lidocaine, magnesium (ALM). Anesthetized adult male Sprague-Dawley rats were randomly assigned to Saline control group or ALM therapy group (both n = 10). Hemorrhage was induced by 50% liver resection. After 15 min, 0.7 mL/kg 3% NaCl ±â€ŠALM intravenous bolus was administered, and after 60 min, 0.9% NaCl ±â€ŠALM was infused for 4 h (0.5 mL/kg/h) with 72 h monitoring. Animals received 6-12-hourly buprenorphine for analgesia. Hemodynamics, heart rate variability, echocardiography, and adiponectin were measured. Cardiac tissue was analyzed for adrenergic/cholinergic receptor expression, inflammation, and histopathology. Four ALM animals and one Saline control survived to 72 h. Mortality was associated with up to 97% decreases in adrenergic (ß-1, α-1A) and cholinergic (M2) receptor expression, cardiac inflammation, myocyte Ca2+ loading, and histopathology, indicating heart ischemia/failure. ALM survivors had higher cardiac output and stroke volume, a 30-fold increase in parasympathetic/sympathetic receptor expression ratio, and higher circulating adiponectin compared to Saline controls. Paradoxically, Saline cardiac adiponectin hormone levels were higher than ALM, with no change in receptor expression, indicating intra-cardiac synthesis. Mortality appears to be a "systems failure" associated with CNS dysregulation of cardiac function. Survival involves an increased parasympathetic dominance to support cardiac pump function with reduced myocardial inflammation. Increased cardiac α-1A adrenergic receptor in ALM survivors may be significant, as this receptor is highly protective during heart dysfunction/failure.


Subject(s)
Adenosine/administration & dosage , Fluid Therapy , Lidocaine/administration & dosage , Magnesium/administration & dosage , Parasympathetic Nervous System/physiopathology , Shock, Hemorrhagic/physiopathology , Shock, Hemorrhagic/therapy , Sympathetic Nervous System/physiopathology , Animals , Disease Models, Animal , Drug Combinations , Male , Rats , Rats, Sprague-Dawley
8.
S D Med ; 75(10): 469-471, 2022 Oct.
Article in English | MEDLINE | ID: mdl-36889273

ABSTRACT

Traumatic injury is the leading cause of death in individuals under the age of 45 and hemorrhage is the leading cause of preventable death within hours of presentation. This review article on adult trauma resuscitation is intended to be a practical guide for critical access centers. This is accomplished by discussing the pathophysiology and management of hemorrhagic shock.


Subject(s)
Resuscitation , Shock, Hemorrhagic , Wounds and Injuries , Adult , Humans , Hemorrhage/etiology , Hemorrhage/therapy , Resuscitation/methods , Shock, Hemorrhagic/etiology , Shock, Hemorrhagic/physiopathology , Shock, Hemorrhagic/therapy , Wounds and Injuries/complications , Wounds and Injuries/therapy , Rural Population , Critical Care/methods , Trauma Centers , Rural Health Services
9.
J Trauma Acute Care Surg ; 92(1): 57-64, 2022 01 01.
Article in English | MEDLINE | ID: mdl-34670961

ABSTRACT

BACKGROUND: Although 17α-ethinyl estradiol-3-sulfate (EES) reduces mortality in animal models of controlled hemorrhage, its role in a clinically relevant injury model is unknown. We assessed the impact of EES in a swine model of multiple injuries and hemorrhage. METHODS: The study was performed under Good Laboratory Practice, with 30 male uncastrated swine (25-50 kg) subjected to tibial fracture, pulmonary contusion, and 30% controlled hemorrhage for an hour. Animals were randomized to one of five EES doses: 0 (control), 0.3, 1, 3, and 5 mg/kg, administered postinjury. Subjects received no resuscitation and were observed for 6 hours or until death. Survival data were analyzed using Cox-proportional hazard regression. Left ventricular pressure-volume loops were used to derive preload recruitable stroke work as a measure of cardiac inotropy. Immediate postinjury preload recruitable stroke work values were compared with values at 1 hour post-drug administration. RESULTS: Six-hour survival for the 0, 0.3, 1, 3, and 5 mg/kg groups was 0%, 50%, 33.3%, 16.7%, and 0%, respectively. Following Cox regression, the hazard (95% confidence interval) of death was significantly reduced in the 0.3 (0.22 [0.05-0.93]) and 1 (0.24 [0.06-0.89]) mg/kg groups but not the 3 (0.49 [0.15-1.64]) and 5 (0.46 [0.14-1.47]) mg/kg groups. Mean survival time was significantly extended in the 1 mg/kg group (246 minutes) versus the 0 mg/kg group (96 minutes) (p = 0.04, t test). At 1 hour post-drug administration, inotropy was significantly higher than postinjury values in the 0.3 and 1 mg/kg groups (p = 0.003 and p < 0.001, respectively). Inotropy was unchanged in the 3 and 5 mg/kg groups but significantly depressed in the control (p = 0.022). CONCLUSION: Administration of EES even in the absence of fluid resuscitation reduces mortality and improves cardiac inotropy in a clinically relevant swine model of multiple injuries and hemorrhage. These findings support the need for a clinical trial in human trauma patients.


Subject(s)
Ethinyl Estradiol/analogs & derivatives , Multiple Trauma/complications , Shock, Hemorrhagic , Animals , Disease Models, Animal , Dose-Response Relationship, Drug , Drug Monitoring/methods , Estrogens/analogs & derivatives , Estrogens/pharmacology , Ethinyl Estradiol/pharmacology , Male , Myocardial Contraction/drug effects , Shock, Hemorrhagic/drug therapy , Shock, Hemorrhagic/etiology , Shock, Hemorrhagic/physiopathology , Survival Analysis , Swine , Treatment Outcome
11.
J Trauma Acute Care Surg ; 91(5): 849-855, 2021 11 01.
Article in English | MEDLINE | ID: mdl-34695061

ABSTRACT

BACKGROUND: Aging is characterized by a decline in cellular function, which has an adverse effect on the biologic response to injury. Both aging and trauma/hemorrhagic shock (T/HS) increase oxidative stress which impairs the vascular endothelium (EC) and glycocalyx (EG). The additive effect of aging on EC and EG damage following T/HS are unknown. This was studied in an in vitro model. METHODS: Confluent endothelial cell monolayers from primary aortic endothelial cells from 10-week-old mice ("young" cells) or primary aortic cells from 65-week-old mice ("aged" cells) were established in microfluidic devices (MFDs) and perfused at constant shear conditions overnight. Mouse endothelial cell monolayers were then exposed to hypoxia/reoxygenation alone and/or epinephrine or norepinephrine. Endothelial glycocalyx degradation was indexed as well as subsequent endothelial injury/activation. RESULTS: Aged endothelial cells showed increase glycocalyx shedding and subsequent loss of glycocalyx thickness. This lead to a more pronounced level of EC injury/activation compared with young endothelial cells. Although exposure to biomimetic shock conditions exacerbated both endothelial glycocalyx shedding and endothelial injury in both aged and young endothelial cells, the effect was significantly more pronounced in aged cells. CONCLUSION: Advanced age is associated with worse outcomes in severely injured trauma patients. Our study demonstrates that there is increased EG shedding and a diminished EG layer in aged compared to "young" endothelial cell layers. Biomimetic shock conditions lead to an even greater impairment of the endothelial glycocalyx in aged versus young endothelial cell monolayers. It appears that these effects are a consequence of aging related oxidative stress at both baseline and shock conditions. This exacerbates shock-induced endotheliopathy and may contribute to untoward effects on patient outcomes in this population.


Subject(s)
Aging/physiology , Endothelium, Vascular/physiopathology , Glycocalyx/physiology , Shock, Hemorrhagic/physiopathology , Aged , Animals , Biomimetic Materials , Cells, Cultured , Disease Models, Animal , Humans , Mice , Microfluidic Analytical Techniques , Oxidative Stress/physiology , Reactive Oxygen Species/metabolism , Young Adult
12.
Int J Mol Sci ; 22(16)2021 Aug 10.
Article in English | MEDLINE | ID: mdl-34445286

ABSTRACT

Extracellular vesicles (EVs) present a great potential for the development of new treatments in the biomedical field. To be used as therapeutics, many different sources have been used for EVs obtention, while only a few studies have addressed the use of platelet-derived EVs (pEVs). In fact, pEVs have been shown to intervene in different healing responses, thus some studies have evaluated their regenerative capability in wound healing or hemorrhagic shock. Even more, pEVs have proven to induce cellular differentiation, enhancing musculoskeletal or neural regeneration. However, the obtention and characterization of pEVs is widely heterogeneous and differs from the recommendations of the International Society for Extracellular Vesicles. Therefore, in this review, we aim to present the main advances in the therapeutical use of pEVs in the regenerative medicine field while highlighting the isolation and characterization steps followed. The main goal of this review is to portray the studies performed in order to enhance the translation of the pEVs research into feasible therapeutical applications.


Subject(s)
Blood Platelets/cytology , Extracellular Vesicles/physiology , Regenerative Medicine , Animals , Extracellular Vesicles/transplantation , Humans , Regenerative Medicine/methods , Regenerative Medicine/trends , Shock, Hemorrhagic/physiopathology , Shock, Hemorrhagic/therapy , Wound Healing/physiology
13.
Int J Med Sci ; 18(13): 2920-2929, 2021.
Article in English | MEDLINE | ID: mdl-34220319

ABSTRACT

Background: Although whole-body cooling has been reported to improve the ischemic/reperfusion injury in hemorrhagic shock (HS) resuscitation, it is limited by its adverse reactions following therapeutic hypothermia. HS affects the experimental and clinical bowel disorders via activation of the brain-gut axis. It is unknown whether selective brain cooling achieves beneficial effects in HS resuscitation via preserving the integrity of the brain-gut axis. Methods: Male Sprague-Dawley rats were bled to hypovolemic HS and resuscitated with blood transfusion followed by retrograde jugular vein flush (RJVF) with 4 °C or 36 °C normal saline. The mean arterial blood pressure, cerebral blood flow, and brain and core temperature were measured. The integrity of intestinal tight junction proteins and permeability, blood pro-inflammatory cytokines, and multiple organs damage score were determined. Results: Following blood transfusion resuscitation, HS rats displayed gut barrier disruption, increased blood levels of pro-inflammatory cytokines, and peripheral vital organ injuries. Intrajugular-based infusion cooled the brain robustly with a minimal effect on body temperature. This brain cooling significantly reduced the HS resuscitation-induced gut disruption, systemic inflammation, and peripheral vital organ injuries in rats. Conclusion: Resuscitation with selective brain cooling achieves peripheral vital organs protection in hemorrhagic shock resuscitation via preserving the integrity of the brain-gut axis.


Subject(s)
Brain-Gut Axis/physiology , Hypothermia, Induced/methods , Resuscitation/methods , Shock, Hemorrhagic/therapy , Animals , Blood Transfusion , Brain/blood supply , Cerebrovascular Circulation/physiology , Disease Models, Animal , Humans , Infusions, Intravenous , Jugular Veins , Male , Rats , Rats, Sprague-Dawley , Saline Solution/administration & dosage , Shock, Hemorrhagic/physiopathology
14.
Transfusion ; 61 Suppl 1: S167-S173, 2021 07.
Article in English | MEDLINE | ID: mdl-34269439

ABSTRACT

INTRODUCTION: We conducted a prospective observational study on 205 trauma patients at a level I trauma facility to test the hypothesis that a compensatory reserve measurement (CRM) would identify higher risk for progression to shock and/or need a life-saving interventions (LSIs) earlier than systolic blood pressure (SBP) and blood lactate (LAC). METHODS: A composite outcome metric included blood transfusion, procedural LSI, and mortality. Discrete measures assessed as abnormal (ab) were SBP <90 mmHg, CRM <60%, and LAC >2.0. A graded categorization of shock was defined as: no shock (normal [n] SBP [n-SBP], n-CRM, n-LAC); sub-clinical shock (ab-CRM, n-SBP, n-LAC); occult shock (n-SBP, ab-CRM, ab-LAC); or overt shock (ab-SBP, ab-CRM, ab-LAC). RESULTS: Three patients displayed overt shock, 53 displayed sub-clinical shock, and 149 displayed no shock. After incorporating lactate into the analysis, 86 patients demonstrated no shock, 25 were classified as sub-clinical shock, 91 were classified as occult shock, and 3 were characterized as overt shock. Each shock subcategory revealed a graded increase requiring LSI and transfusion. Initial CRM was associated with progression to shock (odds ratio = 0.97; p < .001) at an earlier time than SBP or LAC. CONCLUSIONS: Initial CRM uncovers a clinically relevant subset of patients who are not detected by SBP and LAC. Our results suggest CRM could be used to more expeditiously identify injured patients likely to deteriorate to shock, with requirements for blood transfusion or procedural LSI.


Subject(s)
Blood Transfusion , Hemorrhage/therapy , Shock, Hemorrhagic/therapy , Wounds and Injuries/therapy , Blood Pressure , Female , Hemorrhage/blood , Hemorrhage/diagnosis , Hemorrhage/physiopathology , Humans , Lactates/blood , Male , Middle Aged , Prospective Studies , Shock, Hemorrhagic/blood , Shock, Hemorrhagic/diagnosis , Shock, Hemorrhagic/physiopathology , Triage , Wounds and Injuries/blood , Wounds and Injuries/diagnosis , Wounds and Injuries/physiopathology
15.
Sci Rep ; 11(1): 14302, 2021 07 12.
Article in English | MEDLINE | ID: mdl-34253747

ABSTRACT

We developed a method to measure the relative blood flow speed using optical coherence tomography angiography (OCTA) in retina and choroid, and investigated the feasibility of this method for assessing microcirculatory function in rat models of sepsis and hemorrhagic shock. Two sepsis models, 6-h severe sepsis without treatment and 30-h moderate sepsis maintaining mean arterial pressure, and volume controlled hemorrhagic shock and fluid resuscitation model were used to see the change of microcirculation. The blood flow index (BFI), which was calculated from the OCTA images to represent the average relative blood flow, was decreasing during the 6-h severe sepsis model. Its change is in parallel with the mean arterial blood pressure (MAP) and blood lactate levels. In the 30-h moderate sepsis model, the BFI was decreased while maintaining MAP, and lactate was increased. In the hemorrhagic shock model, the change of BFI is in line with MAP and lactate levels. In all models, BFI change is more sensitive in choroid than in retina. This study presents the OCTA-based retinal and choroidal microcirculatory blood flow monitoring method and shows its utility for assessment of critical illness.


Subject(s)
Choroid/diagnostic imaging , Microcirculation/physiology , Sepsis/diagnostic imaging , Tomography, Optical Coherence/methods , Animals , Blood Circulation/physiology , Choroid/physiopathology , Critical Illness , Rats , Rats, Sprague-Dawley , Shock, Hemorrhagic/diagnostic imaging , Shock, Hemorrhagic/physiopathology
16.
J Trauma Acute Care Surg ; 91(2S Suppl 2): S99-S106, 2021 08 01.
Article in English | MEDLINE | ID: mdl-34324472

ABSTRACT

BACKGROUND: Noncompressible hemorrhage is a leading cause of potentially survivable combat death, with the vast majority of such deaths occurring in the out-of-hospital environment. While large animal models of this process are important for device and therapeutic development, clinical practice has changed over time and past models must follow suit. Developed in conjunction with regulatory feedback, this study presents a modernized, out-of-hospital, noncompressible hemorrhage model, in conjunction with a randomized study of past, present, and future fluid options following a hypotensive resuscitation protocol consistent with current clinical practice. METHODS: We performed a randomized controlled experiment comparing three fluid resuscitation options in Yorkshire swine. Baseline data from animals of same size from previous experiments were analyzed (n = 70), and mean systolic blood pressure was determined, with a permissive hypotension resuscitation target defined as a 25% decrease from normal (67 mm Hg). After animal preparation, a grade IV to V liver laceration was induced. Animals bled freely for a 10-minute "time-to-responder" period, after which resuscitation occurred with randomized fluid in boluses to the goal target: 6% hetastarch in lactated electrolyte injection (HEX), normal saline (NS), or fresh whole blood (FWB). Animals were monitored for a total simulated "delay to definitive care" period of 2 hours postinjury. RESULTS: At the end of the 2-hour study period, 8.3% (1 of 12 swine) of the HEX group, 50% (6 of 12 swine) of the NS group, and 75% (9 of 12 swine) of the FWB had survived (p = 0.006), with Holm-Sidak pairwise comparisons showing a significant difference between HEX and FWB and (p = 0.005). Fresh whole blood had significantly higher systemic vascular resistance and hemoglobin levels compared with other groups (p = 0.003 and p = 0.001, respectively). CONCLUSION: Survival data support the movement away from HEX toward NS and, preferably, FWB in clinical practice and translational animal modeling. The presented model allows for future research including basic science, as well as translational studies of novel diagnostics, therapeutics, and devices.


Subject(s)
Abdominal Injuries , Fluid Therapy , Hemoperitoneum , Resuscitation , Shock, Hemorrhagic , Animals , Male , Abdominal Injuries/mortality , Abdominal Injuries/physiopathology , Abdominal Injuries/therapy , Disease Models, Animal , Fluid Therapy/methods , Fluid Therapy/mortality , Hemoperitoneum/mortality , Hemoperitoneum/physiopathology , Hemoperitoneum/therapy , Liver/injuries , Resuscitation/methods , Resuscitation/mortality , Shock, Hemorrhagic/mortality , Shock, Hemorrhagic/physiopathology , Shock, Hemorrhagic/therapy , Swine
17.
Comput Math Methods Med ; 2021: 6640638, 2021.
Article in English | MEDLINE | ID: mdl-34188690

ABSTRACT

Although mathematical modelling of pressure-flow dynamics in the cardiocirculatory system has a lengthy history, readily finding the appropriate model for the experimental situation at hand is often a challenge in and of itself. An ideal model would be relatively easy to use and reliable, besides being ethically acceptable. Furthermore, it would address the pathogenic features of the cardiovascular disease that one seeks to investigate. No universally valid model has been identified, even though a host of models have been developed. The object of this review is to describe several of the most relevant mathematical models of the cardiovascular system: the physiological features of circulatory dynamics are explained, and their mathematical formulations are compared. The focus is on the whole-body scale mathematical models that portray the subject's responses to hypovolemic shock. The models contained in this review differ from one another, both in the mathematical methodology adopted and in the physiological or pathological aspects described. Each model, in fact, mimics different aspects of cardiocirculatory physiology and pathophysiology to varying degrees: some of these models are geared to better understand the mechanisms of vascular hemodynamics, whereas others focus more on disease states so as to develop therapeutic standards of care or to test novel approaches. We will elucidate key issues involved in the modeling of cardiovascular system and its control by reviewing seven of these models developed to address these specific purposes.


Subject(s)
Models, Cardiovascular , Shock, Hemorrhagic/physiopathology , Biomechanical Phenomena , Blood Pressure/physiology , Cardiovascular System/physiopathology , Computational Biology , Computer Simulation , Hemodynamics/physiology , Humans , Mathematical Concepts , Respiratory System/physiopathology , Systems Analysis
18.
Anesth Analg ; 133(1): 68-79, 2021 07 01.
Article in English | MEDLINE | ID: mdl-33908898

ABSTRACT

Vasopressor use in severely injured trauma patients is discouraged due to concerns that vasoconstriction will worsen organ perfusion and result in increased mortality and organ failure in hypotensive trauma patients. Hypotensive resuscitation is advocated based on limited data that lower systolic blood pressure and mean arterial pressure will result in improved mortality. It is classically taught that hypotension and hypovolemia in trauma are associated with peripheral vasoconstriction. However, the pathophysiology of traumatic shock is complex and involves multiple neurohormonal interactions that are ultimately manifested by an initial sympathoexcitatory phase that attempts to compensate for acute blood loss and is characterized by vasoconstriction, tachycardia, and preserved mean arterial blood pressure. The subsequent hypotension observed in hemorrhagic shock reflects a sympathoinhibitory vasodilation phase. The objectives of hemodynamic resuscitation in hypotensive trauma patients are restoring adequate intravascular volume with a balanced ratio of blood products, correcting pathologic coagulopathy, and maintaining organ perfusion. Persistent hypotension and hypoperfusion are associated with worse coagulopathy and organ function. The practice of hypotensive resuscitation would appear counterintuitive to the goals of traumatic shock resuscitation and is not supported by consistent clinical data. In addition, excessive volume resuscitation is associated with adverse clinical outcomes. Therefore, in the resuscitation of traumatic shock, it is necessary to target an appropriate balance with intravascular volume and vascular tone. It would appear logical that vasopressors may be useful in traumatic shock resuscitation to counteract vasodilation in hemorrhage as well as other clinical conditions such as traumatic brain injury, spinal cord injury, multiple organ dysfunction syndrome, and vasodilation of general anesthetics. The purpose of this article is to discuss the controversy of vasopressors in hypotensive trauma patients and advocate for a nuanced approach to vasopressor administration in the resuscitation of traumatic shock.


Subject(s)
Brain Injuries, Traumatic/drug therapy , Hypotension/drug therapy , Shock, Hemorrhagic/drug therapy , Spinal Cord Injuries/drug therapy , Vasoconstrictor Agents/therapeutic use , Brain Injuries, Traumatic/physiopathology , Humans , Hypotension/physiopathology , Practice Guidelines as Topic/standards , Retrospective Studies , Shock, Hemorrhagic/physiopathology , Spinal Cord Injuries/physiopathology , Wounds and Injuries/drug therapy , Wounds and Injuries/physiopathology
19.
Shock ; 56(4): 611-620, 2021 10 01.
Article in English | MEDLINE | ID: mdl-33756501

ABSTRACT

ABSTRACT: Vascular hypo-reactivity plays a critical role inducing organ injury during hemorrhagic shock. 17ß-estradiol (E2) can induce vasodilation to increase blood flow in various vascular beds. This study observed whether E2 can restore vascular hypo-reactivity induced by hemorrhagic shock, and whether E2 effects are associated with RhoA-Rho kinase (ROCK)-myosin light chain kinase phosphatase (MLCP) pathway. The hemorrhagic shock model (40 ±â€Š2 mm Hg for 1 h, resuscitation for 4 h) was established in ovary intact sham operation (OVI), ovariectomized (OVX), and OVX plus E2 supplement female mice. Intestinal microvascular loop was used to assess blood flow in vivo, mRNA expression and vascular reactivity in vitro. Hemorrhagic shock significantly reduced norepinephrine microvascular reactivity. Decreased microvascular reactivity was exacerbated by OVX and reversed by E2 supplement. U-46619 (RhoA agonist) increased microvascular reactivity, and C3 transferase (an ADP ribosyl transferase that selectively induces RhoA ribosylation) or Y-27632 (ROCK inhibitor) inhibited sham mice microvascular reactivity. Similarly, U-46619 increased microvascular reactivity in OVI and OVX mice following hemorrhagic shock, which was abolished by Y-27632 or concomitant incubation of okadaic acid (OA) (MLCP inhibitor) and Y-27632. In OVX plus E2 supplement mice with hemorrhagic shock, Y-27632 inhibited microvascular reactivity, which was abolished by concomitant U-46619 application. Lastly, hemorrhagic shock remarkably decreased intestinal loop blood flow, RhoA and ROCK mRNA expressions in vascular tissues in OVX females, but not in OVI females, which were reversed by E2 supplement. These results indicate that estrogen improves microvascular reactivity during hemorrhagic shock, and RhoA-ROCK signaling pathway may mediate E2 effects.


Subject(s)
Estradiol/therapeutic use , Estrogens/therapeutic use , Shock, Hemorrhagic/drug therapy , Signal Transduction/physiology , Vasoconstriction/physiology , rho-Associated Kinases/physiology , Animals , Female , Mice , Shock, Hemorrhagic/physiopathology
20.
Physiol Rep ; 9(5): e14783, 2021 03.
Article in English | MEDLINE | ID: mdl-33661575

ABSTRACT

Microvascular fluid exchange is primarily dependent on Starling forces and both the active and passive myogenic response of arterioles and post-capillary venules. Arterioles are classically considered resistance vessels, while venules are considered capacitance vessels with high distensibility and low tonic sympathetic stimulation at rest. However, few studies have investigated the effects of modulating interstitial hydrostatic pressure, particularly in the context of hemorrhagic shock. The objective of this study was to investigate the mechanics of arterioles and functional capillary density (FCD) during application of negative tissue interstitial pressure after 40% total blood volume hemorrhagic shock. In this study, we characterized systemic and microcirculatory hemodynamic parameters, including FCD, in hamsters instrumented with a dorsal window chamber and a custom-designed negative pressure application device via intravital microscopy. In large arterioles, application of negative pressure after hemorrhagic shock resulted in a 13 ± 11% decrease in flow compared with only a 7 ± 9% decrease in flow after hemorrhagic shock alone after 90 minutes. In post-capillary venules, however, application of negative pressure after hemorrhagic shock resulted in a 31 ± 4% decrease in flow compared with only an 8 ± 5% decrease in flow after hemorrhagic shock alone after 90 minutes. Normalized FCD was observed to significantly improve after application of negative pressure after hemorrhagic shock (0.66 ± 0.02) compared to hemorrhagic shock without application of negative pressure (0.50 ± 0.04). Our study demonstrates that application of negative pressure acutely improves FCD during hemorrhagic shock, though it does not normalize FCD. These results suggest that by increasing the hydrostatic pressure gradient between the microvasculature and interstitium, microvascular perfusion can be transiently restored in the absence of volume resuscitation. This study has significant clinical implications, particularly in negative pressure wound therapy, and offers an alternative mechanism to improve microvascular perfusion during hypovolemic shock.


Subject(s)
Capillaries/physiology , Microcirculation/physiology , Microvessels/physiopathology , Shock, Hemorrhagic/physiopathology , Animals , Cricetinae , Male , Oxygen/blood , Resuscitation/methods
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