The aim of this study is to determine if the incidence of post-operative complications can be decreased by the implementation of intra-operative, minimally invasive hemodynamic monitoring (MIHM) via FloTrac™ and EV1000™ in trauma patients.
Numerous factors are known to contribute to post-traumatic morbidity and mortality. Acute blood loss, hypovolemia, and systemic inflammatory response syndrome can often develop following severe traumatic injury and are, frequently, further exacerbated by the presence of pre-existing health conditions. The culmination of these insults and/or pre-existing conditions can precipitate an imbalance in oxygen delivery and consumption leading to tissue ischemia and resultant organ dysfunction. Tissue ischemia precipitates a disruption in the balance of oxygen delivery and consumption often yielding a conversion from aerobic to anaerobic processes in order to maintain metabolic functionality. The conversion to anaerobic processes leads to the production of lactic acid and a resulting consumption of the body's basic buffers. Clinically, the consumption of the body's basic buffers is frequently referred to as the development of a base deficit. Both the production of lactic acid and the development of a base deficit have been positively linked to the increased morbidity and mortality in multiple critically ill patient populations, including those with traumatic injuries. Multiple studies have linked the rate at which base deficit corrects or lactic acid clears to the likelihood of survival. Accordingly, hemodynamic monitoring can provide vital information concerning cardiovascular function including vascular volume, vascular capacitance, and cardiac performance. Obtaining this information enables clinicians to tailor interventions to target specific components of the cardiovascular system in order to most effectively reverse the cause of tissue hypoxia, elevation in lactic acid, and base deficit, while simultaneously decreasing the likelihood of causing harm through unnecessary or unwarranted changes in management. Advancements in hemodynamic monitoring technology now allow clinicians to obtain data by using minimally invasive techniques. Devices utilizing this technology can be connected to vascular access routinely utilized in the intensive care setting such as arterial lines. These devices provide parameters such as systolic pressure variation (SPV), pulse pressure variation (PPV) and stroke volume variation (SVV) to predict fluid responsiveness of critically ill, mechanically ventilated patients. Studies evaluating these parameters have shown them to have a 84-94% positive predictive value for fluid responsiveness. In addition, higher variability in studied parameters were indicative of patients who were more likely to be responsive to fluid challenges. Modern clinical management in critically ill patients with cardiovascular dysfunction hinges on reversal of the underlying cause of cardiovascular dysfunction. Recent management strategies have used a multi-faceted approach in which multiple processes of potential dysfunction can be monitored and managed simultaneously. Management is goal directed with clearly defined endpoints for the management of vascular volume, cardiac performance as well as maintenance of vascular capacitance. Hemodynamic monitoring technology is essential in providing data that will allow clinical interventions to be tailored to patient-specific physiology and provide goals for titration of therapy. In recent years, data has emerged using goal directed therapy in the surgical patient population with favorable outcomes suggesting a decrease in post-operative organ dysfunction, ICU and hospital length of stay, however, there is limited data in the trauma patient population. This study endeavors to determine if the implementation of intra-operative monitoring will decrease the incidence of post-operative complications such as acute lung injury, infections, thromboembolism, cerebral vascular accident, acute kidney injury, myocardial infarction; in addition to the traditional outcome measures of mortality and length of stay.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
TREATMENT
Masking
NONE
Enrollment
48
Minimally invasive hemodynamic monitoring utilizing the FloTrac sensor and EV1000 platform to continuously assess cardiovascular parameters for clinical management.
Protocol-directed fluid administration for optimization of stroke volume variation and cardiac performance. Volume challenge options included crystalloids (normal saline, hypertonic saline, lactated Ringer's), blood products, and albumin
Protocol-directed vasopressor administration based on hemodynamic monitoring data. Agents included norepinephrine, phenylephrine, epinephrine, dopamine, and vasopressin.
Charleston Area Medical Center, General Hospital
Charleston, West Virginia, United States
Complications
The aim of this study is to determine if the incidence of post-operative complications will decreased with the implementation of intra-operative, minimally invasive hemodynamic monitoring via FloTrac™ and EV1000™ in trauma patients.
Time frame: Post-operative complications during patient hospital stay up to 6 months
Impact of Intervention on ICU/Hospital mortality rate
To evaluate the impact of continuing intra-operative minimally invasive hemodynamic monitoring via FloTrac™ and EV1000™ : -ICU and hospital mortality rate
Time frame: During patient hospital stay up to 6 months
SOFA scores
Sepsis-related Organ Failure (SOFA) score between study cohorts. These scores will be recorded in whole numbers.
Time frame: Within 24 hours pre and post-surgery
Changes in pre and post-operative lactic acid and base deficit
To compare changes in pre and post-operative lactic acid and based deficit between cohorts based on duration of surgical interventions. Both lactic acid and base deficit values will be recorded in mmoL/L.
Time frame: Within 24 hours pre and post-surgery
Changes in pre and post-operative APACHE II score
To compare changes in pre and post-operative APACHE II scores between cohorts based on duration of surgical interventions. This score will be recorded in whole numbers.
Time frame: Within 24 hours pre and post-surgery
ICU Length of Stay
Duration of stay in the ICU following surgery
Time frame: Through ICU discharge, an average of 30 days
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Protocol-directed inotropic support based on hemodynamic monitoring data. Agents included dobutamine and dopamine.
Duration of Post-operative Vasopressor Requirement
Need for vasopressor therapy following surgery
Time frame: From completion of surgery until vasopressor discontinuation or hospital discharge (up to 6 months)
Hospital length of stay
Duration of hospitalization following surgery
Time frame: During hospitalization up to 6 months