SurgCritCare
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SurgCritCare
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Daily rounds
Systems-based critical care assessment for surgical patients, including lines, drains, nutrition, prophylaxis, and disposition.
Scan daily ICU review points for rounds, devices, safety checks, nutrition, prophylaxis, and disposition planning.
Systems-based ICU review, daily safety checks, devices, nutrition, prophylaxis, and disposition planning.
The spectrum of withdrawal symptoms ranges from mild to severe and life-threatening. The possible lethal sequela of AWS has resulted in the creation of AWS treatment protocols in most hospitals.
Although the incidence of AWD is relatively low, its lethal nature requires early identification and prevention for at-risk patients.
The Clinical Institute Withdrawal Assessment for Alcohol (CIWA) is a validated tool that assesses the severity of withdrawal symptoms.
CIWA-Ar (revised) scale: Score < 8 = mild; 8–15 = moderate; > 15 = severe
"An ounce of prevention is worth a pound of cure." — Benjamin Franklin, 1736
Once a patient is determined to be at risk for AUD:
Historically, mainstay treatment was benzodiazepines and barbiturates.
These are being augmented by newer agents, including:
For more information on novel approaches, see: "Novel Algorithms for the Prophylaxis and Management of Alcohol Withdrawal Syndromes — Beyond Benzodiazepines" by Maldonado (Journal of Hospital Medicine).
The aim of this study was to discuss recent findings related to providing adequate and well tolerated nutrition to the critically ill surgical patient.
The majority of nutritional studies in the critically ill have been performed on well nourished patients, but validated scoring systems can now identify high nutrition risk patients. Although it remains well accepted that early enteral nutrition with protein supplementation is key, mechanistic data suggest that hypocaloric feeding in septic patients may be beneficial. For critically ill patients unable to tolerate enteral nutrition, randomized pilot data demonstrate improved functional outcomes with early supplemental parenteral nutrition. Current guidelines also recommend early total parenteral nutrition in high nutrition risk patients with contraindications to enteral nutrition.
When critically ill patients require low or moderate-dose vasopressors, enteral feeding appears well tolerated based on a large database study, while randomized prospective data showed worse outcomes in patients receiving high-dose vasopressors.
Current evidence suggests early enteral nutrition with protein supplementation in critically ill surgical patients with consideration of early parenteral nutrition in high nutrition risk patients unable to achieve nutrition goals enterally. Despite established guidelines for nutritional therapy, the paucity of data to support these recommendations illustrates the critical need for additional studies.
Malnutrition is prevalent in the critically ill and it has been associated with poor outcomes including clinical complications, longer hospital stays, and increased mortality [3]. A prospective randomized trial by Schuetz et al. [4] investigated this association and showed malnutrition to be a modifiable risk factor for poor outcomes. The authors illustrated that when identified and treated early, modifying malnutrition can substantially improve functional status and survival [4]. Despite recognition of its prevalence and potential impact to patient care when recognized early, there continues to be no universally accepted approach to the diagnosis and documentation of adult malnutrition [5].
There have been many screening and assessment tools created to evaluate nutritional status including: Mini Nutritional Assessment. Approximately 4 million patients are admitted to ICUs annually in this country, many for treatment of surgical diseases (https://healthpolicy. ucsf. edu/ icu-outcomes). Although the benefits of early nutritional supplementation are well recognized, critically ill patients receive on average only 40–50% of their prescribed goal nutritional requirements for prolonged periods following ICU admission [1,2]. In this review, we discuss recent literature and guidelines related to the institution and advancement of optimal nutrition in the critically ill patient and address challenges to its adequate delivery (Fig. 1).
As most literature does not focus on surgical patients, assumptions must be made to their generalizability, identifying a gap in our current knowledge and focus for future studies.
Despite the known benefits of early enteral nutrition, surgical patients pose a number of challenges that can impede delivery of adequate enteral nutrition such as delayed initiation with ongoing resuscitation, open abdomens from damage control surgeries and frequent surgeries with nil per os feeding prior to planned surgical procedures. Some of these can be overcome by targeted feeding strategies that focus on the early initiation of enteral nutrition, volume-based feeding protocols and multidisciplinary protocols to allow feeding to continue until the time of surgery [15].
Nutrition is a critical component in the management of sepsis, but as with all critically ill patients, haemodynamic status and vasopressor requirements influence nutritional supplementation. For haemodynamically stable septic patients, the most recent ESPEN, SCCM/ASPEN and Surviving Sepsis guidelines agree that early and progressive enteral nutrition is recommended [6 ,7,16]. Enteral nutrition in these patients is considered to be the ideal form, as it has potential physiologic advantages to parental nutrition with regards to maintenance of gut integrity, dampening of the inflammatory response and modulation of metabolic responses that may reduce insulin resistance [16].
The recommendation for early full enteral nutrition in patients with sepsis has recently been drawn into question by some who point out that these recommendations are based on expert consensus with a lack of high-quality clinical trials on the efficacy of www. co-criticalcare. com & permissive underfeeding in sepsis [17]. The concept of hypocaloric therapy in sepsis has been supported by mechanistic studies of autophagy. This is a cellular repair process that is inhibited by full nutrition and thought to be responsible for worse outcomes seen in some studies [18].
A Cochrane review to evaluate hypocaloric nutritional support identified 15 trials with 3219 patients, but unfortunately due to clinical and statistical heterogeneity, pooled estimates of the primary and secondary outcomes were unable to be made. Authors concluded there was currently very low-quality evidence to support hypocaloric therapy and larger prospective trials were needed [19].
In the setting of critical illness, protein is touted as the key macronutrient for wound healing, immune function and maintenance of lean body mass [7]. As previously discussed, enteral is the preferred method for nutrition in the critically ill but optimal protein amount, timing and type of formulation have been topics of debate [2,10 ].
The 2019 the ESPEN guideline on clinical nutrition in the ICU recommended 1. 3 g/kg protein equivalents per day [6]. This is similar to the SCCM/ASPEN guideline, which recommends daily intake with goals of 1. 2–2. 0 g/kg actual body weight per day and possibly higher in trauma and burn patients [7]. These higher dose recommendations are supported by several prospective studies. Weijs et al. [21] performed a prospective observational study that demonstrated high protein (1. 3 g/kg protein) was associated with 50% decrease in 28-day mortality when compared with low protein (0. 8 g/kg/day). Meeting caloric targets without meeting protein demands did not confer the same mortality reduction as when protein targets were also reached [21].
A later prospective study by the same group again comparing low protein (0. 8 g/kg/day) to high protein (0. 8 g/kg/day) diets in nonseptic patients revealed an almost linear association with mortality reduction as protein intake increased [22]. In a similar prospective observational cohort study of 113 ICU patients administered a 1. 2–1. 5 g/kg/day protein enteral regimen, mortality was decreased in comparison to a lower protein regimen [23].
The initial phase of critical illness is catabolic in nature and results in acute muscle wasting [6].
Background To determine whether a restrictive strategy of red-cell transfusion and a liberal strategy produced equivalent results in critically ill patients, we compared the rates of death from all causes at 30 days and the severity of organ dysfunction. Methods We enrolled 838 critically ill patients with euvolemia after initial treatment who had hemoglobin concentrations of less than 9. 0 g per deciliter within 72 hours after admission to the intensive care unit and randomly assigned 418 patients to a restrictive strategy of transfusion, in which red cells were transfused if the hemoglobin concentration dropped below 7. 0 g per deciliter and hemoglobin concentrations were maintained at 7. 0 to 9.
0 g per deciliter, and 420 patients to a liberal strategy, in which transfusions were given when the hemoglobin concentration fell below 10. 0 g per deciliter and hemoglobin concentrations were maintained at 10. 0 to 12. 0 g per deciliter. Results Overall, 30-day mortality was similar in the two groups (18. 7 percent vs. 23. 3 percent, P= 0. 11). However, the rates were significantly lower with the restrictive transfusion strategy among patients who were less acutely ill — those with an Acute Physiology and Chronic Health Evaluation II score of «20 (8. 7 percent in the restrictive-strategy group and 16. 1 percent in the liberal-strategy group, P=0. 03) — and among patients who were less than 55 years of age (5. 7 percent and 13.
0 percent, respectively; P=0. 02), but not among patients with clinically significant cardiac disease (20. 5 percent and 22. 9 percent, respectively; P=0. 69). The mortality rate during hospitalization was significantly lower in the restrictive-strategy group (22. 2 percent vs. 28. 1 percent, P=0. 05). Conclusions A restrictive strategy of red-cell transfusion is at least as effective as and possibly superior to a liberal transfusion strategy in critically ill patients, with the possible exception of patients with acute myocardial infarction and unstable angina. R ED-cell transfusions are a cornerstone of critical care practice,1 but there are divergent views on the risks of anemia and the benefits of transfusion in this setting.
One important concern is that anemia may not be well tolerated by critically ill patients. 2,3 Indeed, two recent studies suggested that anemia increases the risk of death after surgery in patients with cardiac disease 2 and in critically ill patients. 3 Red-cell transfusions are used to augment the delivery of oxygen in the hope of avoiding the deleterious effects of oxygen debt. 4 This view prompted the routine use of transfusion in patients with hemoglobin concentrations that were often more than 10. 0 g per deciliter in studies evaluating resuscitation protocols. 5,6 Critically ill patients may, however, be at increased risk for the immunosuppressive7,8 and microcirculatory 9,10 complications of red-cell transfusions.
In addition, concern about the supply and safety of blood has also encouraged a conservative approach to transfusions. For these reasons, the optimal transfusion practice for various types of critically ill patients with anemia has not been established. To elucidate the potential risks of anemia and possible benefits of transfusions in critically ill patients, we conducted a randomized, controlled, clinical trial to determine whether a restrictive approach to redcell transfusion that maintains hemoglobin concentrations between 7. 0 and 9. 0 g per deciliter is equivalent to a more liberal strategy of maintaining hemoglobin concentrations between 10. 0 and 12. 0 g per deciliter in critically ill patients with euvolemia after initial treatment.
Study Population We enrolled patients who were admitted to 1 of 22 tertiary-level and 3 community intensive care units in Canada (see the Appendix) between November 1994 and November 1997. We included patients who were expected to stay in the intensive care unit more than 24 hours, had a hemoglobin concentration of 9. 0 g per deciliter or less within 72 hours after admission to the intensive care unit, and were considered to have euvolemia after initial treatment by attending physicians.
Patients were excluded for any of the following reasons: an age of less than 16 years; inability to receive blood products; active blood loss at the time of enrollment, defined as evidence of ongoing blood loss accompanied by a decrease in the hemoglobin concentration of 3. 0 g per deciliter in the preceding 12 hours or a requirement for at least 3 units of packed red cells during the same period; chronic anemia, defined as a hemoglobin concentration of less than 9.
0 g per deciliter on at least one occasion more than one month before admission to the hospital; pregnancy; brain death or imminent death (within 24 hours); a question on the part of attending physicians whether to withhold or withdraw ongoing treatment; and admission after a routine cardiac surgical procedure. The study protocol was approved by the institutional review board of each participating institution, and informed consent was obtained from either the patient or the closest family member before enrollment in the study.
Study Design and Treatment Protocols Consecutive critically ill patients with normovolemia were assigned to one of two treatment groups, stratified according to center and disease severity (an Acute Physiology and Chronic Health Evaluation [APACHE II] score of 15 or less or a score of more than 15, with higher scores indicating more severe disease),11 and balanced with the use of permuted blocks of four or six. 12 Sealed, opaque envelopes arranged in a computer-generated random order were prepared by the data-coordinating center and distributed to each participating institution, where they were opened sequentially to determine the patients’ treatment assignments. The envelopes were returned periodically to the coordinating center for auditing.
Transfusion guidelines for both study groups were developed from information obtained in a national survey of critical care practitioners in Canada13 and a pilot study. 14 The hemoglobin concentrations of patients assigned to the restrictive strategy of transfusion were maintained in the range of 7. 0 to 9. 0 g per deciliter, with a transfusion given when the hemoglobin concentration fell below 7. 0 g per deciliter. Among patients assigned to the liberal strategy of transfusion, the hemoglobin concentrations were maintained in the range of 10. 0 to 12. 0 g per deciliter, with a threshold for transfusion of 10. 0 g per deciliter. It was not feasible to mask the assigned transfusion strategy from health care providers.
In Canada, red cells are separated from whole blood and stored in citrate–phosphate–dextrose–adenine anticoagulant solution without leukodepletion. The volume of a unit of red cells ranges from 240 to 340 ml, with a hematocrit of approximately 80 percent. 15 The physicians caring for the patients were instructed to administer transfusions, one unit at a time, and to measure a patient’s hemoglobin concentration after each unit was transfused. Although specific goals for oxygen delivery were not part of the protocol, we provided suggestions for the use of fluids and vasoactive drugs, when necessary, and advice when a transfusion was not indicated by the study protocol.
All other management decisions were left to the discretion of the patients’ physicians. Adher- 410 · ence to the transfusion protocols was required only during the patient’s stay in the intensive care unit. When a patient was discharged from the intensive care unit, a copy of the American College of Physicians guidelines for transfusion16 was placed in his or her medical record. Compliance with the two transfusion protocols was monitored by daily measurements of hemoglobin concentrations in each patient. In addition, transfusion records were sent regularly to the study coordinating center, which monitored the ability of individual centers to maintain hemoglobin concentrations in the target range.
Base-Line Assessment and Data Collection At the time of randomization, demographic, diagnostic, and therapeutic information as well as information necessary to determine the severity of illness — including APACHE II scores,11 calculated from data gathered within 24 hours after admission to the intensive care unit, and the multiple-organ-dysfunction score17 — was obtained for each patient. The worst laboratory values recorded during each patient’s stay in the intensive care unit were noted for use in assessing organ dysfunction with use of the multiple-organ-dysfunction score17 and the multiple-system organfailure score.
18 Hemoglobin concentrations; the use of red-cell transfusions; medications given, including vasoactive drugs; and the need for mechanical ventilation, dialysis, and surgical intervention were recorded on a daily basis. The principal reason for admission to the intensive care unit was recorded. We included as many as three secondary diagnoses and eight coexisting conditions. In postoperative patients, the underlying diagnosis and the surgical procedure were recorded. All data were abstracted from clinical records by trained study personnel and coded according to the International Classification of Diseases, 9th Revision, Clinical Modification.
All diagnoses were reviewed by two of the four critical care physicians, and disagreements were resolved by consensus. Outcome Measures The primary outcome measure was death from all causes in the 30 days after randomization. Secondary outcomes included 60day rates of death from all causes, mortality rates during the stay in the intensive care unit and during hospitalization, and survival times in the first 30 days. Measures of organ failure and dysfunction, including the number and rates of organ failure as defined previously18 and the multiple-organ-dysfunction score,17 were also assessed.
To improve our ability to detect meaningful differences between groups, we used some composite outcomes that included death and organ dysfunction or failure as indicators of morbidity. Patients who died were assigned a multiple-system organ-failure score of 7 and a multiple-organ-dysfunction score of 24, the worst possible values for each scale, as a means of adjusting measures of organ dysfunction and failure for deaths. Lengths of stays in the intensive care unit and the hospital were also recorded. Statistical Analysis Since this was an equivalency trial, we used 95 percent confidence intervals to estimate the number of patients necessary for the study to have the power to rule out clinically meaningful differences in outcomes.