Showing posts with label critical care. Show all posts
Showing posts with label critical care. Show all posts

Sunday, May 12, 2024

The patient with cirrhosis: poised to bleed or poised to clot?

It turns out to be a little of both. A number of reviews have addressed this. [1] [2] [3]  Here are some of the key points:

The old maxim that cirrhotic patients are auto-anticoagulated is a myth. Severe liver disease is associated with a delicate balance between bleeding and clotting. In general, cirrhosis tends to be a hypercoagulable state. The relative risk for VTE in such patients has been estimated at around 2.

 

What are the mechanisms for the hypercoagulability of liver disease?

In primary hemostasis, while platelet numbers are often decreased these platelets tend to be hyper-functional. This is due to low levels of ADAM TS 13, correspondingly increased levels of VW factor and multifactorial endothelial dysfunction.

In secondary hemostasis, reasons for hypercoagulability include decreased levels of liver dependent natural anticoagulants such as protein C, protein S, and antithrombin. Factor VIII (not synthesized in the liver) tends to be increased.

There is also impaired fibrinolysis with increased levels of PAI-1 and decreased levels of plasminogen.


What are the clinical implications?

Traditional hemostatic tests are generally used but are of limited reliability. There's been increasing interest in global hemostatic tests such as viscoelastic assays which are conceptually more valid but are not yet ready for translation into clinical practice.

For low risk procedures, prophylactic hemostatic products peri-procedure are generally not indicated.

Antithrombotic treatments should be given in accordance with standard clinical indications recognizing a potentially increased risk of bleeding.

DOACs can be used in many patients but certain published restrictions apply.

Thursday, February 02, 2023

Could aspergillus be hiding out in your critically ill patient?

 

An issue from the American Journal of respiratory and Critical Care Medicine contains two articles and a related an editorial addressing this subject.


This study looked for evidence of aspergillus infection in patients diagnosed with VAP:



Rationale: Aspergillus infection in patients with suspected ventilator-associated pneumonia remains uncharacterized because of the absence of a disease definition and limited access to sensitive diagnostic tests.

Objectives: To estimate the prevalence and outcomes of Aspergillus infection in adults with suspected ventilator-associated pneumonia.

Methods: Two prospective UK studies recruited 360 critically ill adults with new or worsening alveolar shadowing on chest X-ray and clinical/hematological parameters supporting suspected ventilator-associated pneumonia. Stored serum and BAL fluid were available from 194 nonneutropenic patients and underwent mycological testing. Patients were categorized as having probable Aspergillus infection using a definition comprising clinical, radiological, and mycological criteria. Mycological criteria included positive histology or microscopy, positive BAL fluid culture, galactomannan optical index of 1 or more in BAL fluid or 0.5 or more in serum.

Measurements and Main Results: Of 194 patients evaluated, 24 met the definition of probable Aspergillus infection, giving an estimated prevalence of 12.4% (95% confidence interval, 8.1–17.8). All 24 patients had positive galactomannan in serum (n = 4), BAL fluid (n = 16), or both (n = 4); three patients cultured Aspergillus sp. in BAL fluid. Patients with probable Aspergillus infection had a significantly longer median duration of critical care stay (25.5 vs. 15.5 d, P = 0.02). ICU mortality was numerically higher in this group, although this was not statistically significant (33.3% vs. 22.8%; P = 0.23).

Conclusions: The estimated prevalence for probable Aspergillus infection in this geographically dispersed multicenter UK cohort indicates that this condition should be considered when investigating patients with suspected ventilator-associated pneumonia, including patient groups not previously recognized to be at high risk of aspergillosis.


Another study in the same issue looked at the prevalence of aspergillus in patients on mechanical ventilation with covid-19. They found it in over 20% of patients.


The accompanying editorial cited additional evidence all of which suggests that aspergillus infection is under-diagnosed in critically ill patients.

Patients need not be immunosuppressed in the traditional sense although the use of corticosteroids, even short-term, is a major risk factor. The main use of corticosteroids  was for treatment of COPD exacerbations.


Antimicrobial resistance in critically ill patients

 

This review focuses mainly on gram-negative bacteria. Although it approaches the problem in light of the covid-19 pandemic it has general applicability.


First a few definitions.


ESKAPE microorganisms : Klebsiella pneumoniae, Acinetobacter baumannii, Pseudomonas aeruginosa and Enterobacter spp


Enterobacterales: new term for enterobacteriaceae


MDR: resistant to at least one antibiotic in three or more categories


XDR (extensive drug-resistant): resistant to at least one antibiotic in all but two or fewer categories


PDR (pan drug-resistant): resistant to all antibiotics


Difficult to treat resistant pathogens: resistant to front line agents and requiring second-line agents of greater toxicity and often lower efficacy (eg aminoglycosides, colistin).



Rates of infections due to ESBL producing organisms and carbapenemase producing organisms are rising. K. pneumoniae carbapenemase (KPC) producing bacteria are the ones predominant in the United States. The New Delhi Metallo-beta-lactamase (NDM) and the OXA-48 carbapenemase are rising in importance.


Acinetobacter is a complex and rising concern. From the review:


Finally,A. baumannii complex frequently causes nosocomial infections, particularly in ICUs where the incidence has increased over time. The SENTRY program evaluated the frequency of cases and anti-microbial susceptibility profiles of the A. baumannii collection from medical centers registered in this program [13]. This study showed that these isolates were recovered mainly from patients with pneumonia and bloodstream infections and evidenced reduced susceptibility to most antimicrobials tested. In all regions, colistin was the most active agent followed by minocycline.


Despite this seemingly grim picture the pipeline seems to have kept up with these trends reasonably well. Newer agents include:


Ceftolozane and tazobactam (Zerbaxa) Enhanced pseudomonas activity; activity against ESBL organisms but significant resistance rates; no activity against carbapenemase producing bacteria. (If used for intra abdominal infections coadministration of metronidazole is required).


Ceftazidime–avibactam (Avycaz) and imipenem–relebactam (Recarbrio) are active against most carbapenemase producing bacteria.


Not mentioned were fosfomycin (not yet available in IV form in the US) and omadacycline (Nuzyra). Omadacycline, though expected to be bacteriostatic, has an impressive spectrum. From another paper:


Omadacycline maintains activity against difficult-to-treat pathogens, including methicillin-resistant Staphylococcus aureus (MRSA), vancomycin-resistant enterococci (VRE), Enterobacteriaceae that produce extended-spectrum β-lactamases (ESBLs) and carbapenemases, and multidrug-resistant (resistant to greater than or equal to 3 classes of agents) strains of Acinetobacter spp. and Stenotrophomonas maltophilia (2).


Wednesday, June 15, 2022

Diagnostic time out

What is a diagnostic time out? Succinctly defined, it’s a deliberate exercise in differential diagnosis and systematic clinical reasoning in the care of an individual patient. But wait, I hear someone say… isn’t that what we do already? Well, no. We’re all familiar with the traditional model for clinical reasoning that we’re taught in medical school but those of us in the real world of practice nowadays, if we’re honest, realize that it seldom happens. There’s just not enough time when you’re forced to see too many patients each day. And hospitalist incentives, with their emphasis on speed and quick adoption of specific diagnostic labels, run in opposition. What do we as hospitalists do instead? Well, aside from all the care pathways and metric incentives that tell us what to do, we rely on clinical instincts and rules of thumb. Because they bypass formal analysis, they save time. They serve as cognitive shortcuts. We call these heuristics. This method of thinking (fast, instinctive, intuitive) is sometimes known as system 1 thinking. It has the advantages of being efficient and fast and sometimes, in critical situations, life saving. But it comes at the cost of a certain error rate. In order to better understand the process of system 1 thinking we have given the various heuristics names and categories. I recently listed some of those in this post


If system 1 is our usual measure of processing to get around time constraints the alternative is system 2: formal clinical reasoning .  System 2 thinking was the topic of a recent paper in CriticalCare Clinics. Although based on a survey of people working in a NICU the article has general applicability. The authors contrast system 1 and system 2 thinking in this manner:


Dual process theory holds that individuals engaging in medical decision-making use one of 2 distinct cognitive processes: a system 1 process based on heuristics – the use of rapid pattern recognition and rules of thumb – or a system 2 process, based on deliberate analytical modeling and hypothesis generation. While invoking system one processes individuals can think fast and reflexively and can even operate at a subconscious level, using pattern recognition to sort vast amounts of clinical information quickly before an illness script that allows for the rapid elaboration of a differential diagnosis. In contrast system 2 processes require focused attention and are purposefully analytical, relying on deliberate counter-factual reasoning to generate hypotheses regarding the pathophysiologic mechanisms by which a patient’s symptoms are produced.


The authors introduced the concept of the diagnostic time out to describe this shift of thinking because it requires deliberate effort. It’s not going to arise spontaneously in the natural course of the ward routine. (The authors were not the first ones to use this term). The diagnostic time out can be considered the cognitive equivalent of the better known procedural time out.


Why is a diagnostic time out needed? Research on diagnostic error has indicated that while some instances are due to system problems (such as failure to communicate test results) most are cognitive errors. These can be linked to the heuristics of system 1 thinking. The diagnostic time out, or the deliberate exercise of system 2 thinking, is a way to complement these cognitive shortcuts with a more analytical process.


Some opinion leaders in the field of diagnostic error have suggested universal adoption of system 2 thinking. This is problematic due to time constraints. Besides, there are some essential benefits of system 1 thinking, particularly in acute life-threatening situations. The real trick is how best to selectively employ system 2 thinking. In other words what are the situations in which system 2 thinking should be used? The authors suggest handoff situations in complex patients including ER to hospitalist, off service/on service and ICU to ward transfers.


How does it work? The authors propose a template but it’s really just the traditional clinical reasoning process. One of their points really got my attention: during the time out diagnostic labels should be removed and replaced by signs, symptoms, manifestations and clinical concerns. This of course is the opposite of what your coders and hospitalist leaders want you to do.


What are some of the barriers to implementation? In addition to time constraints, fear of ambiguity is an important factor. We are afraid to admit what we don’t know. One thing you will never hear a hospitalist say out loud is “I’ll have to think about that.”


Wednesday, August 11, 2021

Update on management of the acute abdomen in critically ill patients

 

From a recent review in Current Opinion in Critical Care Medicine:



Purpose of review


The aim of this study was to describe important features of clinical examination for the surgical abdomen, relevant investigations, and acute management of common surgical problems in the critically ill.


Recent findings


Lactate remains a relatively nonspecific marker of gut ischemia. Dual energy computed tomography (DECT) scan can improve diagnosis of bowel ischemia. Further evidence supports intravenous contrast during CT scan in critically ill patients with acute kidney injury. Outcomes for acute mesenteric ischemia have failed to improve over time; however, increasing use of endovascular approaches, including catheter-directed thrombolysis, may decrease need for laparotomy in the appropriate patient. Nonocclusive mesenteric ischemia remains a challenging diagnostic and management dilemma. Acalculous cholecystitis is managed with a percutaneous cholecystostomy and is unlikely to require interval cholecystectomy. Surgeon comfort with intervention based on point-of-care ultrasound for biliary disease is variable. Mortality for toxic megacolon is decreasing.


Summary


Physical examination remains an integral part of the evaluation of the surgical abdomen. Interpreting laboratory investigations in context and appropriate imaging improves diagnostic ability; intravenous contrast should not be withheld for critically ill patients with acute kidney injury. Surgical intervention should not be delayed for the patient in extremis. The intensivist and surgeon should remain in close communication to optimize care.


Friday, April 16, 2021

Widespread misunderstanding of hypoxemia, hypoxia and pulse oximetry

 

A recent article in the American Journal of Respiratory and Critical Care Medicine about hypoxemia and covid-19 concludes with this:


In conclusion, COVID-19 has engendered many surprises, but features that baffle physicians are less strange when contemplated through the lens of long-established principles of respiratory physiology.  


Read this paper when you're well rested and well fed and you will find it a great exercise in the physiology of hypoxemia. It's much more about that, and the misconceptions derived from our current obsession with pulse oximetry, than it is about covid.


First let's list what I think are some of the main ideas in the paper.

There was widespread over-reliance and misunderstanding of pulse oximetry.

There is not a simple correlation between dyspnea and hypoxemia.


The threat of hypoxemia is poorly understood by clinicians.


The seeming paradox of asymptomatic hypoxemia is not unique to covid-19 but is explained by well established principles of respiratory physiology.



Dyspnea is mediated by hypercapnia,  afferent signals produced by inflammatory stimuli, mechanical properties of the lungs and, least of all, hypoxemia.  As will be brought out in the physiology below, multiple  conditions seem to have a permissive effect on the dyspnea produced by hypoxemia.


Hypercapnia is a very important cause of dyspnea.   It has a permissive effect on hypoxemia as a cause of dyspnea. Hypercapnia causes a drop in pH in the blood perfusing the CNS respiratory control center.  An acute increase in pCO2 of 10 mm Hg quickly causes profound dyspnea. The situation is different for hypoxemia.  As pO2 falls there appears to be a threshold of 60 mm Hg  below which stimulation of ventilation and dyspnea occur. (The so called hypoxic drive). In terms of mechanism, hypoxemia stimulates the carotid bodies which send messages to the respiratory control center. From there impulses are relayed to the cortex cruising the sensation of dyspnea. The correlation between dyspnea and the ventilatory response to hypoxemia is poor. This response to hypoxemia is blunted if the pCO2 is 39 or below.  These responses are blunted in individuals with diabetes and individuals over 65 which constitute a high portion patients presenting clinically with covid.


Could covid have effects on the brain that blunt the dyspnea response? A similar question has been asked regarding the symptom of anosmia. ACE2, the receptor for covid-19, is expressed both in the carotid bodies and the nasal mucosa so mucosal effects rather than brain involvement could account for these manifestations. This is a question yet to be answered.


The authors imply that our usual concerns about low pulse oximeter  readings are misdirected.  Another quote from the article:


Physicians are fearful of hypoxemia, and many view saturations between 80% and 85% as life threatening. We served as volunteers in an experiment probing the effect of hypoxemia on breathing patterns; our pulse oximeter displayed an SpO2 of 80% for over an hour, and we were not able to sense differences between an SpO2 of 80% and an SpO2 of 90% (24). In investigations on control of breathing and oximeter accuracy, subjects experience an SpO2 of 75% (12), or briefly 45% (25), without serious harm. Tourists on drives to the top of Mount Evans near Denver experience oxygen saturations of 65% for prolonged periods; many are comfortable, whereas some sense dyspnea (25).



The finding of a low pulse oximetry reading does not enable a complete physiological assessment. Instead it should lead the clinician to ask: what's going on? Pitfalls in the interpretation of pulse oximetry were cited in the article. Correlation with blood gas readings deteriorates at lower levels of saturation. Accuracy of pulse oximetry is less in critically ill patients than in normal volunteers. The oxyhemoglobin dissociation curve should factor into any interpretation of pulse oximetry readings but this is seldom the topic of bedside discussions. Fever and low pH, common in critically ill patients, cause a shift of the curve to the right. This leads to lower saturation readings at a given pO2. It is an adaptive mechanism by which hemoglobin unloads oxygen more readily. Herein lies another reason why oxygen saturation correlates poorly with dyspnea: the carotid bodies respond to changes in pO2 but  not to oxygen saturation.


Further complicating the discussion is the definition of terms. Though not addressed in the article, there is the common confusion between hypoxemia and hypoxia. Low pO2 or saturation readings indicate hypoxemia. However, to diagnose hypoxia, which is a reduction in oxygen delivery to the tissues, one must apply the oxygen delivery equation. This equation takes into account hemoglobin bound oxygen, oxygen dissolved in plasma, hemoglobin concentration and cardiac output. As to  the definition of hypoxemia the authors point out that it has been an evolving concept. The definition of hypoxemia is not essential, but rather a matter of usage and convention. For example, in the 1990s it was often defined as the raw number without regard to the FiO2. Recently hypoxemia is more often referred to in terms of the oxygen requirement. Both are important: the former for estimating oxygen delivery and the latter for making an assessment of ventilation and gas exchange.

After reading this article I have the following concluding thoughts:

We over rely on pulse oximetry. Blood gases are underutilized.

Misunderstanding of pulse oximetry readings is widespread.

The hypoxemia of covid-19 is not as unique as popularly believed.



Friday, October 18, 2019

ICU or stepdown for your DKA patient?



Highlights



In some centers, all Diabetic Ketoacidosis (DKA) patients are admitted to ICU.


No difference in in-hospital mortality was found between DKA patients admitted to step-down units or ICU.


DKA patients admitted to step-down units had significantly lower costs than those admitted to ICU.


Hospitals should preferentially consider monitoring of DKA patients in step-down units.

Abstract

Purpose

There is wide variation in the utilization of Intensive Care Unit (ICU) beds for treatment and monitoring of adult patients with Diabetic Ketoacidosis (DKA). We sought to compare the outcomes and hospital costs of adult DKA patients admitted to ICUs as compared to those admitted to step-down units.

Materials and methods

We included consecutive adult patients from two hospitals with a diagnosis of DKA. Patients were either admitted to the ICU, or a step-down unit, which has a nurse-to-patient ratio of 2:1, but does not have capability for mechanical ventilation or administration of vasoactive agents. The primary outcome was in-hospital mortality.

Results

We included 872 patients in the analysis. 71 (8.1%) were admitted to ICU, while 801 (91.9%) were admitted to a step-down unit. We found no difference in in-hospital mortality between patients admitted to the ICU and those admitted to the step-down unit (adjusted odds ratio [OR]: 1.14, 95% confidence interval [CI]: 0.87–2.64). Mean total hospital costs were significantly higher for patients admitted to the ICU ($20,428 vs. $6484, P less than 0.001).

Conclusions

Adult DKA patients admitted to a step-down unit had comparable in-hospital mortality and lower hospital costs as compared to those admitted to the ICU.

Saturday, August 03, 2019

Which patients post cardiac arrest need to go straight to the cath lab?



CAD is a common substrate, and its severity is a potential trigger for OHCA, especially in the case of shockable rhythms. Patients with VF/pVT OHCA should be considered at the highest severity of a continuum of acute coronary syndromes. Patients with VF/pVT have a significant burden of CAD: acute, chronic, or acute on chronic (Figure 8)…

Current guidelines recommend early CAG and reperfusion for postarrest patients manifesting ST-segment elevation after ROSC is achieved. However, because of a lack of conclusive randomized data and ongoing perceived clinical equipoise, there is no consensus guideline on the use of CAG and coronary revascularization in patients without ST-segment elevation on ECG. Multiple randomized trials addressing this question are underway. Until their completion, there is a significant body of observational studies that address the role of the CCL in this population.

The current evidence suggests that early access to the CCL in patients resuscitated from VF/pVT cardiac arrest is associated with 2- to 3-fold higher functionally favorable survival rates than more conservative approaches of late or no access to the CCL. This body of evidence, with potential for unmeasured selection bias, suggests that patients resuscitated from OHCA, especially those with presenting shockable rhythms, should be considered for early CAG, identification of reversible causes, and revascularization when indicated.

This is in line with the current ACLS guidelines, which say that if there’s ST elevation post ROSC an immediate trip to the cath lab carries a class I recommendation. For patients without STE, the guidelines give a IIa recommendation to go straight to the cath lab if the arrest is of suspected cardiac origin on clinical grounds.

Tuesday, July 30, 2019

Non invasive ventilation for acute hypoxemic respiratory failure: what’s the latest?



Highlights



Noninvasive ventilation reduces the risk of intubation in subgroups of acute hypoxemic patients.


Immunosuppressed, acute pulmonary edema and pneumonia patients may benefit most from NIV.


Well designed randomized clinical trials are required to address the benefit in other populations.

Abstract

Purpose

Evaluate current recommendation for the use of noninvasive ventilation (Bi-level positive airway pressure- BiPAP modality) in hypoxemic acute respiratory failure, excluding chronic obstructive pulmonary disease.

Methods

Electronic searches in MEDLINE, Web of Science, Clinical Trials, and The Cochrane Central Register of Controlled Clinical Trials. We searched for randomized controlled trials comparing BiPAP to a control group in patients with hypoxemic acute respiratory failure. Endotracheal intubation and death were the assessed outcomes.

Results

Of the 563 studies found, nine met the inclusion criteria for this systematic review. The pooled RR (95% CI) for intubation in patients with acute pulmonary edema (APE)/community acquired pneumonia (CAP) and in immunosuppressed patients (cancer and transplants) were 0.61 (0.39–0.84) and 0.77 (0.60–0.93), respectively. For Intensive Care Units (ICU) mortality, the RR (95% CI) in patients with APE/CAP was 0.51 (0.22–0.79). The heterogeneity was low in all comparisons.

Conclusions

NIV showed a significant protective effect for intubation in immunosuppressed patients (cancer and transplants) and in patients with APE/CAP. However, the benefits of NIV for other etiologies are not clear and more trials are needed to prove these effects.

Saturday, July 27, 2019

Antiplatelet therapy reduces mortality in sepsis



Highlights



Antiplatelet drugs can reduce the mortality rate in patients with sepsis.


Aspirin can effectively reduce mortality in patients with sepsis.


Antiplatelet drugs reduce mortality regardless of the timing of administration.

Abstract

Purpose

Abnormal platelet activation plays an important role in the development of sepsis. The effect of antiplatelet drugs on the outcome of patients with sepsis remains unclear. This meta-analysis aimed to determine the effect of antiplatelet drugs on the prognosis of patients with sepsis.

Materials and methods

PubMed, Cochrane Library, CBM, and Embase were searched for all related articles published from inception to April 2018. The primary end point was mortality. Adjusted data were used and statistically analysed.

Results

Ten cohort studies were included. The total number of patients with sepsis was 689,897. Data showed that the use of antiplatelet drugs could effectively reduce the mortality of patients with sepsis (odds ratio (OR) = 0.82, 95% CI: 0.81–0.83, p less than 0.05). Seven studies used aspirin for antiplatelet therapy, and subgroup analysis showed that aspirin effectively reduced ICU or hospital mortality in patients with sepsis (OR = 0.60, 95% CI: 0.53–0.68, p less than 0.05). A subgroup analysis on the timing of anti-platelet drug administration showed that antiplatelet drugs can reduce mortality when administered either before (OR = 0.78, 95% CI: 0.77–0.80) or after sepsis (OR = 0.59, 95% CI: 0.52–0.67).

Conclusions

Antiplatelet drugs, particularly aspirin, could be used to effectively reduce mortality in patients with sepsis.

Antithrombotic therapy for sepsis is not a new concept. The coagulation system is activated and accounts for some of the injury in sepsis. Activated protein C was found beneficial in selected septic patients and was approved as an adjunct in the treatment of sepsis with organ dysfunction in 2001. The company withdrew the product from the market in 2011.

Thursday, April 18, 2019

Are residents getting enough training in managing crashing patients in the hospital?


From a recent study in the Journal of Hospital Medicine:

BACKGROUND: Internal Medicine (IM) residency graduates should be able to manage hospital emergencies, but the rare and critical nature of such events poses an educational challenge. IM residents’ exposure to inpatient acute clinical events is currently unknown.
OBJECTIVE: We developed an instrument to assess IM residents’ exposure to and confidence in managing hospital acute clinical events.
METHODS: We administered a survey to all IM residents at our institution assessing their exposure to and confidence in managing 50 inpatient acute clinical events. Exposures assessed included mannequin-based simulation or management of hospital-based events as a part of a team or independently in a leadership role. Confidence was rated on a five-point scale and dichotomized to “confident” versus “not confident.” Results were analyzed by multivariable logistic regression to assess the relationship between exposure and confidence accounting for year in training.
RESULTS: A total of 140 of 170 IM residents (82%) responded. Postgraduate year 1 (PGY-1) residents had managed 31.3% of acute events independently vs 71.7% of events for PGY-3/4 residents (P less than .0001). In multivariable analysis, residents’ confidence increased with level of training (PGY-1 residents were confident to manage 24.9% of events vs 72.5% of events for PGY-3/4 residents, P less than .0001) and level of exposure, independent of training year (P = .001). Events with the lowest levels of exposure and confidence for graduating residents were identified.
CONCLUSIONS: IM residents’ confidence in managing inpatient acute events correlated with level of training and clinical exposure. We identified events with low levels of resident exposure and confidence that can serve as targets for future curriculum development.

Thursday, March 28, 2019

Targeted temperature management post arrest: how long?



Question Does targeted temperature management at 33°C for 48 hours result in better neurologic outcome compared with standard 24-hour targeted temperature management in unconscious patients with out-of-hospital cardiac arrest?

Findings In this randomized clinical trial enrolling 355 adults with out-of-hospital cardiac arrest, there was no significant difference in favorable neurologic outcome at 6 months for those treated for 48 hours (69%) vs 24 hours (64%) (difference, 5%).

Meaning Prolonged targeted temperature management at 33°C did not result in better neurologic outcome; however, the study may have had limited power to detect clinically important differences, and further research may be warranted.

Monday, March 25, 2019

Growing evidence challenges conservative transfusion dogma


The last few years have seen quite a push toward restrictive transfusion strategies with conservative hemoglobin (less than seven) triggers.  Not only did numerous research publications support such an approach but there are important theoretical concerns. For example banked blood is relatively ineffective in terms of oxygen delivery due to depletion of 2, 3 DPG levels. There's also a concern based on indirect evidence that blood transfusions may be immunosuppressive by poorly understand mechanisms. Guidelines support a conservative (hemoglobin seven) trigger in almost all situations (though allowing room for clinical judgment which might favor a trigger of 8 in some circumstances).
In recent years the discussion around transfusion restriction has morphed into a campaign of sorts with conservative triggers embedded into electronic medical records and institutional policies taking the form of dogma with little regard for clinical judgment or the unique attributes of certain patients.

A paper in Critical Care Medicine challenges this dogma in certain patients:

Patients: Adult cancer patients with septic shock in the first 6 hours of ICU admission.

Interventions: Patients were randomized to the liberal (hemoglobin threshold, less than 9g/dL) or to the restrictive strategy (hemoglobin threshold, less than 7g/dL) of RBC transfusion during ICU stay.

Measurements and Main Results: Patients were randomized to the liberal (n = 149) or to the restrictive transfusion strategy (n = 151) group. Patients in the liberal group received more RBC units than patients in the restrictive group (1 [0-3] vs 0 [0-2] unit; p less than 0.001). At 28 days after randomization, mortality rate in the liberal group (primary endpoint of the study) was 45% (67 patients) versus 56% (84 patients) in the restrictive group (hazard ratio, 0.74; 95% CI, 0.53-1.04; p = 0.08) with no differences in ICU and hospital length of stay. At 90 days after randomization, mortality rate in the liberal group was lower (59% vs 70%) than in the restrictive group (hazard ratio, 0.72; 95% CI, 0.53-0.97; p = 0.03).

Conclusions: We observed a survival trend favoring a liberal transfusion strategy in patients with septic shock when compared with the restrictive strategy. These results went in the opposite direction of the a priori hypothesis and of other trials in the field and need to be confirmed.
Although the survival advantage for more aggressive transfusion did not reach statistical significance 28 days it did at 90 days.


Saturday, March 23, 2019

Friday, March 22, 2019

A virtual museum of mechanical ventilators


Interesting stuff here.

Using ventilator graphics


Thursday, March 21, 2019

Wednesday, March 20, 2019

Stressed volume in critical care


Monday, March 18, 2019

Septic encephalopathy


Friday, March 15, 2019

Pseudo subarachnoid hemorrhage in post anoxic brain injury