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81-100 of 356 results by Mike Winters

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Title: Obesity and Mechanical Ventilation

Category: Critical Care

Posted: 12/13/2016 by Mike Winters, MBA, MD

Mechanical Ventilation in the Obese Patient

  • Obesity can result in decreased lung volumes, decreased lung and chest wall compliance, and increased work of breathing.
  • Unfortunately, there is very little literature to guide the emergency physician on mechanical ventilation in obese patients.
  • A recent study of intubated ED patients by Goyal, et al found that over 1 in 5 patients were ventilated with potentially injurious tidal volumes.
  • Importantly, obesity increased the odds of inappropriate ventilator settings.
  • In the intubated obese patient, be sure to set tidal volume based on ideal body weight and consider starting with a higher PEEP setting (i.e., 10 to 15 cm H2O).

Show References

Goyal M, et al. Body mass index is associated with inappropriate tidal volumes in adults intubated in the ED. Am J Emerg Med 2016; 34:1682-3.



Title: Cardiac Arrest - What Matters?

Category: Critical Care

Posted: 11/22/2016 by Mike Winters, MBA, MD (Updated: 7/21/2026)

What Matters in Cardiac Arrest?

  • Approximately 500,000 adults suffer sudden cardiac arrest each year in the United States.
  • The most important components of cardiac arrest care that have been shown to improve outcomes are:
    1. High-quality CPR with little to no interruptions
    2. Defibrillation for ventricular arrhythmias
    3. Optimal post-arrest care
      • Target an SpO2 of 94-98%
      • Target an ETCO2 of 35-40 mm Hg (PaCO2 of 40-45 mm Hg)
      • Targeted temperature management
      • Early cardiac catheterization

Show References

Jentzer JC, et al. Improving survival from cardiac arrest: A review of contemporary practice and challenges. Ann Emerg Med. 2016. [epub ahead of print]



Title: Dynamic LVOT Obstruction

Category: Critical Care

Posted: 11/1/2016 by Mike Winters, MBA, MD

Dynamic LVOT Obstruction

  • Recent literature has indicated that dynamic LVOT obstruction can occur in critically ill patients without hypertrophic cardiomyopathy. In fact, a recent study found that this condition may be present in many patients with septic shock.
  • Risk factors for  LVOT obstruction include any condition that decreases afterload, decreases preload, or increases heart rate.
  • Consider LVOT obstruction when your ultrasound demonstrates close approximation of the lateral wall and septum plus systolic anterior motion of the anterior mitral leaflet.
  • The treatment of patients with dynamic LVOT obstruction includes:
    • Increasing preload with aggressive IVFs
    • Increasing afterload (phenylephrine may be a good choice)
    • Avoiding inotropes
    • Decreasing heart rate (often with esmolol)

Show References

  1. McLean AS. Echocardiology in shock management. Crit Care 2016; 20:275.
  2. Slama M, et al. Left ventricular outflow tract obstruction in ICU patients. Curr Opin Crit Care 2016; 22:260-6.


Title: Oxygen-ICU

Category: Critical Care

Posted: 10/11/2016 by Mike Winters, MBA, MD (Updated: 7/21/2026)

Oxygen-ICU Trial

  • Recent observational trials have demonstrated an association between hyperoxia and worse outcomes in select critically ill patient populations.
  • The Oxygen-ICU Trial was just published online in JAMA, and was an RCT to assess whether a conservative protocol for oxygen supplementation could improve outcomes in critically ill ICU patients compared with usual care.
  • A total of 236 patients were randomized to the conservative oxgyen group (PaO2 target 70-100 mm Hg, SpO2 94-98%), whereas 244 were randomized to the usual care group (PaO2 up to 150 mm Hg, SpO2 97-100%).
  • The results demonstrated that ICU mortality was lower in patients treated witih a conservative oxygen strategy, with an absolute risk reduction of 8.6%.
  • Take Home Point: Be careful with the tiration of oxygen therapy and avoid hyperoxia in many of your critically ill patients.

Show Additional Information

A few additional important points about this particular study should be emphasized:

  • Single center in Italy
  • Patients were adult patients > 18 years of age who had an expected ICU LOS of at least 72 hours.
  • The trial was stopped early before the planned 660 patients were enrolled.  The authors cite that the hospital sustained significant damage from an earthquake during the study.  As a result, recruitment slowed and the authors felt that too much time was passing where changes in standard care may affect study outcomes.
  • They used a modified intention to treat analysis, which was confirmed when they completed a true intention to treat analysis.

Show References

Girardis M, et al. Effect of conservative vs conventional oxygen therapy on mortality among patients in an intensive care unit. The Oxygen-ICU randomized trial. JAMA 2016. [epub ahead of print]



Title: Passive Leg Raise

Category: Critical Care

Keywords: passive leg raise, arterial pressure, pulse pressure variation, volume responsiveness, fluid resuscitation (PubMed Search)

Posted: 9/20/2016 by Mike Winters, MBA, MD

Pitfalls with PLR

  • The passive leg raise (PLR) test has become a popular method to assess volume responsiveness in critically ill patients.
  • PLR mobilizes a volume of approximately 150-300 mL and can be used in spontaneously breathing patients, those receiving positive pressure ventilation, or those with various arrhythmias. 
  • In order to properly perform the PLR, you must have a method to monitor cardiac output. (See previously pearl on 7/26/16).
  • Pitfall: Simply monitoring arterial blood pressure alone is not a sufficient method to assess a positive PLR.
  • Pitfalls:Risks of performing a PLR include increased intracranial pressure, reduced cerebral blood flow, and decreased pulmonary compliance.

Show References

Aneman A, Sondergaard S. Understanding the passive leg raising test. Intensive Care Med. 2016; 42:1493-5.



Title: Refractory Status Epilepticus

Category: Critical Care

Keywords: refractory status epilepticus, ketamine, propofol, siezure, midazolam (PubMed Search)

Posted: 8/30/2016 by Mike Winters, MBA, MD

Ketamine for RSE?

  • Up to 43% of patients with status epilepticus may progress to refractory status epilepticus (RSE).
  • Propofol, midazolam, and barbituates are often recommended for patients with RSE.
  • Importantly, all of these medications may be limited by hypotension and respiratory depression.
  • Ketamine is emerging as adjuvant therapy for patients with RSE.
  • The loading dose of ketamine ranges from 0.5 to 3 mg/kg, followed by a maintenance infusion of 0.3 to 4 mg/kg/h.

Show References

Legriel S, et al. What's new in refractory status epilepticus? Intensive Care Med 2016. [Epub ahead of print]



Title: A Warning to Critical Care Physicians

Category: Critical Care

Keywords: Zika Virus, Guillain-Barre (PubMed Search)

Posted: 8/9/2016 by Mike Winters, MBA, MD

Zika Virus-associated GBS

  • Zika virus has been shown to trigger Guillain-Barre Syndrome (GBS) at a rate similar to Campylobacter jejuni infections.
  • In patients with Zika virus-associated GBS, neurologic deterioration has been rapid, with approximately 33% of patients developing respiratory distress.
  • For patients who have required intubation, the duration of mechanical ventilation and length of ICU stay has been very long.
  • Consider Zika virus-associated GBS in patients with muscle weakness, facial palsy, or paresthesias in the setting of a travel or exposure history to the virus.

Show References

Thiery G, et al. Zika virus-associated Guillain-Barre syndrome: a warning for critical care physicians. Intensive Care Med 2016; epub ahead of print.



Title: ETCO2 and Fluid Responsiveness

Category: Critical Care

Posted: 7/26/2016 by Mike Winters, MBA, MD

Predicting Fluid Responsiveness with ETCO2

  • It is well known that almost 50% of critically ill patients do not respond to fluid resuscitaiton. For those that do not respond, indiscriminate fluid administration may be harmful.
  • There is increasing emphasis on the use of dynamic markers of fluid responsiveness, namely passive leg raise (PLR), pulse pressure variation, respirophasic changes in the IVC, and many others.
  • ETCO2 can also be used to assess fluid responsiveness in mechanically ventilated patients with no spontaneous respiratory effort.
  • An increase in ETCO2 of at least 5% with a PLR has been shown to outperform arterial pulse pressure as a measure of fluid responsiveness.

Show References

Nassar BS, Schmidt GA. Capnography during critical illness. Chest 2016; 149:576-85.


Title: Fentanyl and the Neurologically Injured Patient

Category: Critical Care

Posted: 7/20/2016 by Mike Winters, MBA, MD

Fentanyl and the Neurologically Injured Patient
  • Emergency providers routinely care for neurologically injured patients, such as those with a SAH or TBI.
  • Many of these patients will require airway management. In these patients, it is important to minimize any increase in ICP, as this can adversely effect cerebral perfusion pressure.
  • When intubating the neurocritical care patient, consider a dose of fentanyl (2 to 5 mcg/kg) prior to intubation. This has been shown to decrease the sympathomimetic response to laryngoscopy.

Show References

Bucher J, Koyfman A. Intubation of the neurologically injured patient. J Emerg Med 2016; 49:920-7.



Title: LVADs and RV Failure

Category: Critical Care

Posted: 7/12/2016 by Mike Winters, MBA, MD

LVADs and RV Failure

  • Acute RV failure can be seen in up to 10% of patients after LVAD implantation.
  • The treatment of RV failure in the LVAD patient consists of the following:
    • Fluids: avoid aggressive fluid administration, as this can displace the septum and impair LVAD function
    • Inotropes: consider early initiation of dobutamine, milrinone, or epinephrine to augment RV function
    • Vasopressors: target a MAP higher than 60 to 70 mmHg to maintain RV perfusion pressure
  • If intubated, avoid hypoxia, hypercarbia, high PEEP, and high ventilator pressures.  These can increase pulmonary vascular resistance and further worsen RV function.

Show References

Sen A, et al. Mechanical circulatory assist devices: a primer for critical care and emergency physicians. Crit Care 2016; 20:153.



Title: What is the Best Method to Cool Heat Stroke Patients?

Category: Critical Care

Posted: 6/15/2016 by Mike Winters, MBA, MD

Heat Stroke

  • Heat stroke is critical illness defined as a core body temperature greater than or equal to 40oC and altered level of consciousness.
  • Mortality from heat stroke can be as high as 30%.
  • Numerous methods exist to rapidly cool patients below 39oC.
  • Of these methods, ice-water immersion cools patients the fastest and is highly effective in young patients with exertional heat stroke.
  • There is currently insufficient evidence to routinely recommend antipyretic agents, intravascular cooling devices, body cavity lavage, or the use of ice packs in the groin/axilla/neck. In addition, dantrolene is not recommended in the treatment of heat stroke.

Show References

Gaudio FG, Grissom CK. Cooling methods in heat stroke. J Emerg Med 2016; 50:607-16



Title: Situations Where ECMO May Be Unsuccessful

Category: Critical Care

Posted: 5/17/2016 by Mike Winters, MBA, MD

Situations Where ECMO Will Likely Fail

  • As many EDs and ICUs begin to develop protocols for the use of ECMO, it is important to note select conditions when this therapy is unlikely to be succesful.
    • Chronic respiratory or cardiac disease with no hope of recovery
    • OHCA with prolonged no blood flow
    • Severe aortic regurgitation
    • Type A aortic dissection
    • Refractoroy septic shock with preserved LV function
    • Stem cell transplant patients
    • Advanced age with ARDS
    • Prolonged pre-ECMO mechanical ventilation (> 7 days)
    • Center inexperienced with ECMO

Show References

Schmidt M, et al. Ten situations in which ECMO is unlikely to be successful. Intensive Care Med 2016; 42:750-752.

 



Title: NIV for ARDS?

Category: Critical Care

Posted: 4/19/2016 by Mike Winters, MBA, MD

Can NIV be Used in ARDS?

  • Mechanical ventilation can cause lung injury and increase patient morbidity and mortality.
  • Noninvasive ventilation (NIV) is well-known to decrease intubation rates and improve patient outcome in select disease states (i.e., COPD, acute CHF).
  • For patients with acute respiratory distress syndrome (ARDS), NIV may reduce the work of breathing by opening collapsed alveoli, increasing FRC, and improving oxygenation.
  • To date, there are only a few RCTs that have evaluated the use of NIV in ARDS.
  • Unfortunately, these trials have failed to demonstrate improved patient outcome or decreased intubation rates in patients with ARDS.
  • Clinical Bottom Line: Intubate patients with ARDS who are difficult to oxygenate with standard oxygen therapy.

Show References

Demoule A, et al. Can we prevent intubation in patients with ARDS? Intensive Care Med 2016; 42:768-771.



Title: Cerebral Venous Thrombosis

Category: Critical Care

Posted: 3/22/2016 by Mike Winters, MBA, MD

Cerebral Venous Thrombosis

  • Approximately 25% of patients with cerebral venous thrombosis (CVT) will experience neurologic deterioration.
  • This is most commonly due to an increase in ICP that results in transtentorial herniation.
  • While heparin remains the treatment of choice for CVT, consider the following alternative strategies in the acutely decompensating patient:
    • Endovascular thrombolysis
    • Mechanical thrombectomy
    • Decompressive hemicraniectomy

Show References

Fam D, Saposnik G. Critical care management of cerebral venous thrombosis. Curr Opin Crit Care 2016; 22:113-9.



Title: Sepsis-3

Category: Critical Care

Posted: 2/24/2016 by Mike Winters, MBA, MD

Sepsis-3

  • After nearly 2 decades, the definitions for sepsis and septic shock have been updated.
  • Key findings from the Task Force convened by SCCM and ESICM include:
    • Sepsis
      • Definition: life-threatening organ dysfunction due to a dysregulated host response to infection
      • ICU patients: organ dysfunction is defined as an increase of 2 points or more in the Sequential Organ Failure Assessment (SOFA) score
      • ED patients: 2 or more of the following new qSOFA (quickSOFA) score may identify patients with increased mortality
        • SBP less than or equal to 100 mm Hg
        • RR greater than or equal to 22
        • Altered mental status
    • Septic Shock
      • Definition: a subset of patients with sepsis and profound circulatory, cellular, and metabolic abnormalities
      • Clinical Criteria:
        • Persistent hypotension requiring vasopressors to maintain MAP greater than or equal to 65 mm Hg despite adequate volume resuscitation
        • Lactate greater than or equal to 2 mmol/L
    • The term "severe sepsis" is no longer used

Show References

Singer M, et al. The Third International Consensus Definitions for Sepsis and Septic Shock (Sepsis-3). JAMA 2016; 315:801-10.



Title: Shock Index

Category: Critical Care

Posted: 1/26/2016 by Mike Winters, MBA, MD

Shock Index

  • The shock index (SI) is calculated as the ratio of heart rate to systolic blood pressure and is often used in the assessment of critically ill patients.
  • A SI > 0.8 has been shown to be an independent predictor of post-intubation hypotension during emergency airway management.
  • Kristensen and colleagues performed a retrospective review in a single-center in Denmark to evaluate the ability of SI to predict 30-day mortality.
  • In over 110,000 patients, they found a weaker association of SI with 30-day mortality in patients > 65 years of age, those taking a beta-blocker or calcium channel blocker, or those with a history of hypertension.
  • Notwithstanding, a SI > 1 was a significant predictor of mortality across all patient populations and should be considered a warning of serious illness.

Show References

Kristensen AKB, Holler JG, Hallas J, et al. Is shock index a valid predictor of mortality in emergency department patients with hypertension, diabetes, high age, or receipt of beta or calcium channel blockers? Ann Emerg Med 2016; 67:106-13.



Title: Sickle Cell Disease in the ICU

Category: Critical Care

Posted: 12/29/2015 by Mike Winters, MBA, MD (Updated: 7/21/2026)

Acute Chest Syndrome

  • Acute chest syndrome (ACS) accounts for the most common cause of ICU admission and the most common cause of death in sickle cell patients.
  • Important pearls for ACS include:
    • Chlamydophila pneumonia is the most common bacterial cause of ACS in adults, whereas Mycoplasma pneumonia is the most common bacterial cause in children.
    • CXR abnormalities may be absent early in disease.
    • Children are more likely to have middle lobe disease, in contrast to adults who often have lower lobe involvement.
    • Acute RV failure is a well recognized complication of ACS - use ultrasound to evaluate the RV and be careful with fluids.

Show References

Cecchini J, Fartoukh M. Sickle cell disease in the ICU. Curr Opin Crit Care 2015; 21:569-75.



Title: Ventilatory Support in Resource-limited Settings

Category: Critical Care

Posted: 12/1/2015 by Mike Winters, MBA, MD (Updated: 7/21/2026)

Mechanical Ventilation for Septic Patients in Resource-Limited Settings

  • An international team of physicians just published a series of recommendations for ventilatory support of septic patients in resource-limited settings.
  • Pearls from these recommendations include:
    • Elevate the head of the bed to 30o - 45o
    • Consider tidal volumes of 5 - 7 ml/kg PBW in all patients
    • Use minimum levels of PEEP ( 5 cm H2O) in all patients with sepsis and acute respiratory failure (unless the patient has moderate to severe ARDS)
    • Lower FiO2 to target SpO2 > 88% or PaO2 > 60 mm Hg
    • Use lung ultrasound to evaluate pulmonary edema when CXR is not available
    • Consider using SpO2 to FiO2 (S/F) as an alternative to P/F when blood gas analyzers are not available

Show References

Neto AS, Schultz MJ, Festic E. Ventilatory support of patients with sepsis or septic shock in resource-limited settings. Intensive Care Med 2016:42:100-3.



Title: Myths Regarding Pain Management in the Critically Ill

Category: Critical Care

Posted: 11/3/2015 by Mike Winters, MBA, MD

Pain Management in the Critically Ill Patient

  • Pain is common, often underappreciated, and routinely undertreated in our critically ill patients.
  • Poorly treated pain has been shown to adversely affect both short- and long-term outcomes.
  • Key pearls when treating pain in the critically ill:
    • Vital signs should not be used in isolation to assess pain
    • Use a validated assessment tool to objectively quantify pain (i.e., Critical Care Pain Observation Tool)
    • An analgosedation strategy (analgesics before sedative medications) has been shown to decrease duration of mechanical ventilation and decrease ICU LOS
    • Opioids have no maximum or ceiling dose. The appropriate dose is that which controls pain with the fewest side effects.

Show References

Sigakis MJG, Bittner EA. Ten myths and misconceptions regarding pain management in the ICU. Crit Care Med 2015; 43:2468-2478.



Title: Hyperoxia in Critical Illness

Category: Critical Care

Posted: 9/8/2015 by Mike Winters, MBA, MD (Updated: 7/21/2026)

Hyperoxia in the Critically Ill

  • Oxygen is liberally administered to many critically ill patients, thereby exposing them to supranormal arterial oxygen levels.
  • Hyperoxia results in the formation of reactive oxygen species, which adversely affect the pulmonary, vascular, cnetral nervous, and immune systems.
  • Though the optimal PaO2 remains unknown, recent evidence indicates that hyperoxia is associated with increased mortality in post-cardiac arrest, CVA, acute coronary syndrome, and traumatic brain injury patients.
  • Take Home Point: Carefully titrate oxygen to the lowest tolerable level to meet the patient's needs.

Show References

Helmerhorst HJF, et al. Association between arterial hyperoxia and outcomes in subsets of critical illness: A systematic review, meta-analysis, and meta-regression of cohort studies. Crit Care Med 2015; 43:1508-19.



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