Showing posts with label micro;. Show all posts
Showing posts with label micro;. Show all posts

The Great Disruptor: Covid-19

Covid-19 will be long remembered by this generation. This low lethality but high impact event has left a scar not only on medical fields but theplanet itself. Thoough suffering from a second wave currently, Singapore has a well documented way of dealing with this and our ED/hospital "positives" can be summarised into:
  • Good command and control from the beginning
  • One source of Information/dissemination + Updated info passed onto the floor daily
  • Swab & Go protocols 
  • Segregation of fever & non fever areas in the ED
    • Fever area - PPE is gown / gloves /N95 / face goggles or shield
    • Resus - PPE is N95 / gloves
    • Resus (intubating and arrests) - PAPR with N95
    • Non fever areas - Surgical mask and gloves

Other good resources:

The original article of the index cases

Handbook by Chinese hospitals

Covid calculators

Johns Hopkins datacentre


Probably the best video you can get on the subject is this detailed look into the pathophysiology and management by ESICM:




And finally when to ECMO:



Sepsis checklist/bundle

Management of sepsis is an ever evolving science but the implementation of  such measures in the ED can be challenging as there are so many moving parts.
Here's our version of a bundle to recognition and management. Comments welcome as always.
The checklist can be downloaded here.




Common cold or apocalyptic strain?

Sometimes you can learn something even though its common. So make sure you're educated before you "educate" patients.



Source:
https://www.cdc.gov/flu/about/qa/coldflu.htm

Surviving sepsis 2017

Great update on sepsis by JournalWatch. For those who do not have access:


Daniel M. Lindberg, MD Reviewing Rhodes A et al., Intensive Care Med 2017 Jan 18;
This revision of the 2012 guidelines focuses on early management in adults.
Sponsoring Organizations: Surviving Sepsis Campaign, Society of Critical Care Medicine, and European Society of Intensive Care Medicine
Target Population: Clinicians who care for adult patients with sepsis and septic shock in a hospital setting.
Background and Objective
Sepsis remains incompletely understood, imperfectly defined, underrecognized, and exceptionally lethal. The Surviving Sepsis Campaign convened 55 experts from 25 organizations to undertake a systematic review and grading of evidence to update guidelines for the management of sepsis and septic shock in adult patients (NEJM JW Emerg Med Apr 2013 and Crit Care Med 2013; 41:580). This revision was conducted before publication of the Sepsis-3 definitions and does not incorporate them (NEJM JW Gen Med Mar 15 2016 and JAMA 2016 Feb 23; 315:801).
Key Recommendations
  • Patients with hypoperfusion should receive at least 30 mL/kg of IV crystalloid within 3 hours (strong recommendation, low quality of evidence), and should be re-assessed frequently (best practice statement).
  • For patients who require vasopressors, the initial target mean arterial pressure should be 65 mm Hg (strong recommendation, moderate quality of evidence).
  • IV antibiotics should be started within 1 hour of sepsis recognition (strong recommendation, moderate quality of evidence), and should include combination therapy (at least two classes of antibiotics to cover a known or suspected pathogen) for patients with septic shock. Combination therapy should not routinely be used for patients without shock.
  • Norepinephrine is the first choice for patients who need vasopressors. Vasopressin or epinephrine can be added. For patients who remain unstable, dobutamine is recommended.
  • IV hydrocortisone (200 mg/day) is suggested for patients who are hemodynamically unstable despite fluids and vasopressors.
  • Blood transfusion should be reserved for patients with hemoglobin concentration <7.0 g/dL, except in special circumstances such as hemorrhage and myocardial ischemia (strong recommendation, high quality of evidence). Platelets should be given if the platelet count is <10,000/mm3 or <20,000/mmwith bleeding.
  • Sodium bicarbonate should not be used for most patients with pH ≥7.15.
What's Changed
With publication of the PROCESS and ARISE trials, these guidelines de-emphasize protocolization of care and invasive monitoring, instead suggesting that patients be re-evaluated frequently.
Comment
We continue to search for new definitions, diagnostic tests, antimicrobials, and treatments for patients with sepsis. However, improving outcomes probably has as much to do with increasing adherence to the practices we already know are effective and embedding automated passive alerting functions in the electronic medical record. For patients with sepsis, provide early, aggressive treatment with fluids and antibiotics, coupled with frequent re-assessment.

CITATION(S):
  1. Rhodes A et al. Surviving sepsis campaign: International guidelines for management of sepsis and septic shock: 2016. Intensive Care Med 2017 Jan 18; [e-pub]. (http://dx.doi.org/10.1007/s00134-017-4683-6)

Oh man, i am selling snake oil...

Sometimes you just have to introspect and surmise that you have been doing silly things in your craft. This is undoubtedly one of those times.
Superb myth busting by Medscape. Original article with references is here.


Myths Surrounding Antibiotics

After 80 years of experience, much is known about antibacterial agents. Unfortunately, some of what is "known" is incorrect. To paraphrase Osler, half of everything we're taught is wrong—the problem is, which half?
Here, we seek to debunk five widely believed myths about antibiotics and resistance.

Myth 1: Humans Invented Antibiotics in the 20th Century

The first clinically useful antibacterial agent that was safe and effective was prontosil rubrum, a sulfa drug synthesized in 1931.[1] However, prontosil was not the first antibacterial agent to be invented, and humans were not the initial inventors.
Genetic analysis indicates that bacteria invented antibiotics and an antibiotic-resistance mechanism somewhere between 2 and 2.5 billion years ago.[2-4] Bacteria have been killing each other with these weapons, and using resistance mechanisms to protect themselves against these weapons, for 20 million times longer than we have even known that antibiotics exist.
To underscore the point, in 2011, a study[5] was published in which investigators explored a deep cave in the Carlsbad Caverns system in New Mexico, a geological formation that has been isolated from the surface of the planet for 4 million years. The section of the cave that they explored had never before been accessed by humans.
The investigators cultured many different types of bacteria from the walls of the caves. Every strain of bacteria was resistant to at least one modern antibiotic; most were multidrug-resistant. Not only was resistance found to naturally occurring antibiotics, it was also found to synthetic drugs that were not created until the 1960s-1980s (including fluoroquinolones, daptomycin, and linezolid).
Implications of busting this myth. After 2 billion years of microbial evolutionary warfare, microbes have already invented antibiotics to poison every possible biochemical pathway, and resistance mechanisms to protect every one of those pathways.[4] Thus, resistance mechanisms to antibiotics that have not yet been invented are already widespread in nature. Resistance is inevitable.

Myth 2: Inappropriate Antibiotic Use Causes the Development of Resistance

This myth is often repeated, with the implication that if we could eliminate inappropriate antibiotic use, resistance would no longer develop. However, all antibiotic use causes selective pressure by killing off bacteria. Appropriate use applies the same selective pressure as does inappropriate use. The difference is that we can and should stop inappropriate use because it offers no benefit. In contrast, appropriate antibiotic use is necessary to reduce mortality and morbidity from bacterial infections.
Implications of busting this myth. We accept that there will always be emergence of resistance from appropriate antibiotic use, but the benefit of appropriate antibiotic use to patients and society outweighs the collective harm. In contrast, without a benefit attached to inappropriate use, there is no "pro" to offset the "con" of selective pressure for antibiotic resistance.
In essence, we must seek to eliminate inappropriate antibiotic use not because this will end emergence of resistance, but because it will slow it down without forgoing any meaningful benefit of antibiotic use.

Myth 3: To Prevent Resistance, Patients Must Complete Every Dose of Antibiotics Prescribed, Even After They Feel Better

The origins of this myth are slightly obscure, but appear to date back to the 1940s.[6,7] Despite how widespread and deeply this belief is held, there are no data to support the idea that continuing antibiotics past resolution of signs and symptoms of infection reduces the emergence of antibiotic resistance.[7]
To the contrary, studies have repeatedly found that shorter-course therapies are less likely to select out for antibiotic resistance, which is consistent with fundamental principles of natural selection.[7] Every randomized clinical trial that has ever compared short-course therapy with longer-course therapy, across multiple types of acute bacterial infections (including cellulitis, acute bacterial sinusitis, community-acquired pneumonia, nosocomial pneumonia/ventilator-associated pneumonia, complicated urinary tract infections, and complicated intra-abdominal infections), has found that shorter-course therapies are just as effective.[7] When evaluated, shorter-course therapies have resulted in less emergence of resistance.
Implications of busting this myth. This myth needs to be replaced by a new antibiotic mantra: "Shorter is better!"[7] Patients should be told that if they feel substantially better, with resolution of symptoms of infection, they should call the clinician to determine whether antibiotics can be stopped early. Clinicians should be receptive to this concept, and not fear customizing the duration of therapy.
Continuing antibiotics past resolution of symptoms for acute bacterial infections (not chronic infections, such as osteomyelitis, tuberculosis [TB], or actinomycosis) does not afford patient benefit and probably selects for antibiotic resistance.

Myth 4: When Antibiotic Resistance Emerges, It Is Usually a Consequence of New Mutations at the Site of Infection

This myth possibly stems from the correct recognition that resistance in TB occurs at the site of infection, owing to spontaneous mutations targeting TB therapy.[8] However, TB has unique features distinct from those of most acute bacterial infections.
There is no environmental reservoir for TB, and TB is not part of our normal flora. Therefore, TB resistance can only occur at the site of infection in the body. TB cavities also contain very high densities of bacilli (ie, > 1012 per gram), which predispose to the emergence of resistance on monotherapy, on the basis of the statistical frequency of spontaneous mutations to such drugs as isoniazid and rifampin.
In contrast, when we use typical antibiotics (different from isoniazid, which is specific for TB), they inevitably cause selective pressure among a person's normal bacterial flora. In most cases, resistance emerges not at the site of infection during a course of therapy, but rather among bacteria in the gut or on the skin as a result of genetic sharing of preexisting resistance mechanisms (eg, plasmids, transposons, phages, naked DNA).[8]
Enrichment for resistant normal flora can result in future infections caused by the resistant pathogens, and spread of the resistant pathogens through contact with other people or fomites.
Implications of busting this myth. In most cases, we are not aware when resistance emerges in patients. The fact that the patient's infection resolves with prolonged or unnecessarily broad antibiotic therapy does not mean that you have escaped inducing resistance. To the contrary, it is very likely that after exposure to antibiotics, somewhere in the patient's body, strains of normal flora that are resistant to the antibiotics used have been enriched. Those strains can cause future infections, or spread to others in communities or hospitals.

Myth 5: Cidal Antibiotics Result in Superior Clinical Outcomes and Less Risk for Emergence of Resistance Than Do Static Antibiotics

This is another widespread clinical belief that is based on no evidence. First, contrary to common belief, bacteriostatic ("static") antibiotics do kill bacteria; they just require a higher concentration to achieve specific thresholds of bacterial reduction. The formal definition of a bactericidal ("cidal") antibiotic is one for which the minimum bactericidal concentration (MBC) of the drug is fourfold or more above the minimum inhibitory concentration (MIC) of the drug.[9]
The MBC is the concentration of the drug that results in a 1000-fold reduction in bacterial density at 24 hours of growth. The MIC is the concentration that inhibits visible growth at 24 hours of growth. These definitions are arbitrary: Why should it be that MBC requires a 1000-fold reduction in bacterial density as opposed to a 100-, 500-, 5000-, or 10,000-fold reduction? Why 24 hours? Why must the MBC not be more than fourfold above the MIC, as opposed to twofold, or 16-fold, or 23-fold?
Finally, an antibiotic that achieves a > 1000-fold reduction in bacterial density but does so at a concentration that is eightfold above the MIC of the drug is considered static, even though it clearly kills the bacteria.
Given that these terms have been defined by accepted convention and are not based on specific scientific principles, perhaps it is not surprising that there is no clinical evidence of benefit of cidal agents over static agents. A systematic literature review identified 28 randomized controlled trials that compared the efficacy of static vs cidal antibiotics, head to head, for patients with invasive bacterial infection.
In contrast, only one trial found a cidal antibiotic to be superior in efficacy to a static agent. That trial compared tigecycline vs imipenem for the treatment of ventilator-associated pneumonia, and found that tigecycline was inferior.[37] However, pharmacologic analysis determined that the tigecycline dose used in the trial was too low, resulting in inadequate drug levels compared with the susceptibility of bacteria causing the infections[38]; when a subsequent trial was done with double the dose of tigecycline, tigecycline was similar in efficacy to imipenem for the same disease.[31]
Thus, there is no evidence that cidal antibiotics are more clinically effective than static antibiotics. To the contrary, more studies have found a static agent to be superior in efficacy to a cidal agent than the reverse!
Implications of busting this myth. Although clinicians continue to prefer cidal antibiotics, there is no evidence that these result in superior clinical outcomes than static agents, nor that cidal drugs more effectively prevent the emergence of resistance. Whether an antibiotic is static or cidal should not be a factor in determining antibiotic therapy for patients.

What Are the Take-Home Messages for Clinicians?

There is no end to our struggle with bacteria; we will never "win a war" against them, and no "gorilla-cillin" will ever come along to save us from emergence of antibiotic resistance. Resistance is inevitable.
Thus, it is critical that we not waste antibiotics. They must not be prescribed to patients who do not have bacterial infections. When appropriate, prescribe the narrowest-spectrum agent and the shortest duration possible to treat bacterial infections.
Do not instruct patients to take every dose prescribed even after they feel better. Rather, focus on evidenced-based, short-course regimens, and if the patient's symptoms resolve before completing the course of therapy, ask that they call you to discuss whether they should stop the antibiotic course early. Encourage them to stop early when their symptoms resolve.
Do not be falsely reassured by the lack of emergence of resistance at the site of infection. When you prescribe an antibiotic, you are selecting for resistance in the patient's microbiome. The resistant bacteria colonize the patient and can cause future antibiotic-resistant infections.
When choosing an antibiotic regimen, cidal vs static is largely irrelevant.

In da Lab

What really goes behind the scenes when you are called to retake those samples? The mercurial ZDogg shed some empathetic light on da Lab. All to the sample of 50 Cent's breakthrough hit from 2003. 

How dare you SIRS?

Here's a good reminder that risk stratifiers and mnemonics are just that - prognostications. Like a wise man once said - its all a spectrum.



Time to Initial Antibiotic Administration, and Short-term Mortality Among Patients Admitted With Community-Acquired Severe Infections With and Without the Presence of Systemic Inflammatory Response Syndrome

A Follow-Up Study

Daniel Pilsgaard Henriksen; Christian B Laursen; Jesper Hallas; Court Pedersen; Annmarie Touborg Lassen
Disclosures
Emerg Med J. 2015;32(11):846-853. 

Abstract

Background The prognosis for patients with severe infection is related to early treatment, including early administration of antibiotics. The study aim was to compare the short-term mortality among patients admitted with severe infection with and without systemic inflammatory response syndrome (SIRS) at arrival, and to ascertain whether the presence of SIRS might affect the timing of antibiotic administration.
Methods In this retrospective follow-up study, we included all adult patients (≥15 years) presenting to a medical emergency department in the period between September 2010 and August 2011 with a first-time admission of community-acquired severe infection (infection with evidence of organ dysfunction), with and without SIRS at arrival. The presence of SIRS was defined as two or more of the criteria according to the American College of Chest Physicians/Society of Critical Care Medicine (ACCP/SCCM) definitions. Cases were identified by manual chart review using predefined criteria of infection. Data on vital signs, laboratory values and antibiotic treatment were obtained electronically.
Results We included 1169 patients with infection and organ dysfunction, treated with antibiotics within 24 h after arrival (median age 76.1 years (IQR 63.1–83.5), 567 (48.5%) men). In all, 886 (75.8%) presented with SIRS, and 283 (24.2%) presented without SIRS. Median time to antibiotics was 4.6 h (IQR 2.9–7.0) in patients with SIRS and 6.7 h (IQR 4.5–10.3) in patients without SIRS (p<0.0001). Thirty-day mortality in patients with and without SIRS was 18.4% (95% CI 15.9% to 21.1%) and 16.6% (95% CI 12.5% to 21.5%), respectively.
Conclusions SIRS was absent in one-quarter of patients admitted with severe infection. The 'door-to-antibiotics' time was significantly shorter for patients with SIRS compared with patients without SIRS, but no difference was found in 30-day mortality.

Webucation 26/5/15

We've been away but the FOAM world has not slept. Here's some gems from radiology as well as updates to kids, some cough mixture pearls and THAT video. Thanks to all the content providers.


A superb last link gives us the myth busting of our dreams. I am totally ashamed that I did not know this and have been telling most of my patients that it'll be over in a few days. Will change that now. 

Webucation 17/1/15

This edition of web wisdom brings you weird and wonderful and in rainbow colours as well. Be sure to credit the original content creators.
The last link provides yet another example of how the world is collectively wisening up to the dangers of irradiation and importance of wholistic care.

Bronchiolitis revamp

This article is from Medscape Emergency Medicine Briefs:

AAP Releases New Guidelines on Management of Bronchiolitis CME/CE

News/CME Author: Laurie Barclay, MD

CME/CE Released: 11/19/2014 ; Valid for credit through 11/19/2015

CLINICAL CONTEXT

On the basis of recent evidence, the American Academy of Pediatrics (AAP) has revised its 2006 clinical practice guideline on diagnosis and management of bronchiolitis in otherwise healthy children 1 to 23 months old. Each practice statement includes the underlying level of evidence, benefit-harm relationship, and level of recommendation.
Bronchiolitis is commonly caused by viral lower respiratory tract infection and is characterized by acute inflammation, edema, and necrosis of epithelial cells lining small airways, resulting in increased mucus production. Typical signs and symptoms initially include rhinitis and cough, sometimes followed by tachypnea, wheezing, rales, use of accessory muscles of respiration, and/or nasal flaring.

STUDY SYNOPSIS AND PERSPECTIVE

Management of bronchiolitis in children 1 to 23 months old no longer requires testing for specific viruses or a trial dose of a bronchodilator, according to new guidelines issued by the AAP and published online October 27 in Pediatrics.
According to a comprehensive evidence review, the new AAP guideline on diagnosing, treating, and preventing bronchiolitis updates the previous recommendations published in 2006. It targets pediatricians, family physicians, emergency medicine specialists, hospitalists, nurse practitioners, and physician assistants who care for children.
Bronchiolitis is the most common cause of hospitalization among infants younger than 1 year. The new guideline emphasizes that only supportive care, including oxygen and hydration, is strongly recommended for young children with bronchiolitis.
"Bronchiolitis is a disorder commonly caused by viral lower respiratory tract infection in infants," write Shawn L. Ralston, MD, FAAP, and colleagues from the AAP. "Bronchiolitis is characterized by acute inflammation, edema, and necrosis of epithelial cells lining small airways, and increased mucus production. Signs and symptoms typically begin with rhinitis and cough, which may progress to tachypnea, wheezing, rales, use of accessory muscles, and/or nasal flaring."
Changes from the 2006 guideline are that testing for specific viruses is no longer needed, because multiple viruses may cause bronchiolitis. Routine radiographic or laboratory studies are also unnecessary, and clinicians should diagnose bronchiolitis and assess its severity on the basis of history and physical examination.
The AAP also no longer recommends a trial dose of a bronchodilator, such as albuterol or salbutamol, because evidence to date shows that bronchodilators are ineffective in changing the course of bronchiolitis (evidence quality: B, strong recommendation). In addition, in accordance with a policy statement published in July by the AAP, the new guideline updates recommendations for use of palivizumab to prevent respiratory syncytial virus (RSV) infections: Otherwise-healthy infants with gestational age of 29 weeks or older should not receive palivizumab, but during the first year of life, infants with hemodynamically significant heart disease or chronic lung disease of prematurity should receive palivizumab (maximum of 5 monthly doses, 15 mg/kg per dose, during the RSV season).
Other recommendations are that when making decisions about the assessment and management of bronchiolitis in children, clinicians should evaluate risk factors for severe disease, such as age younger than 12 weeks, prematurity, underlying cardiopulmonary disease, or immunodeficiency. Finally, clinicians should not give epinephrine to infants and children diagnosed with bronchiolitis, nor should these children receive chest physiotherapy.
The authors have disclosed no relevant financial relationships.
Pediatrics. Published online October 27, 2014. Full text

STUDY HIGHLIGHTS

  • A new recommendation is that a diagnosis of bronchiolitis no longer requires testing for specific viruses, because multiple viruses may cause bronchiolitis.
  • Clinicians should diagnose bronchiolitis and determine its severity on the basis of history and physical examination.
  • Routine radiographic or laboratory studies are unnecessary.
  • When considering the evaluation and management of bronchiolitis in young children, clinicians should assess risk factors for severe disease, such as age younger than 12 weeks, prematurity, underlying cardiopulmonary disease, or immunodeficiency.
  • A new recommendation is that management of bronchiolitis no longer requires a trial dose of a bronchodilator, because available evidence shows that bronchodilators do not change the course of bronchiolitis (evidence quality: B, strong recommendation).
  • Only supportive care, including oxygen and hydration, is strongly recommended for young children with bronchiolitis.
  • Otherwise-healthy infants with a gestational age of 29 weeks or older should not receive palivizumab to prevent RSV infections.
  • However, during the first year of life, infants with hemodynamically significant heart disease or chronic lung disease of prematurity should receive palivizumab (maximum of 5 monthly doses, 15 mg/kg per dose, during the RSV season).
  • Infants and children diagnosed with bronchiolitis should not receive epinephrine or chest physiotherapy.
  • Infants with a diagnosis of bronchiolitis in the emergency department should not receive nebulized hypertonic saline.
  • However, infants and children hospitalized for bronchiolitis may receive nebulized hypertonic saline.
  • Clinicians may choose not to use continuous pulse oximetry for infants and children diagnosed with bronchiolitis.
  • Infants and children with bronchiolitis should not receive antibiotics unless there is a concomitant bacterial infection, or a strong suspicion of such an infection.
  • Infants with a diagnosis of bronchiolitis who cannot maintain oral hydration should receive nasogastric or intravenous fluids.
  • All people should use alcohol-based rubs for hand decontamination when caring for children with bronchiolitis, or hand-washing with soap and water when alcohol-based rubs are not available.
  • Clinicians should encourage exclusive breastfeeding for at least 6 months to reduce the morbidity of respiratory tract infections.
  • When evaluating a child for bronchiolitis, clinicians should counsel caregivers about exposing the infant or child to environmental tobacco smoke and should also provide counseling on smoking cessation.
  • Clinicians and nurses should educate personnel and family members on evidence-based diagnosis, treatment, and prevention in bronchiolitis.

CLINICAL IMPLICATIONS

  • A new recommendation in the updated AAP guideline for bronchiolitis is that a diagnosis of bronchiolitis no longer requires testing for specific viruses, because multiple viruses may cause bronchiolitis.
  • Another new recommendation in the updated AAP guideline is that management of bronchiolitis no longer requires a trial dose of a bronchodilator, because available evidence shows that bronchodilators do not change the course of bronchiolitis.

Webucation 10/6/14

Web wisdom this time comes from the realms of microbiology, paeds, radio and even some good ol' pharmacology. Remember to support the original content providers.

  • Log roll finger bum ? - More dogmalysis on a topic we've been trying to bury for a decade now. Is it really necessary to rectally relieve ALL or ANY of your patients???
The last point mirrors our opinion as well. I cannot recall doing a DRE on a conscious, neurologically intact patient for years... its time we all spread the myth-busting surrounding the anal abuse in EDs! 

Webucation 17/2/14

This round of web publications comes from wonderful websites talking about paediatrics, radiology, neurosurgery and even some pharma thrown in. Be sure to visit the content creators.

  • Another radio myth? - Can we finally let go of this myth? 
  • Difficult though it may be to admit that we have been misled all this time. Could it be that we finally need a cross specialty study to finally end this conjecture -  for future generations sake...

    Choose wisely... reader discretion advised - some of you may say DUH

    The ACEP board of directors approved the following 5 Choosing Wisely recommendations for patients seen in the emergency department:
    1. For patients with minor head injury who are deemed to be at low risk for skull fractures or hemorrhage, based on validated decision rules, clinicians should avoid head computed tomography scans. The majority of minor head injuries do not result in brain hemorrhage.
    2. For stable patients who can urinate on their own, clinicians should avoid placing indwelling urinary catheters for either urine output monitoring or patient or staff convenience.
    3. For patients likely to benefit from palliative and hospice care services, clinicians should not delay in engaging such services when available. Early referral from the emergency department can improve quality, as well as quantity, of life.
    4. For patients with uncomplicated skin and soft tissue abscesses successfully treated with incision and drainage, clinicians should provide adequate medical follow-up but avoid antibiotics and wound cultures.
    5. For children with mild to moderate, uncomplicated dehydration, clinicians should avoid giving intravenous fluids before a trial of oral rehydration therapy.

    Webucation 19/5

    Been away for a few weeks on a course. The web has been active though and here's more than a few good articles to ponder over.

    • How-marriage-works-in-medicine - interesting read for those in and around wedlock and even more interesting for those not "locked"
    • Ringer's ain't great...again. - not as much volume expansion as you once thought
    • FOOSH again - excellent revision on a not so common wrist injury from Emergucate
    • PTX aspiration - great video by NEJM on needle aspiration of pneumothorax of you have not seen one before.
    • Don't ignore naughty parts! - the trauma pro talks about not ignoring stuff down below
    • Macrolides and CCBs - do they interact and cause shock?
    • LUL collapse - we agree that its probably the hardest collapse to see on CXR
    • Microbiology pearls - truly one of the best write-ups we have seen recently. What every hospital doc should know about those pesky microbes and what really happens. We cannot recommend this link enough.