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Monday, June 26, 2017
New Guidelines to Estimate LAP with ECHO
Check out @HeartToProve's Tweet: https://twitter.com/HeartToProve/status/878607784467628032?s=09
Monday, June 12, 2017
Tricuspid valve and device complications
The following are key points to remember about this review of tricuspid valve dysfunction following pacemaker (PPM) or implantable cardioverter-defibrillator (ICD) placement:
- Endocardial leads are associated with a number of adverse consequences to tricuspid valve (TV) structure and function. Damage to TV leaflets or subvalvular structures may occur during lead implantation, and it may not be apparent with routine follow-up imaging studies. Avulsion may occur during lead extraction. Chronic interaction between endocardial leads and leaflet and/or chordal structures can result in a foreign body inflammatory and fibrotic response leading to the entrapment of the lead.
- The prospective incidence of TV damage during lead placement is not known. Retrospective case reports are limited by lack of baseline tricuspid regurgitation (TR) assessment. Most studies suggest that there is a higher incidence of worsening TR in defibrillator leads as opposed to pacing leads, and if there are more than one right ventricular lead.
- In a series of 41 patients undergoing TV surgery for severe TR believed to be caused by a lead, leaflet impingement was found in 16, leaflet adherence in 14, leaflet perforation in 7, and leaflet entanglement in 4 cases. It appears that the posterior and the septal leaflets may be more vulnerable to injury than the anterior leaflet.
- A multicenter prospective study currently underway has enrolled 300 patients undergoing cardiac implantable electronic device (CIED) implantation to investigate whether significant TR is caused by the presence of these endocardial leads, with transthoracic echocardiograms obtained within 30 days before and 12 months after implantation.
- Intravascular hardware and damage to the TV predisposes the patient to endocarditis and thrombosis, either of which can lead to TV dysfunction causing regurgitation or stenosis.
- Dyssynchronous left ventricular electromechanical activation induced by left bundle branch block or right ventricular pacing is a well-recognized cause of mitral regurgitation. Whether a similar mechanism operates for TR is controversial. Most studies suggest that the physical presence of the lead itself plays the primary, if not the entire role in TV dysfunction, as the percentage of paced beats does not correlate with worsening TR.
- CIED leads cause echocardiographic imaging artifacts and signal attenuation, due to their high acoustic impedance and reflectivity, resulting in underestimation of TR by color-flow Doppler mapping especially during transthoracic echo, and somewhat less so during transesophageal echo. The regurgitant jet tends to assume an eccentric, rather than a central trajectory, resulting in loss of color-flow Doppler signal, and hence underestimation of regurgitation. In patients eventually found to have severe TR due to CIED leads, only 63% were correctly diagnosed by transthoracic echo during the preoperative study, whereas all were found to have severe TR by preoperative or intraoperative transesophageal echo. Sensitivity of transthoracic echo to detect severe TR can be increased by incorporating hepatic vein assessment (color flow and spectral Doppler).
- Three-dimensional echocardiography offers improved spatial definition of the interaction between lead and valve and/or subvalvular apparatus, and it is the imaging modality of choice for assessment of CIED lead–TV interaction.
- There are no prospective data to support TR in the absence of device or endovascular infection as an indication for transvenous lead extraction, hence its absence from the Heart Rhythm Society guideline statement of 2009. However, excess mortality associated with severe TR has been estimated to be 40-75% in patients with CIEDs. When operative risk is low, patients with lead-related severe TR would be expected to benefit from an intervention. If the right ventricle and tricuspid valve annulus are dilated or TV leaflets are damaged, tricuspid valve repair or replacement plus lead removal, relocation, or replacement should be considered. If the right ventricle, tricuspid annulus, TV leaflet appear intact, transvenous lead extraction alone should be considered first.
- The future of CIEDs in which endocardial leads are absent (leadless pacing) or nontransvalvular (as in His bundle pacing) is likely to be associated with a reduction in lead-related cardiac dysfunction
Thursday, April 6, 2017
Do we really need to limit tidal volume in everybody
Below is video recording of pro- con debate on this topic. See what you think and comment on the presentations.This was presented in Brussels during the ISICEM Symposium, March 2017.
It also raises the issue if we should look for " a middle of the road" solution by applying this strategy to only high risk -ARDS patients by using for example the LIPS score .
Is the right strategy in the middle, using a score trying to identifying high risk patients, or should we take an all or nothing approach in non-ARDS hypoxemic respiratory failure?
Use earphones as the audio is not great. I am planning to edit with Camtasia Studio and attach separately recorded audio of higher quality. Stay tuned.
Is LIPS really predictive of ARDS..... look at the overlap in the slide in a surgical population
It also raises the issue if we should look for " a middle of the road" solution by applying this strategy to only high risk -ARDS patients by using for example the LIPS score .
Is the right strategy in the middle, using a score trying to identifying high risk patients, or should we take an all or nothing approach in non-ARDS hypoxemic respiratory failure?
Use earphones as the audio is not great. I am planning to edit with Camtasia Studio and attach separately recorded audio of higher quality. Stay tuned.
Is LIPS really predictive of ARDS..... look at the overlap in the slide in a surgical population
Friday, March 31, 2017
ECCO2R in patients with acute respiratory failure
Carbon dioxide (CO2) which is twenty times more diffusible and has different physiological features compared to oxygen, still continues to occupy one of the most important physiological parameters in intensive care practice and can often act like double-edged sword. Hypercapnia may have deleterious effects on cardiac, brain and lung function. In contrast, it has also been shown that acidosis secondary to CO2 elevation may have an anti-inflammatory effect and consequently permissive hypercapnia may prevent progression of lung injury. However, this immunosuppressive effect can increase the tendency for bacterial super-infection (1).
Over last decade, artificial support systems called Extracorporeal Carbon Dioxide Removal or ECCO2R have increasingly become popular devices used to control CO2 levels. Indications include not only optimisation of lung protection in acute respiratory distress syndrome (ARDS) management, but also for type 2 respiratory failure induced by exacerbations of severe asthma and chronic obstructive pulmonary disease (COPD) or temporarisation as a bridge to lung transplantation (2-5). The main characteristics that separate ECCO2R from other extra-corporeal life support (ECLS) techniques, is the need for significantly reduced calibre of cannulae required for vascular access (due to the low blood flow requirement through the extra-corporeal gas exchange membrane to remove CO2).
This recent article by Morelli et al (6) in the journal Intensive Care Medicine highlights that there is a lack of current evidence (small, single centre studies) for the general application of ECCO2R to daily practice. The main clinical indications at present are in ARDS and COPD.
Initially the use of ECCO2R was introduced into ARDS through the need to prevent excessive hypercapnia as a result of low tidal volume lung protective strategies. Zapol et al. introduced the concept of applying ECMO in order to prevent ventilator induced lung injury (VILI) (7). Further evidence came from the Xtravent study by Bein et al. where ultraprotective ventilation strategies, specifically with the use of ECCO2R suggested a trend towards improved survival (8). As a result, there are two large ongoing prospective multicentre randomised control studies (SUPERNOVA and REST) in France and the UK examining the safety and feasibility of such a strategy. It is expected that, within the next five years, the results of these studies will provide valuable guidance regarding the evidence based application of the combination of ultra protective ventilation and ECCO2R in acute respiratory failure.
The other use of ECCO2R is in the support and prevention of invasive mechanical ventilation (IMV) in patients with acute type 2 respiratory failure. It does not only avoid endotracheal intubation in these patients, but also reduces respiratory work, the need for sedation and as a result, further CO2 production. In a similar fashion, ECCO2R may be also be a supportive strategy as a bridge to lung transplantation in the maintenance of respiratory muscle strength. In addition, ECCO2R may improve pulmonary hypertension and right heart function and improve myocardial efficiency (9).
However it should be emphasised clearly that, even if ECCO2R helps intensivists in the situations described above, there could be some inevitable drawbacks for patients related to utilising these devices. The expense of lowering CO2 can sometimes increase hypoxaemia, as a result of atelectasis with low tidal volume associated low airway pressures and ventilation-perfusion mismatch and there may be recourse to ECMO in some patients treated with ECCO2R. Furthermore, due to the low blood flows used through the extracorporeal circuit, there is increased risk of thrombosis within the catheter and gas exchange membrane (10).
To conclude, due to observational designs, low patient numbers, controversial results and some disadvantages such as hypoxemia, current studies do not demonstrate the efficiency and applicability of ECCO2R. More robust studies are needed to determine its efficacy in daily practice with these patients.
This article review was submitted by EJRC members Dr Burcin Halacli and Dr Brijesh Patel (Royal Brompton Hospital), on behalf of the NEXT committee.
References
1. Ismaiel NM, Henzler D (2011) Effects of hypercapnia and hypercapnic acidosis on attenuation of ventilator-associated lung injury. Minerva Anestesiol 77:723–733
2. Gattinoni L, Agostoni A, Pesenti A et al (1980) Treatment of acute respiratory failure with low-frequency positive-pressure ventilation and extracorporeal removal of CO2. Lancet 2:292–294
3. Tajimi K, Kasai T, Nakatani T, Kobayashi K (1988) Extracorporeal lung assist
for patient with hypercapnia due to status asthmaticus. Intensive Care
Med 14:588–589
4. Sklar MC, Beloncle F, Katsios CM et al (2015) Extracorporeal carbon dioxide removal in patients with chronic obstructive pulmonary disease: a systematic review. Intensive Care Med 41:1752–1762
5. Schellongowski P, Riss K, Staudinger T et al (2015) Extracorporeal CO2 removal as bridge to lung transplantation in lifethreatening hypercapnia.
Transpl Int 28:297–304
6. Morelli A, Del Sorbo L, Pesenti A, Ranieri VM, Fan E. Extracorporeal carbon dioxide removal (ECCO2R) in patients with acute respiratory failure. Intensive Care Med. 2017 Apr;43(4):519-530.
7. Zapol WM, Snider MT, Hill JD et al (1979) Extracorporeal membrane oxygenation in severe acute respiratory failure. A randomized prospective
study. JAMA 242:2193–2196
8. Bein T, Weber-Carstens S, Goldmann A et al (2013) Lower tidal volume strategy (≈3 ml/kg) combined with extracorporeal CO2 removal versus “conventional” protective ventilation (6 ml/kg) in severe ARDS: the prospective randomized Xtravent-study. Intensive Care Med 39:847–856.
9. Karagiannidis C, Strassmann S, Philipp A, Müller T, Windisch W (2015) Veno-venous extracorporeal CO2 removal improves pulmonary hypertension in acute exacerbation of severe COPD. Intensive Care Med 41:1509–1510
10. Fanelli V, Ranieri MV, Mancebo J et al (2016) Feasibility and safety of
low-flow extracorporeal carbon dioxide removal to facilitate ultraprotective
ventilation in patients with moderate acute respiratory distress
syndrome. Crit Care 20:36
1. Ismaiel NM, Henzler D (2011) Effects of hypercapnia and hypercapnic acidosis on attenuation of ventilator-associated lung injury. Minerva Anestesiol 77:723–733
2. Gattinoni L, Agostoni A, Pesenti A et al (1980) Treatment of acute respiratory failure with low-frequency positive-pressure ventilation and extracorporeal removal of CO2. Lancet 2:292–294
3. Tajimi K, Kasai T, Nakatani T, Kobayashi K (1988) Extracorporeal lung assist
for patient with hypercapnia due to status asthmaticus. Intensive Care
Med 14:588–589
4. Sklar MC, Beloncle F, Katsios CM et al (2015) Extracorporeal carbon dioxide removal in patients with chronic obstructive pulmonary disease: a systematic review. Intensive Care Med 41:1752–1762
5. Schellongowski P, Riss K, Staudinger T et al (2015) Extracorporeal CO2 removal as bridge to lung transplantation in lifethreatening hypercapnia.
Transpl Int 28:297–304
6. Morelli A, Del Sorbo L, Pesenti A, Ranieri VM, Fan E. Extracorporeal carbon dioxide removal (ECCO2R) in patients with acute respiratory failure. Intensive Care Med. 2017 Apr;43(4):519-530.
7. Zapol WM, Snider MT, Hill JD et al (1979) Extracorporeal membrane oxygenation in severe acute respiratory failure. A randomized prospective
study. JAMA 242:2193–2196
8. Bein T, Weber-Carstens S, Goldmann A et al (2013) Lower tidal volume strategy (≈3 ml/kg) combined with extracorporeal CO2 removal versus “conventional” protective ventilation (6 ml/kg) in severe ARDS: the prospective randomized Xtravent-study. Intensive Care Med 39:847–856.
9. Karagiannidis C, Strassmann S, Philipp A, Müller T, Windisch W (2015) Veno-venous extracorporeal CO2 removal improves pulmonary hypertension in acute exacerbation of severe COPD. Intensive Care Med 41:1509–1510
10. Fanelli V, Ranieri MV, Mancebo J et al (2016) Feasibility and safety of
low-flow extracorporeal carbon dioxide removal to facilitate ultraprotective
ventilation in patients with moderate acute respiratory distress
syndrome. Crit Care 20:36
Wednesday, March 29, 2017
What’s new in refractory status epilepticus?
Refractory status epilepticus (RSE) is defined by persistent
seizures, resistant to first-line (benzodiazepines)
and second-line (“classic” anticonvulsant therapy, suchas valproate, phenytoin/fosphenytoin or levetiracetam),
usually requiring general anesthesia and continuous
electroencephalogram (EEG) monitoring . This is of
particular importance since up to 43 % of patients with
status epileptics will progress to RSE. Rossetti and Bleck
recently proposed an update on the management of status
epilepticus .
This article reviews the recent literature on convulsive RSE in adults, aiming to summarize advantages/disadvantages and comparative studies of “standard” intravenous anesthetics (propofol, midazolam, barbiturates) and describe the emerging use of the alternative anesthetic agent, ketamine. An algorithm is p[roposed for the management of RSE in the ICU.
Note the option and role of ketamine.
This article reviews the recent literature on convulsive RSE in adults, aiming to summarize advantages/disadvantages and comparative studies of “standard” intravenous anesthetics (propofol, midazolam, barbiturates) and describe the emerging use of the alternative anesthetic agent, ketamine. An algorithm is p[roposed for the management of RSE in the ICU.
Note the option and role of ketamine.
Thursday, March 23, 2017
Hemodynamic Monitoring:what is new in 2017
Here is a link to the audio of the entire (Non- Invasive) Hemodynamic Montoring in perioperative setting and in the ICU in critically ill intubated and non- intubated patients at ISICEM 37th Meeting Brussels , Belgium . It's somewhat of an exhaustive review.I will publish the slides later, as I am sending this ad hoc from the Starbucks at Brussels Central train Station.
At the end, I felt somewhat let down as I could not pinpoint either Xavier Monnet or Ivor Douglas what single test to use on on critically ill septic patients to asses PLR, particularly in intubated patients without arrhythmia's, sedated and not over- breathing the ventilator (either on VCV- AC and PC- AC).
Both speakers also had a significant conflicts of interest. Xavier Monnet with Precision Medical and Ivor Douglas with Cheetah Medical, both heavily sponsored for there research in the field.
Nevertheless, I think you will take away clinical useful information from most of the talks.
Keep in mind that the latest and newest drug or test often doesn't stand the test of time. An important article from the New Yorker , highlights the point I am trying to make here .Will NICOM or etCO2 as CO ( cardiac output ) surrogate measurement technique to assess FLR fall prey to " regression to the mean ", as happens for most clinical interventions and diagnostic tests? Bioimpedance is a noteworthy example in this category. I am afraid the answer will be eventually ...yes.
(More thoughts of the decline effect, New Yorker)
A few pratical and clinical helpful messages can be taken away form this session:
1) Provided you believe the results, act accordingly to what the device tells you (consistency). Unfortunately, I have not found the +LR and -LR ratios for either etCO2 and NICOM. I asked the question, neither researchers could give me an answer.
2) Probably, the most useful result you can get, applied to the current "slow data-point collection" NICOM device is a negative result ( I supect NICOm has a good NPV but I cannot prove this based on the literature). This is important because further aggressive fluid administration will avoid further damage to the glycocalyx and capillary leak
3) Repeated fluid boluses guided by a positive result on NICOM ( assuming an unrealistic 100% accuracy - probably more in the 60- to 70% range), may still cause an overshoot.
Is the infliction point for CO on the Frank-Starling (FS) curve the end- point for optimal tissue perfusion and oxygenation?
What is the ideal CO for an individual patient ? (something these devices cannot tell us ). We are already high on the FS ("flat part") curve once the test becomes negative. Do we need to go this far ?
4) Maintenance fluids after initial volume resuscitation (this is after the usual 30 ml/kg in the hypotensive septic patient and +/- pressor use initially) should be abandoned in favor of clinical assessment and FLR.Either etCO2 ( but specific conditions will need to be met and thsi will be a topic of another blog entry) or NICOM maybe a useful CO surrogate marker, although PPV/SVV techniques can still be used in the right clinical context.
Unchecked/unmonitored use of maintenance fluids is associated with increased mortality.
5) "Rapid NICOM" (not clinically available yet ) may be the most single useful test in the near future for FLR ( flid responsiveness).
6) Because of the well studied variable accuracy ( >30-40%) of various noninvasive hemodynamic monitoring techniques, trending results does not necessarily improve clinical decision making. Accuracy is not independent of interpretation of trending results.
Programme Hemodynamic Non- Invasive Montoring 37th Symposium 2017, Brussels, Belgium
At the end, I felt somewhat let down as I could not pinpoint either Xavier Monnet or Ivor Douglas what single test to use on on critically ill septic patients to asses PLR, particularly in intubated patients without arrhythmia's, sedated and not over- breathing the ventilator (either on VCV- AC and PC- AC).
Both speakers also had a significant conflicts of interest. Xavier Monnet with Precision Medical and Ivor Douglas with Cheetah Medical, both heavily sponsored for there research in the field.
Nevertheless, I think you will take away clinical useful information from most of the talks.
Keep in mind that the latest and newest drug or test often doesn't stand the test of time. An important article from the New Yorker , highlights the point I am trying to make here .Will NICOM or etCO2 as CO ( cardiac output ) surrogate measurement technique to assess FLR fall prey to " regression to the mean ", as happens for most clinical interventions and diagnostic tests? Bioimpedance is a noteworthy example in this category. I am afraid the answer will be eventually ...yes.
(More thoughts of the decline effect, New Yorker)
A few pratical and clinical helpful messages can be taken away form this session:
1) Provided you believe the results, act accordingly to what the device tells you (consistency). Unfortunately, I have not found the +LR and -LR ratios for either etCO2 and NICOM. I asked the question, neither researchers could give me an answer.
2) Probably, the most useful result you can get, applied to the current "slow data-point collection" NICOM device is a negative result ( I supect NICOm has a good NPV but I cannot prove this based on the literature). This is important because further aggressive fluid administration will avoid further damage to the glycocalyx and capillary leak
3) Repeated fluid boluses guided by a positive result on NICOM ( assuming an unrealistic 100% accuracy - probably more in the 60- to 70% range), may still cause an overshoot.
Is the infliction point for CO on the Frank-Starling (FS) curve the end- point for optimal tissue perfusion and oxygenation?
What is the ideal CO for an individual patient ? (something these devices cannot tell us ). We are already high on the FS ("flat part") curve once the test becomes negative. Do we need to go this far ?
4) Maintenance fluids after initial volume resuscitation (this is after the usual 30 ml/kg in the hypotensive septic patient and +/- pressor use initially) should be abandoned in favor of clinical assessment and FLR.Either etCO2 ( but specific conditions will need to be met and thsi will be a topic of another blog entry) or NICOM maybe a useful CO surrogate marker, although PPV/SVV techniques can still be used in the right clinical context.
Unchecked/unmonitored use of maintenance fluids is associated with increased mortality.
5) "Rapid NICOM" (not clinically available yet ) may be the most single useful test in the near future for FLR ( flid responsiveness).
6) Because of the well studied variable accuracy ( >30-40%) of various noninvasive hemodynamic monitoring techniques, trending results does not necessarily improve clinical decision making. Accuracy is not independent of interpretation of trending results.
Programme Hemodynamic Non- Invasive Montoring 37th Symposium 2017, Brussels, Belgium
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