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1.
Intensive Care Med ; 46(12): 2168-2183, 2020 12.
Статья в английский | MEDLINE | ID: covidwho-1151991

Реферат

Pulmonary infection is one of the main complications occurring in patients suffering from acute respiratory distress syndrome (ARDS). Besides traditional risk factors, dysregulation of lung immune defenses and microbiota may play an important role in ARDS patients. Prone positioning does not seem to be associated with a higher risk of pulmonary infection. Although bacteria associated with ventilator-associated pneumonia (VAP) in ARDS patients are similar to those in patients without ARDS, atypical pathogens (Aspergillus, herpes simplex virus and cytomegalovirus) may also be responsible for infection in ARDS patients. Diagnosing pulmonary infection in ARDS patients is challenging, and requires a combination of clinical, biological and microbiological criteria. The role of modern tools (e.g., molecular methods, metagenomic sequencing, etc.) remains to be evaluated in this setting. One of the challenges of antimicrobial treatment is antibiotics diffusion into the lungs. Although targeted delivery of antibiotics using nebulization may be interesting, their place in ARDS patients remains to be explored. The use of extracorporeal membrane oxygenation in the most severe patients is associated with a high rate of infection and raises several challenges, diagnostic issues and pharmacokinetics/pharmacodynamics changes being at the top. Prevention of pulmonary infection is a key issue in ARDS patients, but there is no specific measure for these high-risk patients. Reinforcing preventive measures using bundles seems to be the best option.


Тема - темы
Extracorporeal Membrane Oxygenation , Pneumonia, Ventilator-Associated , Respiratory Distress Syndrome , Humans , Lung , Patient Positioning , Respiratory Distress Syndrome/etiology , Respiratory Distress Syndrome/therapy
2.
BMC Res Notes ; 13(1): 421, 2020 Sep 07.
Статья в английский | MEDLINE | ID: covidwho-745675

Реферат

OBJECTIVE: The advent of new technologies has made it possible to explore alternative ventilator manufacturing to meet the worldwide shortfall for mechanical ventilators especially in pandemics. We describe a method using rapid prototyping technologies to create an electro-mechanical ventilator in a cost effective, timely manner and provide results of testing using an in vitro-in vivo testing model. RESULTS: Rapid prototyping technologies (3D printing and 2D cutting) were used to create a modular ventilator. The artificial manual breathing unit (AMBU) bag connected to wall oxygen source using a flow meter was used as air reservoir. Controlled variables include respiratory rate, tidal volume and inspiratory: expiratory (I:E) ratio. In vitro testing and In vivo testing in the pig model demonstrated comparable mechanical efficiency of the test ventilator to that of standard ventilator but showed the material limits of 3D printed gears. Improved gear design resulted in better ventilator durability whilst reducing manufacturing time (< 2-h). The entire cost of manufacture of ventilator was estimated at 300 Australian dollars. A cost-effective novel rapid prototyped ventilator for use in patients with respiratory failure was developed in < 2-h and was effective in anesthetized, healthy pig model.


Тема - темы
Equipment Design/methods , Respiration, Artificial/instrumentation , Ventilators, Mechanical/supply & distribution , Anesthesia, General/methods , Animals , COVID-19 , Coronavirus Infections/therapy , Expiratory Reserve Volume/physiology , Female , Humans , Inspiratory Reserve Volume/physiology , Models, Biological , Pandemics , Pneumonia, Viral/therapy , Printing, Three-Dimensional/instrumentation , Respiration, Artificial/economics , Respiration, Artificial/methods , Respiratory Rate/physiology , Swine , Tidal Volume/physiology , Ventilators, Mechanical/economics
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