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What's new in ARDS: ARDS also exists in resource-constrained settings.

Elisabeth D Riviello1,2, Luigi Pisani3,4,5, Marcus J Schultz5,6,7.   

Abstract

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Year:  2016        PMID: 26984318      PMCID: PMC4828492          DOI: 10.1007/s00134-016-4308-5

Source DB:  PubMed          Journal:  Intensive Care Med        ISSN: 0342-4642            Impact factor:   17.440


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The acute respiratory distress syndrome (ARDS) causes morbidity and mortality in both resource-constrained and resource-rich settings, but diagnosis, therapy, and research priorities vary with context (Fig. 1). While ARDS exists in resource-constrained settings, it may be under-recognized and under-treated, and is certainly under-studied. This has consequences both for current ARDS patient in resource-constrained settings, as well as future patients who could benefit from context-specific interventions to improve outcomes in ARDS.
Fig. 1

ARDS in resource-constrained and resource-rich settings: differences in incidence, outcomes, diagnostic approach, interventions, and research priorities

ARDS in resource-constrained and resource-rich settings: differences in incidence, outcomes, diagnostic approach, interventions, and research priorities The burden of ARDS in resource-constrained settings is poorly understood. One study recently reported the incidence and outcomes of ARDS in a Rwandan hospital using a modified definition of ARDS [1]. The study suggested that ARDS is both common and frequently lethal in resource-constrained settings: 4 % of adult patients met the modified definition of ARDS, and 50 % of these patients died. A direct comparison between resource-constrained and resource-rich settings is not possible because of differences in methodology of the available studies [1-3] and predicting where ARDS might be more common is not straightforward. Infection and trauma are the leading clinical insults leading to ARDS, and both are more prevalent in low-income countries [1, 2, 4]. On the other hand, ARDS could be more prevalent in high-income countries given evidence suggesting that mechanical ventilation, far more available in these settings, itself contributes to the development of ARDS [5]. In addition, the distinction between resource-constrained and resource-rich settings is more complicated in middle-income countries where resources exist but access to care may be extremely variable [6]. If ARDS is so common and lethal in resource-constrained settings, why is the data so sparse? One reason is a challenge not specific to ARDS but to all critical care research. Critical illness studies are often confined to patients in intensive care units (ICUs), of which there are very few in poorer settings [4]. The recent Intensive Care Over Nations (ICON) study is a good example of a large-scale effort to capture an international sample; yet in this study only 1.4 % of all patients were from the African continent [7]. A second reason explaining scarce ARDS data from resource-constrained settings is particular to the current Berlin definition of ARDS, which requires diagnostic and treatment capabilities that are almost universally absent in resource-limited settings [8]. Specifically, arterial blood gas analysis, which is necessary for calculation of the PaO2 to FiO2 ratio (P/F), and chest radiography, which is necessary to determine whether bilateral opacities are present, are often not accessible [9]. Validation of alternative criteria to the Berlin definition for ARDS could allow for better recognition and quantification of ARDS in resource-constrained settings. Lung ultrasound (US) may be easier to perform than chest radiography in resource-constrained settings, and increasing evidence suggests that lung US is at least as accurate as chest radiography for diagnosing ARDS [10]. Ultrasound can assess positive end-expiratory pressure (PEEP)-induced changes in lung aeration and thus has the potential to guide recruitment maneuvers. Furthermore, combining lung with bedside cardiac US can be helpful in differentiating ARDS from cardiogenic pulmonary edema and in assessing right ventricular function [11]. Advantages of US are many: fast learning curves, low costs, and requiring only basic US technology. Affordable, hand-held, battery-driven devices are increasingly available. Reasonable estimates of the P/F from SpO2 to FiO2 ratio (S/F) have been derived from large datasets, such that pulse oximetry could realistically replace oxygenation assessment by arterial blood gases [12]. The Rwandan study mentioned above demonstrated remarkable consistency in ARDS incidence using a variety of FiO2 estimates and S/F cutoffs [1]. Full validation of the Kigali modification of the Berlin definition for ARDS and definitive validation of the S/F would allow comparisons across different settings worldwide. Furthermore, S/F should be investigated as an alternative to P/F in the mounting evidence on better outcome prediction using oxygenation data at 24 h from ARDS diagnosis [13]. Does it matter that ARDS exists in resource-constrained settings but is rarely recognized? Yes. It matters because recognition is necessary to improve outcomes. First, recognition allows implementation of interventions that are clearly feasible in resource-constrained settings, such as conservative fluid management for both prevention and supportive care [14]. Second, recognition allows research into the risks and benefits of applying interventions that are known to be effective in resource-rich settings but could be less safe in settings with fewer trained staff (Fig. 1). For example, proning for severe ARDS is theoretically possible given that it requires no particular technology; however, the ability to perform it safely with the few staff available may be a barrier. A trial in Bangladesh that found possible harm from early enteral feeding in cerebral malaria is a good example of the need to test interventions in both resource-rich and resource-constrained environments, where the risks and benefits may be very different [15]. Third, recognition allows research into ARDS triggers and lung injury pathways that may be different in various contexts and populations. ARDS associated with malaria, HIV, or tuberculosis in Africa may represent a different set of molecular pathways than ARDS associated with community-acquired pneumonia in Europe. Just as research in sepsis requires one to pursue targeted molecular therapies that include resource-limited settings [16], so too does the heterogeneity of ARDS triggers and presentations highlight the need for trials in settings beyond resource-rich countries. Finally, recognition of ARDS could contribute to improvements in all aspects of healthcare. A good outcome for a patient with ARDS caused by peritonitis requires the capacity for safe surgery and adequate antibiotics in addition to lung-protective ventilation. This sobering limitation is nonetheless a platform for advocacy. Just as a ‘vertical’ approach to improving HIV outcomes has led to a recognition of a need for ‘horizontal’ health system strengthening, so too could a focus on ARDS strengthen advocacy for improved healthcare systems. ARDS exists worldwide, including in resource-poor settings where its incidence, triggers, modifiers, and outcomes remain largely unknown. Validation of a definition that can be applied in all settings, education about how to prevent and manage the syndrome, and research to expand treatment strategies are all desperately needed.
  16 in total

Review 1.  International evidence-based recommendations for point-of-care lung ultrasound.

Authors:  Giovanni Volpicelli; Mahmoud Elbarbary; Michael Blaivas; Daniel A Lichtenstein; Gebhard Mathis; Andrew W Kirkpatrick; Lawrence Melniker; Luna Gargani; Vicki E Noble; Gabriele Via; Anthony Dean; James W Tsung; Gino Soldati; Roberto Copetti; Belaid Bouhemad; Angelika Reissig; Eustachio Agricola; Jean-Jacques Rouby; Charlotte Arbelot; Andrew Liteplo; Ashot Sargsyan; Fernando Silva; Richard Hoppmann; Raoul Breitkreutz; Armin Seibel; Luca Neri; Enrico Storti; Tomislav Petrovic
Journal:  Intensive Care Med       Date:  2012-03-06       Impact factor: 17.440

2.  The ALIEN study: incidence and outcome of acute respiratory distress syndrome in the era of lung protective ventilation.

Authors:  Jesús Villar; Jesús Blanco; José Manuel Añón; Antonio Santos-Bouza; Lluís Blanch; Alfonso Ambrós; Francisco Gandía; Demetrio Carriedo; Fernando Mosteiro; Santiago Basaldúa; Rosa Lidia Fernández; Robert M Kacmarek
Journal:  Intensive Care Med       Date:  2011-10-14       Impact factor: 17.440

Review 3.  Acute respiratory distress syndrome in the global context.

Authors:  Egide Buregeya; Robert A Fowler; Daniel S Talmor; Theogene Twagirumugabe; Willy Kiviri; Elisabeth D Riviello
Journal:  Glob Heart       Date:  2014-10-31

Review 4.  Sepsis: a roadmap for future research.

Authors:  Jonathan Cohen; Jean-Louis Vincent; Neill K J Adhikari; Flavia R Machado; Derek C Angus; Thierry Calandra; Katia Jaton; Stefano Giulieri; Julie Delaloye; Steven Opal; Kevin Tracey; Tom van der Poll; Eric Pelfrene
Journal:  Lancet Infect Dis       Date:  2015-04-19       Impact factor: 25.071

5.  Preventing ARDS: progress, promise, and pitfalls.

Authors:  Jeremy R Beitler; David A Schoenfeld; B Taylor Thompson
Journal:  Chest       Date:  2014-10       Impact factor: 9.410

6.  Incidence and outcomes of acute lung injury.

Authors:  Gordon D Rubenfeld; Ellen Caldwell; Eve Peabody; Jim Weaver; Diane P Martin; Margaret Neff; Eric J Stern; Leonard D Hudson
Journal:  N Engl J Med       Date:  2005-10-20       Impact factor: 91.245

7.  Acute respiratory distress syndrome: the Berlin Definition.

Authors:  V Marco Ranieri; Gordon D Rubenfeld; B Taylor Thompson; Niall D Ferguson; Ellen Caldwell; Eddy Fan; Luigi Camporota; Arthur S Slutsky
Journal:  JAMA       Date:  2012-06-20       Impact factor: 56.272

8.  Timing of enteral feeding in cerebral malaria in resource-poor settings: a randomized trial.

Authors:  Richard J Maude; Gofranul Hoque; Mahtab Uddin Hasan; Abu Sayeed; Shahena Akter; Rasheda Samad; Badrul Alam; Emran Bin Yunus; Ridwanur Rahman; Waliur Rahman; Romal Chowdhury; Tapan Seal; Prakaykaew Charunwatthana; Christina C Chang; Nicholas J White; M Abul Faiz; Nicholas P J Day; Arjen M Dondorp; Amir Hossain
Journal:  PLoS One       Date:  2011-11-16       Impact factor: 3.240

9.  Access to urban acute care services in high- vs. middle-income countries: an analysis of seven cities.

Authors:  Shamly Austin; Srinivas Murthy; Hannah Wunsch; Neill K J Adhikari; Veena Karir; Kathryn Rowan; Shevin T Jacob; Jorge Salluh; Fernando A Bozza; Bin Du; Youzhong An; Bruce Lee; Felicia Wu; Yen-Lan Nguyen; Chris Oppong; Ramesh Venkataraman; Vimalraj Velayutham; Carmelo Dueñas; Derek C Angus
Journal:  Intensive Care Med       Date:  2013-12-13       Impact factor: 17.440

Review 10.  Critical care and the global burden of critical illness in adults.

Authors:  Neill K J Adhikari; Robert A Fowler; Satish Bhagwanjee; Gordon D Rubenfeld
Journal:  Lancet       Date:  2010-10-11       Impact factor: 79.321

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1.  Healthcare infrastructure capacity to respond to severe acute respiratory infection (SARI) and sepsis in Vietnam: A low-middle income country.

Authors:  Vu Quoc Dat; Nguyen Thanh Long; Kim Bao Giang; Pham Bich Diep; Ta Hoang Giang; Janet V Diaz
Journal:  J Crit Care       Date:  2017-07-10       Impact factor: 3.425

2.  Risk factors for the development of acute respiratory distress syndrome in mechanically ventilated adults in Peru: a multicenter observational study.

Authors:  Ena Gupta; Shakir Hossen; Matthew R Grigsby; Phabiola Herrera; Rollin Roldan; Enrique Paz; Amador A Jaymez; Eduardo E Chirinos; Jose Portugal; Rocio Quispe; Roy G Brower; William Checkley
Journal:  Crit Care       Date:  2019-12-06       Impact factor: 9.097

Review 3.  Acute respiratory distress syndrome (ARDS) as an adverse event following immunization: Case definition & guidelines for data collection, analysis, and presentation of immunization safety data.

Authors:  Nathan A Serazin; Bassey Edem; Sarah R Williams; Justin R Ortiz; Anand Kawade; Manoj Kumar Das; Maja Šubelj; Kathryn M Edwards; Shreemanta K Parida; T Anh Wartel; Flor M Munoz; Patricia Bastero
Journal:  Vaccine       Date:  2021-01-28       Impact factor: 3.641

4.  Vital signs: the first step in prevention and management of critical illness in resource-limited settings.

Authors:  Matthew J Cummings; Joseph F Wamala; Barnabas Bakamutumaho; J Lucian Davis
Journal:  Intensive Care Med       Date:  2016-05-20       Impact factor: 17.440

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