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    NCHS Data ventolin and atrovent together Brief No is proair and ventolin the same thing. 286, September 2017PDF Versionpdf icon (374 KB)Anjel Vahratian, Ph.D.Key findingsData from the National Health Interview Survey, 2015Among those aged 40–59, perimenopausal women (56.0%) were more likely than postmenopausal (40.5%) and premenopausal (32.5%) women to sleep less than 7 hours, on average, in a 24-hour period.Postmenopausal women aged 40–59 were more likely than premenopausal women aged 40–59 to have trouble falling asleep (27.1% compared with 16.8%, respectively), and staying asleep (35.9% compared with 23.7%), four times or more in the past week.Postmenopausal women aged 40–59 (55.1%) were more likely than premenopausal women aged 40–59 (47.0%) to not wake up feeling well rested 4 days or more in the past week.Sleep duration and quality are important contributors to health and wellness. Insufficient sleep is associated with an increased risk for chronic conditions such ventolin and atrovent together as cardiovascular disease (1) and diabetes (2). Women may be particularly vulnerable to sleep problems during times of reproductive hormonal change, such as after the menopausal transition. Menopause is “the ventolin and atrovent together permanent cessation of menstruation that occurs after the loss of ovarian activity” (3).

    This data brief describes sleep duration and sleep quality among nonpregnant women aged 40–59 by menopausal status. The age range selected for this analysis reflects the focus on midlife sleep health. In this analysis, 74.2% of women are premenopausal, 3.7% ventolin and atrovent together are perimenopausal, and 22.1% are postmenopausal. Keywords. Insufficient sleep, ventolin and atrovent together menopause, National Health Interview Survey Perimenopausal women were more likely than premenopausal and postmenopausal women to sleep less than 7 hours, on average, in a 24-hour period.More than one in three nonpregnant women aged 40–59 slept less than 7 hours, on average, in a 24-hour period (35.1%) (Figure 1).

    Perimenopausal women were most likely to sleep less than 7 hours, on average, in a 24-hour period (56.0%), compared with 32.5% of premenopausal and 40.5% of postmenopausal women. Postmenopausal women were significantly more likely than premenopausal women to sleep less than 7 hours, on average, in a 24-hour period. Figure 1 ventolin and atrovent together. Percentage of nonpregnant women aged 40–59 who slept less than 7 hours, on average, in a 24-hour period, by menopausal status. United States, 2015image icon1Significant quadratic trend by menopausal ventolin and atrovent together status (p <.

    0.05).NOTES. Women were postmenopausal if they had gone without a menstrual cycle for more than 1 year or were in surgical menopause after the removal of their ovaries. Women were perimenopausal if they no longer had a menstrual cycle and their last menstrual ventolin and atrovent together cycle was 1 year ago or less. Women were premenopausal if they still had a menstrual cycle. Access data table for Figure ventolin and atrovent together 1pdf icon.SOURCE.

    NCHS, National Health Interview Survey, 2015. The percentage of women aged 40–59 who had trouble falling asleep four times or more in the past week varied by menopausal status.Nearly one in five nonpregnant women aged 40–59 had trouble falling asleep four times or more ventolin and atrovent together in the past week (19.4%) (Figure 2). The percentage of women in this age group who had trouble falling asleep four times or more in the past week increased from 16.8% among premenopausal women to 24.7% among perimenopausal and 27.1% among postmenopausal women. Postmenopausal women were significantly more likely than premenopausal women to have trouble falling asleep four times or more in the past week. Figure 2 ventolin and atrovent together.

    Percentage of nonpregnant women aged 40–59 who had trouble falling asleep four times or more in the past week, by menopausal status. United States, 2015image icon1Significant linear trend by menopausal ventolin and atrovent together status (p <. 0.05).NOTES. Women were postmenopausal if they had gone without a menstrual cycle for more than 1 year or were in surgical menopause after the removal of their ovaries. Women were ventolin and atrovent together perimenopausal if they no longer had a menstrual cycle and their last menstrual cycle was 1 year ago or less.

    Women were premenopausal if they still had a menstrual cycle. Access data table ventolin and atrovent together for Figure 2pdf icon.SOURCE. NCHS, National Health Interview Survey, 2015. The percentage of women aged 40–59 who had trouble staying asleep four times or more in the past week varied by menopausal status.More than one in four nonpregnant women aged 40–59 had trouble staying ventolin and atrovent together asleep four times or more in the past week (26.7%) (Figure 3). The percentage of women aged 40–59 who had trouble staying asleep four times or more in the past week increased from 23.7% among premenopausal, to 30.8% among perimenopausal, and to 35.9% among postmenopausal women.

    Postmenopausal women were significantly more likely than premenopausal women to have trouble staying asleep four times or more in the past week. Figure 3 ventolin and atrovent together. Percentage of nonpregnant women aged 40–59 who had trouble staying asleep four times or more in the past week, by menopausal status. United States, 2015image icon1Significant ventolin and atrovent together linear trend by menopausal status (p <. 0.05).NOTES.

    Women were postmenopausal if they had gone without a menstrual cycle for more than 1 year or were in surgical menopause after the removal of their ovaries. Women were ventolin and atrovent together perimenopausal if they no longer had a menstrual cycle and their last menstrual cycle was 1 year ago or less. Women were premenopausal if they still had a menstrual cycle. Access data table for Figure 3pdf icon.SOURCE ventolin and atrovent together. NCHS, National Health Interview Survey, 2015.

    The percentage of women aged 40–59 who did not wake up feeling well rested 4 days or more in the past week varied by menopausal status.Nearly one in two nonpregnant women aged 40–59 did not wake up feeling well rested 4 days or more in the past week (48.9%) (Figure 4). The percentage of women in this age ventolin and atrovent together group who did not wake up feeling well rested 4 days or more in the past week increased from 47.0% among premenopausal women to 49.9% among perimenopausal and 55.1% among postmenopausal women. Postmenopausal women were significantly more likely than premenopausal women to not wake up feeling well rested 4 days or more in the past week. Figure 4 ventolin and atrovent together. Percentage of nonpregnant women aged 40–59 who did not wake up feeling well rested 4 days or more in the past week, by menopausal status.

    United States, 2015image icon1Significant linear trend by menopausal status (p <. 0.05).NOTES. Women were postmenopausal if they had gone without a menstrual cycle for more than 1 year or were in surgical menopause after the removal of their ovaries. Women were perimenopausal if they no longer had a menstrual cycle and their last menstrual cycle was 1 year ago or less. Women were premenopausal if they still had a menstrual cycle.

    Access data table for Figure 4pdf icon.SOURCE. NCHS, National Health Interview Survey, 2015. SummaryThis report describes sleep duration and sleep quality among U.S. Nonpregnant women aged 40–59 by menopausal status. Perimenopausal women were most likely to sleep less than 7 hours, on average, in a 24-hour period compared with premenopausal and postmenopausal women.

    In contrast, postmenopausal women were most likely to have poor-quality sleep. A greater percentage of postmenopausal women had frequent trouble falling asleep, staying asleep, and not waking well rested compared with premenopausal women. The percentage of perimenopausal women with poor-quality sleep was between the percentages for the other two groups in all three categories. Sleep duration changes with advancing age (4), but sleep duration and quality are also influenced by concurrent changes in women’s reproductive hormone levels (5). Because sleep is critical for optimal health and well-being (6), the findings in this report highlight areas for further research and targeted health promotion.

    DefinitionsMenopausal status. A three-level categorical variable was created from a series of questions that asked women. 1) “How old were you when your periods or menstrual cycles started?. €. 2) “Do you still have periods or menstrual cycles?.

    €. 3) “When did you have your last period or menstrual cycle?. €. And 4) “Have you ever had both ovaries removed, either as part of a hysterectomy or as one or more separate surgeries?. € Women were postmenopausal if they a) had gone without a menstrual cycle for more than 1 year or b) were in surgical menopause after the removal of their ovaries.

    Women were perimenopausal if they a) no longer had a menstrual cycle and b) their last menstrual cycle was 1 year ago or less. Premenopausal women still had a menstrual cycle.Not waking feeling well rested. Determined by respondents who answered 3 days or less on the questionnaire item asking, “In the past week, on how many days did you wake up feeling well rested?. €Short sleep duration. Determined by respondents who answered 6 hours or less on the questionnaire item asking, “On average, how many hours of sleep do you get in a 24-hour period?.

    €Trouble falling asleep. Determined by respondents who answered four times or more on the questionnaire item asking, “In the past week, how many times did you have trouble falling asleep?. €Trouble staying asleep. Determined by respondents who answered four times or more on the questionnaire item asking, “In the past week, how many times did you have trouble staying asleep?. € Data source and methodsData from the 2015 National Health Interview Survey (NHIS) were used for this analysis.

    NHIS is a multipurpose health survey conducted continuously throughout the year by the National Center for Health Statistics. Interviews are conducted in person in respondents’ homes, but follow-ups to complete interviews may be conducted over the telephone. Data for this analysis came from the Sample Adult core and cancer supplement sections of the 2015 NHIS. For more information about NHIS, including the questionnaire, visit the NHIS website.All analyses used weights to produce national estimates. Estimates on sleep duration and quality in this report are nationally representative of the civilian, noninstitutionalized nonpregnant female population aged 40–59 living in households across the United States.

    The sample design is described in more detail elsewhere (7). Point estimates and their estimated variances were calculated using SUDAAN software (8) to account for the complex sample design of NHIS. Linear and quadratic trend tests of the estimated proportions across menopausal status were tested in SUDAAN via PROC DESCRIPT using the POLY option. Differences between percentages were evaluated using two-sided significance tests at the 0.05 level. About the authorAnjel Vahratian is with the National Center for Health Statistics, Division of Health Interview Statistics.

    The author gratefully acknowledges the assistance of Lindsey Black in the preparation of this report. ReferencesFord ES. Habitual sleep duration and predicted 10-year cardiovascular risk using the pooled cohort risk equations among US adults. J Am Heart Assoc 3(6):e001454. 2014.Ford ES, Wheaton AG, Chapman DP, Li C, Perry GS, Croft JB.

    Associations between self-reported sleep duration and sleeping disorder with concentrations of fasting and 2-h glucose, insulin, and glycosylated hemoglobin among adults without diagnosed diabetes. J Diabetes 6(4):338–50. 2014.American College of Obstetrics and Gynecology. ACOG Practice Bulletin No. 141.

    Management of menopausal symptoms. Obstet Gynecol 123(1):202–16. 2014.Black LI, Nugent CN, Adams PF. Tables of adult health behaviors, sleep. National Health Interview Survey, 2011–2014pdf icon.

    2016.Santoro N. Perimenopause. From research to practice. J Women’s Health (Larchmt) 25(4):332–9. 2016.Watson NF, Badr MS, Belenky G, Bliwise DL, Buxton OM, Buysse D, et al.

    Recommended amount of sleep for a healthy adult. A joint consensus statement of the American Academy of Sleep Medicine and Sleep Research Society. J Clin Sleep Med 11(6):591–2. 2015.Parsons VL, Moriarity C, Jonas K, et al. Design and estimation for the National Health Interview Survey, 2006–2015.

    National Center for Health Statistics. Vital Health Stat 2(165). 2014.RTI International. SUDAAN (Release 11.0.0) [computer software]. 2012.

    Suggested citationVahratian A. Sleep duration and quality among women aged 40–59, by menopausal status. NCHS data brief, no 286. Hyattsville, MD. National Center for Health Statistics.

    2017.Copyright informationAll material appearing in this report is in the public domain and may be reproduced or copied without permission. Citation as to source, however, is appreciated.National Center for Health StatisticsCharles J. Rothwell, M.S., M.B.A., DirectorJennifer H. Madans, Ph.D., Associate Director for ScienceDivision of Health Interview StatisticsMarcie L. Cynamon, DirectorStephen J.

    Blumberg, Ph.D., Associate Director for Science.

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    This coupled with the inability to confirm endotracheal tube position with stethoscope due to poor accessibility in PPE, increases the risk of oesophageal intubation, re-intubation attempts, aerosol generation and thus HCP exposure. Bedside ultrasound ventolin pi could act as visual stethoscope in the described scenario. Sono-CPR in asthma treatment can help intervene quickly in treatable cases and reduce the time spent by HCP in futile resuscitative efforts.

    Reduced time spent equates to reduced duration of aerosol exposure and thus reduced risk of transmission. Various algorithms are described for sono-cardiopulmonary resuscitation (sono-CPR) during cardiac arrest, but none are discussed to address ventolin pi patients with asthma treatment.5 It would hence be wise to integrate bedside point-of-care ultrasound (POCUS) in the code blue algorithm.HOW THE BEDSIDE TOOL HELPS?. Hypoxemia and respiratory failure attribute over 80% aetiology of cardiac arrest in patients with asthma treatment.1 Prioritising oxygenation and ventilation using definitive airway and use of high-efficiency particulate air filters reduces airborne transmission, thereby making early intubation the dictum of resuscitation.3 Considering poor visualisation due to fogging with the goggles and face shield, inability to use stethoscope and lack of availability of end-tidal CO2 (EtCO2) in resource constraint settings, ultrasound-guided real-time intubation by trained HCP or endotracheal tube (ETT) placement confirmation post intubation could prove beneficial.

    Confirming ETT placement and direct visualisation of oesophagal lumen can be done using a linear ultrasound probe.6 In cases of oesophageal intubation, tissue-air hyperechoic lines are visualised in both trachea and oesophagus, referred to as ‘double-track sign’.State of hypercoagulability and myocardial dysfunction ventolin pi exist in patients with asthma treatment, hence increasing the likelihood of myocardial infarction or pulmonary thromboembolism as aetiologies of cardiac arrest.7 Regional wall motion abnormality, dilated right atrium or right ventricle, plethoric inferior vena cava are easily identified by goal-directed echocardiography. Pneumothorax has been reported in patients with asthma treatment, and ultrasound can identify absence of lung sliding, helping in quick needle thoracocentesis in arrest and peri-arrest cases. Few cases of cardiac tamponade owing to myopericarditis have also been reported and bedside ultrasound can help diagnose and perform pericardiocentesis in such patients.Literature suggests that the chances of Return Of Spontaneous Circulation (ROSC) and survival to hospital admission at 24 hours is better in patients with baseline cardiac activity rather than no baseline cardiac activity.

    In patients with no baseline cardiac activity on arrival, one can withhold ventolin pi CPR, thereby protecting the HCP in this resource-intensive, aerosol-generating futile resuscitative effort.8 Asystole could be the disguised entity of fine ventricular fibrillation, which can be confirmed by fibrillatory cardiac activity on transthoracic echocardiography and can be defibrillated, thereby increasing the chances of earlier ROSC.9POCUS-INTEGRATED CPR. THE PROPOSED ALGORITHMCPR is a chaotic scenario, and to prevent added chaos, there is a need for a well-trained ultrasound performer placed in an appropriate area (figure 1). Intubating room needs to consist of minimal necessary number of HCPs, and all of them should be equipped with full PPE.

    Ultrasound device could be a potential fomite facilitating cross-transmission and requires adequate protection of machine and its components with a transparent cover, ventolin pi sheet or bag. When unavailable, low-level disinfectant solution should be used between each patient.Proposed algorithm for integration of POCUS during CPR in patients with asthma treatment with team dynamics. The illustration ventolin pi is original work of the authors Dr Brunda RL and colleagues.

    CPR, cardiopulmonary resuscitation. HCP, healthcare professional. POCUS, point-of-care ultrasound ventolin pi.

    PPE, personal protective equipment. RA, right atrium. RV, right ventricle ventolin pi.

    VF, ventricular fibrillation. USG, ultrasonography." data-icon-position data-hide-link-title="0">Figure 1 Proposed algorithm for integration of POCUS during CPR in patients with asthma treatment with team dynamics. The illustration is original work of ventolin pi the authors Dr Brunda RL and colleagues.

    CPR, cardiopulmonary resuscitation. HCP, healthcare professional ventolin pi. POCUS, point-of-care ultrasound.

    PPE, personal protective equipment. RA, right ventolin pi atrium. RV, right ventricle.

    VF, ventricular fibrillation. USG, ultrasonography.When a patient experiences cardiac ventolin pi arrest, there is a need for HCPs with full PPE to check pulse and begin CPR as per standard guidelines. After 2 min of CPR, if there is no ROSC, during the 10 second pause for rhythm assessment, a trained HCP can perform POCUS in a stepwise manner.

    Each step needs to be performed individually during 10 second pause without prolonging delay between chest compressions and compromising ventolin pi the quality of CPR. Any treatable aetiology identified during the algorithm requires immediate intervention.Step 1. Assess cardiac activity—Sub-xiphoid view can be procured and cardiac activity assessed.

    If absent, consider termination of efforts, and if present, ventolin pi resuscitative efforts can be continued.After repeating 2 min cycle of CPR, if there has been no ROSC, consider hypoxic aetiology as the cause of arrest in patients with asthma treatment and intubate without delay. Withholding chest compressions during intubation is recommended.3Step 2. Assess ETT placement—At the level of thyroid gland, above the suprasternal notch, place ultrasound probe transversely and visualise the oesophagus.10 If the posterior wall of oesophagus is obscured by a dark acoustic shadow or if there is ‘double-track’ sign, consider failed endotracheal intubation and perform immediate re-intubation.Step 3.

    Assess lung for ventolin pi pneumothorax—Assess lung sliding, and if absent look for ‘stratosphere sign’ in M-mode of ultrasound.10 If detected, perform immediate needle thoracocentesis.Step 4. Assess for Cardiac etiology of arrest—Obtain sub-xiphoid window preferably, and look for the presence of cardiac tamponade, chamber dilatation or collapse, regional wall motion abnormality and cardiac contractility.Availability of trained personnel and smaller portable ultrasound devices makes its use during cardiac arrest plausible.CPR with the help of POCUS could thus prove to improve chances of ROSC and also reduced transmission to HCP by early identification, treatment of reversible causes and avoidance of prolonged efforts. Sono-CPR appears to be more HCP-friendly than prolonged blind CPR and necessitates its utility in the era of asthma treatment addressing performer safety as well as patient safety..

    Former Editor-in-Chief of the Postgraduate Medical Journal Dr Barry Ian Hoffbrand died suddenly on April 24, 2020 at the age of 86.A prominent member of a generation of very bright young doctors at University College Hospital (UCH) in London who went on to distinguished careers, he was much admired for his keen intellect, clinical perception and skills, gentle good http://knittedmilk.co.uk/categories/news/nigel-farage-v-james-obrien-live-on-lbc/ humour and kindly ventolin and atrovent together nature, combined with a wonderfully sharp intelligence. Professor Dame Jane Dacre remembered him as ‘a kind, witty, clever man, and a great physician’.He was born in Bradford, West Yorkshire, to Philip Hoffbrand, a bespoke tailor, and Minnie (née Freedman), both from Jewish families from Eastern Europe. After Bradford Grammar School, he went up to read medicine from 1952 to 1956 at The Queen’s College, Oxford, where he was a keen member of the college cricket ventolin and atrovent together team—the Quondams. He was pleased to feature in the 1950s on the silver Quondams Cup.

    Clinical training on a Goldsmid scholarship followed from 1956 to 1958 at UCH Medical School, London, where he was awarded prizes in clinical pathology and haematology. His postgraduate ventolin and atrovent together medical training was mainly at UCH, where he was house physician to Max (later Lord) Rosenheim, after an initial 6 months at St Luke’s Hospital, Bradford. He also spent a year as senior research fellow from 1967 to 1968 at the Cardiovascular Research Institute, at the University of California Medical Center in San Francisco. Barry’s research on cardiovascular physiology lead to a DM in 1971 from Oxford University.Barry was appointed in 1970 as a consultant physician at the Whittington Hospital and honorary senior clinical lecturer at UCH Medical School, with interests in general and …INTRODUCTIONAs cardiac arrest occurs in around 20% of the patients with severe asthma treatment, a large number of them will require immediate resuscitative efforts.1 Cardiopulmonary resuscitation (CPR) in asthma treatment ventolin has become a source of speculation and debate worldwide.

    Healthcare professionals (HCPs) resuscitating this subset of patients are subject to fears and enormous mental stress pertaining to risk of transmission, breach in personal protective equipment (PPE), unsure effectiveness of PPE and nevertheless bleak positive outcomes in ventolin and atrovent together patients despite best resuscitative measures.2 CPR, which is conventionally deemed to be life-saving for patients, appears as an aerosol-generating procedure risking lives of HCPs caring for patients with asthma treatment. Protected code blue algorithm has been formulated to address both performer and patient safety.3POCUS-INTEGRATED CPR. WHY THE NEED ventolin and atrovent together IN asthma treatment?. Danilo Buonsenso and colleagues have described asthma treatment era as demanding less stethoscope and more ultrasound usage in clinical practice.4 PPE is now an essential measure for HCP protection, and goggles used as a part of PPE are associated with fogging and poor visibility.

    This coupled with the inability to confirm endotracheal tube position with stethoscope due to poor accessibility in PPE, increases the risk of oesophageal intubation, re-intubation attempts, aerosol generation and thus HCP exposure. Bedside ultrasound could act as visual stethoscope in ventolin and atrovent together the described scenario. Sono-CPR in asthma treatment can help intervene quickly in treatable cases and reduce the time spent by HCP in futile resuscitative efforts. Reduced time spent equates to reduced duration of aerosol exposure and thus reduced risk of transmission.

    Various algorithms are described for sono-cardiopulmonary resuscitation (sono-CPR) during cardiac arrest, but none are discussed to address patients with asthma treatment.5 ventolin and atrovent together It would hence be wise to integrate bedside point-of-care ultrasound (POCUS) in the code blue algorithm.HOW THE BEDSIDE TOOL HELPS?. Hypoxemia and respiratory failure attribute over 80% aetiology of cardiac arrest in patients with asthma treatment.1 Prioritising oxygenation and ventilation using definitive airway and use of high-efficiency particulate air filters reduces airborne transmission, thereby making early intubation the dictum of resuscitation.3 Considering poor visualisation due to fogging with the goggles and face shield, inability to use stethoscope and lack of availability of end-tidal CO2 (EtCO2) in resource constraint settings, ultrasound-guided real-time intubation by trained HCP or endotracheal tube (ETT) placement confirmation post intubation could prove beneficial. Confirming ETT placement and direct visualisation of oesophagal lumen can be done using a linear ultrasound probe.6 In cases of oesophageal intubation, tissue-air hyperechoic lines are visualised in both trachea and oesophagus, referred to as ‘double-track sign’.State of hypercoagulability and myocardial dysfunction exist in patients with asthma treatment, hence increasing the likelihood of myocardial infarction or pulmonary thromboembolism as aetiologies of cardiac arrest.7 Regional wall motion abnormality, dilated right atrium or right ventricle, plethoric inferior vena cava are easily identified by ventolin and atrovent together goal-directed echocardiography. Pneumothorax has been reported in patients with asthma treatment, and ultrasound can identify absence of lung sliding, helping in quick needle thoracocentesis in arrest and peri-arrest cases.

    Few cases of cardiac tamponade owing to myopericarditis have also been reported and bedside ultrasound can help diagnose and perform pericardiocentesis in such patients.Literature suggests that the chances of Return Of Spontaneous Circulation (ROSC) and survival to hospital admission at 24 hours is better in patients with baseline cardiac activity rather than no baseline cardiac activity. In patients with no baseline cardiac activity on arrival, one can withhold CPR, thereby protecting the HCP in this resource-intensive, aerosol-generating futile resuscitative effort.8 Asystole could be the disguised entity of fine ventricular fibrillation, which can be confirmed by fibrillatory cardiac activity on transthoracic echocardiography and can ventolin and atrovent together be defibrillated, thereby increasing the chances of earlier ROSC.9POCUS-INTEGRATED CPR. THE PROPOSED ALGORITHMCPR is a chaotic scenario, and to prevent added chaos, there is a need for a well-trained ultrasound performer placed in an appropriate area (figure 1). Intubating room needs to consist of minimal necessary number of HCPs, and all of them should be equipped with full PPE.

    Ultrasound device could be a potential fomite facilitating cross-transmission and requires ventolin and atrovent together adequate protection of machine and its components with a transparent cover, sheet or bag. When unavailable, low-level disinfectant solution should be used between each patient.Proposed algorithm for integration of POCUS during CPR in patients with asthma treatment with team dynamics. The illustration is original work ventolin and atrovent together of the authors Dr Brunda RL and colleagues. CPR, cardiopulmonary resuscitation.

    HCP, healthcare professional. POCUS, point-of-care ventolin and atrovent together ultrasound. PPE, personal protective equipment. RA, right atrium.

    RV, right ventricle ventolin and atrovent together. VF, ventricular fibrillation. USG, ultrasonography." data-icon-position data-hide-link-title="0">Figure 1 Proposed algorithm for integration of POCUS during CPR in patients with asthma treatment with team dynamics. The illustration is ventolin and atrovent together original work of the authors Dr Brunda RL and colleagues.

    CPR, cardiopulmonary resuscitation. HCP, healthcare ventolin and atrovent together professional. POCUS, point-of-care ultrasound. PPE, personal protective equipment.

    RA, right atrium ventolin and atrovent together. RV, right ventricle. VF, ventricular fibrillation. USG, ultrasonography.When a patient experiences cardiac arrest, there is a need for HCPs with full PPE to check pulse and begin CPR ventolin and atrovent together as per standard guidelines.

    After 2 min of CPR, if there is no ROSC, during the 10 second pause for rhythm assessment, a trained HCP can perform POCUS in a stepwise manner. Each step needs to be performed individually during 10 second pause without prolonging delay between chest compressions and compromising the quality of ventolin and atrovent together CPR. Any treatable aetiology identified during the algorithm requires immediate intervention.Step 1. Assess cardiac activity—Sub-xiphoid view can be procured and cardiac activity assessed.

    If absent, consider termination of efforts, and if present, resuscitative efforts can be continued.After repeating 2 min cycle of CPR, if there ventolin and atrovent together has been no ROSC, consider hypoxic aetiology as the cause of arrest in patients with asthma treatment and intubate without delay. Withholding chest compressions during intubation is recommended.3Step 2. Assess ETT placement—At the level of thyroid gland, above the suprasternal notch, place ultrasound probe transversely and visualise the oesophagus.10 If the posterior wall of oesophagus is obscured by a dark acoustic shadow or if there is ‘double-track’ sign, consider failed endotracheal intubation and perform immediate re-intubation.Step 3. Assess lung for pneumothorax—Assess lung sliding, and if absent look for ‘stratosphere ventolin and atrovent together sign’ in M-mode of ultrasound.10 If detected, perform immediate needle thoracocentesis.Step 4.

    Assess for Cardiac etiology of arrest—Obtain sub-xiphoid window preferably, and look for the presence of cardiac tamponade, chamber dilatation or collapse, regional wall motion abnormality and cardiac contractility.Availability of trained personnel and smaller portable ultrasound devices makes its use during cardiac arrest plausible.CPR with the help of POCUS could thus prove to improve chances of ROSC and also reduced transmission to HCP by early identification, treatment of reversible causes and avoidance of prolonged efforts. Sono-CPR appears to be more HCP-friendly than prolonged blind CPR and necessitates its utility in the era of asthma treatment addressing performer safety as well as patient safety..

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