Literature DB >> 34391505

Hospital-acquired SARS-CoV-2 infection in the UK's first COVID-19 pandemic wave.

Jonathan M Read1, Chris A Green2, Ewen M Harrison3, Annemarie B Docherty3, Sebastian Funk4, Janet Harrison5, Michelle Girvan5, Hayley E Hardwick6, Lance Turtle6, Jake Dunning7, Jonathan S Nguyen-Van-Tam8, Peter Jm Openshaw9, J Kenneth Baillie10, Malcolm G Semple11.   

Abstract

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Year:  2021        PMID: 34391505      PMCID: PMC8360701          DOI: 10.1016/S0140-6736(21)01786-4

Source DB:  PubMed          Journal:  Lancet        ISSN: 0140-6736            Impact factor:   79.321


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Prevention of hospital-acquired infections is a critical aspect of clinical management of COVID-19 as hospital-acquired infections have been a common feature of previous novel coronavirus outbreaks. The number of COVID-19 patients in UK hospitals reached high levels during the first pandemic wave of 2020, and higher levels still in the subsequent winter wave. We assessed the magnitude of nosocomial COVID-19 in acute and long-term National Health Service (NHS) hospital facilities in the UK during the first pandmic wave. We examined records of COVID-19 patients in UK hospitals enrolled in the International Severe Acute Respiratory and emerging Infections Consortium (ISARIC) WHO Clinical Characterisation Protocol UK (CCP-UK) study, with symptom onset before Aug 1, 2020.2, 3 We identified patients as having hospital-acquired infections using a combination of their admission date and symptom onset date, and estimates of their infection date based on the known incubation period distribution of SARS-CoV-2. To incorporate uncertainty in individual patient's incubation periods, we imputed infection dates for patients and identified those admitted before infection as having hospital-acquired infections. Multiple imputation was used to generate estimates and CIs (appendix). We estimate that 11·3% (95% CI 11·1–11·6) of patients with COVID-19 in 314 UK hospitals became infected after hospital admission. This proportion increased to at least 15·8% (17·6%; 15·8–19·6) of patients with COVID-19 by the middle of May, 2020, long after the peak of admissions. Using an extremely conservative threshold of symptom onset at least 14 days after admission to identify hospital-acquired infections, we estimate that 6·8% (95% CI 6·7–7·0) of all patients with COVID-19 had nosocomial infections, with a peak of 8·2% (7·0–9·6) of patients having nosocomial infections in mid-May. There was marked heterogeneity in hospital-acquired infection proportion between hospital trusts and by the nature of care they provide (figure ). Hospitals providing acute and general care had lower hospital-acquired infection proportions (9·7%; 95% CI 9·4–9·9) than residential community care hospitals (61·9%; 56·4–68·0) and mental health hospitals (67·5%; 60·1–75·8), reflecting outbreaks seen in care homes. The reasons for the variation between hospitals providing the same type of care require urgent investigation to identify and promote best infection control practice for future treatment of COVID-19 patients.
Figure

Estimated proportion of COVID-19 patients with hospital-acquired infection based on 72 157 patients with complete admission and symptom onset dates (A) and funnel plot of trust-level proportion of hospital-acquired infections, stratified by care type (B)

Estimated proportion of COVID-19 patients with hospital-acquired infection based on 72 157 patients with complete admission and symptom onset dates (A) and funnel plot of trust-level proportion of hospital-acquired infections, stratified by care type (B) As ISARIC WHO CCP-UK data are a subset of all admissions (approximately two-thirds sample in the period of observation), we estimated the number of hospital-acquired infections by hospital trust, accounting for the participation rate of each hospital trust in comparison to NHS Digital Secondary Uses Service data. We estimated that of 82 624 patients admitted before Aug 1, 2020, 5699–11 862 patients were infected during their hospital stay. Underestimation is probable since ISARIC4C data cannot identify patients infected during admission but discharged before manifesting symptoms, or patients infected during another health-care visit before admission. Limited access to testing early in the outbreak, false negative results for nasopharyngeal swabs in early stages of disease, and presentation with gastrointestinal symptoms may have led to some patients with COVID-19 being misclassified and placed in non-COVID-19 areas with different infection prevention control processes. Enteric features, and the ability of SARS-CoV-2 to persist on surfaces, raise the possibility of faecal-oral transmission in care settings under severe pressure, although the role of this transmission route is uncertain. As SARS-CoV-2 is likely to persist as an endemic or seasonal virus in coming years, it is critical to use the lessons learned so far in the pandemic to minimise the burden of hospital-acquired infections, and to consider new approaches to reduce the burden further. Surveillance afforded by this study has helped to rapidly identify changes in hospital-acquired infection incidence in different health-care settings. Unlike at the beginning of the pandemic, there are opportunities to pre-empt hospital-acquired infections and break chains of transmission through regular patient, resident, and staff testing including point-of-care diagnostics, as recently introduced for NHS staff, coupled with robust hospital infection prevention and control policies that include staff vaccination, environmental disinfection, and appropriate isolation, all supported by sentinel monitoring systems.
  24 in total

1.  What does family involvement in care provision look like across hospital settings in Bangladesh, Indonesia, and South Korea?

Authors:  J Y Park; J F Pardosi; M S Islam; T Respati; K Chowdhury; H Seale
Journal:  BMC Health Serv Res       Date:  2022-07-16       Impact factor: 2.908

2.  Characterization of healthcare-associated infections with the severe acute respiratory coronavirus virus 2 (SARS-CoV-2) omicron variant at a tertiary healthcare center.

Authors:  Thomas Holowka; Lauren M DiBiase; Emily Sickbert-Bennett; Lisa J Teal; David J Weber
Journal:  Infect Control Hosp Epidemiol       Date:  2022-05-26       Impact factor: 6.520

Review 3.  A position statement and practical guide to the use of particulate filtering facepiece respirators (N95, FFP2, or equivalent) for South African health workers exposed to respiratory pathogens including Mycobacterium tuberculosis and SARS-CoV-2.

Authors:  K Dheda; S Charalambous; A S Karat; A von Delft; U G Lalloo; R van Zyl Smit; R Perumal; B W Allwood; A Esmail; M L Wong; A G Duse; G Richards; C Feldman; M Mer; K Nyamande; U Lalla; C F N Koegelenberg; F Venter; H Dawood; S Adams; N A B Ntusi; H-M van der Westhuizen; M-Y S Moosa; N A Martinson; H Moultrie; J Nel; H Hausler; W Preiser; L Lasersohn; H J Zar; G J Churchyard
Journal:  Afr J Thorac Crit Care Med       Date:  2021-10-22

4.  Healthcare-acquired clusters of COVID-19 across multiple wards in a Scottish health board.

Authors:  S J Dancer; K Cormack; M Loh; C Coulombe; L Thomas; S J Pravinkumar; K Kasengele; M-F King; J Keaney
Journal:  J Hosp Infect       Date:  2021-12-01       Impact factor: 3.926

Review 5.  Hospital acquired COVID-19 infections amongst patients before the rollout of COVID-19 vaccinations, a scoping review.

Authors:  Nobubelo K Ngandu; Tshiamo M Mmotsa; Reshmi Dassaye; Alice Thabetha; Willem Odendaal; Natasha Langdown; Duduzile Ndwandwe
Journal:  BMC Infect Dis       Date:  2022-02-10       Impact factor: 3.090

6.  Nationwide surveillance system to evaluate hospital-acquired COVID-19 in Brazilian hospitals.

Authors:  M Machado de Miranda Costa; A R Guedes; M D S P Nogueira; L S C Oliveira; L de Souza Barros; M R S Goncalves; A A Carvalho; H L C Amaral de Moura; A S Levin; M S Oliveira
Journal:  J Hosp Infect       Date:  2022-02-14       Impact factor: 8.944

7.  The contribution of hospital-acquired infections to the COVID-19 epidemic in England in the first half of 2020.

Authors:  Gwenan Knight; Thi Mui; James Stimson; Sebastian Funk; Yalda Jafari; Diane Pople; Stephanie Evans; Mo Yin; Colin S Brown; Alex Bhattacharya; Russell Hope; Malcolm G Semple; Jonathan M Read; Ben S Cooper; Julie V Robotham
Journal:  Res Sq       Date:  2022-03-03

8.  A Systematic Review and Meta-Analysis of Inpatient Mortality Associated With Nosocomial and Community COVID-19 Exposes the Vulnerability of Immunosuppressed Adults.

Authors:  Mark J Ponsford; Tom J C Ward; Simon M Stoneham; Clare M Dallimore; Davina Sham; Khalid Osman; Simon M Barry; Stephen Jolles; Ian R Humphreys; Daniel Farewell
Journal:  Front Immunol       Date:  2021-10-06       Impact factor: 7.561

9.  Monitors to improve indoor air carbon dioxide concentrations in the hospital: A randomized crossover trial.

Authors:  Michaël R Laurent; Johan Frans
Journal:  Sci Total Environ       Date:  2021-10-30       Impact factor: 7.963

10.  Real-world evaluation of rapid and laboratory-free COVID-19 triage for emergency care: external validation and pilot deployment of artificial intelligence driven screening.

Authors:  Andrew A S Soltan; Jenny Yang; Ravi Pattanshetty; Alex Novak; Yang Yang; Omid Rohanian; Sally Beer; Marina A Soltan; David R Thickett; Rory Fairhead; Tingting Zhu; David W Eyre; David A Clifton
Journal:  Lancet Digit Health       Date:  2022-03-09
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