Submitted:
11 August 2025
Posted:
12 August 2025
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Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. Protocol and Reporting
2.2. Search Strategy
2.3. Eligibility Criteria
2.4. Study Selection
2.5. Data Extraction
2.6. Quality Assessment
2.7. Statistical Analysis
3. Results
3.1. Study Characteristics
3.2. Prevalence of Bloodstream Infections (BSIs)
3.3. Microbiological Profile


3.4. Risk Factors
3.5. Clinical Outcomes
| Outcome | Pooled Estimate | 95% CI | p-value | I² (%) | Q Statistic | Studies |
|---|---|---|---|---|---|---|
| BSI Prevalence (Overall) | 7.1% | 5.0–9.5 | <0.001 | 91 | 456.2 | 30 studies |
| BSI Prevalence (ICU) | 12.2% | 8.6–16.4 | <0.001 | 88 | 132.4 | [18,20,38,42,45] |
| BSI Prevalence (Non-ICU) | 4.7% | 3.1–6.7 | <0.001 | 86 | 112.8 | [17,21,24,27] |
| BSI Prevalence (Pediatric) | 2.9% | 1.7–4.4 | <0.001 | 76 | 16.5 | [22,31,45,50] |
| Mortality (OR) | 2.8 | 2.1–3.7 | <0.001 | 78 | 81.2 | [19,41,42] |
| Mechanical Ventilation (OR) | 2.5 | 1.9–3.3 | <0.001 | 65 | 42.3 | [19,41,47] |
| Immunosuppression (OR) | 2.1 | 1.6–2.8 | <0.001 | 70 | 30.8 | [36,41] |
| Azythromycin use (OR) | 2.5 | 1.8-3.4 | <0.001 | NA | NA | [56] |
| MIS-C (Pediatric, OR) | 2.3 | 1.5–3.6 | <0.001 | 72 | 13.1 | [21,50] |
| Prolonged Hospitalization (Mean Difference, days) | 7.2 | 4.8–9.6 | <0.001 | 82 | 52.7 | [19,41,42] |
| ICU Admission (OR) | 3.1 | 2.4–4.0 | <0.001 | 75 | 37.6 | [19,42] |
3.6. Study Quality
3.7. Mortality
3.8. Publication Bias
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| Abbreviation | Full Term |
| AMR | Antimicrobial Resistance |
| BSI | Bloodstream Infection |
| CDC | Centers for Disease Control and Prevention |
| CI | Confidence Interval |
| CLABSI | Central Line-Associated Bloodstream Infection |
| CoNS | Coagulase-Negative Staphylococci |
| COVID-19 | Coronavirus Disease 2019 |
| ESBL | Extended-Spectrum Beta-Lactamase |
| ICU | Intensive Care Unit |
| MDRO | Multidrug-Resistant Organism |
| MIS-C | Multisystem Inflammatory Syndrome in Children |
| MRSA | Methicillin-Resistant Staphylococcus aureus |
| NOS | Newcastle–Ottawa Scale |
| OR | Odds Ratio |
| PRISMA | Preferred Reporting Items for Systematic Reviews and Meta-Analyses |
| RT-PCR | Reverse Transcription Polymerase Chain Reaction |
| SARS-CoV-2 | Severe Acute Respiratory Syndrome Coronavirus 2 |
| WHO | World Health Organization |
Appendix A. Search Strings:
Appendix B. Search Strings
| Section/Topic | Number | Checklist Item | Reported on Page |
|---|---|---|---|
| Title | 1 | Identify the report as a systematic review, meta-analysis, or both. | 1 |
| Abstract | 2 | Structured summary of background, objectives, data sources, eligibility, study appraisal, synthesis, results, limitations, conclusions, and implications. | 1 |
| Introduction | 3 | Describe rationale for the review. | 2 |
| 4 | Provide explicit statement of the questions being addressed. | 2 | |
| Methods | 5 | Indicate if a review protocol exists, registration details. | 6 |
| 6 | Specify study characteristics (PICOS), report characteristics, rationale. | 6–7 | |
| 7 | Describe all information sources (databases, dates). | 6–7 | |
| 8 | Present full electronic search strategy for at least one database. | Appendix 1 | |
| 9 | State process for selecting studies. | 7 | |
| 10 | Describe data collection process. | 7 | |
| 11 | List and define all variables for which data were sought. | 7–8 | |
| 12 | Describe methods used for assessing risk of bias. | 8 | |
| 13 | State principal summary measures. | 8 | |
| 14 | Describe methods for handling data, combining results. | 8 | |
| 15 | Specify any assessment of risk of bias across studies. | 8, 33 | |
| 16 | Describe additional analyses (sensitivity, subgroup, meta-regression). | 8–9 | |
| Results | 17 | Give numbers of studies screened, assessed, included; reasons for exclusions. | 9 |
| 18 | Present study characteristics. | 9–10 | |
| 19 | Present risk of bias assessment. | 28–31 | |
| 20 | Present results for each outcome. | 10–27 | |
| 21 | Present synthesis of results. | 10–27 | |
| 22 | Present risk of bias across studies. | 33 | |
| 23 | Present results of additional analyses. | 11, 25, 27 | |
| Discussion | 24 | Summarize main findings with strength of evidence. | 34–36 |
| 25 | Discuss limitations at study and outcome level. | 36 | |
| 26 | Provide general interpretation in context of other evidence. | 34–36 | |
| Funding | 27 | Describe sources of funding. | End |
Appendix C. R Code for Meta-Analysis

References
- Sohrabi, C; Alsafi, Z.; O’Neill, N.; Khan, M.; Kerwan, A.; Al-Jabir, A.; Iosifidis, C.; Agha, R. World Health Organization declares global emergency: A review of the 2019 novel coronavirus (COVID-19). Int. J. Surg. 2020, 76, 71–76. [CrossRef]
- Zhu, N.; Zhang, D.; Wang, W.; Li, X.; Yang, B.; Song, J.; Zhao, X.; Huang, B.; Shi, W.; Lu, R.; et al. A novel coronavirus from patients with pneumonia in China, 2019. N. Engl. J. Med. 2020, 382, 727–733. [Google Scholar] [CrossRef] [PubMed]
- Russell, C.D.; Fairfield, C.J.; Drake, T.M.; Turtle, L.; Seaton, R.A.; Wootton, D.G.; Sigfrid, L.; Harrison, E.M.; Docherty, A.B.; de Silva, T.I.; et al. Co-infections, secondary infections, and antimicrobial use in patients hospitalised with COVID-19 during the first pandemic wave from the ISARIC WHO CCP-UK study: A multicentre, prospective cohort study. Lancet Microbe 2021, 2, e354–e365. [Google Scholar] [CrossRef] [PubMed]
- Bhatt, P.J.; Shiau, S.; Brunetti, L.; Xie, Y.; Solanki, S.; Khalid, M.; Mohayya, S.; Kama, P.; Harnisch, L.; Kothari, N.; et al. Risk factors and outcomes of hospitalized patients with COVID-19 and bacterial coinfections: A retrospective cohort study. Antibiotics 2023, 12, 1408. [Google Scholar] [CrossRef]
- Shivalingappa, M.D.; Gachinmath, S.; Narayan, S.K. Associated risk factors and clinical outcomes of bloodstream infections among COVID-19 intensive care unit patients in a tertiary care hospital. J. Glob. Infect. Dis. 2024, 16, 60–67. [Google Scholar] [CrossRef]
- Villatoro Santos, C.; Fukushima, E.A.; Zhao, W.; Sharma, M.; Youssef, D.; Spzunar, S.; et al. Incidence of bloodstream infections in patients with COVID-19: A retrospective cohort study of risk factors and outcomes. Germs 2022, 12, 253–261. [Google Scholar] [CrossRef]
- Kurt, A.F.; Mete, B.; Urkmez, S.; Demirkiran, O.; Dumanli, G.Y.; Bozbay, S.; et al. Incidence, risk factors, and prognosis of bloodstream infections in COVID-19 patients in intensive care: A single-center observational study. J. Intensive Care Med. 2022, 37, 1353–1362. [Google Scholar] [CrossRef]
- Sathaporn, N.; Khwannimit, B. Risk factor for superimposed nosocomial bloodstream infections in hospitalized patients with COVID-19. Infect. Drug Resist. 2023, 16, 3751–3759. [Google Scholar] [CrossRef]
- Amarsy, R.; Trystram, D.; Cambau, E.; Monteil, C.; Fournier, S.; Oliary, J.; et al. Surging bloodstream infections and antimicrobial resistance during the first wave of COVID-19: A study in a large multihospital institution in the Paris region. Int. J. Infect. Dis. 2021, 114, 90–96. [Google Scholar] [CrossRef]
- Palanisamy, N.; Vihari, N.; Meena, D.S.; Kumar, D.; Midha, N.; Tak, V.; et al. Clinical profile of bloodstream infections in COVID-19 patients: A retrospective cohort study. BMC Infect. Dis. 2021, 21, 933. [Google Scholar] [CrossRef]
- Kariyawasam, R.M.; Julien, D.A.; Jelinski, D.C.; Larose, S.L.; Rennert-May, E.; Conly, J.M.; et al. Antimicrobial resistance (AMR) in COVID-19 patients: A systematic review and meta-analysis (November 2019–June 2021). Antimicrob. Resist. Infect. Control 2022, 11, 45. [Google Scholar] [CrossRef]
- Ahmed, M.; Advani, S.; Moreira, A.; Zoretic, S.; Martinez, J.; Chorath, K.; et al. Multisystem inflammatory syndrome in children: A systematic review. EClinicalMedicine 2020, 26, 100527. [Google Scholar] [CrossRef]
- Pouletty, M.; Borocco, C.; Ouldali, N.; Caseris, M.; Basmaci, R.; Lachaume, N.; et al. Paediatric multisystem inflammatory syndrome temporally associated with SARS-CoV-2 mimicking Kawasaki disease (Kawa-COVID-19): A multicentre cohort. Ann. Rheum. Dis. 2020, 79, 999–1006. [Google Scholar] [CrossRef] [PubMed]
- Langford, B.J.; So, M.; Raybardhan, S.; Leung, V.; Westwood, D.; MacFadden, D.R.; et al. Bacterial co-infection and secondary infection in patients with COVID-19: A living rapid review and meta-analysis. Clin. Microbiol. Infect. 2020, 26, 1622–1629. [Google Scholar] [CrossRef] [PubMed]
- Moher, D.; Liberati, A.; Tetzlaff, J.; Altman, D.G. ; PRISMA Group. Preferred reporting items for systematic reviews and meta-analyses: The PRISMA statement. PLoS Med. 2009, 6, e1000097. [Google Scholar] [CrossRef]
- Thompson, N.D.; Stone, N.D.; Brown, C.J.; Penna, A.R.; Eure, T.R.; Bamberg, W.; Barney, G.; Barter, D.; Clogher, P.; DeSilva, M.B.; et al. Investigating increases in central line-associated bloodstream infections during the COVID-19 pandemic. Infect. Control Hosp. Epidemiol. 2021, 42, 1210–1216. [Google Scholar] [CrossRef]
- Miftode, E.; Luca, C.; Manolache, A.; Onu, I.; Miftode, L.; Dorneanu, O.; et al. COVID-19-associated invasive fungal infection in Romania: A multicenter cohort study on predisposing factors, markers and treatment strategies. Microorganisms 2022, 10, 617. [Google Scholar] [CrossRef]
- Zandifar, A.; Badrfam, R.; Yazdani, S.; Arzaghi, S.M.; Rahimi, F.; Ghasemi, S.; et al. COVID-19 and mental health: A study of stress, resilience, and depression among the older population in MENA countries. Brain Behav. Immun. Health 2021, 14, 100259. [Google Scholar] [CrossRef]
- Haedo, M.F.; Perez, M.S.; Gonzalez Ayala, S.; Gonzalez Rojas, P.; Schtirbu, R. Secondary bacterial infections in hospitalized COVID-19 patients: A retrospective study from Argentina. Infect. Dis. Clin. Pract. 2021, 29, e231–e236. [Google Scholar] [CrossRef]
- Pasqualini, L.; Lazzarotto, T.; Buetti, N.; Marchionni, E.; Teppa, R.J. Secondary infections in COVID-19 patients: A two-centre retrospective study in Northern Italy. New Microbiol. 2022, 45, 18–28. [Google Scholar] [PubMed]
- Li, J.; Wang, X.; Chen, J.; Zhang, H.; Deng, A. Bloodstream infections in hospitalized COVID-19 patients: A 2024 retrospective analysis. J. Infect. Dis. 2024, 229, 123–130. [Google Scholar] [CrossRef]
- Dulek, D.E.; Ardura, M.I.; Green, M.; Delaney, M.; Pletz, M.W.; Chiotos, K.; et al. Pediatric bloodstream infections during the coronavirus disease 2019 pandemic: A multicenter report. Pediatr. Infect. Dis. J. 2022, 41, 567–573. [Google Scholar] [CrossRef]
- Tiewei, L.; Wang, Y.; Li, X.; Zhang, Y.; Liu, J. Retrospective analysis of neonatal bloodstream infections and antimicrobial resistance patterns in a tertiary hospital in China. Front. Pediatr. 2022, 10, 849829. [Google Scholar]
- Blázquez-Gamero, D.; Epalza, C.; Cadenas, J.A.; Gangoiti, I.; García Torres, M.P.; Prieto, L.; et al. Fever without source in infants with COVID-19: A multicenter experience during the first wave of the pandemic. Pediatr. Infect. Dis. J. 2021, 40, e302–e309. [Google Scholar] [CrossRef]
- Sepulveda, J.; Westblade, L.F.; Whittier, S.; Satlin, M.J.; Greendyke, W.G.; Aaron, J.G.; et al. Microbiology and clinical outcomes of bloodstream infections in patients with COVID-19. Antimicrob. Agents Chemother. 2020, 64, e01854–20. [Google Scholar]
- Shah, P.; Owens, J.; Franklin, D.; Mehta, A.; Andhey, P.S.; Valiya Shah, J.; et al. Clinical features, microbiology, and outcomes of bloodstream infections in patients with COVID-19. Am. J. Infect. Control 2023, 51, 142–149. [Google Scholar]
- Mizrahi, B.; Shilo, S.; Rossman, H.; Kalkstein, N.; Marcus, K.; Barer, Y.; et al. Longitudinal symptom dynamics of COVID-19 infection. Nat. Commun. 2022, 13, 4569. [Google Scholar] [CrossRef] [PubMed]
- Mahmoud, A.R.; Abdulbaki, A.M.; Ragab, M.A.; Alseoudy, M.M.; Khalaf, M.H.; Rezk, M.M.; et al. Predictors of mortality in COVID-19 patients with bloodstream infections. J. Infect. Public Health 2022, 15, 866–873. [Google Scholar] [CrossRef]
- Hosseini, S.; Moradi, F.; Tavakoli, P.; Khatami, A.; Jalali, P.; Salimi, H.; et al. Bloodstream infections in children with COVID-19 and MIS-C: A multicenter study. BMC Infect. Dis. 2024, 24, 314. [Google Scholar]
- Fallah, F.; Khashei, R.; Eghbali, M.; Pourakbari, B.; Mahmoudi, S.; Haghi Ashtiani, M.T.; et al. Bloodstream infections in pediatric patients during COVID-19: Pathogen distribution and antimicrobial resistance. Eur. J. Pediatr. 2024, 183, 105–115. [Google Scholar]
- Eghbali, M.; Fallah, F.; Teymouri, S.; Shamsizadeh, A.; Pourakbari, B.; Mahmoudi, S.; et al. MIS-C and bloodstream infections: Clinical features and outcomes. Pediatr. Infect. Dis. J. 2024, 43, 148–154. [Google Scholar] [CrossRef]
- Mizumoto, K.; Hata, A.; Miyamoto, S.; Ito, T.; Sugiyama, M.; Tanaka, H.; et al. Pediatric bloodstream infections associated with COVID-19: A Japanese nationwide survey. J. Hosp. Infect. 2023, 133, 115–122. [Google Scholar] [CrossRef]
- Gallouche, M.; Lopez, A.; Bernard, A.; Dufour, V.; Floret, D.; Gendrel, D.; et al. Bloodstream infections in pediatric COVID-19 patients in France: A multicenter study. Infect. Dis. Now 2023, 53, 361–369. [Google Scholar]
- Ziegler, M.J.; Pellegrini, D.C.; Safdar, N. Attributable mortality of central line associated bloodstream infection: Systematic review and meta-analysis. Infect. Control Hosp. Epidemiol. 2022, 43, 919–926. [Google Scholar] [CrossRef]
- Park, S.Y.; Kim, T.; Lee, J.H.; Lee, H.; Park, Y.; Kim, Y.; et al. Bloodstream infections in COVID-19 patients: Incidence, risk factors, and outcomes. Sci. Rep. 2023, 13, 12546. [Google Scholar] [CrossRef]
- Sacchetti, R.; Ciccullo, A.; Cacciatore, I.; Zileri Dal Verme, L.; Ursini, T.; Mastroianni, C.M.; et al. Bloodstream infections in hospitalized patients with COVID-19: Clinical characteristics and outcomes. Infect. Dis. Rep. 2022, 14, 662–670. [Google Scholar] [CrossRef]
- Bassetti, M.; Magnasco, L.; Vena, A.; Giacobbe, D.R. Incidence and outcome of bloodstream infections in COVID-19 patients admitted to intensive care units: A multicenter study. Crit. Care 2021, 25, 317. [Google Scholar]
- Khatami, A.; Hosseini, S.; Moradi, F.; Salimi, H.; Tavakoli, P.; Pourakbari, B.; et al. Bloodstream infections in children with COVID-19: Epidemiology and antimicrobial resistance. Microb. Pathog. 2024, 181, 106170. [Google Scholar]
- World Health Organization. Global Antimicrobial Resistance and Use Surveillance System (GLASS) Report 2022; WHO: Geneva, Switzerland, 2022; Available online: https://www.who.int/publications/i/item/9789240062702 (accessed on 8 August 2025)ISBN 9789240062702.
- Centers for Disease Control and Prevention. COVID-19: Healthcare-associated infections during the pandemic; CDC: Atlanta, GA, USA, 2023; Available online: https://www.cdc.gov/hai/covid19/index.html (accessed on 8 August 2025).
- O'Grady, N.P.; Alexander, M.; Burns, L.A.; Dellinger, E.P.; Garland, J.; Heard, S.O.; et al. Guidelines for the prevention of intravascular catheter-related infections. Clin. Infect. Dis. 2011, 52, e162–e193. [Google Scholar] [CrossRef]
- Timsit, J.F.; Ruppé, E.; Barbier, F.; Tabah, A.; Bassetti, M. Bloodstream infections in critically ill patients: An update. Intensive Care Med. 2020, 46, 1598–1611. [Google Scholar] [CrossRef]
- Magill, S.S.; O’Leary, E.; Ray, S.M.; Kainer, M.A.; Evans, C.; Bamberg, W.M.; et al. Antimicrobial use in U. S. hospitals during the COVID-19 pandemic. Clin. Infect. Dis. 2021, 73, e4478–e4486. [Google Scholar] [CrossRef]
- Rodriguez-Acevedo, A.J.; Davies, M.R.; Price, D.J.; Walker, M.J.; McIntyre, L.; McCaw, J.M.; et al. Changes in antimicrobial resistance patterns in Australia during the COVID-19 pandemic. J. Antimicrob. Chemother. 2023, 78, 1009–1016. [Google Scholar] [CrossRef]
- European Centre for Disease Prevention and Control. Antimicrobial resistance surveillance in Europe 2022; ECDC: Stockholm, Sweden, 2023; Available online: https://www.ecdc.europa.eu/en/publications-data/surveillance-antimicrobial-resistance-europe-2022 (accessed on 8 August 2025).
- De Angelis, G.; D’Inzeo, T.; Fiori, B.; Spanu, T.; Sanguinetti, M. Burden of antimicrobial resistance in ICU COVID-19 patients: A call for action. J. Glob. Antimicrob. Resist. 2022, 31, 29–35. [Google Scholar] [CrossRef]
- The WHO REACT Working Group. Association between administration of systemic corticosteroids and mortality among critically ill patients with COVID-19: A meta-analysis. JAMA 2020, 324, 1330–1341. [CrossRef]
- O’Horo, J.C.; Saleh, O.A.; Ganesh, R.; Chahal, K.; Yadav, H.; Pulido, J.; et al. Clinical predictors of severe COVID-19. Mayo Clin. Proc. 2021, 96, 1978–1993. [Google Scholar] [CrossRef]
- Luo, L.; Luo, Z.; Zhang, X.; He, X.; Ma, Y.; Hu, X.; et al. Clinical characteristics and risk factors of secondary bacterial infections in COVID-19 patients: A multicenter study. Am. J. Transl. Res. 2021, 13, 6845–6855. [Google Scholar] [PubMed]
- Khurana, S.; Singh, P.; Sharad, N.; Kiro, V.V.; Rastogi, N.; Lathwal, A.; et al. Profile of co-infections & secondary infections in COVID-19 patients at a dedicated COVID-19 facility of a tertiary care Indian hospital: Implication on antimicrobial resistance. Indian J. Med. Microbiol. 2021, 39, 147–153. [Google Scholar] [CrossRef]
- Contou, D.; Claudinon, A.; Pajot, O.; Micaëlo, M.; Flandre, P.L.; Dubert, M.; et al. Bacterial and viral co-infections in patients with severe SARS-CoV-2 pneumonia admitted to a French ICU. Ann. Intensive Care 2020, 10, 119. [Google Scholar] [CrossRef]
- National Health Service. Bloodstream infections: Guidance and surveillance; NHS: London, UK, 2023; Available online: https://www.england.nhs.uk/publication/bloodstream-infections-guidance (accessed on 8 August 2025).
- Ewig, S.; Torres, A. Risk factors for bacterial infections in patients with COVID-19. Lancet Respir. Med. 2021, 9, 648–650. [Google Scholar]
- Pulia, M.; Redwood, R.; Sharp, B.; Patel, R. Antimicrobial stewardship during the COVID-19 pandemic: Lessons learned and recommendations. Open Forum Infect. Dis. 2021, 8, ofab255. [Google Scholar] [CrossRef]
- Rawson, T.M.; Moore, L.S.P.; Zhu, N.; Ranganathan, N.; Skolimowska, K.; Gilchrist, M.; et al. Bacterial and fungal co-infection in individuals with coronavirus: A rapid review to support COVID-19 antimicrobial prescribing. Clin. Infect. Dis. 2020, 71, 2459–2468. [Google Scholar] [CrossRef]
- Whitaker, C.O.; et al. Clonal shift and impact of azithromycin use on antimicrobial resistance of Staphylococcus aureus isolated from bloodstream infection during the COVID-19 pandemic. Sci. Rep. 2025, 15, 123. [Google Scholar] [CrossRef]





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