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Pregled bibliografske jedinice broj: 920284

New prediction model for diagnosis of bacterial infection in febrile infants younger than 90 days


Vujević, Matea; Benzon, Benjamin; Markić, Joško
New prediction model for diagnosis of bacterial infection in febrile infants younger than 90 days // Turkish journal of pediatrics, 59 (2017), 3; 261-268 doi:10.24953/turkjped.2017.03.005 (međunarodna recenzija, članak, znanstveni)


CROSBI ID: 920284 Za ispravke kontaktirajte CROSBI podršku putem web obrasca

Naslov
New prediction model for diagnosis of bacterial infection in febrile infants younger than 90 days

Autori
Vujević, Matea ; Benzon, Benjamin ; Markić, Joško

Izvornik
Turkish journal of pediatrics (0041-4301) 59 (2017), 3; 261-268

Vrsta, podvrsta i kategorija rada
Radovi u časopisima, članak, znanstveni

Ključne riječi
C-reactive protein ; biomarkers ; fever ; infant ; bacterial infection

Sažetak
Due to non-specific clinical presentation in febrile infants, extensive laboratory testing is often carried out to distinguish simple viral disease from serious bacterial infection (SBI). Objective of this study was to compare efficacy of different biomarkers in early diagnosis of SBI in infants <90 days old. Also, we developed prediction models with whom it will be possible to diagnose SBI with more accuracy than with any biomarkers independently. Febrile <90-day-old infants hospitalized in 2- year-period at Department of Pediatrics, University Hospital Centre Split with suspicion of having SBI were included in this study. Retrospective cohort analysis of data acquired from medical records was performed. Out of 181 enrolled patients, SBI was confirmed in 70. Most common diagnosis was urinary tract infection (68.6%), followed by pneumonia (12.9%), sepsis (11.4%), gastroenterocolitis (5.7%) and meningitis (1.4%). Male gender was shown to be a risk factor for SBI in this population (p=0.008). White blood cell count (WBC), absolute neutrophil count (ANC) and C- reactive protein (CRP) were confirmed as the independent predictors of SBI, with CRP as the best one. Two prediction models built by combining biomarkers and clinical variables were selected as optimal with sensitivities of 74.3% and 75.7%, and specificities of 88.3% and 86%. Evidently, CRP is a more superior biomarker in diagnostics of SBI comparing to WBC and ANC. Prediction models were shown to be better in predicting SBI than independent biomarkers. Although both showed high sensitivity and specificity, their true strength should be determined using validation cohort.

Izvorni jezik
Engleski

Znanstvena područja
Kliničke medicinske znanosti



POVEZANOST RADA


Ustanove:
KBC Split,
Medicinski fakultet, Split

Profili:

Avatar Url Joško Markić (autor)

Avatar Url Benjamin Benzon (autor)

Citiraj ovu publikaciju:

Vujević, Matea; Benzon, Benjamin; Markić, Joško
New prediction model for diagnosis of bacterial infection in febrile infants younger than 90 days // Turkish journal of pediatrics, 59 (2017), 3; 261-268 doi:10.24953/turkjped.2017.03.005 (međunarodna recenzija, članak, znanstveni)
Vujević, M., Benzon, B. & Markić, J. (2017) New prediction model for diagnosis of bacterial infection in febrile infants younger than 90 days. Turkish journal of pediatrics, 59 (3), 261-268 doi:10.24953/turkjped.2017.03.005.
@article{article, author = {Vujevi\'{c}, Matea and Benzon, Benjamin and Marki\'{c}, Jo\v{s}ko}, year = {2017}, pages = {261-268}, DOI = {10.24953/turkjped.2017.03.005}, keywords = {C-reactive protein, biomarkers, fever, infant, bacterial infection}, journal = {Turkish journal of pediatrics}, doi = {10.24953/turkjped.2017.03.005}, volume = {59}, number = {3}, issn = {0041-4301}, title = {New prediction model for diagnosis of bacterial infection in febrile infants younger than 90 days}, keyword = {C-reactive protein, biomarkers, fever, infant, bacterial infection} }
@article{article, author = {Vujevi\'{c}, Matea and Benzon, Benjamin and Marki\'{c}, Jo\v{s}ko}, year = {2017}, pages = {261-268}, DOI = {10.24953/turkjped.2017.03.005}, keywords = {C-reactive protein, biomarkers, fever, infant, bacterial infection}, journal = {Turkish journal of pediatrics}, doi = {10.24953/turkjped.2017.03.005}, volume = {59}, number = {3}, issn = {0041-4301}, title = {New prediction model for diagnosis of bacterial infection in febrile infants younger than 90 days}, keyword = {C-reactive protein, biomarkers, fever, infant, bacterial infection} }

Časopis indeksira:


  • Web of Science Core Collection (WoSCC)
    • Science Citation Index Expanded (SCI-EXP)
    • SCI-EXP, SSCI i/ili A&HCI
  • Scopus
  • MEDLINE


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