{
  "schemaVersion": 2,
  "eyebrow": "Pediatric Infectious Disease",
  "title": "Pediatric Pneumonia",
  "summary": "Manage pediatric pneumonia by first identifying hypoxemia, respiratory distress, sepsis, and pleural complications; use selective imaging and microbiology; avoid biomarkers as stand-alone bacterial tests; and reassess nonresponse early for complications, resistant pathogens, or an alternative diagnosis.",
  "seoDescription": "Point-of-care approach to pediatric community-acquired pneumonia: triage, diagnostic testing, viral-bacterial patterns, complications, and reassessment.",
  "clinicalQuestion": "How should clinicians triage, investigate, and reassess children with suspected community-acquired pneumonia?",
  "specialty": "Pediatrics",
  "audience": "U.S. physicians and medical trainees",
  "tags": [
    "pediatric community-acquired pneumonia",
    "childhood pneumonia",
    "pediatric CAP",
    "parapneumonic effusion",
    "empyema"
  ],
  "keyTakeaways": [
    "Obtain pulse oximetry when pneumonia with suspected hypoxemia is considered; hypoxemia, substantial work of breathing, toxic appearance, or radiographic complications should shift care toward hospital-level management. [7][10]",
    "Do not use CRP, ESR, or procalcitonin alone to distinguish viral from bacterial pediatric CAP; biomarkers are not routinely necessary in fully immunized children treated in the community. [1]",
    "Reserve chest radiography and blood cultures for severe or complicated hospitalized CAP, progression despite therapy, or treatment failure; culture pleural fluid whenever it is obtained. [1][19]",
    "In hospitalized U.S. children with CAP, viruses are detected far more often than bacteria; RSV, rhinovirus, human metapneumovirus, and adenovirus predominate among viral detections. [20]",
    "Failure to improve after 3 to 4 days warrants repeat chest imaging, inflammatory markers, white blood cell count, and expanded microbiologic investigation, with specific evaluation for pleural disease. [3]"
  ],
  "sections": [
    {
      "id": "triage-and-site-of-care",
      "eyebrow": "Initial decision",
      "heading": "Identify children requiring hospital-level assessment",
      "intro": "Disposition depends on oxygenation, respiratory effort, systemic illness, age, and pleural complications.",
      "paragraphs": [
        "Perform pulse oximetry in a child with pneumonia when hypoxemia is suspected. Escalate from ambulatory management to hospital assessment for oxygen saturation at or below 92%, marked tachypnea or apnea, significant work of breathing, sepsis or toxic appearance, or a chest radiograph showing effusion, empyema, pneumatocele, necrosis, or lung abscess. [7][10]",
        "Treat age under 1 month as a definite admission criterion in suspected pneumonia. Age 1 to 3 months and oxygen saturation of 93% to 94% are features that should lower the threshold for admission when combined with respiratory distress, impaired feeding, unreliable observation, or concern for deterioration. [7]",
        "For a child discharged with a presumptive viral process or supportive management, a return visit should trigger reassessment for secondary bacterial infection, pleural complication, or an alternative diagnosis rather than automatic repetition of the initial plan. [22]"
      ],
      "bullets": [
        "Immediate bedside priorities: pulse oximetry, work-of-breathing assessment, mental status, feeding or hydration capacity, and examination for sepsis. [7][10]",
        "Obtain chest radiography at presentation when severe or complicated CAP requires hospitalization. [1]",
        "If pleuritic pain, asymmetric breath sounds, persistent fever, or imaging suggests pleural fluid, evaluate for parapneumonic effusion or empyema and involve teams able to perform image-guided drainage or surgical management when needed. [11][24]"
      ],
      "subsections": [],
      "table": {
        "caption": "Features that shift suspected pediatric CAP from outpatient management to hospital-level evaluation. [7][10]",
        "columns": [
          "Finding",
          "Interpretation",
          "Next action"
        ],
        "rows": [
          [
            "Oxygen saturation ≤92%",
            "Definite admission criterion in proposed pediatric CAP criteria. [7]",
            "Hospital assessment; monitor oxygenation and respiratory status. [7][10]"
          ],
          [
            "Apnea, substantial respiratory distress, or severe work of breathing",
            "Signals risk of respiratory decompensation. [7]",
            "Hospital assessment and chest radiography if severe CAP is suspected. [1][7]"
          ],
          [
            "Toxic appearance or sepsis",
            "Suggests severe systemic infection. [7]",
            "Hospitalize; obtain blood culture in moderate-to-severe hospitalized disease. [19]"
          ],
          [
            "Effusion, empyema, necrosis, pneumatocele, or abscess on radiograph",
            "Complicated pneumonia with potential drainage or surgical requirement. [7][11][24]",
            "Admit; characterize pleural disease and obtain pleural fluid Gram stain and culture if drained. [19][24]"
          ],
          [
            "Age <1 month",
            "Definite admission criterion. [7]",
            "Use neonatal infection pathways rather than routine CAP assumptions. [7][16]"
          ]
        ]
      }
    },
    {
      "id": "diagnostic-workup",
      "eyebrow": "Testing strategy",
      "heading": "Use clinical assessment to diagnose CAP and target tests to severity",
      "intro": "Diagnostic testing should answer a disposition, complication, or antimicrobial decision.",
      "paragraphs": [
        "Uncomplicated pediatric CAP remains a clinical diagnosis based on history, examination, and clinical judgment. Do not obtain routine outpatient chest radiography solely to confirm pneumonia in a stable child; outpatient radiography is not routinely recommended. [4][13]",
        "For severe or complicated CAP requiring hospitalization, obtain chest radiography and blood cultures. Blood cultures are also indicated when disease progresses despite antibiotics or when initial therapy fails; their ability to confirm pneumococcal etiology is limited, so a negative culture should not exclude bacterial pneumonia. [1][2][19]",
        "Send sputum culture only in hospitalized children able to produce an adequate specimen. If pleural fluid is sampled, send Gram stain and culture because pleural-space microbiology can direct definitive therapy. [19]",
        "CRP, ESR, and procalcitonin cannot independently classify a child as viral or bacterial. In fully immunized children managed in the community, routine measurement is unnecessary. In severe disease, serial CRP or procalcitonin can support response assessment when interpreted with the clinical course; a falling value may parallel symptomatic improvement, whereas persistently high or nonimproving values raise concern for treatment failure. [1][3]"
      ],
      "bullets": [
        "Order a blood culture for: moderate-to-severe hospitalized CAP, progression despite antibiotics, or antibiotic treatment failure. [19]",
        "Obtain a sputum culture only if the hospitalized child can provide an adequate specimen. [19]",
        "Use pleural-fluid Gram stain and culture whenever fluid is obtained for suspected parapneumonic effusion or empyema. [19]"
      ],
      "subsections": [
        {
          "heading": "Interpret pathogen testing in clinical context",
          "paragraphs": [
            "A detected respiratory virus does not exclude bacterial coinfection, particularly when a child deteriorates, develops focal consolidation or pleural disease, or has an elevated procalcitonin in the setting of confirmed viral pneumonia. Conversely, low procalcitonin can point toward viral pneumonia but should not be used as the sole rule-out test for bacterial disease. [1]",
            "In a U.S. hospitalized CAP cohort, a pathogen was identified in 81% of children; viruses were detected in 66% and bacteria in 8%. RSV, rhinovirus, human metapneumovirus, and adenovirus were the most common viral detections, while Mycoplasma pneumoniae and Streptococcus pneumoniae were the most common bacterial detections. [20]"
          ],
          "bullets": []
        }
      ],
      "table": {
        "caption": "Selective testing framework for suspected pediatric CAP. [1][19]",
        "columns": [
          "Test",
          "Use it when",
          "Interpretation or action"
        ],
        "rows": [
          [
            "Chest radiograph",
            "Hospitalized severe or complicated CAP. [1]",
            "Identify consolidation and complications such as effusion, empyema, necrosis, pneumatocele, or abscess. [7][8]"
          ],
          [
            "Blood culture",
            "Moderate-to-severe hospitalized CAP, progression despite therapy, or treatment failure. [19]",
            "A positive result can direct antimicrobial therapy; low yield and poor pneumococcal confirmation limit routine use in low-risk disease. [2][21]"
          ],
          [
            "Sputum culture",
            "Hospitalized child who can adequately expectorate. [19]",
            "Use an interpretable lower-respiratory specimen to refine therapy. [19]"
          ],
          [
            "Pleural-fluid Gram stain and culture",
            "Any sampled pleural effusion. [19]",
            "Use results to identify pleural-space infection and tailor therapy. [19]"
          ],
          [
            "CRP, ESR, procalcitonin",
            "Selected severe disease or serial response assessment. [1]",
            "Do not use alone to determine viral versus bacterial etiology. [1]"
          ]
        ]
      }
    },
    {
      "id": "etiologic-patterns",
      "eyebrow": "Etiologic branching",
      "heading": "Match the clinical pattern to the next diagnostic and treatment decision",
      "intro": "Viral, typical bacterial, atypical, and complicated patterns overlap; severity and complications should drive action.",
      "paragraphs": [
        "In otherwise healthy immunized children, viral infection is common, particularly in younger children, and viral pneumonia generally resolves without antibacterial treatment. A supportive outpatient approach is reasonable only after excluding hypoxemia, major respiratory distress, toxic appearance, inability to maintain hydration, and focal complications. [19][22]",
        "When clinical disease is sufficiently concerning for bacterial CAP, favor the narrowest-spectrum agent appropriate to the suspected or identified pathogen rather than broad empiric exposure. Reassess rather than simply broaden therapy if the child worsens or fails to progress, because the key alternative explanations include pleural disease, necrotizing infection, an incorrect diagnosis, or mixed viral-bacterial infection. [6][19][22]",
        "Mycoplasma pneumoniae is among the more frequently identified bacterial pathogens in hospitalized pediatric CAP, while Streptococcus pneumoniae remains an important typical bacterial pathogen. Use pathogen-directed testing and treatment decisions selectively, particularly in hospitalized disease, because bacterial detection is substantially less common than viral detection in contemporary cohorts. [20]"
      ],
      "bullets": [
        "Consider bacterial coinfection in confirmed viral pneumonia when procalcitonin is elevated or the clinical course is inconsistent with uncomplicated viral illness. [1]",
        "Do not interpret consolidation or interstitial radiographic patterns as a definitive etiologic classification; imaging demonstrates pneumonia patterns and complications but does not independently establish viral versus bacterial cause. [8][1]",
        "In immunocompromised children or those with chronic cardiopulmonary disease, lower the threshold for hospital assessment and broaden the differential beyond routine CAP pathogens. [22]"
      ],
      "subsections": [],
      "table": {
        "caption": "Actionable etiologic and complication patterns in pediatric pneumonia. [1][19][20][22]",
        "columns": [
          "Pattern",
          "Clues that change probability",
          "Next action"
        ],
        "rows": [
          [
            "Predominantly viral CAP",
            "Viruses account for most identified pathogens in hospitalized children; low procalcitonin may support a viral pattern. [1][20]",
            "Provide supportive management only if severity screening is reassuring; reassess promptly for deterioration or suspected secondary bacterial infection. [22]"
          ],
          [
            "Possible bacterial CAP or viral-bacterial coinfection",
            "Elevated procalcitonin during confirmed viral pneumonia can raise concern for coinfection; clinical progression despite therapy increases concern. [1][19]",
            "Use severity-directed imaging and microbiology; select narrow-spectrum therapy appropriate to the suspected or identified pathogen. [6][19]"
          ],
          [
            "Mycoplasma-associated CAP",
            "M. pneumoniae is a relatively common bacterial detection among hospitalized children. [20]",
            "Use selective pathogen testing and pathogen-directed management in the clinical context. [19][20]"
          ],
          [
            "Complicated bacterial CAP",
            "Pleural effusion, empyema, necrosis, pneumatocele, or abscess on radiography; persistent or worsening course. [7][11][24]",
            "Admit, evaluate the pleural space, culture drained pleural fluid, and determine need for drainage, fibrinolysis, or surgery. [19][24]"
          ]
        ]
      }
    },
    {
      "id": "complicated-pneumonia",
      "eyebrow": "Escalation",
      "heading": "Recognize parapneumonic effusion, empyema, and destructive lung complications",
      "intro": "Pleural-space disease changes both diagnostic sampling and procedural management.",
      "paragraphs": [
        "A pleural effusion or empyema on chest radiography defines complicated CAP and is an admission-level finding. Obtain pleural-fluid Gram stain and culture when fluid is drained; microbiologic data are especially important because blood cultures often have low diagnostic yield in childhood pneumonia. [7][19][21]",
        "Persistent fever, worsening respiratory status, rising or nonimproving inflammatory markers, or lack of clinical progress after 3 to 4 days should prompt repeat chest radiography, repeat CRP or procalcitonin, white blood cell count, and additional microbiologic investigation. Escalate imaging and procedural planning when repeat assessment identifies pleural fluid, loculation, empyema, necrosis, or abscess. [3][11][24]",
        "Management options for pediatric empyema include repeated ultrasound-guided thoracentesis, chest-tube drainage, intrapleural fibrinolytic therapy, and surgery; selection depends on pleural anatomy, response to drainage or chemical debridement, and local procedural expertise. [24]"
      ],
      "bullets": [
        "Obtain pleural-fluid Gram stain and culture whenever a pleural specimen is obtained. [19]",
        "Use repeat chest imaging in a child without satisfactory clinical progress after 3 to 4 days of treatment. [3]",
        "Involve pediatric surgery or interventional procedural teams when pleural disease requires drainage, fibrinolysis, or operative management. [24]"
      ],
      "subsections": [],
      "table": {
        "caption": "Reassessment triggers for complicated pediatric CAP. [3][7][24]",
        "columns": [
          "Trigger",
          "Concern",
          "Immediate next step"
        ],
        "rows": [
          [
            "Radiographic pleural effusion or empyema",
            "Pleural-space infection requiring source-control assessment. [7][24]",
            "Admit, characterize pleural disease, and culture pleural fluid if drained. [19][24]"
          ],
          [
            "No satisfactory progress by day 3 to 4",
            "Treatment failure, complication, or alternative diagnosis. [3]",
            "Repeat chest radiography, CRP or procalcitonin, white blood cell count, and microbiologic testing. [3]"
          ],
          [
            "Necrosis, pneumatocele, or lung abscess",
            "Destructive parenchymal complication. [7][24]",
            "Hospital-level management and specialty procedural assessment. [7][24]"
          ],
          [
            "Clinical worsening despite antibiotics",
            "Progressive infection, resistant pathogen, coinfection, or inadequate source control. [19][22]",
            "Repeat diagnostic evaluation and assess for pleural intervention. [19][24]"
          ]
        ]
      }
    },
    {
      "id": "monitoring-and-follow-up",
      "eyebrow": "Course correction",
      "heading": "Use clinical trajectory to determine whether to continue, intensify, or redirect care",
      "intro": "The follow-up question is whether oxygenation, work of breathing, fever pattern, and intake are improving.",
      "paragraphs": [
        "At each reassessment, document oxygen saturation, respiratory effort, mental status, hydration or feeding, and fever trajectory. A child who develops hypoxemia, substantial respiratory distress, toxic appearance, or inability to maintain intake should be redirected to hospital-level evaluation even if the initial examination suggested uncomplicated CAP. [7][10][22]",
        "Use serial CRP or procalcitonin only as adjunctive trend data in severe disease. Declining values may correlate with clinical improvement, while persistently high or nonimproving values should trigger senior review and investigation for treatment failure or complication rather than an etiologic conclusion based on the biomarker alone. [1][3]",
        "For children 3 months to 11 years with nonsevere, uncomplicated CAP and no underlying disease, NICE quality standards specify an initial 3-day antibiotic course; children with complications or underlying disease receive an initial 5-day course. Local U.S. antimicrobial guidance and the individual clinical course should determine final regimen selection and duration. [17]"
      ],
      "bullets": [
        "Reevaluate sooner than the planned follow-up interval for new hypoxemia, increased work of breathing, poor intake, altered mental status, persistent fever, or new pleuritic symptoms. [7][22]",
        "At day 3 to 4 without clinical progress, repeat radiography, inflammatory markers, white blood cell count, and microbiologic studies. [3]",
        "When antibiotics are used, minimize exposure by choosing narrow-spectrum therapy when a bacterial pathogen is suspected or identified. [6]"
      ],
      "subsections": [],
      "table": {
        "caption": "Monitoring actions linked to clinical trajectory. [1][3][7][22]",
        "columns": [
          "Trajectory",
          "Interpretation",
          "Action"
        ],
        "rows": [
          [
            "Improving oxygenation, respiratory effort, intake, and symptoms",
            "Consistent with response. [1]",
            "Continue the current care plan and clinical monitoring. [1]"
          ],
          [
            "Nonimproving CRP or procalcitonin in severe disease",
            "Associated with treatment failure risk but not diagnostic alone. [1][3]",
            "Perform senior clinical review and investigate for complication or treatment failure. [3]"
          ],
          [
            "No satisfactory clinical progress after 3 to 4 days",
            "Requires reassessment of diagnosis, pathogen, and complications. [3]",
            "Repeat chest radiography, CRP or procalcitonin, white blood cell count, and microbiologic studies. [3]"
          ],
          [
            "Return visit after supportive management",
            "Consider secondary bacterial infection or alternative diagnosis. [22]",
            "Repeat severity screening and direct testing toward the new clinical concern. [7][22]"
          ]
        ]
      }
    }
  ],
  "faq": [],
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    {
      "number": 4,
      "title": "An analysis of clinical predictive values for radiographic ...",
      "detail": "gh.bmj.com",
      "url": "https://gh.bmj.com/content/5/8/e002708",
      "authors": "gh.bmj.com",
      "host": "gh.bmj.com",
      "snippet": "by CA Rees · 2020 · Cited by 52 — 11 Nevertheless, the routine use of chest radiography for the diagnosis of childhood pneumonia in the outpatient setting is not recommended",
      "score": 0.40768766
    },
    {
      "number": 5,
      "title": "Seeking diagnostic and prognostic biomarkers for ...",
      "detail": "bmjopen.bmj.com",
      "url": "https://bmjopen.bmj.com/content/bmjopen/11/9/e046590.full.pdf",
      "authors": "bmjopen.bmj.com",
      "host": "bmjopen.bmj.com",
      "snippet": "by C Valim · 2021 · Cited by 3 — Efficacy of serum procalcitonin in evaluating severity of community- acquired pneumonia in childhood. Scand J Infect Dis 2007;39:129–37. 89",
      "score": 0.40613216
    },
    {
      "number": 6,
      "title": "Management of community-acquired pneumonia in infants ...",
      "detail": "www.sciencedirect.com",
      "url": "https://www.sciencedirect.com/science/article/pii/S2352646717301953",
      "authors": "www.sciencedirect.com",
      "host": "www.sciencedirect.com",
      "snippet": "by O Alzomor · 2017 · Cited by 23 — Limiting antibiotic exposure whenever possible is highly recommended. · Using the most narrow-spectrum antibiotic for the suspected or identified pathogen is a",
      "score": 0.36290202
    },
    {
      "number": 7,
      "title": "Pediatric Pneumonia - an overview",
      "detail": "www.sciencedirect.com",
      "url": "https://www.sciencedirect.com/topics/medicine-and-dentistry/pediatric-pneumonia",
      "authors": "www.sciencedirect.com",
      "host": "www.sciencedirect.com",
      "snippet": "Admission criteria based on published guidelines and literature reviews have been proposed, though they have not been vigorously studied. Such criteria should be used with clinical judgment while taking into account modifying factors. Suggested admission criteria are listed in Table 3.\n\nTable 3. Sug",
      "score": 0.69099766
    },
    {
      "number": 8,
      "title": "Challenges in the diagnosis of paediatric pneumonia ...",
      "detail": "www.sciencedirect.com",
      "url": "https://www.sciencedirect.com/science/article/abs/pii/S2213260019302498",
      "authors": "www.sciencedirect.com",
      "host": "www.sciencedirect.com",
      "snippet": "by D Goodman · 2019 · Cited by 95 — Imaging for pneumonia diagnosis. Consolidation and interstitial patterns, visualised using chest radiography or lung ultrasound, are characteristic features",
      "score": 0.5379402
    },
    {
      "number": 9,
      "title": "Transfer learning approach for pediatric pneumonia ...",
      "detail": "www.sciencedirect.com",
      "url": "https://www.sciencedirect.com/science/article/abs/pii/S0952197623006000",
      "authors": "www.sciencedirect.com",
      "host": "www.sciencedirect.com",
      "snippet": "by CR Asswin · 2023 · Cited by 49 — Chest X-ray is the most commonly adopted non-invasive and painless diagnostic test for pediatric pneumonia. However, the low radiation levels for diagnosis",
      "score": 0.5243709
    },
    {
      "number": 10,
      "title": "The Management of Community-Acquired Pneumonia in ...",
      "detail": "academic.oup.com",
      "url": "https://academic.oup.com/cid/article/53/7/617/424575",
      "authors": "academic.oup.com",
      "host": "academic.oup.com",
      "snippet": "by JS Bradley · 2011 · Cited by 2745 — Pulse oximetry should be performed in all children with pneumonia and suspected hypoxemia. The presence",
      "score": 0.41506538
    },
    {
      "number": 11,
      "title": "Clinical decision-making in pediatric pneumonia: when to... : Annals of Medicine and Surgery",
      "detail": "journals.lww.com",
      "url": "https://journals.lww.com/annals-of-medicine-and-surgery/fulltext/2025/11000/clinical_decision_making_in_pediatric_pneumonia_.33.aspx",
      "authors": "journals.lww.com",
      "host": "journals.lww.com",
      "snippet": "Title: Clinical decision-making in pediatric pneumonia: when to... : Annals of Medicine and Surgery\nComplicated community-acquired pneumonia (CCAP) in children often leads to severe complications such as pleural effusion and empyema, which may require surgical intervention. This study aimed to ident",
      "score": 0.44463772
    },
    {
      "number": 12,
      "title": "Community-acquired Pneumonia",
      "detail": "publications.aap.org",
      "url": "https://publications.aap.org/aapbooks/book/705/chapter/8735280/Community-acquired-Pneumonia",
      "authors": "publications.aap.org",
      "host": "publications.aap.org",
      "snippet": "A newer edition is now available: Latest edition Evidence-based clinical practice guidelines and policy statements from the AAP! Community-acquired Pneumonia",
      "score": 0.6439794
    },
    {
      "number": 13,
      "title": "Pneumonia | Pediatrics In Review",
      "detail": "publications.aap.org",
      "url": "https://publications.aap.org/pediatricsinreview/article/47/4/196/207020/Pneumonia",
      "authors": "publications.aap.org",
      "host": "publications.aap.org",
      "snippet": "The diagnosis of uncomplicated, community-acquired pneumonia continues to be based on patient history, physical exam, and clinical judgement in",
      "score": 0.6415577
    },
    {
      "number": 14,
      "title": "Management of Community-Acquired Pneumonia (CAP) in ...",
      "detail": "publications.aap.org",
      "url": "https://publications.aap.org/pediatrics/article/128/6/e1677/31123/Management-of-Community-Acquired-Pneumonia-CAP-in",
      "authors": "publications.aap.org",
      "host": "publications.aap.org",
      "snippet": "The management of community-acquired pneumonia (CAP) in infants and children older than 3 months of age: clinical practice guidelines by the",
      "score": 0.5863576
    },
    {
      "number": 15,
      "title": "New Community-Acquired Pneumonia (CAP) Guidelines",
      "detail": "publications.aap.org",
      "url": "https://publications.aap.org/aapgrandrounds/article/27/3/36/90582/New-Community-Acquired-Pneumonia-CAP-Guidelines",
      "authors": "publications.aap.org",
      "host": "publications.aap.org",
      "snippet": "The guidelines incorporate clinical questions to guide practitioners in determining optimal venues for delivery of care, ideal diagnostic",
      "score": 0.54710174
    },
    {
      "number": 16,
      "title": "Pneumonia: diagnosis and management | Guidance",
      "detail": "www.nice.org.uk",
      "url": "https://www.nice.org.uk/guidance/NG250",
      "authors": "www.nice.org.uk",
      "host": "www.nice.org.uk",
      "snippet": "For bacterial infection in healthy babies up to and including 28 days (corrected gestational age), see NICE’s guideline on neonatal infection: antibiotics for prevention and treatment.\n\nLast reviewed: 02 September 2025\n\nWe have reviewed the evidence on diagnosing, assessing and treating community-ac",
      "score": 0.52422476
    },
    {
      "number": 17,
      "title": "Quality statement 3: Duration of initial antibiotic treatment | Pneumonia: diagnosis and management | Quality standards | NICE",
      "detail": "www.nice.org.uk",
      "url": "https://www.nice.org.uk/guidance/qs110/chapter/Quality-statement-3-Duration-of-initial-antibiotic-treatment",
      "authors": "www.nice.org.uk",
      "host": "www.nice.org.uk",
      "snippet": "Healthcare professionals (such as paramedics working in primary care, GPs, secondary and community care doctors and nurses) prescribe an initial 3‑day course of antibiotics for children aged 3 months to 11 years with non-severe community-acquired pneumonia, without complications or underlying diseas",
      "score": 0.52378637
    },
    {
      "number": 18,
      "title": "Etiology and Clinical Correlates of Pediatric Pneumonia in Lebanon in the Era Following COVID-19 Vaccine Availability: A Multicenter Retrospective Study - PMC",
      "detail": "pmc.ncbi.nlm.nih.gov",
      "url": "https://pmc.ncbi.nlm.nih.gov/articles/PMC12811692",
      "authors": "pmc.ncbi.nlm.nih.gov",
      "host": "pmc.ncbi.nlm.nih.gov",
      "snippet": "Results: Among 157 children, the etiology was unknown in 75.8% (n=119) of cases. Confirmed bacterial pneumonia accounted for 13.4% (n=21), viral pneumonia for 9.6% (n=15), and mixed (bacterial-viral) infections for 1.3% (n=2). Only 13.3% (n=2) of viral cases were SARS-CoV-2 positive. Bacterial pneum",
      "score": 0.69870013
    },
    {
      "number": 19,
      "title": "Community-Acquired Pneumonia in Childhood",
      "detail": "pmc.ncbi.nlm.nih.gov",
      "url": "https://pmc.ncbi.nlm.nih.gov/articles/PMC7458534",
      "authors": "pmc.ncbi.nlm.nih.gov",
      "host": "pmc.ncbi.nlm.nih.gov",
      "snippet": "type B)_Haemophilus influenzae_ type B _Staphylococcus aureus_ _Bordetella pertussis_ _Staphylococcus aureus_ _Staphylococcus aureus_ _Pseudomonas aeruginosa_ _Haemophilus influenza_ type B _Mycoplasma pneumoniae_ _Stenotrophomonas maltophilia_ MycobacteriaVaricella _Pseudomonas aeruginosa_ _Pneumoc",
      "score": 0.6353361
    },
    {
      "number": 20,
      "title": "Epidemiology and surveillance implications of community-acquired pneumonia in children",
      "detail": "pmc.ncbi.nlm.nih.gov",
      "url": "https://pmc.ncbi.nlm.nih.gov/articles/PMC9742763",
      "authors": "pmc.ncbi.nlm.nih.gov",
      "host": "pmc.ncbi.nlm.nih.gov",
      "snippet": "## . In a 3-year US-based study (2010–2012), the causative pathogen was identified in 81% of children hospitalized with CAP: viruses in 66% versus bacteria in 8%. The most commonly detected viral pathogens were RSV (28%), HRV (27%), HMPV (13%), and ADV (11%), while the most common bacterial pathogen",
      "score": 0.62523276
    },
    {
      "number": 21,
      "title": "Antibiotic Use and Treatment Outcomes among Children with Community-Acquired Pneumonia Admitted to a Tertiary Care Public Hospital in Nepal - PMC",
      "detail": "pmc.ncbi.nlm.nih.gov",
      "url": "https://pmc.ncbi.nlm.nih.gov/articles/PMC8167730",
      "authors": "pmc.ncbi.nlm.nih.gov",
      "host": "pmc.ncbi.nlm.nih.gov",
      "snippet": "and Haemophilus influenzae type B in Nepal has resulted in a decrease in pediatric CAP secondary to these invasive bacterial infections, from 7.7% to 4% [23][27]. However, children admitted in ICU settings with complicated pneumonia may benefit from the routine performance of blood cultures . [...] T",
      "score": 0.57293844
    },
    {
      "number": 22,
      "title": "Pediatric Pneumonia - StatPearls - NCBI Bookshelf - NIH",
      "detail": "www.ncbi.nlm.nih.gov",
      "url": "https://www.ncbi.nlm.nih.gov/books/NBK536940",
      "authors": "www.ncbi.nlm.nih.gov",
      "host": "www.ncbi.nlm.nih.gov",
      "snippet": "## Epidemiology\n\nThere are an estimated 120 million cases of pneumonia annually worldwide, resulting in as many as 1.3 million deaths.(#article-27365.r3) Younger children under the age of 2 in the developing world account for nearly 80% of pediatric deaths secondary to pneumonia.(#article-27365.r17)",
      "score": 0.5331307
    },
    {
      "number": 23,
      "title": "The use of pulse oximetry to exclude pneumonia in children",
      "detail": "www.sciencedirect.com",
      "url": "https://www.sciencedirect.com/science/article/abs/pii/S0735675702000608",
      "authors": "www.sciencedirect.com",
      "host": "www.sciencedirect.com",
      "snippet": "by DA Tanen · 2002 · Cited by 27 — The objective of this study was to determine whether pulse oximetry alone or in conjunction with the clinical examination is predictive of pneumonia in",
      "score": 0.3420444
    },
    {
      "number": 24,
      "title": "The diagnosis and management of empyema in children: a comprehensive review from the APSA Outcomes and Clinical Trials Committee - ScienceDirect",
      "detail": "www.sciencedirect.com",
      "url": "https://www.sciencedirect.com/science/article/pii/S002234681200588X",
      "authors": "www.sciencedirect.com",
      "host": "www.sciencedirect.com",
      "snippet": "# Review Article The diagnosis and management of empyema in children: a comprehensive review from the APSA Outcomes and Clinical Trials Committee. Topics included the distinction between parapneumonic effusion and empyema, the optimal imaging modality in evaluating pleural space disease, when and ho",
      "score": 0.4766533
    }
  ],
  "publishedAt": "2026-08-24T16:43:06.636119+00:00",
  "updatedAt": "2026-08-24T16:43:06.636119+00:00",
  "readingMinutes": 6,
  "slug": "pediatric-pneumonia"
}
