Metabolomics

Dataset Information

Validation: Multi-Omics and Machine Learning-Based Profiling of Severity Signatures in Mycoplasma Pneumoniae Infection in Children


ABSTRACT:

Mycoplasma pneumoniae pneumonia (MPP) is a common respiratory infection in children, yet the mechanisms driving its progression to severe disease remain poorly understood. This study employs a comprehensive proteomic and metabolomic approach to elucidate severity-related pathways and identify potential biomarkers for improved diagnosis and targeted therapy. By analyzing blood proteomes from 57 pediatric patients with varying MPP severities alongside 10 healthy controls, and integrating multi-omics data from bronchoalveolar lavage fluid (BALF). This study is a validation cohort by analyzing another 50 BALF proteome.

INSTRUMENT(S): Liquid Chromatography MS - negative - reverse-phase, Liquid Chromatography MS - positive - reverse-phase

PROVIDER: MTBLS13504 | MetaboLights | 2026-01-05

REPOSITORIES: MetaboLights

Dataset's files

Source:
Action DRS
CCH_BALF_35660.d.zip Other
CCH_BALF_35723.d.zip Other
CJC_BALF_35606.d.zip Other
CJC_BALF_35669.d.zip Other
CLE_BALF_35622.d.zip Other
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