Constipation is a common problem in children that can affect their daily life, school performance, and social activities. Researchers have found that the bacteria living in our intestines (called "gut microbiome") may play an important role in constipation. However, we still do not fully understand exactly how these bacteria affect constipation in children. This study aims to explore whether the gases children breathe out-including nitric oxide (NO), hydrogen sulfide (H₂S), hydrogen (H₂), and methane (CH₄)-can tell us something about the bacteria in their guts. By comparing children with constipation to healthy children, we hope to find out: Whether the gases in their breath are different Whether the types of bacteria in their guts are different Whether there is a relationship between breath gases and gut bacteria If we find clear connections, this could lead to a simple, non-invasive breath test that doctors can use to understand a child's gut health without the need for more invasive procedures.
Childhood functional constipation (FC) is a multifactorial syndrome with a global prevalence of approximately 9.5% among pediatric populations, accounting for up to 29% of functional gastrointestinal disorders. It significantly affects physical health, academic performance, and psychosocial development, with approximately 25% of affected children continuing to experience gastrointestinal symptoms into adulthood. While conventional factors such as diet, fluid intake, and psychological stress have been implicated, the precise pathophysiological mechanisms remain incompletely understood. Emerging evidence highlights the critical role of the gut microbiome in regulating intestinal motility and visceral sensitivity through the microbiota-gut-brain axis. Microbial metabolites-including short-chain fatty acids (SCFAs), serotonin, bile acids, and gases (methane, hydrogen, hydrogen sulfide)-serve as key signaling molecules that influence enteric neurotransmission, smooth muscle contraction, and gastrointestinal transit time. Notably, hydrogen (H₂) and methane (CH₄) are exclusively of microbial origin (produced via anaerobic fermentation of carbohydrates by intestinal flora), while hydrogen sulfide (H₂S) is generated both endogenously and by sulfate-reducing bacteria. Nitric oxide (NO), though primarily endogenously produced, may also reflect intestinal inflammatory status and microbial metabolic activity. The integration of breath gas analysis and metagenomic profiling offers a promising, non-invasive approach to elucidate host-microbe interactions in FC. However, systematic evaluations linking these four exhaled gases (NO, H₂S, H₂, CH₄) to the taxonomic and functional composition of the gut microbiome in constipated children remain scarce. This study is designed to bridge this knowledge gap, providing mechanistic insights and potentially establishing breath testing as a surrogate marker for gut dysbiosis in pediatric constipation.
Study Type
OBSERVATIONAL
Enrollment
200
Ruijin Hospital
Shanghai, Shanghai Municipality, China
End-expiratory concentrations and peak values of H2
Comparison of the fasting end-expiratory concentrations (ppm) and peak values of hydrogen (H2) between children with functional constipation and healthy controls. Breath samples are collected during a single morning session after an overnight fast using a validated portable breath analyzer.
Time frame: Measured at baseline (single time point) after an overnight fast, during a single methane-hydrogen breath test session.
End-expiratory concentrations and peak values of H2S
Comparison of the fasting end-expiratory concentrations (ppm) and peak values of hydrogen sulfide (H2S) between children with functional constipation and healthy controls. Breath samples are collected during a single morning session after an overnight fast using a validated portable breath analyzer.
Time frame: Measured at baseline (single time point) after an overnight fast, during a single methane-hydrogen breath test session.
End-expiratory concentration and peak value of methane (CH₄)
Comparison of fasting end-expiratory CH₄ concentration (ppm) and peak values between children with functional constipation and healthy controls. CH₄ is exclusively produced by methanogenic archaea in the gut and is not metabolized by mammalian cells. Elevated CH₄ levels (e.g., ≥10 ppm) are associated with prolonged colonic transit time and increased constipation severity. The analysis will compare intergroup differences in both baseline concentration and maximum peak values during the breath test.
Time frame: Measured at baseline (single time point) after an overnight fast, during a single methane-hydrogen breath test session.
End-expiratory concentration and peak value of nitric oxide (NO)
Comparison of fasting end-expiratory NO concentration (ppb) and peak values between children with functional constipation and healthy controls. End-expiratory NO reflects systemic and intestinal inflammatory status. Alterations in NO levels may indicate mucosal barrier dysfunction or low-grade inflammation associated with constipation. The analysis will compare intergroup differences in both baseline concentration and maximum peak values.
Time frame: Measured at baseline (single time point) after an overnight fast, during a single methane-hydrogen breath test session.
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