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NapBiome: Targeting Gut Microbiota and Sleep Rhythm to Improve Developmental and Behavioral Outcomes in Early Childhood

NapBiome: Targeting Gut Microbiota and Sleep Rhythm to Improve Developmental and Behavioral Outcomes in Early Childhood

Status
Not yet recruiting
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT06396689
Acronym
NapBiome
Enrollment
380
Registered
2024-05-02
Start date
2025-03-01
Completion date
2029-02-28
Last updated
2025-02-20

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Neurobehavioral Manifestations, Sleep Problem

Keywords

microbiome, infant, gut, metagenomics, development, metabolics, pre-term, probiotics, synbiotics, brain-gut

Brief summary

The gut-brain axis plays a crucial role in the regulation and development of psychological and physical processes. The first year of life is a critical period for the development of the gut microbiome, which parallels important milestones in establishing sleep rhythm and neurodevelopment. Growing evidence suggests that the gut microbiome influences sleep, cognition, and early neurodevelopment. For term and preterm-born infants, difficulties in sleep regulation can have major consequences on infants' health, attachment between infants and their caregivers, and can even lead to life-threatening consequences such as shaken-baby syndrome. Preterm born infants are at even higher risk for sleep and neurodevelopmental problems. Although neonatal care has improved over recent decades, preterm birth rates continue to rise and lead to a wide range of neurodevelopmental disabilities that are unaddressed with current therapies. Given the importance of sleep and the gut microbiome for brain maturation, neurodevelopment, and behavior, identifying effective interventions within the gut-brain axis at the beginning of life is likely to have long-term implications for health and development of at-risk infants. The aims of this project are to I) demonstrate the association between the gut microbiome, sleep patterns and health outcomes in children up to two years of age; and II) to leverage gut microbiome-brain-sleep interactions to develop new intervention strategies for at-risk infants. The investigators hypothesize that the establishment of a healthy gut microbiome during early life is crucial for both short- and long-term child health outcomes, as dysbiosis can harm sleep regulation, brain maturation, and neurobehavioral development. The investigators predict that the administration of synbiotics improves microbiota establishment, sleep rhythm, and neurodevelopmental outcomes. This project integrates a randomized controlled trial (RCT), ex vivo, and in silico experiments with I) key technology platforms for computational modeling to capture the ontogenic norms of gut microbiota; II) neuronal and actimetry-based quantification of multidimensional aspects of infant sleep; III) breath metabolomics (exhalomics) of host and microbiome metabolism; and IV) high-throughput ex vivo models for investigating host-microbiome interactions. Outcomes include I) an understanding of age-normative microbiome composition, its variation (circadian, inter-individual), and the factors that influence the microbiome's plasticity throughout infancy; II) actionable knowledge of microbial species and metabolism that can be targeted to modify sleep regulation and improve neurodevelopmental outcomes, especially in at-risk infants (e.g., preterm-born); III) microbial and metabolic biomarkers with diagnostic potential for later regulatory and behavioral problems; and IV) an open-source analytical toolbox for microbial multi-omics that can be immediately applied in other areas of microbiome-host research. To achieve these goals, our strategy combines multiple disciplines focusing on factors that exert the greatest influence on health during infancy: the gut microbiome, sleep regulation, and neurodevelopment. The impact of this project is substantial and globally relevant, as it advances possible treatment options for supporting neurodevelopmental health in preterm- and term-born infants, explores novel translational approaches for addressing regulatory difficulties, and provides key information for tailored prophylactic synbiotics and possible development of post-biotics. Further, the study supports the investigation of biomarkers for neurodevelopment and advances early prevention of developmental and mental illnesses.

Interventions

DIETARY_SUPPLEMENTSynbiotic

The capsule contains Lactobacillus helveticus R0052, Bifidobacterium infantis R0033, and Bifidobacterium bifidum R0071 (3 billion bacteria per capsule), as well as zinc oxide, potato starch fructooligosaccharides, coating agent, methyl hydroxypropyl cellulose, anti-caking agent and magnesium stearat

DIETARY_SUPPLEMENTPlacebo

The capsule contains zinc oxide, coating agent, methyl hydroxypropyl cellulose, anti-caking agent and magnesium stearat

Sponsors

University of Luzern
CollaboratorOTHER
Swiss Federal Institute of Technology in Zurich (ETHZ)
CollaboratorUNKNOWN
Petra Zimmermann
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
FACTORIAL
Primary purpose
PREVENTION
Masking
QUADRUPLE (Subject, Caregiver, Investigator, Outcomes Assessor)

Eligibility

Sex/Gender
ALL
Age
0 Days to 7 Days
Healthy volunteers
Yes

Inclusion criteria

Preterm-arm: * neonates born between a gestational age of 34 0/7 to 36 6/7 weeks * partially breast-fed at the time of inclusion Term-arm * neonates born at a gestational age of ≥ 37 0/7 weeks Infants need to be * partially breast-fed at the time of inclusion

Exclusion criteria

Infants who * receive probiotics outside the trial design * have a birth weight \< 1500 g * were prenatally drug-exposed (cannabis, cocaine, heroin, opiates, and alcohol) * have suspected or confirmed immunodeficiency * have an underlying disease (excluding transient conditions such as alimentation problems, hyperbilirubinemia, hypoglycaemia, anemia, respiratory distress syndrome or apnea-bradycardia syndrome), congenital malformations, central nervous system disease or injury or congenital infections

Design outcomes

Primary

MeasureTime frameDescription
Breath metabolomeup to two years of ageComposition of breath metabolites
Sleep-wake behaviorup to two years of ageBrief Infant Sleep Questionnaire BISQ, actinometry and sleep-wake diary
Neuronal connectivityup to two years of ageHigh-density EEG during sleep
Neurobehavioral developmentup to two years of ageBayley Scales of Infant Development
Behaviorup to two years of ageInfant Behavior Questionnaire
Gut microbiotaup to two years of ageComposition of stool microbiota
Stool metabolomeup to two years of ageComposition of stool metabolites

Secondary

MeasureTime frameDescription
Food allergyup to two years of ageSkin prick test
Rates of infectionup to two years of ageNumber of episodes
Breast milk microbiotaup to two years of ageComposition investigated trough shotgun metagenomic sequencing
Nasal microbiotaup to two years of ageComposition investigated trough shotgun metagenomic sequencing
Oral microbiotaup to two years of ageComposition investigated trough shotgun metagenomic sequencing
Eczemaup to two years of ageSCORing Atopic Dermatitis scoring system (SCORAD)

Countries

Switzerland

Contacts

Primary ContactPetra Zimmermann, MD, PhD
petra.zimmermann@unifr.ch+412063060000

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026