Post-Surgical Gut Microbiota Alterations in Pediatric Patients with Intestinal Disorders
Abstract
1. Introduction
2. Methodology
2.1. Study Design and Search Strategy
2.2. Inclusion and Exclusion Criteria
2.3. Process of Selecting the Studies
2.4. Data Extraction and Data Analysis
3. Physiology and Function of Gut Microbiota
4. Surgical Vulnerability of the Developing Gut Microbiota
5. Disruption of the Gut Microbiota in Intestinal Pediatric Surgical Diseases
6. The Impact of Surgical Stress on Gut Microbiota in Pediatric Patients
7. Alterations in Gut Microbiota After Intestinal Surgery in Pediatric Diseases
7.1. Necrotizing Enterocolitis
7.2. Hirschsprung’s Disease and Hirschsprung’s-Associated Enterocolitis
7.3. Inflammatory Bowel Disease
7.4. Short Bowel Syndrome
8. GM-Related Post-Surgical Complications of Intestinal Surgery in Pediatric Patients
8.1. Infection
8.2. Intestinal Obstruction
8.3. Anastomotic Leak
9. Future Research
9.1. Establishing Causation: From Dysbiosis to Complication
9.2. Towards Personalized Surgical Prehabilitation
9.2.1. Dietary Prehabilitation
9.2.2. Precision Antimicrobials
9.2.3. Probiotic/Prebiotic Supplementation
9.2.4. Immunonutrition
9.3. Next-Generation Therapeutics: Precision Microbiota Engineering
10. Limitations
11. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| GM | Gut microbiota |
| NEC | Necrotizing enterocolitis |
| HD | Hirschsprung’s disease |
| IBD | Inflammatory bowel disease |
| SBS | Short bowel syndrome |
| HAEC | Hirschsprung’s-associated-enterocolitis |
| 16S rRNA | 16S ribosomal RNA |
| SCFAs | Short-chains fatty acids |
| CKD | Chronic kidney disease |
| CD | Chron’s disease |
| IO | Intestinal obstruction |
| AL | Anastomotic leak |
| MRSA | Methicillin-resistant Staphylococcus aureous |
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| Type of Study | Disease | Gut Alterations | Outcomes | Authors (Year) Reference |
|---|---|---|---|---|
| Prospective case–control | NEC | ↓ Alpha diversity after full enteral nutrition ↑ Methylobacterium, Clostridiumbutyricum, and Acidobacteria | Enriched Escherichia coli and Pseudomonas; depleted Bacteroidales and Ruminococcaceae | Lin et al. (2023) [10] |
| Prospective observational | HD | Enriched Escherichia coli and Pseudomonas; depleted Bacteroidales and Ruminococcaceae | Baseline dysbiosis persists post-surgery, defining a state of ecological failure | Neuvonen et al. (2018) [11] |
| Retrospective | HD | ↓ Alpha diversity and altered beta diversity in total colonic aganglionosis vs. rectosigmoid | The extent of aganglionosis directly shapes the GM ecosystem | Pini Prato et al. (2019) [83] |
| Cross-sectional | HAEC | Proteobacteria-dominated GM | Bacteroides-rich community in stable patients | Yan et al. (2014) [56] |
| Cross-sectional | HAEC | Separate fungal dysbiosis: loss of diversity and bloom of Candida | HAEC involves a disruption of both bacterial and fungal communities | Frykman et al. (2015) [84] |
| Prospective observational | HD | Absence of healthy developmental trajectory: no increase in alpha diversity with age vs. healthy controls ↑ Fusobacteria linked to inflammation | Disrupted GM maturation is linked to persistent GI inflammation and symptoms post-pull-through | Murphy et al. (2025) [82] |
| Prospective observational | SΒS | ↑ Escherichia coli/Shigella ↑ Streptococcus Relative abundance of Lactobacillus noted in patients with diarrhea | Associated with D-lactic acidosis due to high D-lactate production, leading to metabolic acidosis | Davidovics et al. (2016) [66] |
| Systematic review | SBS | Depletion of beneficial SCFA-producers: ↓ Dorea, ↓ Ruminococcus, ↓ Blautia (genera from Lachnospiraceae family) in children on TPN | Deficit of protective microbial metabolites, exacerbating mucosal inflammation, likely driven by antibiotics and bacterial overgrowth | Cleminson et al. (2025) [92] |
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Vaou, N.; Zavras, N.; Saldari, C.; Voidarou, C.; Vrioni, G.; Tsakris, A.; Vaos, G.C. Post-Surgical Gut Microbiota Alterations in Pediatric Patients with Intestinal Disorders. J. Clin. Med. 2026, 15, 789. https://doi.org/10.3390/jcm15020789
Vaou N, Zavras N, Saldari C, Voidarou C, Vrioni G, Tsakris A, Vaos GC. Post-Surgical Gut Microbiota Alterations in Pediatric Patients with Intestinal Disorders. Journal of Clinical Medicine. 2026; 15(2):789. https://doi.org/10.3390/jcm15020789
Chicago/Turabian StyleVaou, Natalia, Nikolaos Zavras, Chrysa Saldari, Chrysoula (Chrysa) Voidarou, Georgia Vrioni, Athanasios Tsakris, and George C. Vaos. 2026. "Post-Surgical Gut Microbiota Alterations in Pediatric Patients with Intestinal Disorders" Journal of Clinical Medicine 15, no. 2: 789. https://doi.org/10.3390/jcm15020789
APA StyleVaou, N., Zavras, N., Saldari, C., Voidarou, C., Vrioni, G., Tsakris, A., & Vaos, G. C. (2026). Post-Surgical Gut Microbiota Alterations in Pediatric Patients with Intestinal Disorders. Journal of Clinical Medicine, 15(2), 789. https://doi.org/10.3390/jcm15020789

