Procedural Sedation in Pediatric Gastroenterology: A Narrative Review from the Shared Perspective of Pediatric Gastroenterology and Anesthesiology
Highlights
- Propofol-, ketamine-, and dexmedetomidine-based regimens dominate pediatric gastrointestinal sedation; remimazolam and esketamine are emerging, but pediatric data remain limited.
- Capnography detects hypoventilation before desaturation, and high-flow nasal oxygen reduces hypoxemia in adults, but pediatric evidence remains limited and not yet statistically significant.
- Aim for the lightest effective sedation, matched to the procedure and a structured risk tier, with capnography-supported monitoring and consistent complication reporting.
- Because much of the pediatric evidence is extrapolated from adults, the efficacy of high-flow nasal oxygen and the role of remimazolam and esketamine require adequately powered pediatric trials before firm recommendations can be made.
Abstract
1. Introduction
2. Materials and Methods
3. Gastrointestinal Procedures and Their Sedation Needs
3.1. Upper Gastrointestinal Endoscopy (EGD)
3.2. Colonoscopy and Flexible Sigmoidoscopy
3.3. ERCP
3.4. PEG, Capsule Endoscopy, Functional Studies, and Liver Biopsy
4. The Sedation Continuum and Pediatric Physiology
Pediatric Physiology and Pharmacology
5. Procedure-Specific Sedation and Anesthesia
- EGD. The left-lateral position, adequate depth, a bite block, and control of secretions all help, and secretion control is one reason some teams favor ketamine or dexmedetomidine. A short diagnostic EGD is usually manageable under moderate sedation, whereas therapeutic work requires an analgesic component [3,4].
- ERCP. Length, complexity, the prone position, and pancreatobiliary manipulation favor deep sedation or GA. If deep sedation is chosen, capnography and a written rescue-airway plan are essential, and supplemental oxygen is provided, with high-flow nasal oxygen considered in selected high-risk patients; dexmedetomidine–propofol or propofol–ketamine combinations balance stability against analgesia [1].
- PEG placement. This involves pain, aspiration risk, and gastric distension. It requires adequate analgesia (ketamine or an opioid), confirmation of fasting, and consideration of antibiotic prophylaxis [1].
- Foreign-body or caustic ingestion (emergency). When fasting is inadequate the aspiration risk rises; for button batteries and magnets the procedure is performed without delay, usually under GA with endotracheal intubation to protect the airway [1].
- Functional studies. Sedatives alter motility, so the target is minimal anxiolysis or no sedation, supported by behavioral preparation.
6. Pharmacologic Agents and Their Properties
6.1. Benzodiazepines
6.2. Opioids
6.3. Hypnotics: Propofol and Etomidate
6.4. The Dissociative Agent: Ketamine
6.5. The Alpha-2 Agonist: Dexmedetomidine
6.6. Combinations and Adjuncts
- Ketofol (propofol + ketamine). Ketamine’s sympathomimetic and respiratory-sparing effects offset propofol’s hypotensive and depressant effects, yielding steadier hemodynamics and often a lower total propofol dose; a common mix is 1:1 (mg:mg) titrated in small boluses [24]. In upper GI endoscopy, propofol–ketamine provided better hemodynamic stability than propofol–fentanyl [24].
- Propofol + opioid (fentanyl). Improves analgesia for painful manipulation such as dilation or polypectomy; capnography is mandatory because of additive respiratory depression [13].
- Propofol + dexmedetomidine. Lowers propofol use and may improve respiratory safety, at the cost of bradycardia and slower recovery.
- Midazolam + narcotic (meperidine/fentanyl). The most established conventional regimen; the availability of antidotes for both components (flumazenil and naloxone) is a clear safety advantage, but efficacy is often suboptimal and additional restraint or deepening may be needed [4].
- Adjuncts. IV lidocaine (0.5–1 mg/kg) eases propofol injection pain; ondansetron reduces nausea and vomiting with polypectomy or opioid use; anticholinergics control secretions.
| Agent | Pharmacologic Class | IV Onset | Peak (min) | Duration (min) | Typical Dose (Bolus/Infusion) | Advantage | Limit/Caution | Antagonist? | Notes |
|---|---|---|---|---|---|---|---|---|---|
| Midazolam | Benzodiazepine (GABA-A modulator) | 1–2 min | 3–5 | 20–40 | 0.05–0.1 mg/kg IV (max total 0.1) | Anxiolysis, amnesia | No analgesia; paradoxical agitation | Flumazenil | Core premedication for minimal/moderate sedation |
| Propofol | Alkylphenol IV hypnotic (GABA-A) | 30–45 s | 1–2 | 5–10 (bolus); longer on infusion | 0.5–1 mg/kg boluses; inf 75–200 µg/kg/min | Rapid onset and recovery | Apnea, hypotension, injection pain | No (specific) | Not analgesic; add analgesia for painful work |
| Ketamine | Dissociative anesthetic (NMDA antag.) | 30–60 s | 1–2 | 10–20 | 0.5–1 mg/kg; top-up 0.25–0.5 mg/kg | Hemodynamic stability, strong analgesia, preserved reflexes | Hypersalivation, emergence, nausea | No (specific) | Antisialogogue + calm environment reduce emergence |
| Esketamine | NMDA antagonist (S-ketamine) | 30–60 s | 1–2 | 10–20 | 0.25–0.5 mg/kg (more potent) | Similar analgesia at lower dose | Hypersalivation, cost, emergence | None direct | Dose ~30–50% lower than ketamine |
| Dexmedetomidine | Selective alpha-2 agonist | 5–10 min (load) | 10–15 | Infusion-dependent | Load 0.5–1 µg/kg (10 min); inf 0.2–0.7 µg/kg/h | Minimal respiratory depression, cooperative | Bradycardia, hypotension, slow onset | Atipamezole (not routine) | Slow titration; reversal not routine |
| Fentanyl | Phenylpiperidine µ-opioid | 1–2 min | 3–5 | 20–40 | 0.5–1 µg/kg; top-up 0.25–0.5 µg/kg | Strong, short analgesia | Resp. depression, chest rigidity | Naloxone | Small fractional boluses; capnography required |
| Sufentanil | Super-potent µ-opioid | 1–2 min | 3–5 | 30–50 | 0.1–0.2 µg/kg; top-up 0.1 µg/kg | Very potent, small volume | Dosing-error risk, resp. depression | Naloxone | Narrow window; pump/standard protocol |
| Etomidate | Imidazole IV hypnotic | 30–60 s | 1 | 5–15 | 0.1–0.2 mg/kg IV | Hemodynamically neutral | Myoclonus, nausea, adrenal suppression | No (specific) | Limited use in pediatric endoscopy |
| Lidocaine (IV adjunct) | Amide local anesthetic (Na+ block) | 30–60 s | 1–2 | 5–10 | 0.5–1.5 mg/kg (before propofol) | Lowers propofol need/injection pain | Toxicity at high dose | None (lipid rescue) | Watch cumulative dose (3–5 mg/kg) |
| Remimazolam | Ultra-short benzodiazepine (esterase) | 1–2 min | 3–5 | Short (rapid offset) | 0.05–0.1 mg/kg or weight-based infusion | Fast titration and recovery | Limited pediatric data, cost | Flumazenil | Approval/dosing institution-specific |
| Combination | Goal | Example Starting Doses | Expected Benefit | Specific Risk/Monitoring Focus |
|---|---|---|---|---|
| Propofol + ketamine | Hemodynamic and respiratory balance | Propofol 0.5 mg/kg + ketamine 0.5 mg/kg | Lower propofol need; stable BP | Emergence (ketamine); apnea (propofol) |
| Propofol + opioid | Add analgesia (e.g., polypectomy) | Propofol 0.5–1 mg/kg + fentanyl 0.5 µg/kg | Better pain control | Synergistic respiratory depression |
| Propofol + dexmedetomidine | Respiratory safety; less propofol | Dexmedetomidine load 0.5 µg/kg + propofol titration | More stable ventilation | Bradycardia; delayed recovery |
| Ketamine + dexmedetomidine | Counterbalanced hemodynamics | Ketamine 0.5 mg/kg + dexmedetomidine load 0.5 µg/kg | Less emergence; more stability | Bradycardia; salivation |
| Ketamine + midazolam | Anxiolysis + analgesia | Ketamine 0.5–1 mg/kg + midazolam 0.03 mg/kg | Less agitation/emergence | Respiratory depression (rare synergy) |
7. Risk Groups and Risk Stratification
Special Populations and Adjustments
- Obesity and OSA. The upper airway collapses more easily and desaturation is more likely; a ramped or head-up position, an early airway adjunct, a minimal-opioid strategy, and dosing on ideal or adjusted weight all help. In OSA, dexmedetomidine- or ketamine-based protocols may be preferable.
- Congenital heart disease. In cyanotic lesions, a fall in systemic vascular resistance can increase right-to-left shunting; slow propofol titration, the hemodynamic margin of ketamine, and frequent noninvasive blood-pressure checks are all important.
- Neurodevelopmental disorders. Cooperation may be poor and paradoxical reactions may occur; a quiet room, parental presence, and ketamine or ketofol can help.
- Hepatic or renal impairment. Delayed elimination adds to the cumulative sedative load; widen dosing intervals and choose a short-acting agent where possible.
- Recent upper respiratory infection. Increased secretions and reflex reactivity raise the laryngospasm risk; weigh urgency against risk, and either postpone or plan a ketamine-led approach with gentle handling and secretion control [3]. In a recent systematic review, recent upper respiratory infection was one of three independent predictors of serious adverse events during pediatric ketamine sedation, together with age of 10 years or older and coadministered opioids [28].
- Repeated sedation (IBD surveillance, serial endoscopy). The long-term neurodevelopmental risk is unresolved; because a single short exposure appears reassuring [15] while cumulative exposure is best minimized [17], the sensible course is the lightest effective strategy, behavioral optimization, and combining elective procedures into a single setting when feasible.
8. Monitoring
Oxygen-Delivery Techniques: A Comparison
9. Tips and Tricks
9.1. Planning and Preparation
- Target the lightest level that allows safe completion; set the target from the length of the case, its pain intensity, and airway involvement.
- Use a structured pre-procedure checklist: (1) identity and indication; (2) fasting confirmation; (3) target sedation depth; (4) risk tier; (5) team roles; (6) airway plan A/B/C; (7) drugs and antidotes; (8) monitors on; (9) emergency equipment; (10) time-out sign-off.
- In anxious children, oral (0.5 mg/kg) or intranasal (0.2 mg/kg) midazolam premedication eases IV placement and separation from parents [1].
- Behavioral support (age-appropriate explanation, parental presence, virtual reality, play therapy, music) can lower the sedative requirement and improve cooperation.
9.2. During the Procedure
- Give small fractional boluses (e.g., propofol 0.5 mg/kg) and observe the clinical response for 60–90 s after each, rather than a start–stop approach, to avoid over-deepening in children.
- Balanced low-dose combinations (ketofol, or propofol plus a low-dose opioid) can improve hemodynamic stability and limit the dose of any single agent; in pediatric upper GI endoscopy, propofol–ketamine gave better hemodynamic stability than propofol–fentanyl [24].
- Preoxygenate (≥3–5 min of 100% O2 or 5–8 deep breaths); in higher-risk phenotypes keep a plan-B airway (nasopharyngeal airway, video laryngoscope) ready.
- In obesity or with lipophilic agents, dose by ideal or adjusted body weight and avoid overloading.
- For oral procedures, use nasal oxygen with integrated capnography (a second oxygen source) and position the bite block so it does not conflict with the scope.
- Ease propofol injection pain with IV lidocaine (0.5 mg/kg) or a larger vein; control secretions with an anticholinergic before or alongside ketamine.
9.3. Preventing and Managing Complications
- Upper airway obstruction. Jaw-thrust or mandibular advancement, sniffing position, oropharyngeal or nasopharyngeal airway, 100% O2, and positive-pressure ventilation if needed.
- Propofol-related hypotension. Fluid bolus (5–10 mL/kg isotonic) and a slower rate; a vasopressor (ephedrine or phenylephrine) if it persists.
- Dexmedetomidine-related bradycardia. Atropine (0.02 mg/kg) if symptomatic, or reduce the infusion [31].
- Ketamine emergence reaction or hypersalivation. Reduce ambient stimulation and give a small dose of midazolam if needed; treat secretions with glycopyrrolate [26].
- Rescue readiness. In high-risk cases keep at least two staff competent in sedation, one with advanced airway experience; run annual crisis-resource-management simulation; and close the loop with post-event debriefs [3].
9.4. Quality and Safety Metrics
10. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| AAP | American Academy of Pediatrics |
| AAPD | American Academy of Pediatric Dentistry |
| ASA | American Society of Anesthesiologists |
| EGD | Esophagogastroduodenoscopy |
| ERCP | Endoscopic retrograde cholangiopancreatography |
| ETT | Endotracheal tube |
| GA | General anesthesia |
| HFNO | High-flow nasal oxygen |
| LMA | Laryngeal mask airway |
| NORA | Non-operating-room anesthesia |
| NPO | Nil per os |
| OSA | Obstructive sleep apnea |
| PEG | Percutaneous endoscopic gastrostomy |
| PSRC | Pediatric Sedation Research Consortium |
| RCT | Randomized controlled trial |
References
- ASGE Standards of Practice Committee; Lightdale, J.R.; Acosta, R.; Shergill, A.K.; Chandrasekhara, V.; Chathadi, K.; Early, D.; Evans, J.A.; Fanelli, R.D.; Fisher, D.A.; et al. Modifications in endoscopic practice for pediatric patients. Gastrointest. Endosc. 2014, 79, 699–710. [Google Scholar] [CrossRef] [Scilit]
- Thomson, M.; Tringali, A.; Dumonceau, J.M.; Tavares, M.; Tabbers, M.M.; Furlano, R.; Spaander, M.; Hassan, C.; Tzvinikos, C.; Ijsselstijn, H.; et al. Paediatric gastrointestinal endoscopy: ESPGHAN and ESGE Guidelines. J. Pediatr. Gastroenterol. Nutr. 2017, 64, 133–153. [Google Scholar] [CrossRef] [Scilit]
- Krauss, B.; Green, S.M. Sedation and analgesia for procedures in children. N. Engl. J. Med. 2000, 342, 938–945. [Google Scholar] [CrossRef] [Scilit]
- Oh, S.H. Sedation in pediatric esophagogastroduodenoscopy. Clin. Endosc. 2018, 51, 120–128. [Google Scholar] [CrossRef] [Scilit]
- Coté, C.J.; Wilson, S.; American Academy of Pediatrics; American Academy of Pediatric Dentistry. Guidelines for monitoring and management of pediatric patients before, during, and after sedation for diagnostic and therapeutic procedures. Pediatrics 2019, 143, e20191000. [Google Scholar] [CrossRef] [Scilit]
- Coté, C.J.; Notterman, D.A.; Karl, H.W.; Weinberg, J.A.; McCloskey, C. Adverse sedation events in pediatrics: A critical incident analysis of contributing factors. Pediatrics 2000, 105, 805–814. [Google Scholar] [CrossRef] [Scilit]
- Tringali, A.; Thomson, M.; Dumonceau, J.M.; Tavares, M.; Tabbers, M.M.; Furlano, R.; Spaander, M.; Hassan, C.; Tzvinikos, C.; Ijsselstijn, H.; et al. Pediatric gastrointestinal endoscopy: ESGE and ESPGHAN Guideline Executive summary. Endoscopy 2017, 49, 83–91. [Google Scholar] [CrossRef] [Scilit]
- Song, X.; Lei, D.; Cui, Y.; Du, Z.; Jia, Y.; Jin, Y.; Tian, H.; Xu, Y.; Yang, L.; Zhang, J.; et al. Chinese Society of Pediatric Anesthesiology Guideline for Pediatric Sedation (2025). Paediatr. Anaesth. 2026, 36, 850–871. [Google Scholar] [CrossRef] [Scilit]
- Mahoney, L.B.; Lightdale, J.R. The evolution of sedation for pediatric gastrointestinal endoscopy. Gastrointest. Endosc. Clin. N. Am. 2023, 33, 213–234. [Google Scholar] [CrossRef] [Scilit]
- van Beek, E.J.; Leroy, P.L. Safe and effective procedural sedation for gastrointestinal endoscopy in children. J. Pediatr. Gastroenterol. Nutr. 2012, 54, 171–185. [Google Scholar] [CrossRef] [Scilit]
- Orel, R.; Brecelj, J.; Dias, J.A.; Romano, C.; Barros, F.; Thomson, M.; Vandenplas, Y. Review on sedation for gastrointestinal tract endoscopy in children by non-anesthesiologists. World J. Gastrointest. Endosc. 2015, 7, 895–911. [Google Scholar] [CrossRef] [Scilit]
- Isoldi, S.; Cucchiara, S.; Repici, A.; Lerner, D.G.; Thomson, M.; Oliva, S. Gastrointestinal endoscopy in children and adults: How do they differ? Dig. Liver Dis. 2021, 53, 697–705. [Google Scholar] [CrossRef] [Scilit]
- ASGE Standards of Practice Committee; Early, D.S.; Lightdale, J.R.; Vargo, J.J., II; Acosta, R.D.; Chandrasekhara, V.; Chathadi, K.V.; Evans, J.A.; Fisher, D.A.; Fonkalsrud, L.; et al. Guidelines for sedation and anesthesia in GI endoscopy. Gastrointest. Endosc. 2018, 87, 327–337. [Google Scholar] [CrossRef] [Scilit]
- Tobias, J.D.; Cravero, J.P. (Eds.) Procedural Sedation for Infants, Children, and Adolescents; American Academy of Pediatrics: Itasca, IL, USA, 2016. [Google Scholar]
- Davidson, A.J.; Disma, N.; de Graaff, J.C.; Withington, D.E.; Dorris, L.; Bell, G.; Stargatt, R.; Bellinger, D.C.; Schuster, T.; Arnup, S.J.; et al. Neurodevelopmental outcome at 2 years of age after general anaesthesia and awake-regional anaesthesia in infancy (GAS): An international, multicentre, randomised, controlled trial. Lancet 2016, 387, 239–250. [Google Scholar] [CrossRef] [Scilit]
- McCann, M.E.; de Graaff, J.C.; Dorris, L.; Disma, N.; Withington, D.; Bell, G.; Grobler, A.; Stargatt, R.; Hunt, R.W.; Sheppard, S.J.; et al. Neurodevelopmental outcome at 5 years of age after general anaesthesia or awake-regional anaesthesia in infancy (GAS): An international, multicentre, randomised, controlled equivalence trial. Lancet 2019, 393, 664–677. [Google Scholar] [CrossRef] [Scilit]
- U.S. Food and Drug Administration. FDA Drug Safety Communication: FDA Review Results in New Warnings About Using General Anesthetics and Sedation Drugs in Young Children and Pregnant Women; U.S. FDA: Silver Spring, MD, USA, 2016.
- Krauss, B.; Green, S.M. Procedural sedation and analgesia in children. Lancet 2006, 367, 766–780. [Google Scholar] [CrossRef] [Scilit]
- Cravero, J.P.; Blike, G.T.; Beach, M.; Gallagher, S.M.; Hertzog, J.H.; Havidich, J.E.; Gelman, B.; the Pediatric Sedation Research Consortium. Incidence and nature of adverse events during pediatric sedation/anesthesia for procedures outside the operating room: Report from the Pediatric Sedation Research Consortium. Pediatrics 2006, 118, 1087–1096. [Google Scholar] [CrossRef] [Scilit]
- Elrosasy, A.; Hindawi, M.D.; Zeid, M.A.; Awad, A.A.; Abbas, A.W.; Azzawi, M.A.D.A.; Afifi, E.; Amgad, A.; Yasser, M.; Sarhan, K.; et al. A comprehensive systematic review of randomized controlled trials on anesthetic agents in children’s upper gastrointestinal endoscopy: Highlighting safety concerns and efficacy. Naunyn-Schmiedebergs Arch. Pharmacol. 2025, 399, 1851–1869. [Google Scholar] [CrossRef] [Scilit]
- Liu, T.T.; Chen, J.; Jin, X.; Yang, Z.-S.; Yu, X.-Q.; Xiao, F.; Huang, X.-D. Obesity reduces the median effective dose of remimazolam in aged 6–18 pediatric patients for procedural sedation. Drug Des. Devel. Ther. 2026, 20, 610851. [Google Scholar] [CrossRef] [Scilit]
- Chiaretti, A.; Benini, F.; Pierri, F.; Vecchiato, K.; Ronfani, L.; Agosto, C.; Ventura, A.; Genovese, O.; Barbi, E. Safety and efficacy of propofol administered by paediatricians during procedural sedation in children. Acta Paediatr. 2014, 103, 182–187. [Google Scholar] [CrossRef] [Scilit]
- Barbi, E.; Petaros, P.; Badina, L.; Pahor, T.; Giuseppin, I.; Biasotto, E.; Martelossi, S.; Di Leo, G.; Sarti, A.; Ventura, A. Deep sedation with propofol for upper gastrointestinal endoscopy in children, administered by specially trained pediatricians. Endoscopy 2006, 38, 368–375. [Google Scholar] [CrossRef] [Scilit]
- Tosun, Z.; Aksu, R.; Guler, G.; Esmaoglu, A.; Akin, A.; Aslan, D.; Boyaci, A. Propofol-ketamine vs. propofol-fentanyl for sedation during pediatric upper gastrointestinal endoscopy. Paediatr. Anaesth. 2007, 17, 983–988. [Google Scholar] [CrossRef] [Scilit]
- Grunwell, J.R.; Travers, C.; McCracken, C.E.; Scherrer, P.D.; Stormorken, A.G.; Chumpitazi, C.E.; Roback, M.G.; Stockwell, J.A.; Kamat, P.P.M. Procedural sedation outside of the operating room using ketamine in 22,645 children: A report from the Pediatric Sedation Research Consortium. Pediatr. Crit. Care Med. 2016, 17, 1109–1116. [Google Scholar] [CrossRef] [Scilit]
- Green, S.M.; Roback, M.G.; Kennedy, R.M.; Krauss, B. Clinical practice guideline for emergency department ketamine dissociative sedation: 2011 update. Ann. Emerg. Med. 2011, 57, 449–461. [Google Scholar] [CrossRef] [Scilit]
- Kidd, L.R.; Lyons, S.C.; Lloyd, G. Paediatric procedural sedation using ketamine in a UK emergency department: A 7 year review of practice. Br. J. Anaesth. 2016, 116, 518–523. [Google Scholar] [CrossRef] [Scilit]
- Green, S.M.; Roback, M.G. Systematic Review of Pediatric Ketamine in Emergency Department Procedural Sedation: Frequency and Predictors of Adverse Events. Ann. Emerg. Med. 2026, 88, 470–480. [Google Scholar] [CrossRef] [Scilit]
- Brecelj, J.; Trop, T.K.; Orel, R. Ketamine with and without midazolam for gastrointestinal endoscopies in children. J. Pediatr. Gastroenterol. Nutr. 2012, 54, 748–752. [Google Scholar] [CrossRef] [Scilit]
- Mason, K.P.; Lerman, J. Dexmedetomidine in children: Current knowledge and future applications. Anesth. Analg. 2011, 113, 1129–1142. [Google Scholar] [CrossRef] [Scilit]
- Mahmoud, M.; Mason, K.P. Dexmedetomidine: Review, update, and future considerations of paediatric perioperative and periprocedural applications and limitations. Br. J. Anaesth. 2015, 115, 171–182. [Google Scholar] [CrossRef] [Scilit]
- Turunc, E.; Ustun, Y.B.; Bilgin, S.; Kaya, C.; Koksal, E.; Dost, B. Effect of nebulized dexmedetomidine on gag reflex suppression and sedation quality in pediatric patients undergoing gastrointestinal endoscopy: A randomized controlled trial. BMC Anesthesiol. 2025, 25, 227. [Google Scholar] [CrossRef] [Scilit]
- Joshi, G.P.; Abdelmalak, B.B.; Weigel, W.A.; Harbell, M.W.; Kuo, C.I.; Soriano, S.G.; Stricker, P.A.; Tipton, T.; Grant, M.D.; Marbella, A.M.; et al. 2023 American Society of Anesthesiologists Practice Guidelines for Preoperative Fasting: Carbohydrate-containing Clear Liquids with or without Protein, Chewing Gum, and Pediatric Fasting Duration—A Modular Update of the 2017 American Society of Anesthesiologists Practice Guidelines for Preoperative Fasting. Anesthesiology 2023, 138, 132–151. [Google Scholar] [CrossRef] [Scilit]
- Cho, E.; Song, J.; Huh, J.; Kang, I.; Kim, H.J.; Youn, I.Y.; Lee, H.; Kwak, J.H. Evaluation of modified fasting protocols to shorten fasting time before sedation in children: A prospective randomized noninferiority trial. Paediatr. Anaesth. 2025, 35, 753–760. [Google Scholar] [CrossRef] [Scilit]
- Lightdale, J.R.; Goldmann, D.A.; Feldman, H.A.; Newburg, A.R.; DiNardo, J.A.; Fox, V.L. Microstream capnography improves patient monitoring during moderate sedation: A randomized, controlled trial. Pediatrics 2006, 117, e1170–e1178. [Google Scholar] [CrossRef] [Scilit]
- Thiruvenkatarajan, V.; Sekhar, V.; Wong, D.T.; Currie, J.; Van Wijk, R.; Ludbrook, G.L. Effect of high-flow nasal oxygen on hypoxaemia during procedural sedation: A systematic review and meta-analysis. Anaesthesia 2023, 78, 81–92. [Google Scholar] [CrossRef] [Scilit]
- Geng, H.; Yao, C.; Wu, L.; Zhong, J.; Wang, R.; Chen, F. Effect of transnasal humidified rapid-insufflation ventilatory exchange on the incidence of hypoxemia in sedated gastroscopy in children: A randomised controlled trial. BMC Pediatr. 2025, 25, 669. [Google Scholar] [CrossRef] [Scilit]
- Zhao, K.; Li, Y.; Wang, Q.; Zhang, J.; Zhou, J. Effect of high-flow nasal oxygen therapy on perioperative hypoxemia in children: A systematic review and meta-analysis. BMC Anesthesiol. 2025, 25, 428. [Google Scholar] [CrossRef] [Scilit]
- Murray-Torres, R.; Belani, K.G. Pediatric procedures in endoscopy and radiology: Clinical considerations. Curr. Opin. Anaesthesiol. 2026, 39, 510–517. [Google Scholar] [CrossRef] [Scilit]
- Landrigan-Ossar, M.; Setiawan, C.T. Pediatric anesthesia outside the operating room: Safety and systems. Anesthesiol. Clin. 2020, 38, 577–586. [Google Scholar] [CrossRef] [Scilit]
| Procedure | Typical Sedation Target | Points to Watch |
|---|---|---|
| Diagnostic EGD | Moderate-to-deep sedation | Gag reflex; airway shared with scope; laryngospasm |
| Therapeutic EGD | Deep sedation/GA | Foreign body or battery (GA + intubation); bleeding; dilation pain |
| Colonoscopy | Deep sedation | Distension pain; dehydration and electrolytes after preparation |
| Sigmoidoscopy | Light-to-moderate sedation | Short; deepen if biopsy or analgesia is needed |
| ERCP | GA in most cases | Prone position; long duration; aspiration; post-ERCP pancreatitis |
| PEG | Deep sedation/GA | Aspiration; gastric distension; antibiotic prophylaxis |
| Capsule endoscopy | Usually none | Short EGD for placement if the child cannot swallow the capsule |
| pH-impedance/manometry | Minimal/none | Sedation alters the readings; use behavioral support |
| Level | Response to Stimulus | Airway/Ventilation | Cardiovascular |
|---|---|---|---|
| Minimal (anxiolysis) | Normal verbal response | Unaffected | Unaffected |
| Moderate (conscious) | Purposeful to verbal/tactile | Usually intact; mild hypoventilation risk | Usually stable |
| Deep | Purposeful to repeated/painful | May be depressed; intervention possible | Usually stable |
| General anesthesia | No response | Often needs intervention (LMA/ETT) | May be impaired |
| Technique | Mechanism/Typical Flow | Evidence in Sedation | Pediatric Notes/Limits |
|---|---|---|---|
| Low-flow nasal cannula | 1–10 L/min; FiO2 depends on breathing | Standard; reduces desaturation magnitude [13] | Practical when the nose is free; baseline comparator |
| Simple face mask | ≥5 L/min; higher FiO2 than cannula | Conventional method [13] | Competes with the oral scope in EGD |
| Bite-block/mouth-guard O2 insufflation | 10–15 L/min; delivered around the scope | Conventional method in upper endoscopy [13] | Suits oral endoscopy; alternative to nasal route |
| High-flow nasal oxygen (HFNO) | Heated, humidified; up to ~70 L/min (adults), weight-based (children); low CPAP + dead-space washout | Reduces hypoxemia, airway maneuvers, interruptions; raises min SpO2; no hypercarbia effect [36,37,38] | Pediatric benefit suggested but subgroup not significant; cost/access limits [36,38] |
| Capnography-integrated nasal cannula | Nasal O2 + ETCO2 sampling | Detects hypoventilation before desaturation [13,35] | Suits oral (EGD) procedures |
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Cesur, S.; Uyar Aksu, N.; Uncuoğlu, A.; Çardaközü, T.; İçli, D. Procedural Sedation in Pediatric Gastroenterology: A Narrative Review from the Shared Perspective of Pediatric Gastroenterology and Anesthesiology. Children 2026, 13, 1294. https://doi.org/10.3390/children13101294
Cesur S, Uyar Aksu N, Uncuoğlu A, Çardaközü T, İçli D. Procedural Sedation in Pediatric Gastroenterology: A Narrative Review from the Shared Perspective of Pediatric Gastroenterology and Anesthesiology. Children. 2026; 13(10):1294. https://doi.org/10.3390/children13101294
Chicago/Turabian StyleCesur, Sevim, Nihal Uyar Aksu, Ayşen Uncuoğlu, Tülay Çardaközü, and Dilek İçli. 2026. "Procedural Sedation in Pediatric Gastroenterology: A Narrative Review from the Shared Perspective of Pediatric Gastroenterology and Anesthesiology" Children 13, no. 10: 1294. https://doi.org/10.3390/children13101294
APA StyleCesur, S., Uyar Aksu, N., Uncuoğlu, A., Çardaközü, T., & İçli, D. (2026). Procedural Sedation in Pediatric Gastroenterology: A Narrative Review from the Shared Perspective of Pediatric Gastroenterology and Anesthesiology. Children, 13(10), 1294. https://doi.org/10.3390/children13101294

