Comparative Effectiveness of Treatment Options for Gestational Diabetes: A Systematic Review and Meta-Analysis
Abstract
1. Introduction
2. Methods
2.1. Eligibility Criteria
2.2. Information Sources
2.3. Search Strategy
2.4. Selection Process
2.5. Data Collection Process
2.6. Data Items

2.7. Study Risk of Bias Assessment
2.8. Effect Measures
2.9. Synthesis Methods
2.10. Reporting Bias Assessment
2.11. Certainty of Assessment
3. Results
3.1. Individual Study Results
- Maternal metabolic outcomes
- -
- Fasting blood glucose:
- -
- 2 h postprandial glycemia:
- -
- HbA1c levels:
- -
- Weight change:
- -
- Triglycerides levels:
- -
- Cholesterol Levels
- Maternal complication outcomes
- -
- Hypertensive events in GDM patients:
- -
- Cesarean Delivery:
- -
- Preeclampsia:
- -
- Gestational age at delivery
- Neonatal outcomes
- -
- Neonatal hypoglycemia
- -
- Neonatal complications
- -
- Neonatal birth weight
- -
- Macrosomia
- -
- Preterm Birth
- -
- Apgar score at 5 min
- -
- Admission to NICU
3.2. Overall Results
4. Discussion
5. Limitations and Future Directions
6. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Outcome | Nb of Participants (Studies) | Effect (95% CI) | Overall Certainty (GRADE) | Comments |
|---|---|---|---|---|
| Fasting Blood Glucose | 1941 (12 studies) | MD −5.48 mg/dL (−15.17 to 4.20); p = 0.24 | ⨁◯◯◯ Very Low | Severe heterogeneity (I2 = 100%), high risk of bias, and wide CIs (imprecise). |
| 2 h Postprandial Glucose | 1905 (8 studies) | MD −0.61 mmol/L (−1.08 to −0.14); p = 0.02 | ⨁⨁◯◯ Low | Moderate heterogeneity and indirectness despite significant effect. |
| HbA1c | 1682 (7 studies) | MD −0.12% (−0.36 to 0.11); p = 0.25 | ⨁◯◯◯ Very Low | Severe heterogeneity (I2 = 100%) and imprecision (wide CI crossing null). |
| Weight Gain | 1406 (10 studies) | MD −0.78 kg (−1.53 to −0.03); p = 0.04 | ⨁⨁◯◯ Low | Heterogeneity and indirectness due to mixed intervention types. |
| Triglycerides | 1234 (9 studies) | MD −14.08 mg/dL (−39.00 to 10.85); p = 0.27 | ⨁◯◯◯ Very Low | High heterogeneity, imprecision, and inconsistent findings across studies. |
| Cholesterol | 1267 (5 studies) | MD −0.67 mmol/L (−3.20 to 1.85); p = 0.50 | ⨁◯◯◯ Very low | No pharmacologic data; wide CIs and high heterogeneity among lifestyle interventions. |
| Hypertensive Events | 1319 (6 studies) | OR 0.78 (0.31–1.99); p = 0.53 | ⨁⨁◯◯ Low | No significant overall effect. Lifestyle interventions showed signal of benefit in single study; pharmacologic showed no effect. |
| Cesarean Delivery | 2116 (11 studies) | OR 0.78 (0.61–0.99); p = 0.04 | ⨁⨁⨁◯ Moderate | Statistically significant 22% reduction in odds. Low heterogeneity. |
| Preeclampsia | 890 (5 studies) | OR 0.53 (0.27–1.07); p = 0.07 | ⨁◯◯◯ Very Low | Trend toward 47% reduction but not statistically significant. No heterogeneity but small sample size, few events, wide CIs (imprecise). |
| Gestational Age at Delivery | 224 (4 studies) | MD −0.03 weeks (−0.58 to 0.52); p = 0.86 | ⨁⨁◯◯ Low | Small sample size and heterogeneity despite narrow CIs. |
| Neonatal Hypoglycemia | 1084 (6 studies) | OR 0.78 (0.57–1.07); p = 0.10 | ⨁⨁◯◯ Low | Imprecision due to limited events and CI crossing null. |
| Neonatal Complications | 459 (4 studies) | OR 0.63 (0.38–1.06); p = 0.07 | ⨁⨁◯◯ Low | Small sample, imprecision, and limited number of studies. |
| Neonatal Birth Weight | 1640 (9 studies) | MD −0.03 kg (−0.13 to 0.07); p = 0.54 | ⨁◯◯◯ Very Low | High heterogeneity and imprecision despite null effect. |
| Preterm Newborns | 632 (4 studies) | OR 0.96 (0.41–2.28); p = 0.90 | ⨁⨁◯◯ Low | Wide CIs and imprecision due to small sample size. |
| Apgar Score at 5 Minutes | 754 (4 studies) | MD −0.01 (−0.19 to 0.17); p = 0.84 | ⨁⨁⨁◯ Moderate | No significant effect. Low heterogeneity and narrow CIs around null. |
| Macrosomia | 1734 (8 studies) | OR 0.64 (0.31–1.35); p = 0.20 | ⨁⨁◯◯ Low | No significant effect. Low to moderate heterogeneity but wide CIs. |
| NICU Admission | 1081 (6 studies) | OR 0.80 (0.62–1.02); p = 0.07 | ⨁⨁⨁◯ Moderate | Trend toward 20% reduction approaching significance. No heterogeneity. |
| Study | Year | Sample Size (Treatment/Control) | Study Design | Type of Intervention | Intervention Time | Diagnosis Method | Gestational Age at Diagnosis |
|---|---|---|---|---|---|---|---|
| Picon-Cezar et al. [14] | 2021 | 100/100 | multicenter, open-label, parallel arms, randomized clinical trial | metformin vs. insulin | 14 to 35 weeks of gestation | OGTT | 22–23 weeks |
| Gomez-Ribot et al. [15] | 2020 | 33 GDM and 17 healthy control assigned 1:1 | randomized controlled trial | EVOO | N/A | OGTT | 24–28 weeks |
| Pavao et al. [16] | 2013 | 47/47 | randomized trial | metformin vs. insulin | N/A | OGTT | 30.4 ± 3.7 weeks (metformin group), 30.6 ± 3.9 weeks (insulin group) |
| Jamilian et al. [17] | 2020 | 26/25 | randomized double blind, placebo controlled trial | n3 fatty acids from flaxseed oil | 6-week supplementation period | OGTT | 24–28 weeks |
| Jin et al. [18] | 2022 | 65/66 | randomized controlled trial | Gymnastics | N/A | OGTT | 24–28 weeks |
| Yuan et al. [19] | 2020 | 158/154 | randomized controlled trial | 12 h NCP | N/A | OGTT | 24–28 weeks |
| Huhtala et al. [1] | 2018 | 110/107 | open label observational study | metformin vs. insulin | at diagnosis and 36 gestational weeks | OGTT | 24–28 weeks |
| Huhtala et al. [20] | 2020 | 110/107 | retrospective cohort study | metformin vs. insulin | from 30 to 36 gestational weeks | OGTT | 24–28 weeks |
| Tertti et al. [21] | 2013 | 111/110 | open label prospective trial | metformin vs. insulin | from 22 to 34 weeks of gestation | OGTT | 26.8 ± 2.5 weeks |
| Ajaz Qazi et al. [22] | 2021 | 8/8 | pilot study | exercise | N/A | OGTT | >20 weeks |
| De Barros et al. [23] | 2010 | 32/32 | Randomized Control Trial | Resistance exercise | From diagnosis to end of pregnancy | OGTT | 24–34 weeks |
| Youngwanichsetha et al. [24] | 2014 | 85/85 | Randomized Control Trial | Yoga + Mindfulness eating | 8 weeks | OGTT | 24–30 weeks |
| Kokic et al. [25] | 2018 | 20/22 | Randomized Control Trial | Combined aerobic + Resistance | Minimum 6 weeks until birth | OGTT | <30 weeks |
| Daniel et al. [26] | 2014 | 15/15 | Randomized Control Trial | Aerobic Dance | 8 weeks | OGCT followed by OGTT | ≥24 weeks |
| Bo et al. [7] | 2014 | 101/99 | Randomized Control Trial | Behavioral + Exercise lifestyle | From 24–26 weeks to 38 weeks of gestation | OGTT | 24–26 weeks |
| Barakat et al. [27] | 2019 | 234/222 | Randomized Controlled Trial | Supervised exercise program (aerobic, resistance, pelvic floor training) | 8–10 weeks to 38–39 weeks of gestation (~83–85 sessions, 3 days/week, 55–60 min/session) | 1 h OGTT (50 g glucose) at 24–26 weeks | 24–26 weeks |
| Paco Matallana et al. [28] | 2025 | 56/57 | Randomized, double-blind, placebo-controlled trial | Ursodeoxycholic acid (UDCA) 500 mg twice daily vs. placebo | 24–28 weeks to delivery (~10–14 weeks) | 2-step screening: O’Sullivan test (50 g glucose), then 100g 3 h OGTT if positive | 24–28 weeks |
| Outcome | Interventions (Experimental) |
|---|---|
| HbA1c | No significant effect |
| Triglycerides | No significant effect |
| Cholesterol | No significant effect |
| 2 h postprandial glucose | No significant effect |
| Fasting blood glucose | No significant effect |
| Blood pressure | No significant effect |
| Weight gain | Significant effect |
| Cesarean delivery | Significant effect |
| Preeclampsia | Trend toward effect |
| Gestational age at delivery | No significant effect |
| Neonatal hypoglycemia | Trend toward effect |
| Neonatal complications | Trend toward effect |
| Neonatal birth weight | No significant effect |
| Preterm newborns | No significant effect |
| Apgar score at 5 min | No significant effect |
| Macrosomia | No significant effect |
| NICU admission | Trend toward effect |
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Issa, A.; Chaghoury, S.; Semaan, C.; Youness, T.; Mazraani, T.; Boudeleh, R.; Nabbout, G.; Ghadieh, H.E.; Isber, M.; Jaafar, B.; et al. Comparative Effectiveness of Treatment Options for Gestational Diabetes: A Systematic Review and Meta-Analysis. Diabetology 2026, 7, 103. https://doi.org/10.3390/diabetology7060103
Issa A, Chaghoury S, Semaan C, Youness T, Mazraani T, Boudeleh R, Nabbout G, Ghadieh HE, Isber M, Jaafar B, et al. Comparative Effectiveness of Treatment Options for Gestational Diabetes: A Systematic Review and Meta-Analysis. Diabetology. 2026; 7(6):103. https://doi.org/10.3390/diabetology7060103
Chicago/Turabian StyleIssa, Andrea, Stephani Chaghoury, Charbel Semaan, Tatiana Youness, Theresa Mazraani, Rhiannon Boudeleh, Ghassan Nabbout, Hilda E. Ghadieh, Mariam Isber, Batoul Jaafar, and et al. 2026. "Comparative Effectiveness of Treatment Options for Gestational Diabetes: A Systematic Review and Meta-Analysis" Diabetology 7, no. 6: 103. https://doi.org/10.3390/diabetology7060103
APA StyleIssa, A., Chaghoury, S., Semaan, C., Youness, T., Mazraani, T., Boudeleh, R., Nabbout, G., Ghadieh, H. E., Isber, M., Jaafar, B., Azar, S., Nakhoul, N., & Harb, F. (2026). Comparative Effectiveness of Treatment Options for Gestational Diabetes: A Systematic Review and Meta-Analysis. Diabetology, 7(6), 103. https://doi.org/10.3390/diabetology7060103

