Daily Steps During Nutritional Lifestyle Modification Programs for Obesity Management: A Systematic Review and Meta-Analysis
Highlights
- Obesity is a growing public health issue, as by 2035 its prevalence is forecast to exceed 30% of the global population.
- The identification of novel strategies that improve obesity treatment outcomes is a priority for public health.
- On a general level, the significance of this work to public health lies in assessing the association between lifestyle modification programs and weight-related outcomes, given their potential as an affordable way for obesity management.
- Specifically, the findings suggest that higher daily step counts may be associated with improved outcomes in obesity treatment, highlighting a simple and feasible behavior that could be considered within lifestyle interventions.
- Policy makers should consider lifestyle modification as a valid treatment for obesity, since it determines a significant weight loss in the long term, and as such, should be considered a first-attempt intervention.
- During lifestyle modification programs for obesity, practitioners may encourage patients to increase their average daily steps, as this appears to be associated with better clinical outcome.
Abstract
1. Introduction
2. Methods
2.1. Inclusion and Exclusion Criteria
2.2. Information Source and Search Strategy
2.3. Study Selection, Quality, and Risk-of-Bias Assessments
2.4. Data Collection Process and Data Items
2.5. Data Extraction
2.6. Meta-Analysis
2.7. Assessing Risk of Publication Bias
2.8. Meta Regression
2.9. Weight Loss and Weight Maintenance Duration
2.10. Sensitivity Analysis
3. Results
| First Author and Year | Country | Age and Gender (M/F) | BMI at Baseline | Steps at Baseline | Type and Duration of Intervention |
|---|---|---|---|---|---|
| De Greef et al., 2010 [57] | Belgium/USA | 41 (28/13) I: 61.3 ± 6.3 years C: 61.3 ± 6.9 years | I: 29.0 ± 4.2 kg/m2 C: 31.5 ± 5.0 kg/m2 | I: 7099 ± 4208 steps C: 5214 ± 3352 steps | CBT/52 weeks |
| Nakade et al., 2012 [58] | Japan | 235 (116/119) M: I: 53.6 ± 6.7 years; C: 53.7 ± 6.3 years F: I: 55.1 ± 6.4 years; C: 54.2 ± 6.2 years | M: I: 29.8 ± 2.3 kg/m2; C: 30.5 ± 3.7 kg/m2 F: I: 30.9 ± 3.0 kg/m2; C: 31.1 ± 3.1 kg/m2 | M: I: 7058 ± 2885 steps; C: 8337 ± 3651 steps F: I: 8122 ± 2928 steps; C: 7984 ± 3376 steps | BT/24 months |
| Fuller et al., 2014 [59] | Australia/Germany/United Kingdom | 772 (104/668) CP: 46.5 (13.5) years SC: 48.2 (12.2) years | CP: 31.5 (2.6) kg/m2 SC: 31.3 (2.6) kg/m2 | CP: 7068 (3364) steps SC: 7194 (3220) steps | BT/24 months |
| Fogelholm et al., 1999 [60] | Finland | 85 (0/85) 29–46 years old | 34.0 kg/m2 | W1: 7973 (678) steps W2: 7383 (544) steps C: 6882 (705) steps | BT/52 weeks |
| Madjd et al., 2020 [61] | Iran United Kingdom | 113 (0/113) CBT: 31 (6.2) years C: 31 (6.3) years | CBT: 31.19 (1.80) kg/m2 C: 31.24 (1.66) kg/m2 | CBT: 5757 ± 551 steps C: 5897 ± 537 steps | CBT/30 weeks |
| Young et al., 2017 [62] | Australia | 92 (92/0) Only WL: 49.0 (10.4) years WL + WLM: 49.5 (9.9) years | Only WL: 30.6 (3.4) kg/m2 WL + WLM: 30.8 (3.3) kg/m2 | Only WL: 9276 (3162) steps WL + WLM: 7962 (2735) steps | BT/27 months |
| Morgan et al., 2013 [63] | Australia | 159 (159/0) Online: 46.5 (11.1) years Resources: 48.0 (10.8) years Control: 48.0 (11.2) years | Online: 32.8 (3.4) kg/m2 Resources: 32.4 (3.3) kg/m2 Control: 33.1 (3.9) kg/m2 | Online: 7449 (3145) steps Resources: 6461 (2715) steps Control: 6857 (2801) steps | BT/6 months |
| Ismail et al., 2019 [64] | United Kingdom | 1742 (1490/252) 69.75 (4.11) years | Gr I: 28.17 (4.11) kg/m2 Ind. I: 28.31 (4.28) kg/m2 UC: 28.37 (4.59) kg/m2 | Gr I: 6692.78 (2702.08) steps Ind. I: 6820.87 (2747.26) steps UC: 6781.18 (2708.37) steps | CBT/24 months |
| Wyke et al., 2019 [65] | United Kingdom Norway Portugal Netherland | 1113 (1113/0) I: 45.9 (9.0) years C: 45.6 (8.7) years | I: 33.1 (4.6) kg/m2 C: 33.4 (4.7) kg/m2 | I: 8438 (3211) steps C: 8306 (3146) steps | CBT/12 months |
| Van Dyck et al., 2013 [66] | Belgium USA | 92 (69%/31%) 62 ± 9 years | I: 30.24 ± 2.62 kg/m2 C: 29.74 ± 2.95 kg/m2 | I: 4959 ± 2414 steps C: 5139 ± 2933 steps | CBT/12 months |
| Nakata et al., 2019 [67] | Japan | 95 (36/59) SH: 57.0 (5.7) years WS: 54.7 (6.6) years | SH: 28.2 (2.4) kg/m2 WS: 28.4 (3.1) kg/m2 | SH: 6167 (2409) steps WS: 6246 (2689) steps | BT/27 months |
| Nakata et al., 2011 [68] Nakata et al., 2014 [69] | Japan | 188 (43/145) EO: 51.7 (6.8) years GB: 50.7 (6.7) years C: 51.6 (6.2) years | EO: 29.2 (3.8) kg/m2 GB: 29.0 (3.0) kg/m2 C: 28.6 (2.8) kg/m2 | EO: 6198 (2740) steps GB: 6435 (3016) steps C: 5677 (2565) steps | BT/30 months |
| Anderson et al., 2021 [74] | United Kingdom | 560 (0/560) I: 58.8 (5.2) years C: 59.5 (5.7) years | I: 31.0 (4.7) kg/m2 C: 31.3 (4.3) kg/m2 | I: 9723 (3677) steps C: 9182 (3404) steps | BT/12 months |
| Petrella et al., 2017 [70] | United Kingdom | 80 (80/0) I: 49.1 (9.1) years C: 48.4 (9.1) years | I: 36.0 (5.9) kg/m2 C: 37.1 (6.1) kg/m2 | I: 6859.6 (3253.8) steps C: 6483.8 (3407.7) steps | BT/12 months |
| James et al., 2015 [71] | Australia | 80 I: 56.2 (12.6) years C: 58.1 (11.2) years | NR | NR | BT/20 weeks |
| Morgan et al., 2011 [72] | Australia | 53 (53/0) I: 40.9 (6.7) years C: 40.3 (7.5) years | I: 33.3 (3.7) kg/m2 C: 33.1 (4.1) kg/m2 | I: 8521 (2745) steps C: 8028 (2559) steps | BT/6 months |
| Bertz et al., 2012 [73] | Sweden | 68 (0/68) DEG: 33.9 ± 4.5 years C: 32.2 ± 4.6 years | DEG: 29.9 ± 2.2 kg/m2 C: 30.2 ± 3.4 kg/m2 | DEG: 9486 ± 3342 steps C: 8361 ± 3742 steps | BT/12 months |
| Author | De Greef et al. 2010 [57] | Nakade et al. 2012 [58] | Fuller et al. 2014 [59] | Fogelholm et al. 1999 [60] | Madjd et al. 2020 [61] | Young et al. 2017 [62] | Morgan et al. 2013 [63] | Ismail et al. 2019 [64] | Wyke et al. 2019 [65] |
|---|---|---|---|---|---|---|---|---|---|
| Risk of bias | |||||||||
| Was the method of randomization to groups appropriate? | + | + | + | + | + | + | + | + | + |
| Was the allocation sequence concealed from those assigning patients to groups? | + | - | + | - | + | + | + | + | + |
| Was the outcome measurement performed in the same manner with similar intensity in all groups being compared? | + | + | + | + | + | + | + | + | + |
| Were similarly trained individuals administering the intervention across groups? | + | + | - | + | + | + | + | + | + |
| Were all the withdrawals described? | NR | NR | + | NR | + | + | + | + | + |
| Were all originally randomized participants analyzed in the groups they were assigned to (i.e., an intention-to-treat analysis)? | + | - | + | - | + | + | + | + | + |
| Was clustering at the group level accounted for in the analyses? | - | - | - | - | - | - | - | + | + |
| Were the groups similar at baseline? | + | + | + | NR | + | + | + | + | + |
| Jadad Scale | |||||||||
| Randomization | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 |
| Blinding | 1 | 0 | 1 | 0 | 1 | 2 | 2 | 1 | 1 |
| Account of all patients | 0 | 0 | 1 | 0 | 1 | 1 | 1 | 1 | 1 |
| Total score | 3 | 2 | 4 | 2 | 4 | 5 | 5 | 4 | 4 |
| Author | Van Dyck et al. 2013 [66] | Nakata et al. 2019 [67] | Nakata et al. 2011 [68] | Nakata et al. 2014 [69] | Anderson et al. 2021 [74] | Petrella et al. 2017 [70] | James et al. 2015 [71] | Morgan et al. 2011 [72] | Bertz et al. 2012 [73] |
| Risk of bias | |||||||||
| Was the method of randomization to groups appropriate? | + | + | + | + | + | + | + | + | + |
| Was the allocation sequence concealed from those assigning patients to groups? | - | + | + | + | + | + | - | + | + |
| Was the outcome measurement performed in the same manner with similar intensity in all groups being compared? | + | + | + | + | + | + | + | + | + |
| Were similarly trained individuals administering the intervention across groups? | + | + | + | + | + | + | - | + | + |
| Were all the withdrawals described? | NR | + | + | + | + | + | + | + | + |
| Were all originally randomized participants analyzed in the groups they were assigned to (i.e., an intention-to-treat analysis)? | + | + | + | + | + | + | - | + | - |
| Was clustering at the group level accounted for in the analyses? | - | - | - | - | - | - | + | - | - |
| Were the groups similar at baseline? | + | + | + | + | + | + | + | + | + |
| Jadad Scale | |||||||||
| Randomization | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 | 2 |
| Blinding | 0 | 1 | 2 | 2 | 1 | 2 | 0 | 1 | 1 |
| Account of all patients | 0 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1 |
| Total score | 2 | 4 | 5 | 5 | 4 | 5 | 3 | 4 | 4 |
3.1. Narrative Synthesis
3.2. Meta-Analysis
3.2.1. Pooled Estimate of WL%
3.2.2. Pooled Estimate of Mean Daily Steps per Day
3.2.3. Sensitivity Analysis
3.2.4. Association Between Step Counts and WL%
3.2.5. Risk of Reporting Bias
4. Discussion
4.1. The Main Findings of the Systematic Review
4.2. The Clinical Implication
4.3. Strengths and Limitations
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Time Point | LSM Group | Control Group | Difference | ||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Pooled Estimate % (95% CI) | p Value | K | I2 | τ2 | Egger Test p Value | Pooled Estimate% (95% CI) | p Value | K | I2 | τ2 | Egger Test p Value | Difference * (95% CI) | Z Value | p Value | |
| T1 | −4.39 (−6.30; −2.49) | <0.001 | 14 | 98.4% | 10.32 | 0.784 | −1.25 (−2.91; 0.40) | 0.122 | 11 | 96.5% | 5.75 | 0.600 | −3.14 (−5.39; −0.88) | −2.72 | 0.006 |
| T2 | −3.28 (−4.95; −1.61) | 0.001 | 13 | 97.2% | 6.32 | 0.332 | −0.99 (−2.92; 0.94) | 0.272 | 9 | 96.1% | 5.23 | 0.960 | −2.29 (−4.52; −0.06) | −2.02 | 0.044 |
| Within-group change (T2 → T1) | 1.11 (−1.18; 3.40) | 0.342 | 0.266 (−1.93; 2.46) | 0.812 | |||||||||||
| Time Point | LSM Group | Control Group | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Pooled Estimate % (95% CI) | p Value | K | I2 | τ2 | Egger Test p Value | Pooled Estimate% (95% CI) | p Value | K | I2 | τ2 | Egger Test p Value | |
| T0 | 7279.69 (6555.65; 8003.73) | <0.0001 | 15 | 96.4% | 1.55 | 0.551 | 7180.10 (6310.48; 8049.73) | <0.0001 | 12 | 95.7 | 1.66 | 0.621 |
| T1 | 8453.78 (7725.39; 9182.17) | <0.0001 | 14 | 93.5% | 1.29 | 0.017 | 7486.13 (6313.37; 8658.88) | <0.0001 | 11 | 95.9 | 2.60 | 0.512 |
| T2 | 8241.28 (7302.30; 9180.26) | <0.0001 | 13 | 96.4% | 1.95 | 0.061 | 6757.20 (5383.47; 8130.93) | <0.0001 | 9 | 97.2 | 2.75 | 0.937 |
| Time Point | Number of Studies | Pooled Mean Difference Steps (95% CI) | p Value | I2 | τ2 | Egger p Value |
|---|---|---|---|---|---|---|
| T0 | 15 | 89.6 (−103.3; 282.4) | 0.3360 | 0.0% | 0 | 0.254 |
| T1 | 14 | 1090.0 (225.5; 1954.5) | 0.0174 | 90.3% | 1.65 | 0.239 |
| T2 | 11 | 1211.3 (344.7; 2077.8) | 0.0110 | 88.3% | 1.02 | 0.003 |
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Saadeddine, D.; Foglia, M.; Berri, E.; Raggi, S.; Itani, L.; El Ghoch, M. Daily Steps During Nutritional Lifestyle Modification Programs for Obesity Management: A Systematic Review and Meta-Analysis. Int. J. Environ. Res. Public Health 2026, 23, 522. https://doi.org/10.3390/ijerph23040522
Saadeddine D, Foglia M, Berri E, Raggi S, Itani L, El Ghoch M. Daily Steps During Nutritional Lifestyle Modification Programs for Obesity Management: A Systematic Review and Meta-Analysis. International Journal of Environmental Research and Public Health. 2026; 23(4):522. https://doi.org/10.3390/ijerph23040522
Chicago/Turabian StyleSaadeddine, Dana, Matteo Foglia, Elisa Berri, Silvia Raggi, Leila Itani, and Marwan El Ghoch. 2026. "Daily Steps During Nutritional Lifestyle Modification Programs for Obesity Management: A Systematic Review and Meta-Analysis" International Journal of Environmental Research and Public Health 23, no. 4: 522. https://doi.org/10.3390/ijerph23040522
APA StyleSaadeddine, D., Foglia, M., Berri, E., Raggi, S., Itani, L., & El Ghoch, M. (2026). Daily Steps During Nutritional Lifestyle Modification Programs for Obesity Management: A Systematic Review and Meta-Analysis. International Journal of Environmental Research and Public Health, 23(4), 522. https://doi.org/10.3390/ijerph23040522

