Establishment of Adequate Nutrient Intake Criteria to Achieve Target Weight Loss in Patients Undergoing Bariatric Surgery
Abstract
:1. Introduction
2. Materials and Methods
2.1. Subjects
2.2. General Characteristics and Anthropometric Measurements
2.3. Dietary Intake Analysis
2.4. Follow-Up
2.5. Statistical Analyses
3. Results
3.1. Clinical Characteristics and Weight Loss
3.2. Changes in Nutrient Intake over Time
3.3. Correlation between %EWL and Nutrient Intake
3.4. Factors Affecting the %EWL in Subjects
3.5. Optimal Nutrient Intakes for Determining Success after Bariatric Surgery
4. Discussion
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
- Yan, E.; Ko, E.; Luong, V.; Wang, H.J.; Romanova, M.; Li, Z. Long-term changes in weight loss and obesity-related comorbidities after Roux-en-Y gastric bypass: A primary care experience. Am. J. Surg. 2008, 195, 94–98. [Google Scholar] [CrossRef] [PubMed]
- Handzlik-Orlik, G.; Holecki, M.; Orlik, B.; Wyleżoł, M.; Duława, J. Nutrition management of the post-bariatric surgery patient. Nutr. Clin. Pract. 2015, 30, 383–392. [Google Scholar] [CrossRef] [PubMed]
- Lupoli, R.; Lembo, E.; Saldalamacchia, G.; Avola, C.K.; Angrisani, L.; Capaldo, B. Bariatric surgery and long-term nutritional issues. World J. Diabetes 2017, 8, 464–474. [Google Scholar] [CrossRef] [PubMed]
- Sherf Dagan, S.; Goldenshluger, A.; Globus, I.; Schweiger, C.; Kessler, Y.; Kowen Sandbank, G.; Ben-Porat, T.; Sinai, T. Nutritional recommendations for adult bariatric surgery patients: Clinical practice. Adv. Nutr. 2017, 8, 382–394. [Google Scholar] [CrossRef] [Green Version]
- Magro, D.O.; Geloneze, B.; Delfini, R.; Pareja, B.C.; Callejas, F.; Pareja, J.C. Long-term weight regain after gastric bypass: A 5-year prospective study. Obes. Surg. 2008, 18, 648–651. [Google Scholar] [CrossRef]
- Hall, K.D.; Kahan, S. Maintenance of lost weight and long-term management of obesity. Med. Clin. N. Am. 2018, 102, 183–197. [Google Scholar] [CrossRef]
- Ruiz-Lozano, T.; Vidal, J.; de Hollanda, A.; Scheer, F.; Garaulet, M.; Izquierdo-Pulido, M. Timing of food intake is associated with weight loss evolution in severe obese patients after bariatric surgery. Clin. Nutr. 2016, 35, 1308–1314. [Google Scholar] [CrossRef] [Green Version]
- Kanerva, N.; Larsson, I.; Peltonen, M.; Lindroos, A.K.; Carlsson, L.M. Changes in total energy intake and macronutrient composition after bariatric surgery predict long-term weight outcome: Findings from the Swedish Obese Subjects (SOS) study. Am. J. Clin. Nutr. 2017, 106, 136–145. [Google Scholar] [CrossRef]
- Aills, L.; Blankenship, J.; Buffington, C.; Furtado, M.; Parrott, J. ASMBS Allied Health Nutritional Guidelines for the Surgical Weight Loss Patient. Surg. Obes. Relat. Dis. 2008, 4, S73–S108. [Google Scholar] [CrossRef]
- Mechanick, J.I.; Apovian, C.; Brethauer, S.; Garvey, W.T.; Joffe, A.M.; Kim, J.; Kushner, R.F.; Lindquist, R.; Pessah-Pollack, R.; Seger, J.; et al. Clinical practice guidelines for the perioperative nutrition, metabolic, and nonsurgical support of patients undergoing bariatric procedures—2019 update: Cosponsored by American Association of Clinical Endocrinologists/American College of Endocrinology, The Obesity Society, American Society for Metabolic & Bariatric Surgery, Obesity Medicine Association, and American Society of Anesthesiologists. Surg. Obes. Relat. Dis. 2020, 16, 175–247. [Google Scholar]
- Korean Society for Metabolic and Bariatric Surgery. 2018 Korean society for metabolic and bariatric surgery guidelines. J. Metab. Bariatr. Surg. 2018, 7, 1–21. [Google Scholar] [CrossRef]
- Kasama, K.; Mui, W.; Lee, W.J.; Lakdawala, M.; Naitoh, T.; Seki, Y.; Sasaki, A.; Wakabayashi, G.; Sasaki, I.; Kawamura, I.; et al. IFSO-APC consensus statements 2011. Obes. Surg. 2012, 22, 677–684. [Google Scholar] [CrossRef] [PubMed]
- Snehalatha, C.; Viswanathan, V.; Ramachandran, A. Cutoff values for normal anthropometric variables in asian Indian adults. Diabetes Care 2003, 26, 1380–1384. [Google Scholar] [CrossRef] [Green Version]
- Simel, D.L.; Samsa, G.P.; Matchar, D.B. Likelihood ratios with confidence: Sample size estimation for diagnostic test studies. J. Clin. Epidemiol. 1991, 44, 763–770. [Google Scholar] [CrossRef]
- Conason, A.; Teixeira, J.; Hsu, C.H.; Puma, L.; Knafo, D.; Geliebter, A. Substance use following bariatric weight loss surgery. JAMA Surg. 2013, 148, 145–150. [Google Scholar] [CrossRef] [PubMed]
- Madsbad, S.; Holst, J.J. Bariatric surgery-which procedure is the optimal choice? Lancet 2019, 393, 1263–1264. [Google Scholar] [CrossRef]
- Sandoval, D. Bariatric surgeries: Beyond restriction and malabsorption. Int. J. Obes. Lond. 2011, 35, S45–S49. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- McMahon, M.M.; Sarr, M.G.; Clark, M.M.; Gall, M.M.; Knoetgen, J., 3rd; Service, F.J.; Laskowski, E.R.; Hurley, D.L. Clinical management after bariatric surgery: Value of a multidisciplinary approach. Mayo Clin. Proc. 2006, 81, S34–S45. [Google Scholar] [CrossRef]
- Schiavo, L.; Pilone, V.; Rossetti, G.; Iannelli, A. The role of the nutritionist in a multidisciplinary bariatric surgery team. Obes. Surg. 2019, 29, 1028–1030. [Google Scholar] [CrossRef]
- Serafim, M.P.; Santo, M.A.; Gadducci, A.V.; Scabim, V.M.; Cecconello, I.; de Cleva, R. Very low-calorie diet in candidates for bariatric surgery: Change in body composition during rapid weight loss. Clin. Sao Paulo 2019, 74, e560. [Google Scholar] [CrossRef]
- Faria, S.L.; Faria, O.P.; de Almeida Cardeal, M.; Ito, M.K. Effects of a very low calorie diet in the preoperative stage of bariatric surgery: A randomized trial. Surg. Obes. Relat. Dis. 2015, 11, 230–237. [Google Scholar] [CrossRef] [PubMed]
- Sajoux, I.; Lorenzo, P.M.; Gomez-Arbelaez, D.; Zulet, M.A.; Abete, I.; Castro, A.I.; Baltar, J.; Portillo, M.P.; Tinahones, F.J.; Martinez, J.A.; et al. Effect of a very-low-calorie ketogenic diet on circulating myokine levels compared with the effect of bariatric surgery or a low-calorie diet in patients with obesity. Nutrients 2019, 11, 2368. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Edholm, D.; Kullberg, J.; Karlsson, F.A.; Haenni, A.; Ahlström, H.; Sundbom, M. Changes in liver volume and body composition during 4 weeks of low calorie diet before laparoscopic gastric bypass. Surg. Obes. Relat. Dis. 2015, 11, 602–606. [Google Scholar] [CrossRef] [PubMed]
- Sivakumar, J.; Chong, L.; Ward, S.; Sutherland, T.R.; Read, M.; Hii, M.W. Body composition changes following a very-low-calorie pre-operative diet in patients undergoing bariatric surgery. Obes. Surg. 2020, 30, 119–126. [Google Scholar] [CrossRef] [PubMed]
- Snyder-Marlow, G.; Taylor, D.; Lenhard, M.J. Nutrition care for patients undergoing laparoscopic sleeve gastrectomy for weight loss. J. Am. Diet. Assoc. 2010, 110, 600–607. [Google Scholar] [CrossRef]
- Das, S.K.; Gilhooly, C.H.; Golden, J.K.; Pittas, A.G.; Fuss, P.J.; Cheatham, R.A.; Tyler, S.; Tsay, M.; McCrory, M.A.; Lichtenstein, A.H.; et al. Long-term effects of 2 energy-restricted diets differing in glycemic load on dietary adherence, body composition, and metabolism in CALERIE: A 1-y randomized controlled trial. Am. J. Clin. Nutr. 2007, 85, 1023–1030. [Google Scholar] [CrossRef] [Green Version]
- Joslowski, G.; Halim, J.; Goletzke, J.; Gow, M.; Ho, M.; Louie, J.C.; Buyken, A.E.; Cowell, C.T.; Garnett, S.P. Dietary glycemic load, insulin load, and weight loss in obese, insulin resistant adolescents: RESIST study. Clin. Nutr. 2015, 34, 89–94. [Google Scholar] [CrossRef]
- Nicoletti, C.F.; Cortes-Oliveira, C.; Pinhel, M.A.S.; Nonino, C.B. Bariatric surgery and precision nutrition. Nutrients 2017, 9, 974. [Google Scholar] [CrossRef]
- Korea Centers for Disease Control and Prevention; Ministry of Health and Welfare. Korea Health Statistics 2018: Korea National Health and Nutrition Examination Survey (KNHANES ⅦI-3). Available online: https://knhanes.cdc.go.kr/knhanes/sub04/sub04_03.do (accessed on 10 April 2020).
- Swenson, B.R.; Saalwachter Schulman, A.; Edwards, M.J.; Gross, M.P.; Hedrick, T.L.; Weltman, A.L.; Northrup, C.J.; Schirmer, B.D.; Sawyer, R.G. The effect of a low-carbohydrate, high-protein diet on post laparoscopic gastric bypass weight loss: A prospective randomized trial. J. Surg. Res. 2007, 142, 308–313. [Google Scholar] [CrossRef]
Variable | Total (n = 189) |
---|---|
Age (years) | 34.6 ± 10.7 |
Sex | |
Male | 54 (28.6%) |
Female | 135 (71.4%) |
Operative method | |
LRYGB | 146 (77.2%) |
SG | 43 (22.8%) |
Comorbidity | |
Yes | 43 (22.8%) |
Diabetes | 18 (9.5%) |
Hypertension | 10 (5.3%) |
Hyperlipidemia | 11 (5.8%) |
Joint problem | 6 (3.2%) |
Depression | 4 (2.1%) |
Apnea | 7 (3.7%) |
Number of comorbidities | |
One | 26 (60.4%) |
Two | 11 (25.6%) |
Three or more | 6 (14.0%) |
Lifestyle habit | |
Alcohol drinking | 66 (34.9%) |
Smoking | 36 (19.0%) |
Exercise | 28 (14.8%) |
Experience of diet control | 86 (46.0%) |
Weight (kg) | 108.0 ± 19.8 |
BMI (kg/m2) | 38.9 ± 5.9 |
Excess weight (kg) | 44.2 ± 16.6 |
Fat Mass (kg) | 55.7 ± 11.3 |
Fat Free Mass (kg) | 51.6 ± 13.9 |
Variable | Total (n = 189) | Achievement of Weight Loss | Operative Method | Comorbidity | ||||||
---|---|---|---|---|---|---|---|---|---|---|
Success (n = 127) | Failure (n = 62) | p-Value | LRYGB (n = 146) | SG (n = 43) | p-Value | Yes (n = 43) | No (n = 146) | p-Value | ||
Postop 1 month | 24.69 ± 9.23 | 25.85 ± 10.00 | 22.50 ± 6.52 | 0.005 | 24.52 ± 9.66 | 25.24 ± 7.64 | 0.615 | 24.59 ± 7.82 | 25.25 ± 13.39 | 0.695 |
Postop 3 months | 41.66 ± 11.57 | 45.38 ± 10.87 | 34.03 ± 8.96 | <0.001 | 42.18 ± 12.91 | 41.50 ± 11.19 | 0.736 | 45.35 ± 16.06 | 48.71 ± 17.57 | 0.258 |
Postop 6 months | 46.42 ± 17.27 | 52.76 ± 17.12 | 33.48 ± 7.78 | <0.001 | 50.05 ± 18.66 | 46.67 ± 16.75 | 0.289 | 41.98 ± 10.87 | 42.24 ± 13.58 | 0.900 |
Postop 12 months | 53.05 ± 15.90 | 61.71 ± 7.90 | 37.46 ± 10.21 | <0.001 | 54.40 ± 16.38 | 53.57 ± 13.75 | 0.762 | 53.15 ± 14.80 | 54.81 ± 13.81 | 0.511 |
Variable | Calorie (kcal) | Carbohydrate (g) | Protein (g) | Fat (g) | ||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|
Success (n = 127) | Failure (n = 62) | p-Value | Success (n = 127) | Failure (n = 62) | p-Value | Success (n = 127) | Failure (n = 62) | p-Value | Success (n = 127) | Failure (n = 62) | p-Value | |
Preop | 2282.97 ± 626.93 | 2234.31 ± 609.10 | 0.610 | 293.31 ± 90.00 (53.5%) | 311.18 ± 113.16 (56.4%) | 0.280 | 92.06 ± 32.42 (16.8%) | 84.02 ± 28.75 (15.1%) | 0.086 | 74.24 ± 32.67 (29.9%) | 70.77 ± 31.61 (28.5%) | 0.485 |
Postop 1 month | 769.33 ± 217.88 | 765.73 ± 178.30 | 0.904 | 70.48 ± 34.82 (36.7%) | 70.56 ± 35.47 (39.6%) a | 0.987 | 58.02 ± 21.95 (30.1%) | 50.55 ± 23.74 (28.9%) | 0.040 | 30.04 ± 14.53 (33.2%) | 27.59 ± 14.25 (31.5%) | 0.272 |
Postop 6 months | 999.82 ± 259.30 | 1120.81 ± 272.43 | 0.004 | 97.58 ± 44.1 (40.6%) | 133.98 ± 54.96 (46.4%) | <0.001 | 57.87 ± 20.91 (25.4%) | 53.79 ± 18.06 (20.2%) b | 0.169 | 34.71 ± 11.53 (34.0%) | 38.98 ± 12.10 (33.4%) | 0.022 |
Postop 12 months | 1336.75 ± 229.03 | 1646.21 ± 315.55 | <0.001 | 139.13 ± 49.04 (48.4%) | 198.60 ± 81.10 (53.1%) A | <0.001 | 79.19 ± 24.09 (28.0%) | 70.43 ± 25.04 (20.4%) B | 0.023 | 47.87 ± 12.32 (23.6%) | 59.42 ± 17.53 (26.5%) C | <0.001 |
Variable | Univariable | Multiple 1 | Multiple 2 | |||
---|---|---|---|---|---|---|
OR (95% CI) | p-Value | OR (95% CI) | p-Value | OR (95% CI) | p-Value | |
Age (year) | 0.96 (0.93–0.99) | 0.009 | 0.97 (0.94–0.99) | 0.046 | 0.96 (0.93–0.99) | 0.027 |
Female | 1.83 (0.94–3.52) | 0.072 | ||||
LRYGB | 0.74 (0.34–1.54) | 0.437 | ||||
No. of comorbidities | 0.85 (0.65–1.13) | 0.249 | ||||
Calorie (100 kcal) | ||||||
at 1 month | 1.05 (0.91–1.22) | 0.515 | ||||
at 6 months | 0.78 (0.68–0.88) | <0.001 | ||||
at 12 months | 0.37 (0.27–0.48) | <0.001 | ||||
Carbohydrates (10 g) | ||||||
at 1 month | 0.98 (0.9–1.07) | 0.607 | ||||
at 6 months | 0.85 (0.78–0.91) | <0.001 | ||||
at 12 months | 0.63 (0.54–0.72) | <0.001 | ||||
Protein (10 g) | ||||||
at 1 month | 1.17 (1.01–1.36) | 0.038 | ||||
at 6 months | 0.99 (0.85–1.15) | 0.853 | ||||
at 12 months | 0.85 (0.74–0.96) | 0.008 | ||||
Fat (10 g) | ||||||
at 1 month | 1.11 (0.9–1.39) | 0.323 | ||||
at 6 months | 0.55 (0.41–0.72) | <0.001 | ||||
at 12 months | 0.46 (0.35–0.6) | <0.001 | ||||
Proportion of calories at 12 months | ||||||
Carbohydrate (%) | 0.98 (0.98–0.99) | <0.001 | 0.98 (0.98–0.99) | <0.001 | 0.99 (0.98–0.99) | <0.001 |
Protein (%) | 0.99 (0.97–1.00) | 0.026 | 0.99 (0.97–1.00) | 0.171 | ||
Fat (%) | 0.95 (0.93–0.97) | <0.001 | 0.96 (0.93–0.99) | 0.002 | 0.96 (0.93–0.98) | <0.001 |
Variable | AUC (95% CI) | Optimal Cutoff * | Estimates (95% CI) | ||||
---|---|---|---|---|---|---|---|
Sensitivity | Specificity | Accuracy | LR (+) | LR (−) | |||
Calories (kcal) | |||||||
at 1 month | 0.529 (0.442–0.615) | <835.0 | 0.57 (0.48–0.65) | 0.32 (0.21–0.45) | 0.49 (0.41–0.56) | 0.84 (0.67–1.05) | 1.34 (0.89–2.03) |
at 6 months | 0.673 (0.593–0.754) | <1132.5 | 0.75 (0.66–0.82) | 0.55 (0.42–0.68) | 0.68 (0.61–0.75) | 1.66 (1.24–2.22) | 0.46 (0.32–0.67) |
at 12 months | 0.912 (0.872–0.953) | <1523.0 | 0.87 (0.79–0.92) | 0.82 (0.7–0.91) | 0.85 (0.79–0.90) | 4.88 (2.84–8.38) | 0.16 (0.10–0.26) |
Carbohydrate (g) | |||||||
at 1 month | 0.513 (0.424–0.602) | <115.5 | 0.91 (0.85–0.96) | 0.15 (0.07–0.26) | 0.66 (0.59–0.73) | 1.07 (0.95–1.20) | 0.60 (0.26–1.36) |
at 6 months | 0.703 (0.624–0.781) | <103.0 | 0.58 (0.49–0.67) | 0.79 (0.67–0.88) | 0.65 (0.58–0.72) | 2.78 (1.68–4.61) | 0.53 (0.41–0.67) |
at 12 months | 0.878 (0.819–0.937) | <172.5 | 0.93 (0.87–0.97) | 0.76 (0.63–0.86) | 0.87 (0.82–0.92) | 3.84 (2.47–5.98) | 0.09 (0.05–0.18) |
Protein (g) | |||||||
at 1 month | 0.617 (0.529–0.705) | >44.5 | 0.76 (0.67–0.83) | 0.52 (0.39–0.65) | 0.68 (0.61–0.74) | 1.56 (1.19–2.06) | 0.47 (0.32–0.70) |
at 6 months | 0.524 (0.440–0.609) | >41.5 | 0.86 (0.79–0.91) | 0.02 (0.00–0.09) | 0.58 (0.51–0.65) | 0.87 (0.81–0.94) | 8.79 (1.02–64.33) |
at 12 months | 0.618 (0.531–0.705) | >86.5 | 0.21 (0.15–0.29) | 0.55 (0.42–0.68) | 0.32 (0.26–0.39) | 0.47 (0.31–0.73) | 1.44 (1.13–1.83) |
Fat (g) | |||||||
at 1 month | 0.564 (0.475–0.652) | <21.5 | 0.49 (0.38–0.61) | 0.58 (0.48–0.67) | 0.54 (0.47–0.62) | 0.58 (0.4–0.83) | 1.45 (1.09–1.92) |
at 6 months | 0.682 (0.599–0.766) | <46.5 | 0.85 (0.78–0.91) | 0.48 (0.35–0.61) | 0.73 (0.66–0.79) | 1.65 (1.28–2.12) | 0.31 (0.19–0.50) |
at 12 months | 0.781 (0.709–0.853) | <52.5 | 0.78 (0.70–0.85) | 0.69 (0.56–0.8) | 0.75 (0.68–0.81) | 2.54 (1.73–3.74) | 0.32 (0.22–0.46) |
Proportion of calorie at 12 months | |||||||
Carbohydrate (%) | 0.714 (0.637–0.792) | <49.0 | 0.85 (0.78–0.91) | 0.60 (0.46–0.72) | 0.77 (0.7–0.83) | 2.11 (1.54–2.88) | 0.25 (0.16–0.40) |
Protein (%) | 0.609 (0.523–0.695) | >24.5 | 0.52 (0.40–0.64) | 0.74 (0.65–0.81) | 0.65 (0.58–0.72) | 1.98 (1.36–2.88) | 0.65 (0.50–0.84) |
Fat (%) | 0.855 (0.792–0.917) | <28.0 | 0.73 (0.65–0.81) | 0.60 (0.46–0.72) | 0.69 (0.62–0.75) | 1.82 (1.32–2.50) | 0.45 (0.32–0.64) |
© 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Lim, H.-S.; Kim, Y.J.; Lee, J.; Yoon, S.-J.; Lee, B. Establishment of Adequate Nutrient Intake Criteria to Achieve Target Weight Loss in Patients Undergoing Bariatric Surgery. Nutrients 2020, 12, 1774. https://doi.org/10.3390/nu12061774
Lim H-S, Kim YJ, Lee J, Yoon S-J, Lee B. Establishment of Adequate Nutrient Intake Criteria to Achieve Target Weight Loss in Patients Undergoing Bariatric Surgery. Nutrients. 2020; 12(6):1774. https://doi.org/10.3390/nu12061774
Chicago/Turabian StyleLim, Hee-Sook, Yong Jin Kim, Jihyun Lee, Su-Jin Yoon, and Bora Lee. 2020. "Establishment of Adequate Nutrient Intake Criteria to Achieve Target Weight Loss in Patients Undergoing Bariatric Surgery" Nutrients 12, no. 6: 1774. https://doi.org/10.3390/nu12061774
APA StyleLim, H. -S., Kim, Y. J., Lee, J., Yoon, S. -J., & Lee, B. (2020). Establishment of Adequate Nutrient Intake Criteria to Achieve Target Weight Loss in Patients Undergoing Bariatric Surgery. Nutrients, 12(6), 1774. https://doi.org/10.3390/nu12061774