Magnetic Resonance Imaging to Assess Body Composition Change in Adolescents With Obesity After Sleeve Gastrectomy.


Journal

Journal of pediatric gastroenterology and nutrition
ISSN: 1536-4801
Titre abrégé: J Pediatr Gastroenterol Nutr
Pays: United States
ID NLM: 8211545

Informations de publication

Date de publication:
01 12 2022
Historique:
pubmed: 8 9 2022
medline: 23 11 2022
entrez: 7 9 2022
Statut: ppublish

Résumé

Metabolic and bariatric surgery is the most effective weight loss treatment for severe obesity. The number of adolescents undergoing sleeve gastrectomy is increasing. We investigated changes in body composition in adolescents undergoing sleeve gastrectomy 12-26 weeks post-operatively using whole-body magnetic resonance imaging (WB-MRI). This prospective cohort study assessed changes in adipose tissue compartments (ie, visceral, subcutaneous, and intermuscular) and muscle in 18 obese adolescents, ages 14-19, 89% female, with body mass index z -score of 2.6 ± 0.25 (range 2.16-3.2). All underwent WB-MRI 1.5-17 weeks pre-operatively and 12-26 weeks post-operatively. Pre- and post-operative WB-MRI showed decreases in all adipose tissue compartments, as well as decreased skeletal muscle and liver fat fraction ( P < 0.0001). The post-operative percentage loss of adipose tissue in subcutaneous, visceral, and intermuscular compartments (89.0%, 5.8%, 5.2%, respectively) was similar to the pre-operative percentages of corresponding adipose tissue compartments (90.5%, 5.0%, 4.5%, respectively). Of note, participants with obstructive sleep apnea had significantly higher pre-operative volume of subcutaneous and intermuscular adipose tissue than participants without obstructive sleep apnea ( P = 0.003). We found, contrary to what is reported to occur in adults, that pre-operative percentage loss of adipose tissue in subcutaneous, visceral, and intermuscular compartments was similar to the post-operative percentage loss of corresponding adipose tissue compartments in adolescents 12-26 weeks after sleeve gastrectomy.

Identifiants

pubmed: 36070531
doi: 10.1097/MPG.0000000000003607
pii: 00005176-202212000-00016
pmc: PMC9675718
mid: NIHMS1833844
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't Research Support, N.I.H., Extramural

Langues

eng

Sous-ensembles de citation

IM

Pagination

761-767

Subventions

Organisme : NIDDK NIH HHS
ID : P30 DK026687
Pays : United States
Organisme : NIDDK NIH HHS
ID : P30 DK132710
Pays : United States
Organisme : NCATS NIH HHS
ID : UL1 TR001873
Pays : United States

Informations de copyright

Copyright © 2022 by European Society for European Society for Pediatric Gastroenterology, Hepatology, and Nutrition and North American Society for Pediatric Gastroenterology, Hepatology, and Nutrition.

Déclaration de conflit d'intérêts

The authors report no conflicts of interest.

Références

Ogden CL, Carroll MD, Lawman HG, et al. Trends in obesity prevalence among children and adolescents in the United States, 1988-1994 through 2013-2014. JAMA. 2016;315:2292–9.
Skinner AC, Ravanbakht SN, Skelton JA, et al. Prevalence of obesity and severe obesity in US Children, 1999-2016. Pediatrics. 2018;141:e20173459.
August GP, Caprio S, Fennoy I, et al. Prevention and treatment of pediatric obesity: an endocrine society clinical practice guideline based on expert opinion. J Clin Endocrinol Metab. 2008;93:4576–99.
Styne DM, Arslanian SA, Connor EL, et al. Pediatric obesity-assessment, treatment, and prevention: an Endocrine Society Clinical Practice Guideline. J Clin Endocrinol Metab. 2017;102:709–57.
Pratt JSA, Browne A, Browne NT, et al. ASMBS pediatric metabolic and bariatric surgery guidelines, 2018. Surg Obes Relat Dis. 2018;14:882–901.
Maciejewski ML, Arterburn DE, Van Scoyoc L, et al. Bariatric surgery and long-term durability of weight loss. JAMA Surg. 2016;151:1046–55.
De La Cruz-Munoz N, Lopez-Mitnik G, Arheart KL, et al. Effectiveness of bariatric surgery in reducing weight and body mass index among Hispanic adolescents. Obes Surg. 2013;23:150–6.
Gloy VL, Briel M, Bhatt DL, et al. Bariatric surgery versus non-surgical treatment for obesity: a systematic review and meta-analysis of randomised controlled trials. BMJ. 2013;347:f5934.
Tchernof A, Despres JP. Pathophysiology of human visceral obesity: an update. Physiol Rev. 2013;93:359–404.
Pietilainen KH, Rissanen A, Kaprio J, et al. Acquired obesity is associated with increased liver fat, intra-abdominal fat, and insulin resistance in young adult monozygotic twins. Am J Physiol Endocrinol Metab. 2005;288:E768–74.
Freedman DS, Mei Z, Srinivasan SR, et al. Cardiovascular risk factors and excess adiposity among overweight children and adolescents: the Bogalusa Heart Study. J Pediatr. 2007;150:12–17.e2.
Shen W, Liu H, Punyanitya M, et al. Pediatric obesity phenotyping by magnetic resonance methods. Curr Opin Clin Nutr Metab Care. 2005;8:595–601.
Dick TJ, Lesser IA, Leipsic JA, et al. The effect of obesity on the association between liver fat and carotid atherosclerosis in a multi-ethnic cohort. Atherosclerosis. 2013;226:208–13.
Nguyen-Duy TB, Nichaman MZ, Church TS, et al. Visceral fat and liver fat are independent predictors of metabolic risk factors in men. Am J Physiol Endocrinol Metab. 2003;284:E1065–71.
Davidson LE, Yu W, Goodpaster BH, et al. Fat-free mass and skeletal muscle mass five years after bariatric surgery. Obesity (Silver Spring). 2018;26:1130–6.
Kenngott HG, Nickel F, Wise PA, et al. Weight loss and changes in adipose tissue and skeletal muscle volume after laparoscopic sleeve gastrectomy and Roux-en-Y gastric bypass: a prospective study with 12-month follow-up. Obes Surg. 2019;29:4018–28.
Pourhassan M, Gluer CC, Pick P, et al. Impact of weight loss-associated changes in detailed body composition as assessed by whole-body MRI on plasma insulin levels and homeostatis model assessment index. Eur J Clin Nutr. 2017;71:212–8.
Dubnov-Raz G, Inge TH, Ben-Ami M, et al. Body composition changes in adolescents after laparoscopic sleeve gastrectomy. Surg Obes Relat Dis. 2016;12:322–9.
Beamish AJ, Gronowitz E, Olbers T, et al. Body composition and bone health in adolescents after Roux-en-Y gastric bypass for severe obesity. Pediatr Obes. 2017;12:239–46.
Hübers M, Geisler C, Plachta-Danielzik S, et al. Association between individual fat depots and cardio-metabolic traits in normal- and overweight children, adolescents and adults. Nutr Diabetes. 2017;7:e267.
Linder K, Springer F, Machann J, et al. Relationships of body composition and liver fat content with insulin resistance in obesity-matched adolescents and adults. Obesity (Silver Spring). 2014;22:1325–31.
Roemmich J, Clark P, Weltman A, et al. Alterations in growth and body composition during puberty. I. Comparing multicompartment body composition models. J Appl Physiol. 1997;83:927–35.
Gallagher D, Belmonte D, Deurenberg P, et al. Organ-tissue mass measurement allows modeling of REE and metabolically active tissue mass. Am J Physiol. 1998;275:E249–58.
Heymsfield SB, Gallagher D, Kotler DP, et al. Body-size dependence of resting energy expenditure can be attributed to nonenergetic homogeneity of fat-free mass. Am J Physiol Endocrinol Metab. 2002;282:E132–8.
Shen W, Gong X, Weiss J, et al. Comparison among T1-weighted magnetic resonance imaging, modified dixon method, and magnetic resonance spectroscopy in measuring bone marrow fat. J Obes. 2013;2013:298675.
Bredella MA, Ghomi RH, Thomas BJ, et al. Breath-hold 1H-magnetic resonance spectroscopy for intrahepatic lipid quantification at 3 Tesla. J Comput Assist Tomogr. 2010;34:372–6.
Shen W, Chen J. Application of imaging and other noninvasive techniques in determining adipose tissue mass. Methods Mol Biol. 2008;456:39–54.
Griffith JF, Yeung DK, Antonio GE, et al. Vertebral marrow fat content and diffusion and perfusion indexes in women with varying bone density: MR evaluation. Radiology. 2006;241:831–8.
Shen W, Peethala R, Chen J, Punyanitya M. Comparison among T1-weighted MRI, Modified Dixon Method, and MRS in Measuring Bone Marrow Fat. In: International Society for Magnetic Resonance in Medicine Workshop on Fat-Water Separation: Insights, Applications & Progress in MRI 2012 19-22 February 2012; Long Beach, CA, USA. p. Poster 18.
Daniels SR, Benuck I, Christakis DA, et al. Expert panel on integrated guidelines for cardiovascular health and risk reduction in children and adolescents: Summary report. Pediatrics 2011;128:S213–S256.
Lee JM, Okumura MJ, Davis MM, et al. Prevalence and determinants of insulin resistance among U.S. adolescents. Diabetes Care. 2006;29:2427–32.
Brunt EM, Kleiner DE, Wilson LA, et al. The NAS and the histopathologic diagnosis in NAFLD: distinct clinicopathologic meanings. Hepatology. 2011;53:810–20.
Chalasani N, Younossi Z, Lavine JE, et al. The diagnosis and management of non-alcoholic fattyliver disease: practice guideline by the American Association for the Study of Liver Diseases, American College of Gastroenterology, and the American Gastroenterological Association. Hepatology2012;55:2005–23.
Boza C, Viscido G, Salinas J, et al. Laparoscopic sleeve gastrectomy in obese adolescents: results in 51 patients. Surg Obes Relat Dis. 2012;8:133–7; discussion 137. discussion 79.
Inge TH, Courcoulas AP, Jenkins TM, et al. Weight loss and health status 3 years after bariatric surgery in adolescents. N Engl J Med. 2016;374:113–23.
Nadler EP, Barefoot LC, Qureshi FG. Early results after laparoscopic sleeve gastrectomy in adolescents with morbid obesity. Surgery. 2012;152:212–7.
Luo RB, Suzuki T, Hooker JC, et al. How bariatric surgery affects liver volume and fat density in NAFLD patients. Surg Endosc. 2018;32:1675–82.
Brissman M, Ekbom K, Hagman E, et al. Physical fitness and body composition two years after Roux-En-Y gastric bypass in adolescents. Obes Surg. 2017;27:330–7.
Chu L, Steinberg A, Mehta M, et al. Resting energy expenditure and metabolic adaptation in adolescents at 12 months after bariatric surgery. J Clin Endocrinol Metab. 2019;104:2648–56.
Inge T, Wilson KA, Gamm K, et al. Preferential loss of central (trunk) adiposity in adolescents and young adults after laparoscopic gastric bypass. Surg Obes Relat Dis. 2007;3:153–8.
Toro-Ramos T, Goodpaster BH, Janumala I, et al. Continued loss in visceral and intermuscular adipose tissue in weight-stable women following bariatric surgery. Obesity (Silver Spring). 2015;23:62–9.
Bosch TA, Dengel DR, Kelly AS, et al. Visceral adipose tissue measured by DXA correlates with measurement by CT and is associated with cardiometabolic risk factors in children. Pediatr Obes. 2015;10:172–9.
Alsina ME, Ruiz-Tovar J, Bernabeu A. Evolution of liver steatosis quantified by MR imaging and MR spectroscopy, in morbidly obese patients undergoing Sleeve gastrectomy: short-term outcomes. Obes Surg. 2017;27:1724–8.
Immonen H, Hannukainen JC, Iozzo P, et al. Effect of bariatric surgery on liver glucose metabolism in morbidly obese diabetic and non-diabetic patients. J Hepatol. 2014;60:377–83.
Alqahtani AR, Elahmedi MO, Al Qahtani A. Co-morbidity resolution in morbidly obese children and adolescents undergoing sleeve gastrectomy. Surg Obes Relat Dis. 2014;10:842–50.
Lautenbach A, Wernecke M, Riedel N, et al. Adaptive changes in pancreas post Roux-en-Y gastric bypass induced weight loss. Diabetes Metab Res Rev. 2018;34:e3025.
Dempsey JA, Veasey SC, Morgan BJ, et al. Pathophysiology of sleep apnea. Physiol Rev. 2010;90:47–112.
Hermanns-Le T, Scheen A, Pierard GE. Acanthosis nigricans associated with insulin resistance: pathophysiology and management. Am J Clin Dermatol. 2004;5:199–203.
Koh YK, Lee JH, Kim EY, et al. Acanthosis nigricans as a clinical predictor of insulin resistance in obese children. Pediatr Gastroenterol Hepatol Nutr. 2016;19:251–8.
Hirschler V, Aranda C, Oneto A, et al. Is acanthosis nigricans a marker of insulin resistance in obese children? Diabetes Care. 2002;25:2353.
Lafortuna CL, Maffiuletti NA, Agosti F, et al. Gender variations of body composition, muscle strength and power output in morbid obesity. Int J Obes (Lond). 2005;29:833–41.
Otto M, Färber J, Haneder S, et al. Postoperative changes in body composition--comparison of bioelectrical impedance analysis and magnetic resonance imaging in bariatric patients. Obes Surg. 2015;25:302–9.
Shen W, Chen J, Gantz M, et al. A single MRI slice does not accurately predict visceral and subcutaneous adipose tissue changes during weight loss. Obesity (Silver Spring). 2012;20:2458–63.

Auteurs

Elizabeth A Berg (EA)

From the Division of Pediatric Gastroenterology, Hepatology and Nutrition, Department of Pediatrics, Vagelos College of Physicians and Surgeons, Columbia University Irving Medical Center, New York, NY.

Zixing Huang (Z)

From the Division of Pediatric Gastroenterology, Hepatology and Nutrition, Department of Pediatrics, Vagelos College of Physicians and Surgeons, Columbia University Irving Medical Center, New York, NY.

Youya Wang (Y)

the Institute of Human Nutrition, Vagelos College of Physicians and Surgeons, Columbia University Irving Medical Center, New York, NY.

Jennifer Woo Baidal (J)

From the Division of Pediatric Gastroenterology, Hepatology and Nutrition, Department of Pediatrics, Vagelos College of Physicians and Surgeons, Columbia University Irving Medical Center, New York, NY.

Ilene Fennoy (I)

the Division of Pediatric Endocrinology, Department of Pediatrics, Vagelos College of Physicians and Surgeons, Columbia University Irving Medical Center, New York, NY.

Joel E Lavine (JE)

the Institute of Human Nutrition, Vagelos College of Physicians and Surgeons, Columbia University Irving Medical Center, New York, NY.

Jeffrey Zitsman (J)

the Division of Pediatric Surgery, Vagelos College of Physicians and Surgeons, Columbia University Irving Medical Center, New York, NY.

Wei Shen (W)

From the Division of Pediatric Gastroenterology, Hepatology and Nutrition, Department of Pediatrics, Vagelos College of Physicians and Surgeons, Columbia University Irving Medical Center, New York, NY.
the Institute of Human Nutrition, Vagelos College of Physicians and Surgeons, Columbia University Irving Medical Center, New York, NY.
the Columbia Magnetic Resonance Research Center (CMRRC), Columbia University, New York, NY.

Articles similaires

[Redispensing of expensive oral anticancer medicines: a practical application].

Lisanne N van Merendonk, Kübra Akgöl, Bastiaan Nuijen
1.00
Humans Antineoplastic Agents Administration, Oral Drug Costs Counterfeit Drugs

Smoking Cessation and Incident Cardiovascular Disease.

Jun Hwan Cho, Seung Yong Shin, Hoseob Kim et al.
1.00
Humans Male Smoking Cessation Cardiovascular Diseases Female
Humans United States Aged Cross-Sectional Studies Medicare Part C
1.00
Humans Yoga Low Back Pain Female Male

Classifications MeSH