Impact of Physical Activity and Weight Loss on Fat Mass, Glucose Metabolism, and Inflammation in Older African Americans with Osteoarthritis
Abstract
:1. Introduction
2. Materials and Methods
2.1. Recruitment Strategy and Inclusion/Exclusion Criteria
2.2. Parent Study Interventions
2.3. Study Measures and Data Collections Methods
2.4. Power and Statistical Analysis
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
- Siegel, R.L.; Miller, K.D.; Jemal, A. Cancer Statistics, 2016. CA Cancer J. Clin. 2016, 66, 7–30. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Wilkins, J.T.; Ning, H.; Berry, J.; Zhao, L.; Dyer, A.R.; Lloyd-Jones, D.M. Lifetime Risk and Years Lived Free of Total Cardiovascular Disease. JAMA 2012, 308, 1795–1801. [Google Scholar] [CrossRef] [PubMed]
- Narayan, K.M.V.; Boyle, J.P.; Thompson, T.J.; Sorensen, S.W.; Williamson, D.F. Lifetime Risk for Diabetes Mellitus in the United States. JAMA 2003, 290, 1884–1890. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Liu, Y.; Hu, F.; Li, D.; Wang, F.; Zhu, L.; Chen, W.; Ge, J.; An, R.; Zhao, Y. Does Physical Activity Reduce the Risk of Prostate Cancer? A Systematic Review and Meta-Analysis. Eur. Urol. 2011, 60, 1029–1044. [Google Scholar] [CrossRef] [PubMed]
- Lee, I.; Oguma, Y. Physical Activity. In Cancer Epidemiology and Prevention; Schottenfeld, D., Fraumeni, J., Eds.; Oxford University Press: New York, NY, USA, 2009; pp. 1–92. [Google Scholar]
- Frank, L.L.; Sorensen, B.E.; Yasui, Y.; Tworoger, S.S.; Schwartz, R.S.; Ulrich, C.M.; Irwin, M.L.; Rudolph, R.E.; Rajan, K.B.; Stanczyk, F.; et al. Effects of Exercise on Metabolic Risk Variables in Overweight Postmenopausal Women: A Randomized Clinical Trial. Obes. Res. 2005, 13, 615–625. [Google Scholar] [CrossRef] [PubMed]
- Mctiernan, A. Cancer Prevention and Management through Exercise and Weight Control, 1st ed.; Taylor & Francis: Boca Raton, FL, USA, 2006. [Google Scholar]
- De Pergola, G.; Silvestris, F. Obesity as a Major Risk Factor for Cancer. J. Obes. 2013, 2013, 291546. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Oyeyemi, S.O.; Braaten, T.; Licaj, I.; Lund, E.; Benjaminsen Borch, K. Physical Activity Patterns and the Risk of Colorectal Cancer in the Norwegian Women and Cancer Study: A Population-Based Prospective Study. BMC Cancer 2018, 18, 1216. [Google Scholar] [CrossRef] [PubMed]
- The Emerging Risk Factors Collaboration. Separate and Combined Associations of Body-Mass Index and Abdominal Adiposity with Cardiovascular Disease: Collaborative Analysis of 58 Prospective Studies. Lancet 2011, 377, 1085–1095. [Google Scholar] [CrossRef] [Green Version]
- Stamatakis, E.; Hamer, M.; Dunstan, D.W. Screen-Based Entertainment Time, All-Cause Mortality, and Cardiovascular Events: Population-Based Study with Ongoing Mortality and Hospital Events Follow-Up. J. Am. Coll. Cardiol. 2011, 57, 292–299. [Google Scholar] [CrossRef]
- Chatterjee, S.; Khunti, K.; Davies, M.J. Type 2 Diabetes. Lancet 2017, 389, 2239–2251. [Google Scholar] [CrossRef]
- August, K.J.; Sorkin, D.H. Racial/Ethnic Disparities in Exercise and Dietary Behaviors of Middle-Aged and Older Adults. J. Gen. Intern. Med. 2011, 26, 245–250. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hales, C.M.; Carroll, M.D.; Fryar, C.D.; Ogden, C.L. Prevalence of Obesity Among Adults and Youth: United States, 2015–2016; NCHS Data Brief, no 288; NCHS: Hyattsville, MD, USA, 2017.
- SEER. Available online: http://seer.cancer.gov/canques/incidence.html (accessed on 10 September 2016).
- Henley, S.J.; Miller, J.W.; Dowling, N.F.; Benard, V.B.; Richardson, L.C. Uterine Cancer Incidence and Mortality—United States, 1999–2016. Morb. Mortal. Wkly. Rep. 2018, 67, 1333–1338. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Davis, A.M.; Vinci, L.M.; Okwuosa, T.M.; Chase, A.R.; Huang, E.S. Cardiovascular Health Disparities: A Systematic Review of Health Care Interventions. Med. Care Res. Rev. 2007, 64, 29S–100S. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- National Diabetes Fact Sheet, 2011. Available online: https://www.cdc.gov/diabetes/pubs/pdf/methods11.pdf (accessed on 10 September 2016).
- Font-burgada, J.; Sun, B.; Karin, M. Review Obesity and Cancer: The Oil That Feeds the Flame. Cell Metab. 2015, 23, 48–62. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Van Gaal, L.F.; Mertens, I.L.; De Block, C.E. Mechanisms Linking Obesity with Cardiovascular Disease. Nature 2006, 444, 875–880. [Google Scholar] [CrossRef]
- Kahn, S.E.; Hull, R.L.; Utzschneider, K.M. Mechanisms Linking Obesity to Insulin Resistance and Type 2 Diabetes. Nature 2006, 444, 840–846. [Google Scholar] [CrossRef] [PubMed]
- Yu, H.; Pardoll, D.; Jove, R.; Comprehensive, K. HHS Public Access. Nat. Rev. Cancer 2016, 9, 798–809. [Google Scholar] [CrossRef]
- Fontana, L.; Eagon, J.C.; Trujillo, M.E.; Scherer, P.E.; Klein, S. Systemic Inflammation in Obese Humans. Diabetes 2007, 56, 1010–1013. [Google Scholar] [CrossRef] [Green Version]
- Greenberg, A.S.; Obin, M.S. Obesity and the Role of Adipose Tissue in Inflammation and Metabolism. Am. J. Clin. Nutr. 2006, 83, 461–465. [Google Scholar] [CrossRef] [Green Version]
- Hanahan, D.; Weinberg, R.A. Review Hallmarks of Cancer: The Next Generation. Cell 2011, 144, 646–674. [Google Scholar] [CrossRef] [Green Version]
- Roberts, D.L.; Dive, C.; Renehan, A.G. Biological Mechanisms Linking Obesity and Cancer Risk: New Perspectives. Annu. Rev. Med. 2010, 61, 301–316. [Google Scholar] [CrossRef] [PubMed]
- Tian, D.; Meng, J. Exercise for Prevention and Relief of Cardiovascular Disease: Prognoses, Mechanisms, and Approaches. Oxid. Med. Cell. Longev. 2019, 2019, 3756750. [Google Scholar] [CrossRef] [Green Version]
- Stanford, K.I.; Goodyear, L.J. Exercise and Type 2 Diabetes: Molecular Mechanisms Regulating Glucose Uptake in Skeletal Muscle. Adv. Physiol. Educ. 2014, 38, 308–314. [Google Scholar] [CrossRef] [Green Version]
- Campbell, K.L.; McTiernan, A. Exercise and Biomarkers for Cancer Prevention Studies. J. Nutr. 2007, 137, 161S–169S. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Tsukui, S.; Kanda, T.; Nara, M.; Nishino, M.; Kondo, T.; Kobayashi, I. Moderate-Intensity Regular Exercise Decreases Serum Tumor Necrosis Factor-α and HbA1c Levels in Healthy Women. Int. J. Obes. 2000, 24, 1207–1211. [Google Scholar] [CrossRef] [Green Version]
- Ford, E.S. Does Exercise Reduce Inflammation? Physical Activity and C-Reactive Protein Among U.S. Adults. Epidemiology 2002, 13, 561–568. [Google Scholar] [CrossRef] [PubMed]
- LaMonte, M.J.; Lewis, C.E.; Buchner, D.M.; Evenson, K.R.; Rillamas-Sun, E.; Di, C.; Lee, I.M.; Bellettiere, J.; Stefanick, M.L.; Eaton, C.B.; et al. Both Light Intensity and Moderate-to-Vigorous Physical Activity Measured by Accelerometry Are Favorably Associated with Cardiometabolic Risk Factors in Older Women: The Objective Physical Activity and Cardiovascular Health (Opach) Study. J. Am. Heart Assoc. 2017, 6, 1–15. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Geffken, D.F.; Cushman, M.; Burke, G.L.; Polak, J.F.; Sakkinen, P.A.; Tracy, R.P. Association between Physical Activity and Markers of Inflammation in a Healthy Elderly Population. Am. J. Epidemiol. 2001, 153, 242–250. [Google Scholar] [CrossRef]
- Vella, C.A.; Allison, M.A.; Cushman, M.; Jenny, N.S.; Miles, M.P.; Larsen, B.; Lakoski, S.G.; Michos, E.D.; Blaha, M.J. Physical Activity and Adiposity-Related Inflammation: The MESA. Med. Sci. Sports Exerc. 2017, 49, 915–921. [Google Scholar] [CrossRef] [Green Version]
- McGlory, C.; Von Allmen, M.T.; Stokes, T.; Morton, R.W.; Hector, A.J.; Lago, B.A.; Raphenya, A.R.; Smith, B.K.; McArthur, A.G.; Steinberg, G.R.; et al. Failed Recovery of Glycemic Control and Myofibrillar Protein Synthesis with 2 Wk of Physical Inactivity in Overweight, Prediabetic Older Adults. J. Gerontol. Ser. A Biol. Sci. Med. Sci. 2018, 73, 1070–1077. [Google Scholar] [CrossRef]
- Imayama, I.; Ulrich, C.M.; Alfano, C.M.; Wang, C.; Xiao, L.; Wener, M.H.; Campbell, K.L.; Duggan, C.; Foster-Schubert, K.E.; Kong, A.; et al. Effects of a Caloric Restriction Weight Loss Diet and Exercise on Inflammatory Biomarkers in Overweight/Obese Postmenopausal Women: A Randomized Controlled Trial. Cancer Res. 2012, 72, 2314–2326. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Bouchonville, M.; Armamento-Villareal, R.; Shah, K.; Napoli, N.; Sinacore, D.R.; Qualls, C.; Villareal, D.T. Weight Loss, Exercise or Both and Cardiometabolic Risk Factors in Obese Older Adults: Results of a Randomized Controlled Trial. Int. J. Obes. 2014, 38, 423–431. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Beavers, K.M.; Beavers, D.P.; Newman, J.J.; Anderson, A.M.; Loeser, R.F.; Nicklas, B.J.; Lyles, M.F.; Miller, G.D.; Mihalko, S.L.; Messier, S.P. Effects of Total and Regional Fat Loss on Plasma CRP and IL-6 in Overweight and Obese, Older Adults with Knee Osteoarthritis. Osteoarthr. Cartil. 2015, 23, 249–256. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Friedenreich, C.M.; Neilson, H.K.; Woolcott, C.G.; Wang, Q.; Stanczyk, F.Z.; McTiernan, A.; Jones, C.A.; Irwin, M.L.; Yasui, Y.; Courneya, K.S. Inflammatory Marker Changes in a Yearlong Randomized Exercise Intervention Trial among Postmenopausal Women. Cancer Prev. Res. 2012, 5, 98–108. [Google Scholar] [CrossRef] [Green Version]
- Mendoza-Núñez, V.M.; Arista-Ugalde, T.L.; Rosado-Pérez, J.; Ruiz-Ramos, M.; Santiago-Osorio, E. Hypoglycemic and Antioxidant Effect of Tai Chi Exercise Training in Older Adults with Metabolic Syndrome. Clin. Interv. Aging 2018, 13, 523–531. [Google Scholar] [CrossRef] [Green Version]
- Nicklas, B.J.; Ambrosius, W.; Messier, S.P.; Miller, G.D.; Penninx, B.W.J.H.; Loeser, R.F.; Palla, S.; Bleecker, E.; Pahor, M. Diet-Induced Weight Loss, Exercise, and Chronic Inflammation in Older, Obese Adults: A Randomized Controlled Clinical Trial. Am. J. Clin. Nutr. 2004, 79, 544–551. [Google Scholar] [CrossRef]
- Yassine, H.N.; Marchetti, C.M.; Krishnan, R.K.; Vrobel, T.R.; Gonzalez, F.; Kirwan, J.P. Effects of Exercise and Caloric Restriction on Insulin Resistance and Cardiometabolic Risk Factors in Older Obese Adults—A Randomized Clinical Trial. J. Gerontol. Ser. A Biol. Sci. Med. Sci. 2009, 64, 90–95. [Google Scholar] [CrossRef]
- Malin, S.; Niemi, N.; Solomon, T.; Haus, J.; R Kelly, K.; Filion, J.; Rocco, M.; Kashyap, S.; Barkoukis, H.; Kirwan, J. Exercise Training with Weight Loss and Either a High- or Low-Glycemic Index Diet Reduces Metabolic Syndrome Severity in Older Adults. Ann. Nutr. Metab. 2012, 61, 135–141. [Google Scholar] [CrossRef] [Green Version]
- Sattin, R.W.; Williams, L.B.; Dias, J.; Garvin, J.T.; Marion, L.; Joshua, T.V.; Kriska, A.; Kramer, M.K.; Narayan, K.M.V. Community Trial of a Faith-Based Lifestyle Intervention to Prevent Diabetes Among African-Americans. J. Community Health 2016, 41, 87–96. [Google Scholar] [CrossRef] [Green Version]
- Ard, J.D.; Carson, T.L.; Shikany, J.M.; Li, Y.; Hardy, C.M.; Robinson, J.C.; Williams, A.G.; Baskin, M.L. Weight Loss and Improved Metabolic Outcomes amongst Rural African American Women in the Deep South: Six-Month Outcomes from a Community-Based Randomized Trial. J. Intern. Med. 2017, 282, 102–113. [Google Scholar] [CrossRef]
- Wang, J.; Cai, C.; Padhye, N.; Orlander, P.; Zare, M. A Behavioral Lifestyle Intervention Enhanced With Multiple-Behavior Self-Monitoring Using Mobile and Connected Tools for Underserved Individuals With Type 2 Diabetes and Comorbid Overweight or Obesity: Pilot Comparative Effectiveness Trial. JMIR mHealth uHealth 2018, 6, e92. [Google Scholar] [CrossRef]
- Messier, S.P.; Mihalko, S.L.; Legault, C.; Miller, G.D.; Nicklas, B.J.; DeVita, P.; Beavers, D.P.; Hunter, D.J.; Lyles, M.F.; Eckstein, F.; et al. Effects of Intensive Diet and Exercise on Knee Joint Loads, Inflammation, and Clinical Outcomes among Overweight and Obese Adults with Knee Osteoarthritis: The IDEA Randomized Clinical Trial. JAMA J. Am. Med. Assoc. 2013, 310, 1263–1273. [Google Scholar] [CrossRef]
- Villareal, D.T.; Chode, S.; Parimi, N.; Sinacore, D.R.; Hilton, T.; Armamento-Villareal, R.; Napoli, N.; Qualls, C.; Shah, K. Weight Loss, Exercise, or Both and Physical Function in Obese Older Adults. N. Engl. J. Med. 2011, 364, 1218–1229. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Foster-Schubert, K.E.; Alfano, C.M.; Duggan, C.R.; Xiao, L.; Campbell, K.L.; Kong, A.; Bain, C.E.; Wang, C.Y.; Blackburn, G.L.; Mctiernan, A. Effect of Diet and Exercise, Alone or Combined, on Weight and Body Composition in Overweight-to-Obese Postmenopausal Women. Obesity 2012, 20, 1628–1638. [Google Scholar] [CrossRef] [Green Version]
- Tomeleri, C.M.; Ribeiro, A.S.; Souza, M.F.; Schiavoni, D.; Schoenfeld, B.J.; Venturini, D.; Barbosa, D.S.; Landucci, K.; Sardinha, L.B.; Cyrino, E.S. Resistance Training Improves Inflammatory Level, Lipid and Glycemic Profiles in Obese Older Women: A Randomized Controlled Trial. Exp. Gerontol. 2016, 84, 80–87. [Google Scholar] [CrossRef] [PubMed]
- Nicklas, B.J.; Dennis, K.E.; Berman, D.M.; Sorkin, J.; Ryan, A.S.; Goldberg, A.P. Lifestyle Intervention of Hypocaloric Dieting and Walking Reduces Abdominal Obesity and Improves Coronary Heart Disease Risk Factors in Obese, Postmenopausal, African-American and Caucasian Women. J. Gerontol. A. Biol. Sci. Med. Sci. 2003, 58, 181–189. [Google Scholar] [CrossRef] [Green Version]
- Arad, A.D.; DiMenna, F.J.; Thomas, N.; Tamis-Holland, J.; Weil, R.; Geliebter, A.; Albu, J.B. High-Intensity Interval Training without Weight Loss Improves Exercise but Not Basal or Insulin-Induced Metabolism in Overweight/Obese African American Women. J. Appl. Physiol. 2015, 119, 352–362. [Google Scholar] [CrossRef] [Green Version]
- Ortmeyer, H.K.; Goldberg, A.P.; Ryan, A.S. Exercise with Weight Loss Improves Adipose Tissue and Skeletal Muscle Markers of Fatty Acid Metabolism in Postmenopausal Women. Obesity (Silver Spring) 2017, 25, 1246–1253. [Google Scholar] [CrossRef] [Green Version]
- Wing, R.R.; Anglin, K. Effectiveness of a Behavioral Weight Control Program for Blacks and Whites with NIDDM. Diabetes Care 1996, 19, 409–413. [Google Scholar] [CrossRef] [PubMed]
- Fisher, G.; Hyatt, T.C.; Hunter, G.R.; Oster, R.A.; Desmond, R.A.; Gower, B.A. Markers of Inflammation and Fat Distribution Following Weight Loss in African-American and White Women. Obesity 2012, 20, 715–720. [Google Scholar] [CrossRef] [Green Version]
- Racette, S.B.; Weiss, E.P.; Obert, K.A.; Kohrt, W.M.; Holloszy, J.O. Modest Lifestyle Intervention and Glucose Tolerance in Obese African Americans. Obes. Res. 2001, 9, 348–355. [Google Scholar] [CrossRef] [PubMed]
- Winnick, J.J.; Gaillard, T.; Schuster, D.P. Resistance Training Differentially Affects Weight Loss and Glucose Metabolism of White and African American Patients with Type 2 Diabetes Mellitus. Ethn. Dis. 2008, 18, 152–156. [Google Scholar] [PubMed]
- Smith-Ray, R.L.; Fitzgibbon, M.L.; Tussing-Humphreys, L.; Schiffer, L.; Shah, A.; Huber, G.M.; Braunschweig, C.; Campbell, R.T.; Hughes, S.L. Fit and Strong! Plus: Design of a Comparative Effectiveness Evaluation of a Weight Management Program for Older Adults with Osteoarthritis. Contemp. Clin. Trials 2014, 37, 178–188. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Pfeiffer, E. A Short Portable Mental Status Questionnaire for the Assessment of Organic Brain Deficit in Elderly Patients†. J. Am. Geriatr. Soc. 1975, 23, 433–441. [Google Scholar] [CrossRef] [PubMed]
- Ory, M.; Resnick, B.; Jordan, P.J.; Coday, M.; Riebe, D.; Garber, C.E.; Pruitt, L.; Bazzarre, T. Screening, Safety, and Adverse Events in Physical Activity Interventions: Collaborative Experiences from the Behavior Change Consortium. Ann. Behav. Med. 2005, 29, 20–28. [Google Scholar] [CrossRef]
- Belza, B. Moving Ahead. Strategies and Tools to Plan, Conduct, and Maintain Effective Community-Based Physical Activity Programs for Older Adults: A Brief Guide; Centers for Disease Control and Prevention: Atlanta, GA, USA, 2007.
- Centers for Disease Control and Prevention (CDC); National Center for Health Statistics (NCHS). National Health and Nutrition Examination Survey Questionnaire (or Examination Protocol, or Laboratory Protocol); U.S. Department of Health and Human Services: Hyattsville, MD, USA, 2013.
- Wallace, T.M.; Levy, J.C.; Matthews, D.R. Use and Abuse of HOMA Modeling. Diabetes Care 2004, 27, 1487–1495. [Google Scholar] [CrossRef] [Green Version]
- Hardin, J.W.; Hilbe, J.M. Generalized Estimating Equations: Introduction. In Wiley StatsRef: Statistics Reference Online; Wiley Online Library: Hoboken, NJ, USA, 2014. [Google Scholar]
- Carey, D.G.; Jenkins, A.B.; Campbell, L.V.; Freund, J.; Chisholm, D.J. Abdominal Fat and Insulin Resistance in Normal and Overweight Women: Direct Measurements Reveal a Strong Relationship in Subjects at Both Low and High Risk of NIDDM. Diabetes 1996, 45, 633–638. [Google Scholar] [CrossRef]
- Ascaso, J.F.; Pardo, S.; Real, J.T.; Lorente, R.I.; Priego, A.; Carmena, R. Diagnosing Insulin Resistance by Simple Quantitative Methods in Subjects with Normal Glucose Metabolism. Diabetes Care 2003, 26, 3320–3325. [Google Scholar] [CrossRef] [Green Version]
- Hughes, S.L.; Tussing-Humphreys, L.; Schiffer, L.; Smith-Ray, R.; Marquez, D.X.; Demott, A.D.; Berbaum, M.L.; Fitzgibbon, M.L. Fit & Strong! Plus Trial Outcomes for Obese Older Adults with Osteoarthritis. Gerontologist 2020, 60, 558–570. [Google Scholar]
- Heaney, M.L.; Golde, D.W. Soluble Receptors in Human Disease. J. Leukoc. Biol. 1998, 64, 135–146. [Google Scholar] [CrossRef]
- Mohamed-Ali, V.; Goodrick, S.; Rawesh, A.; Katz, D.R.; Miles, J.M.; Yudkin, J.S.; Klein, S.; Coppack, S.W. Subcutaneous Adipose Tissue Releases Interleukin-6, but Not Tumor Necrosis Factor-Alpha, in Vivo. J. Clin. Endocrinol. Metab. 1997, 82, 4196–4200. [Google Scholar] [PubMed] [Green Version]
- Kern, P.A.; Ranganathan, S.; Li, C.; Wood, L.; Ranganathan, G. Adipose Tissue Tumor Necrosis Factor and Interleukin-6 Expression in Human Obesity and Insulin Resistance. Am. J. Physiol. Endocrinol. Metab. 2001, 280, E745–E751. [Google Scholar] [CrossRef] [PubMed]
- Tam, C.S.; Xie, W.; Johnson, W.D.; Cefalu, W.T.; Redman, L.M.; Ravussin, E. Defining Insulin Resistance from Hyperinsulinemic-Euglycemic Clamps. Diabetes Care 2012, 35, 1605–1610. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Fisher, G.; Hyatt, T.C.; Hunter, G.R.; Oster, R.A.; Desmond, R.A.; Gower, B.A. Effect of Diet With and Without Exercise Training on Markers of Inflammation and Fat Distribution in Overweight Women. Obesity (Silver Spring) 2011, 19, 1131–1136. [Google Scholar] [CrossRef] [Green Version]
Fit and Strong!+ (n = 72) | Fit and Strong! (n = 83) | All (n = 155 1) | |
---|---|---|---|
Age, year, mean (SD) | 66.5 (4.8) | 67.2 (5.7) | 66.9 (5.3) |
Aged 60–69 years, n (%) | 60 (83%) | 61 (73%) | 121 (78%) |
Aged ≥70 years, n (%) | 12 (17%) | 22 (27%) | 34 (22%) |
Female, n (%) | 64 (89%) | 73 (88%) | 137 (88%) |
Education, year, mean (SD) | 14.3 (1.6) | 13.9 (2.1) | 14.1 (1.9) |
Not HS graduate, n (%) | 3 (4%) | 9 (11%) | 12 (8%) |
HS graduate/GED, n (%) | 10 (14%) | 9 (11%) | 19 (12%) |
Some college or tech school, n (%) | 32 (44%) | 38 (46%) | 70 (45%) |
College graduate, n (%) | 27 (38%) | 27 (33%) | 54 (35%) |
Retired, n (%) | 49 (68%) | 63 (76%) | 112 (72%) |
Married, n (%) | 12 (17%) | 17 (20%) | 29 (19%) |
Income, median | 25,000 | 25,000 | 25,000 |
Chronic conditions 2, mean (SD) | 2.7 (1.5) | 3.1 (1.9) | 2.9 (1.7) |
Type 2 diabetes, n (%) | 19 (26%) | 25 (30%) | 44 (28%) |
Hypertension, n (%) | 58 (81%) | 66 (80%) | 124 (80%) |
Heart disease, n (%) | 8 (11%) | 11 (13%) | 19 (12%) |
Fit and Strong!+ | Fit and Strong! | ||||||
---|---|---|---|---|---|---|---|
Baseline (n = 72) Mean (SE) | Post-Int (n = 65) Mean (SE) | Change 2 (%) | Baseline (n = 83) Mean (SE) | Post-Int (n = 74) Mean (SE) | Change 2 (%) | p3 | |
Weight, kg | 95.5 (2.7) | 93.6 (2.7) | −1.8 (−1.9%) *** | 97.2 (2.3) | 97.0 (2.3) | −0.2 (−0.2%) | <0.001 |
BMI, kg/m 2 | 33.7 (0.9) | 33.0 (0.9) | −0.7 (−2.1%) *** | 33.9 (0.8) | 33.8 (0.8) | −0.1 (−0.2%) | <0.001 |
Waist, cm | 115.3 (1.0) | 113.1 (1.0) | −2.2 (−1.9%) ** | 114.7 (1.0) | 114.8 (1.0) | 0.0 (0.0%) | 0.02 |
% body fat | 41.6 (0.4) | 40.7 (0.4) | −0.9 (−2.1%) *** | 41.3 (0.4) | 41.2 (0.4) | −0.1 (−0.3%) | <0.001 |
Fat mass, g | 41348 (663) | 39699 (705) | −1649 (−4.0%) *** | 41525 (599) | 41282 (631) | −242.6 (−0.6%) | <0.001 |
% lean mass | 55.4 (0.4) | 56.2 (0.4) | 0.8 (1.5%) *** | 55.7 (0.4) | 55.8 (0.4) | 0.1 (0.2%) | 0.001 |
Lean mass, g | 53603 (783) | 53394 (783) | −209 (−0.4%) | 54577 (629) | 54561 (629) | −15.9 (0.0%) | 0.45 |
VAT mas, g | 1992 (102) | 1910 (118) | −82.6 (−4.1%) * | 1987 (85) | 2062 (85) | 74.2 (3.7%) * | 0.003 |
VAT volume, cm 3 | 2112 (109) | 2024 (125) | −87.5 (−4.1%) * | 2107 (90) | 2185 (91) | 78.7 (3.7%) * | 0.003 |
Fit and Strong!+ | Fit and Strong! | ||||||
---|---|---|---|---|---|---|---|
Baseline (n = 72) Mean (95% CI) | Post-Int (n = 65) Mean (95% CI) | Change 2 (%) | Baseline (n = 83) Mean (95% CI) | Post-Int (n = 74) Mean (95% CI) | Change 2 (%) | p3 | |
CRP, mg/L | 4.5 (3.1–6.4) | 4.2 (3.0–6.0) | −0.2 (−4.9%) | 3.5 (2.5–4.8) | 3.4 (2.5–4.7) | −0.1 (−1.8%) | 0.83 |
IL-6, pg/mL | 3.6 (3.1–4.3) | 3.8 (3.2–4.4) | 0.2 (4.3%) | 3.2 (2.7–3.7) | 3.2 (2.8–3.8) | −0.1 (−1.9%) | 0.83 |
TNF-α, pg/mL | 6.9 (4.3–10.9) | 4.9 (3.0–8.1) | −2.0 (−28.6%) | 5.8 (3.6–9.4) | 3.7 (2.2–6.2) | −2.1 (−36.2%) * | 0.69 |
Glucose, mg/dL | 104.0 (98.1–110.2) | 99.9 (94.2–106.1) | −4.0 (−3.9%) | 102.9 (98.0–108.0) | 104.4 (98.5–110.6) | 1.5 (1.4%) | 0.09 |
Insulin, µIU/mL | 11.1 (9.1–13.6) | 9.6 (7.7–12.0) | −1.5 (−13.9%) * | 9.8 (7.9–12.2) | 9.4 (7.7–11.6) | −0.3 (−3.5%) | 0.23 |
HOMA-IR | 2.9 (2.3–3.6) | 2.4 (1.8–3.0) | −0.5 (−17.3%) | 2.5 (2.0–3.2) | 2.4 (1.9–3.1) | −0.1 (−2.1%) | 0.11 |
Δ Insulin, µIU/mL | Δ Glucose, mg/dL | Δ TNF-α, pg/mL | Δ IL-6, µIU/mL | Δ CRP, mg/L | |
---|---|---|---|---|---|
ΔVAT mass, g | r = 0.018 | r = 0.11 | r = 0.12 | r = 0.14 | r = 0.33 1 |
p = 0.86 | p = 0.27 | p = 0.24 | p = 0.16 | p = 0.0006 | |
Δ Total fat mass, g | r = 0.053 | r = 0.29 1 | r = 0.11 | r = 0.16 | r = 0.27 |
p = 0.59 | p = 0.0027 | p = 0.26 | p = 0.096 | p = 0.005 |
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McLeod, A.; Schiffer, L.; Castellanos, K.; DeMott, A.; Olender, S.; Fitzgibbon, M.; Hughes, S.; Fantuzzi, G.; Tussing-Humphreys, L. Impact of Physical Activity and Weight Loss on Fat Mass, Glucose Metabolism, and Inflammation in Older African Americans with Osteoarthritis. Nutrients 2020, 12, 3299. https://doi.org/10.3390/nu12113299
McLeod A, Schiffer L, Castellanos K, DeMott A, Olender S, Fitzgibbon M, Hughes S, Fantuzzi G, Tussing-Humphreys L. Impact of Physical Activity and Weight Loss on Fat Mass, Glucose Metabolism, and Inflammation in Older African Americans with Osteoarthritis. Nutrients. 2020; 12(11):3299. https://doi.org/10.3390/nu12113299
Chicago/Turabian StyleMcLeod, Andrew, Linda Schiffer, Karla Castellanos, Andrew DeMott, Sarah Olender, Marian Fitzgibbon, Susan Hughes, Giamila Fantuzzi, and Lisa Tussing-Humphreys. 2020. "Impact of Physical Activity and Weight Loss on Fat Mass, Glucose Metabolism, and Inflammation in Older African Americans with Osteoarthritis" Nutrients 12, no. 11: 3299. https://doi.org/10.3390/nu12113299
APA StyleMcLeod, A., Schiffer, L., Castellanos, K., DeMott, A., Olender, S., Fitzgibbon, M., Hughes, S., Fantuzzi, G., & Tussing-Humphreys, L. (2020). Impact of Physical Activity and Weight Loss on Fat Mass, Glucose Metabolism, and Inflammation in Older African Americans with Osteoarthritis. Nutrients, 12(11), 3299. https://doi.org/10.3390/nu12113299