Role of Dietary Supplements and Probiotics in Modulating Microbiota and Bone Health: The Gut-Bone Axis
Abstract
:1. Introduction
2. The Gut-Bone Axis
3. Effects of Dietary Supplements on the Gut Microbiota and Bone Health
3.1. Roles of Prebiotics
3.2. Proteins, Peptides, and Amino Acids
3.3. Micronutrients
4. Impact of Probiotics on the Gut Microbiota
5. Interventional Microbiota Modulation to Reduce Bone Loss
6. Future Research Avenues and Perspectives for Osteoporosis Treatment
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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---|---|---|---|---|---|---|---|
Porwal et al. [55] | Biomedicine & Pharmacotherapy | 2020 | Fructooligosaccharides | Animals | SCFA production | Not investigated | Fructooligosaccharides prevent ovariectomy-induced bone loss |
Yan et al. [52] | Carbohydrate Polymers | 2019 | Fructooligosaccharides | Animals | Osteoblast stimulation | Not investigated | Fructooligosaccharides increase bone mineral density and strength |
Tanabe et al. [54] | Journal of Agriculture and Food Chemistry | 2019 | Fructooligosaccharides | Animals | ↓ Serum CRP; SCFA production | ↑ Lactobacillus ↑ Bacteroides ↓ Clostridium | Fructooligosaccharides reduce bone resorption and systemic inflammation |
Slevin et al. [56] | The Journal of Nutrition | 2014 | Fructooligosaccharides | Humans | Reduction in the number of bone turnover markers | Not investigated | Fructooligosaccharides reduce postmenopausal bone loss |
Mathey et al. [53] | Calcified Tissue International | 2004 | Fructooligosaccharides | Animals | SCFA production | Not investigated | Fructooligosaccharides increase bone mineral density and strength |
Whisner et al. [50] | British Journal of Nutrition | 2013 | Galactooligosaccharides | Humans | SCFA production | ↑ Bifidobacteria | Galactooligosaccharides increase calcium absorption |
Weaver et al. [48] | Journal of Agricultural and Food Chemistry | 2011 | Galactooligosaccharides | Animals | SCFA production | ↑ Bifidobacteria | Galactooligosaccharides increase calcium absorption |
Van den Heuvel et al. [49] | The Journal of Nutrition | 2000 | Galactooligosaccharides | Humans | SCFA production | Not investigated | Galactooligosaccharides increase calcium absorption |
Karakan et al. [65] | Frontiers in Nutrition | 2021 | Lactulose | Humans | SCFA production | ↑ Bifidobacteria ↑ Lactobacillus ↓ Clostridium | Lactulose increases calcium absorption |
Chen et al. [64] | Aging and Disease | 2020 | Lactulose | Animals | ↓ TNFα ↓ RANKL ↓ IL-17 ↑ IL-10 | ↓ Firmicutes ↑ Bacteroides | Lactulose inhibits osteoclastogenesis and bone resorption |
Seki et al. [66] | Journal of Nutritional Science and Vitaminology | 2007 | Lactulose | Humans | Not investigated | Not investigated | Lactulose increases calcium and magnesium absorption |
Tousen et al. [60] | Nutrients | 2019 | Resistant starch | Animals | ↓ IL-7R mRNA↑ IL-10 mRNA↓ RANKL | ↑ Bifidobacteria | Resistant starch prevents post-ovariectomy bone loss |
Tousen et al. [59] | British Journal of Nutrition | 2016 | Resistant starch | Animals | ↓ IL-7R mRNA | ↑ Bifidobacteria | Resistant starch prevents post ovariectomy bone loss |
Tousen et al. [58] | Metabolism | 2011 | Resistant starch | Animals | Increased isoflavone availability and estrogenic activities | ↑ Bifidobacteria | Resistant starch prevents post-ovariectomy bone loss |
Gao et al. [62] | Nutrients | 2020 | Xylooligosaccharides | Animals | ↑ Na+/Ca2+ exchanger 1 ↑ TRPV6 | Not investigated | Xylooligosaccharides increase calcium absorption |
Eaimworawuthikul et al. [63] | European Journal of Nutrition | 2020 | Xylooligosaccharides | Animals | Osteoclast inhibition | Not investigated | Xylooligosaccharides reduce bone resorption in systemic inflammation |
Authors | Journal | Year | Dietary Supplement | Subjects | Pathways Investigated | Gut Microbiota Modulation | Main Findings |
---|---|---|---|---|---|---|---|
Ling et al. [86] | The Journal of Clinical Endocrinology and Metabolism | 2021 | Amino acids | Humans | Not determined |
↓ Actinobacillus, ↓ Blautia, ↓ Oscillospira | Valine, leucine, and isoleucine serum levels are inversely related to the occurrence of osteoporosis |
Jennings et al. [85] | Journal of Bone and Mineral Research | 2016 | Amino acids | Humans | ↑ IGF1 | Not investigated | Alanine, arginine, glutamic acid, leucine, lysine, and proline increase BMD |
Dawson-Hugler et al. [75] | Osteoporosis International | 2007 | Amino acids | Humans | ↑ IGF1 | Not investigated | Phenylalanine and histidine increase calcium absorption |
Liu et al. [74] | Food & Function | 2018 | Casein Phosphopeptides | Animals | ↑ TRPV6 | Not investigated | Casein phosphopeptides increase calcium absorption and prevent bone resorption |
Ong et al. [78] | Advances in Nutrition | 2020 | Fermented dairy products | Humans | ↓ TNF-α ↓ IL-6 ↓ RANKL | Not investigated | Fermented dairy products might reduce hip fracture risk |
Biver et al. [76] | Osteoporosis International | 2018 | Fermented dairyproducts | Humans | Action on calcium balance and decrease in secondary hyper parathyroidism. | Not investigated | Fermented dairy products attenuate postmenopausal bone loss |
Laird et al. [77] | Osteoporosis International | 2017 | Fermented dairy products | Humans | Modulation of osteoclast numbers and activity | Not investigated | Fermented dairy products increase bone mineral density |
Tu et al. [81] | Nutrients | 2020 | Kefir peptides | Animals | ↓ TNF-α ↓ RANKL |
↑ Alloprevotella, ↑ Anaerostipes, ↑ Parasutterella, ↑ Romboutsia, ↑ Ruminococcus, ↑ Streptococcus | Kefir peptides prevent ovariectomy-induced bone loss |
Chen et al. [80] | Osteoporosis International | 2014 | Kefir peptides | Animals | ↑TRPV6 | Not investigated | Kefir peptides prevent ovariectomy-induced bone loss |
Authors | Journal | Year | Dietary Supplement | Subjects | Pathways Investigated | Gut Microbiota Modulation | Main Findings |
---|---|---|---|---|---|---|---|
Qasem et al. [100] | BMC Pediatrics | 2017 | Iron | Humans | Lowering inflammation | ↑ Bifidobacteria ↑ Bacteroides | Favorable effects of iron on bone might be mediated by the gut microbiome |
Wang et al. [89] | BMC Musculoskeletal Disorders | 2019 | Selenium | Humans | Not determined | ↓ Parabacteroides ↓ Firmicutes | Selenium deficiency is correlated with a higher prevalence of osteoporosis |
Reed et al. [94] | Nutrients | 2015 | Zinc | Animals | SCFA production Lowering of inflammation | ↑ Lactobacillus | Favorable effects of zinc on bone might be mediated by the gut microbiome |
Authors | Journal | Year | Dietary Supplement | Subjects | Pathways Investigated | Gut Microbiota Modulation | Main Findings |
---|---|---|---|---|---|---|---|
Narva et al. [113] | Annals of Nutrition and Metabolism | 2007 | Lactobacillus helveticus | Animals | Increasing bone formation | Not investigated | Lactobacillus helveticus prevents ovariectomy-induced bone loss |
Ohlsson et al. [114] | PLoS ONE | 2014 | Lactobacillus paracasei | Animals | ↓ TNF-α ↓ IL-1β ↑ OPG | Not investigated | Lactobacillus paracasei prevents ovariectomy-induced bone loss |
Schepper et al. [46] | The Journal of Bone and Mineral Research | 2020 | Lactobacillus reuteri | Animals | ↑ Wnt10b | ↓ Clostridium | Lactobacillus reuteri prevents glucocorticoid-induced bone loss |
Nilsson et al. [120] | Journal of Internal Medicine | 2018 | Lactobacillus reuteri | Humans | Not determined | Not investigated | Lactobacillus reuteri prevents bone loss |
Zhang et al. [115] | Endocrinology | 2015 | Lactobacillus reuteri | Animals | ↓ TNF-α | Not investigated | Lactobacillus reuteri prevents type-1-diabetes-induced bone loss |
Britton et al. [111] | Journal of Cellular Physiology | 2014 | Lactobacillus reuteri | Animals | ↓ Trap5 ↓ RANKL ↑ CD4+ T-lymphocytes | Promoting gut microbiota diversity | Lactobacillus reuteri prevents Ovariectomy-induced bone loss |
Jafarnejad et al. [118] | Journal of the American Nutrition Association | 2017 | Multispecies probiotic | Humans | ↓ PTH ↓ TNF-α | Not investigated | Multispecies probiotic reduces bone turnover |
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de Sire, A.; de Sire, R.; Curci, C.; Castiglione, F.; Wahli, W. Role of Dietary Supplements and Probiotics in Modulating Microbiota and Bone Health: The Gut-Bone Axis. Cells 2022, 11, 743. https://doi.org/10.3390/cells11040743
de Sire A, de Sire R, Curci C, Castiglione F, Wahli W. Role of Dietary Supplements and Probiotics in Modulating Microbiota and Bone Health: The Gut-Bone Axis. Cells. 2022; 11(4):743. https://doi.org/10.3390/cells11040743
Chicago/Turabian Stylede Sire, Alessandro, Roberto de Sire, Claudio Curci, Fabiana Castiglione, and Walter Wahli. 2022. "Role of Dietary Supplements and Probiotics in Modulating Microbiota and Bone Health: The Gut-Bone Axis" Cells 11, no. 4: 743. https://doi.org/10.3390/cells11040743
APA Stylede Sire, A., de Sire, R., Curci, C., Castiglione, F., & Wahli, W. (2022). Role of Dietary Supplements and Probiotics in Modulating Microbiota and Bone Health: The Gut-Bone Axis. Cells, 11(4), 743. https://doi.org/10.3390/cells11040743