| Literature DB >> 30400569 |
Junichi Sakaki1, Melissa Melough2, Sang Gil Lee3, Judy Kalinowski4, Sung I Koo5, Sun-Kyeong Lee6, Ock K Chun7.
Abstract
Due to deleterious side effects of currently available medi<span class="Gene">cations, the search for novel, safe, and effective preventive agents for improving bone health in aging continues and is urgently needed. This study aimed to determine whether dietary blackcurrants (BC), an <span class="Chemical">anthocyanin-rich berry, can improve bone mass in a mouse model of age-related bone loss. Thirty-five female C57BL/6J mice, 3 months old (n = 20) and 18 months old (n = 15), were randomized to consume either a standard chow diet or a standard chow diet with 1% (w/w) BC for four months. Dual-energy X-ray absorptiometry, Micro computed tomography (µCT), and histomorphometric analyses were conducted to assess bone parameters on femurs. Biochemical assays were conducted to determine bone resorption, antioxidant activity, and inflammation in humerus homogenates. Trabecular bone volume (BV/TV) was significantly lower in aged mice compared to young mice (young control, 3.7 ± 0.4% vs aged control, 1.5 ± 0.5%, mean ± SEM (standard error of mean), p < 0.01; young BC, 5.3 ± 0.6% vs aged BC, 1.1 ± 0.3%, p < 0.001). µCT analysis revealed that BC supplementation increased trabecular BV/TV in young mice by 43.2% (p < 0.05) compared to controls. Histomorphometric analysis revealed a 50% increase, though this effect was not statistically significant (p = 0.07). The osteoblast surface increased by 82.5% in aged mice with BC compared to controls (p < 0.01). In humerus homogenates of young mice, BC consumption reduced C-telopeptide of type I collagen by 12.4% (p < 0.05) and increased glutathione peroxidase by 96.4% (p < 0.05). In humerus homogenates of aged mice, BC consumption increased catalase by 12% (p = 0.09). Aged mice had significantly elevated concentrations of tumor necrosis factor α (TNF-α), a pro-inflammatory cytokine contributing to bone resorption, which was reduced by 43.3% with BC consumption (p = 0.06). These results suggest that early consumption of BC may protect from aging-associated bone loss.Entities:
Keywords: anthocyanins; antioxidant; blackcurrants; bone health; flavonoids; inflammation; osteoblasts; osteoclasts; oxidative stress
Mesh:
Substances:
Year: 2018 PMID: 30400569 PMCID: PMC6266496 DOI: 10.3390/nu10111671
Source DB: PubMed Journal: Nutrients ISSN: 2072-6643 Impact factor: 5.717
Figure 1Experimental design.
Figure 2Comparison of mean body weight and daily food intake in young and aged mice consuming a control or blackcurrant (1% w/w) diet for 4 months. (A) Mean body weight change over four months. (B) Mean daily food intake per mouse. Values are reported as mean ± SEM. Data were analyzed using an independent t-test. Young control (n = 10), young BC (n = 10), aged control (n = 8), and aged BC (n = 7). # Indicates significant difference by age in mice consuming the same diet. BC, blackcurrant.
Figure 3MicroCT images and analysis of femurs in young and aged mice consuming a control or blackcurrant (1% w/w) diet for 4 months. (A) Three-dimensional images of trabecular and cortical bone representative of each treatment group. (B–E) Trabecular bone parameters. Values are reported as mean ± SEM. Data were analyzed using an independent t-test. Young control (n = 10), young BC (n = 10), aged control (n = 8), and aged BC (n = 7). # Indicates significant difference by age in mice consuming the same diet. BC, blackcurrant.
Figure 4Histomorphometric analysis of femurs in young and aged mice consuming a control or blackcurrant (1% w/w) diet for 4 months. Values are reported as mean ± SEM. Data were analyzed using an independent t-test. Young control (n = 10), young BC (n = 10), aged control (n = 8), and aged BC (n = 7). # Indicates significant difference by age in mice consuming the same diet.
Figure 5Dual-energy X-ray absorptiometry (DXA) analysis of (A) bone mineral content and (B) bone mineral density of femurs in young and aged mice consuming a control or blackcurrant (1% w/w) diet for 4 months. Values are reported as mean ± SEM. Data were analyzed using an independent t-test. Young control (n = 10), young BC (n = 10), aged control (n = 7), and aged BC (n = 7). # Indicates significant difference by age in mice consuming the same diet. BMC, bone mineral content; BMD, bone mineral density.
Figure 6Bone homogenate biomarkers measured in young and aged mice consuming a control or blackcurrant (1% w/w) diet for 4 months. (A) Bone resorption marker CTX. (B,C) Antioxidant enzyme activity. (D,E) Pro-inflammatory cytokines. Values are reported as mean ± SEM. Data were analyzed using an independent t-test. Young control (n = 10), young BC (n = 10), aged control (n = 8), and aged BC (n = 7). # Indicates significant difference by age in mice consuming the same diet. CTX, C-terminal telopeptide of type I collagen; GPx, glutathione peroxidase; CAT, catalase; TNF-α, tumor necrosis factor α; IL-1β, interleukin-1 beta.