| Literature DB >> 25152713 |
Yunhua Peng1, Jing Liu1, Ying Tang1, Jianshu Liu2, Tingting Han2, Shujun Han1, Hua Li1, Chen Hou1, Jiankang Liu1, Jiangang Long1.
Abstract
<span class="Disease">Osteoporosis is negatively correlated with body mass, whereas both <span class="Disease">osteoporosis and weight loss occur at higher incidence during the progression of Alzheimer's disease (AD) than the age-matched non-dementia individuals. Given that there is no evidence that being overweight is associated with AD-type cognitive dysfunction, we hypothesized that moderate weight gain might have a protective effect on the bone loss in AD without exacerbating cognitive dysfunction. In this study, feeding a high-fat diet (HFD, 45% calorie from fat) to female APP/PS1 transgenic mice, an AD animal model, induced weight gain. The bone mineral density, microarchitecture, and biomechanical properties of the femurs were then evaluated. The results showed that the middle-aged female APP/PS1 transgenic mice were susceptible to osteoporosis of the femoral bones and that weight gain significantly enhanced bone mass and mechanical properties. Notably, HFD was not detrimental to brain insulin signaling and AβPP processing, as well as to exploration ability and working, learning, and memory performance of the transgenic mice measured by T maze and Morris water maze, compared with the mice fed a normal-fat diet (10% calorie from fat). In addition, the circulating levels of leptin but not estradiol were remarkably elevated in HFD-treated mice. These results suggest that a body weight gain induced by the HFD feeding regimen significantly improved bone mass in female APP/PS1 mice with no detriments to exploration ability and spatial memory, most likely via the action of elevated circulating leptin.Entities:
Keywords: Alzheimer’s disease; bone mineral density; leptin; osteoporosis; weight gain
Year: 2014 PMID: 25152713 PMCID: PMC4125950 DOI: 10.3389/fncel.2014.00225
Source DB: PubMed Journal: Front Cell Neurosci ISSN: 1662-5102 Impact factor: 5.505
Figure 1High-fat-diet-induced weight gain in APP/PS1 mice. Throughout the experiment, the body weights of C57BL/6 and APP/PS1 mice had no difference, and significant body weight gain was induced after HFD feeding for 8 weeks (at 22 weeks) and sustained growing from then on (A). The ratio of parametric fat pad weight to body weight (B) of APP/PS1 + HFD mice was significantly higher than that of the C57BL/6 and APP/PS1 mice. The serum level of total cholesterol in APP/PS1 + HFD mice was higher than those in the other two mice groups (C). No difference in serum triglycerides was found among the three groups (D). Data were means ± SEM. n = 10 for C57BL/6 mice, n = 12 for APP/PS1 mice, and n = 11 for APP/PS1 + HFD mice for body weight. n = 7 for C57BL/6 mice, n = 9 for APP/PS1 mice, and n = 8 for APP/PS1 + HFD mice for other measurements. All results were analyzed by one-way ANOVA, followed by Newman–Keuls post hoc test, except that the body weight result was analyzed by two-way ANOVA, followed by Bonferroni’s post hoc test. ***p < 0.001.
Figure 2HFD did not deteriorate the working, learning and memory performance in APP/PS1 mice. In the T-maze spontaneous alternation test, both APP/PS1 group and APP/PS1 + HFD group showed fewer percentages to make the alternative choices (A) and had a longer latency time (B) than C57BL/6 group. APP/PS1 group exhibited significant longer escape latency on days 3, 5, and 6, and longer distance on days 2, 3, 4, and 5, while APP/PS1 + HFD group exhibited significant longer escape latency on days 3, and 6, and longer distance on days 2 and 3 (C,D). The mean crossings of the C57BL/6 group were more frequent than those of APP/PS1 and APP/PS1 + HFD groups (E). Additionally, no difference was found between the APP/PS1 and APP/PS1 + HFD groups. Data were means ± SEM. n = 10 for C57BL/6 mice, n = 12 for APP/PS1 mice, and n = 11 for APP/PS1 + HFD mice. T-maze results were analyzed by one-way ANOVA, followed by Newman–Keuls post hoc test. *p < 0.05; **p < 0.01. The water maze result was analyzed by two-way ANOVA, followed by Bonferroni’s post hoc test. ∧p < 0.05; ∧∧p < 0.01; ∧∧∧p < 0.001, APP/PS1 versus C57BL/6; #p < 0.05; ##p < 0.01; ###p < 0.001, APP/PS1 + HFD versus C57BL/6.
Figure 3Soluble Aβ level and brain insulin signaling. Aβ40 (A), and Aβ42 (B) levels were much higher in APP/PS1 and APP/PS1 + HFD mice compared with that those of C57BL/6 mice, and the Aβ40 and Aβ42 levels were determined to be the same between APP/PS1 and APP/PS1 + HFD mice by ELISA. The expression of AβPP, Aβ tetramer, Aβ dimer (C), phosphorylation of AKT, and phosphorylation of GSK3β (G) in brain tissue were analyzed by western blot. Quantification of western blot of AβPP (D), Aβ tetramer (E), Aβ dimer (F), p-AKT (H), and p-GSK3β (I). Data were means ± SEM. n = 7 for C57BL/6 mice, n = 9 for APP/PS1 mice, and n = 8 for APP/PS1 + HFD mice. The results were analyzed by one-way ANOVA, followed by Newman–Keuls post hoc test. ***p < 0.001.
Figure 4HFD ameliorated impairments of femoral mechanical properties in APP/PS1 mice. In the three-point bending test, the elastic force (A), ultimate force (B), second moment of inertia (C), elastic stress (D), and energy (E) were all significantly reduced in APP/PS1 mice compared to the age-matched C57BL/6 mice. No difference was found in elastic modulus (F) and stiffness (G) between C57BL/6 and APP/PS1 mice, but HFD significantly increased these two parameters. Ultimate stress did not vary among the three groups (H). Femur length was shorter in APP/PS1 mice but not reversed by HFD (I). Data were means ± SEM. n = 10 for C57BL/6 mice, n = 12 for APP/PS1 mice, and n = 11 for APP/PS1 + HFD mice. The results were analyzed by one-way ANOVA, followed by Newman–Keuls post hoc test. *p < 0.05; **p < 0.01; ***p < 0.001.
Figure 5HFD protected femoral cortical bone from AD-involved impairments. The bone mineral density [BMD, (A)], bone mineral content [BMC, (B)], and mean thickness [Cr.Th (C)] were lower in the APP/PS1 mice compared to the C57BL/6 mice, all of which were reversed by HFD feeding. No significant decrease was found in total area [Tt.Ar (D)] and cortical area [Ct.Ar (E)] in the APP/PS1 mice compared to the C57BL/6 mice, whereas, both of which were elevated by HFD feeding.Marrow area (Ma.Ar) did not vary among the three groups (F). The ratio of Ct.Ar to Tt.Ar was decreased in APP/PS1 mice (G), but not reversed by HFD feeding. Micrographs showed the differences of thickness and inner bone surface among all the groups with arrows indicating the representative part (H). Data were means ± SEM. n = 7 for C57BL/6 mice, n = 8 for APP/PS1 mice, and n = 8 for APP/PS1 + HFD mice. The results were analyzed by one-way ANOVA, followed by Newman–Keuls post hoc test. *p < 0.05; **p < 0.01; ***p < 0.001.
Figure 6HFD improved microarchitecture of femur trabecular bone in APP/PS1 mice. The volumetric BMD [vBMD (A)], tissue BMD [tBMD (B)], and trabecular thickness [Tb.Th (F)] were not significantly altered in C57BL/6 mice and APP/PS1 mice; however, these parameters significantly increased after HFD. Bone volume fraction [BV/TV (D)] was lower in APP/PS1 mice and recovered after HFD feeding. No significant differences in BMC (C) or trabecular number [Tb. N (E)] were found among the three groups. The trabecular separation [Tb.Sp (G)] was not significantly altered in C57BL/6 mice or APP/PS1 mice, and it was reduced after HFD. Micrographs showed the microarchitecture of femoral trabecule (H) with arrows indicating the representative part. Data were means ± SEM. n = 7 for C57BL/6 mice, n = 8 for APP/PS1 mice, and n = 8 for APP/PS1 + HFD mice. The results were analyzed by one-way ANOVA, followed by Newman–Keuls post hoc test. *p < 0.05; **p < 0.01.
Figure 7Serum biochemical characteristics. The ALP level was higher in APP/PS1 mice than that in C57BL/6 mice, and it was reversed after HFD feeding (A). The serum Ca2+ levels in APP/PS1 mice was not different from that of C57BL/6 or APP/PS1 + HFD mice; however, it was higher in APP/PS1 + HFD mice than that in C57BL/6 mice (B). The serum phosphorus level was higher in APP/PS1 mice than that in C57BL/6 mice, which was not reversed by HFD feeding (C). APP/PS1 mice had a lower estrogen level than C57BL/6 mice, which was also not reversed by HFD feeding (D). The serum leptin level was lower in APP/PS1 mice compared to C57BL/6 mice (p = 0.07), and it was significantly induced after HFD feeding (E). Data were means ± SEM. n = 7 for C57BL/6 mice, n = 9 for APP/PS1 mice, and n = 8 for APP/PS1 + HFD mice. The results were analyzed by one-way ANOVA, followed by Newman–Keuls post hoc test. *p < 0.05; ***p < 0.001.