750 research outputs found

    Preliminary genetic analyses of important musculoskeletal conditions of thoroughbred racehorses in Hong Kong

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    A retrospective cohort study of important musculoskeletal conditions of Thoroughbred racehorses was conducted using health records generated over a 15 year period (n = 5062, 1296 sires). The prevalence of each condition in the study population was: fracture, 13%; osteoarthritis, 10%; suspensory ligament injury, 10%; and tendon injury, 19%. Linear and logistic sire and animal regression models were built to describe the binary occurrence of these musculoskeletal conditions, and to evaluate the significance of possible environmental risk factors. The heritability of each condition was estimated using residual maximum likelihood (REML). Bivariate mixed models were used to generate estimates of genetic correlations between each pair of conditions.<p></p> Heritability estimates of fracture, osteoarthritis, suspensory ligament and tendon injury were small to moderate (range: 0.01–0.20). Fracture was found to be positively genetically correlated with both osteoarthritis and suspensory ligament injury. These results suggest that there is a significant genetic component involved in the risk of the studied conditions. Due to positive genetic correlations, a reduction in prevalence of one of the correlated conditions may effect a reduction in risk of the other condition.<p></p&gt

    Influence of exercise intensity on the tendon mechanical properties of older individuals.

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    Approximately one-third of people aged over 65 fall at least once a year and about half of these do so recurrently. The ability to maintain balance or stability has previously been associated with lower limb tendon structural and mechanical properties, with stiffer tendon structures associated with increased balance ability (Onambele et al., 2006: Journal of Applied Physiology, 100, 2048–2056). Increased tendon compliance is not an irreversible ageing effect. It has been shown that following 14 weeks high intensity resistance training (~80% one repetition maximum (1RM)), tendon stiffness was increased in an elderly population (Reeves et al., 2003: Journal of Physiology, 548, 971–981). However, the majority of resistance exercise prescribed for an elderly population is of lower intensity than 80% 1RM. It is possible that this lower intensity resistance exercise does not produce the required stimulus for tendon adaptation

    Communication and trust in the bounded confidence model

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    The communication process in a situation of emergency is discussed within the Scheff theory of shame and pride. The communication involves messages from media and from other persons. Three strategies are considered: selfish (to contact friends), collective (to join other people) and passive (to do nothing). We show that the pure selfish strategy cannot be evolutionarily stable. The main result is that the community structure is statistically meaningful only if the interpersonal communication is weak.Comment: 6 pages, 5 figures, RevTeX, for ICCCI-201

    The association between dietary macronutrient intake and fibrogen growth factor 21 in a sample of White UK adults with elevated cardiometabolic risk markers

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    Increased levels of Fibrogen growth factor 21 (FGF21) is an emerging risk marker for cardiometabolic (CM) disease(1). Little detail is known about the impact of the human diet on FGF21 levels. The aim of this investigation was to assess potential associations between mean daily dietary macronutrient intake and FGF21 levels in a sample of 10 healthy normal-weight and overweight Caucasian adults aged 32–60 (80 % male) at increased CM risk(2). This pilot study received ethical approval from Liverpool John Moores University Research Ethics Committee (16/ELS/029) and was registered with ClinicalTrials.gov (Ref. NCT03257085). Participants were randomly allocated to one of two groups and asked to either consume 50 % energy from CHO for a duration of 8 weeks. Blood plasma samples were col- lected at baseline (BL), interim point (IP) and endpoint (EP) after a 12-hour overnight fast, immediately processed and frozen at −80°C. Thawed plasma samples were analysed via Quantikine® enzyme-linked immunosorbent assay (ELISA) (R&D Systems) for FGF21 levels. Two-way mixed ANOVA and Pearson’s partial correlation adjusted for estimated weekly moderate and vigorous activity was undertaken using IBM SPSS 24®. There were no effects for diet between groups or over time (data not shown). Significant correlations between macronutrient intakes and FGF21 levels were found for both groups at IP, but not at BL or EP. Moderate and significant positive correlations were found in the overall group for intake (g/d) for glucose (rpartial = ·699, p = ·04) and fructose (rpartial = ·686, p = ·04) and strong and significant positive correlations for non-milk extrinsic sugars (rpartial = ·742, p = ·02). Strong and significant positive correlations were also found in the LC group for glucose intake (g/d) (rpartial = ·980, p = ·02) and fructose (rpartial = ·967, p = ·03) and for protein (rpartial =·998, p=·002) after adjusting for physical activity. Mean carbohydrate intake (g/d) was 160·0 (s.d. 124·5) overall and 44·2 (s.d. 14·9) in the LC group at IP. Mean protein intake (g/d) was 113·2 (21·4) 130·0 (s.d. 15·9) overall and in the LC group at IP. Mean FGF21 levels were 179·9 pg/mL (s.d. 144·9) in the overall group and 94.4 pg/ML (s.d. 48.6) in the LC group at IP. %TE Intake (g/d) PROT FAT CHO GLU FRU NMES PROT FAT rrrrrrrrrrr −·214 ·623 ·635 −·326 −·491 ·448 ·699* ·686* ·742* −·606 −·496 ·143 ·637 ·937 ·427 −·059 ·722 ·980* ·967* ·919 ·998** −·080 Total kcal CHO NMES T LC CHO-Total carbohydrates, FAT-Total fat, FRU-Fructose, GLUC-Glucose, LC-low-carbohydrate, high-fat group, NMES-non-milk extrinsic sugars, PROT-protein, T – total, %TE – percentage total energy, *p < ·05 **p < ·005. In conclusion, low-carbohydrate diets provide the opportunity to assess responses to even small amounts of CHO, which are likely to be replaced in part by proteins. Despite low overall intakes of fructose and glucose in the LC group, strong and positive correlations with FGF21 levels were observed. The lower levels of FGF21 in the LC compared to the overall group are in line with findings that FGF21 levels are elevated with high-carbohydrate, low-protein diets with dietary fats having only minor impact(3). However, the majority of studies have still been undertaken using rodent models. The impact of dietary macronutrients on FGF21 levels as novel CMR marker in humans and the mechanism behind this relationship warrant further investigation. 1. Lakhani I, Gong M, Wong W et al. (2018) Metabolism 2018 Feb 1. pii: S0026-0495(18)30023-4. [Epub ahead of print]. 2. Jebb S, Lovegrove J, Griffin B et al. (2010) Am J Clin Nutr 92, 748–58. 3. Solon-Biet S, Cogger V, Pulpitel T et al. (2016) Cell Metab 24, 555–565

    Dietary carbohydrate intake, visceral adipose tissue and associated markers of cardiometabolic risk

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    Risk of cardiometabolic (CM) disease is characterised by elevated visceral adipose tissue (VAT) and a number of associated biomar- kers(1). Some dietary carbohydrates (CHO) have been found to contribute to VAT accumulation(2). Little is known about the impact of following a low-carbohydrate diet versus a high-carbohydrate diet on VAT, adiponectin (ADPN), leptin (LEPT) and leptin:adipo- nectin ratio (LAR). The aim of this investigation was to assess the impact of dietary carbohydrates (CHO) on VAT and emerging CM risk markers in a sample of 10 healthy normal-weight and overweight Caucasian adults aged 32–60 (80 % male) at increased CM risk(3). This pilot study received ethical approval from Liverpool John Moores University Research Ethics Committee (16/ELS/ 029) and was registered with ClinicalTrials.gov (Ref. NCT03257085). Participants were randomly allocated to one of two groups and asked to either consume 50 % energy from CHO (high-carb (HC)) for a duration of 8 weeks. VAT was ana- lysed via bioelectrical impedance (SECA mBCA 515). Blood plasma samples were collected at baseline (BL), interim point (IP) and endpoint (EP) after a 12-hour overnight fast, immediately processed and frozen at -80°C. Thawed plasma samples were analysed via immunoassay technology (Randox Evidence InvestigatorTM Metabolic Syndrome Arrays I and II) for ADPN and LEPT levels. Statistical analysis was undertaken using IBM SPSS 24®. Parametric data was analysed via two-way mixed ANOVA; non-parametric data was analysed via Mann-Whitney U test and Friedman test. Average daily carbohydrate intake in the LC group was 44·2 g at IP and 48·9 g at EP. There were no significant differences between groups at any time point for ADPN, LEPT, LAR or VAT and no significant inter- actions for time or group*time for ADPN, LEPT or LAR. However, in the LC group VAT decreased significantly between baseline and endpoint by 15 % (p = ·015) Over the course of the intervention ADPN and LEPT decreased non- significantly (by 4 % and 70 % respectively) in the LC group, whilst increasing non-significantly in the HC group (9 % and 65 % respectively). LAR increased in the HC group throughout the study, whilst LAR in the LC group decreased albeit not significantly. VAT (litre) ADPN (ng/mL) LEPT (ng/mL) LAR BL IP EP Median Median Median M SD M SD M SD BL IP EP BL IP EP BL IP EP LC 4·1a 1·2 3·8 1·3 3·5a 1·2 8·9 8·6 8·5 3·96 1·64 1·20 0·45 0·19 0·14 HC 2·7 0·1 1·6 0·3 2·5 0·1 11·3 13·4 12·3 0·97 1·1 1·60 0·07 0·07 0·46 ADPN = adiponectin, BL = baseline, EP = endpoint, HC = high-carbohydrate, moderate fat diet, IP = interim point, LAR = leptin:adiponectin ratio, LEPT = leptin, LC = low-carbohydrate, high-fat diet, VAT = visceral adipose tissue, ap = ·015. NB: interquartile ranges not provided for median values due to missing data. Higher LAR has been found to be a marker of increased CM risk(4). In conclusion, while the significant reduction in VAT in the LC group corresponds with the reduction of LAR further evidence is required to corroborate these findings. Previous evidence for LC is supportive for improved CM health from various biomarkers(5); LAR should be considered as a useful endocrine addition for future LC studies. 1. Krasimira A, Mozaffarian D & Pischon T (2018) Clin Chem 64, 142–153. 2. Rüttgers D, Fischer K, Koch M et al. (2015) Br J Nutr 114, 1929–1940. 3. Jebb S, Lovegrove J, Griffin B et al. (2010) Am J Clin Nutr 92, 748–58. 4. López-Jaramillo P, Gómez-Arbeláez D, López-López J et al. (2014) Horm Mol Biol Clin Investig 18, 37–45. 5. Bazzano L, Hi T, Reynolds K et al. (2014) Ann Intern Med 161, 309–318
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