Biological control of spider mites in hot and dry weather is a serious technical issue. A high-temperature adapted strain (HTAS) of the predatory mite Neoseiulus barkeri Hughes was selected from its conventional strain (CS), via long-term heat acclimation and frequent heat hardenings in our previous studies. However, the environment of high temperature is usually associated with enhanced ultraviolet (UV) radiation. In the present study, the physiological effects of UV-B radiation on survival rate and egg damage of N. barkeri were investigated, as well as the activities and expression profiles of antioxidant enzymes to UV-B radiation stress. UV-B radiation had deleterious effects on egg hatchability and survival of N. barkeri. Adults of the HTAS strain were less UV-B resistant than those of the CS strain; they also had lower levels of enzymatic activity of superoxide dismutase (SOD) and catalase against oxidative damage and weaker upregulation of SOD genes. The mRNA expression of three SOD genes of CS adult females immediately increased whereas that of HTAS showed almost no difference under UV-B stress for 1h. The results showed the HTAS of N. barkeri had lower fitness under UV-B stress compared with the CS of N. barkeri. These results suggested that long-term heat acclimation may exert a profound impact on the developmental physiology of N. barkeri.
The objective of the present study was to reveal the differences between yak (Bos grunniens) and cattle in energy metabolic characteristics and gene expressions in skeletal muscles. Activities of lactate dehydrogenase (LDH), malate dehydrogenase (MDH) and β-hydroxyacyl-CoA dehydrogenase (HOAD), which are involved in metabolism of carbohydrate and fatty acid respectively, were measured in longissimus dorsi and biceps femoris. Yak contained higher total LDH activity and higher proportion of LDH5 in longissimus dorsi than cattle (P < 0.05), indicating its more anaerobic potential characteristics in carbohydrate metabolism. However, yak contained higher activities of MDH and HOAD (P < 0.05) in biceps femoris than cattle, exhibiting high oxidative capacity under hypoxic environment. Semi-quantitative RT-PCR analysis of mRNA abundance showed that yak and cattle contained a similar level of adipocyte fatty acid-binding protein (A-FABP) in both longissimus dorsi and biceps femoris, while myosin heavy chain I (MyHC I) in longissimus dorsi and biceps femoris, and peroxisome proliferator-activated receptor coactivator 1α (PGC-1α) level in biceps femoris were significant lower in yak compared with cattle (P < 0.01 and P < 0.05 respectively), indicating the anaerobic characteristic of yak skeletal muscles. In conclusion, our experiment showed that yak skeletal muscles exhibit different energy metabolic property and gene expressions compared to cattle.
The purpose of the present study was to characterize the metabolic enzyme activities and gene expression levels in yak skeletal muscles. Yak longissimus dorsi had higher lactate dehydrogenase (LDH) activity, lower activities of malate dehydrogenase (MDH), beta-hydroxyacyl-CoA dehydrogenase (HOAD) and cytocrome c oxidase (COX) compared with biceps femoris. Meanwhile, native PAGE of muscle extracts revealed that longissimus dorsi had higher proportion of LDH5 compared with biceps femoris. These data indicate the less oxidative metabolic orientation of yak longissimus dorsi. Semi-quantitative RT-PCR analysis revealed no significant difference in the expression of four genes including adipocyte fatty acid-binding protein (A-FABP), peroxisome proliferator-activated receptor gamma 2 (PPAR gamma 2), myosin heavy chain 1 (MyHC1) and peroxisome proliferator-activated receptor coactivator la (PGC-1 alpha) between yak longissimus dorsi and biceps femoris.