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Biology subjects

Sadowska, E. T.

Publications and source records attributed to Sadowska, E. T..

3 recordsLinked to original sources

Maternal antibody-mediated elimination of a Puumala hantavirus outbreak in a bank vole colony

Bank voles (Myodes glareolus syn. Clethrionomys glareolus) are frequently used as an animal model in ecological and biomedical studies, and are important reservoir of viral and bacterial zoonotic pathogens, e.g. of Puumala hantavirus (PUUV). Here we describe an accidental PUUV outbreak in a large bank vole laboratory colony by incursion of infected wild-trapped bank voles, and a successful eradication of the virus. The eradication plan was based on results of previous studies, which showed that maternal antibodies (MatAb) protect the young from infection for up to 40 days after the weaning, four weeks longer than the estimated duration of maintaining infectivity of PUUV in the environment. After ensuring that most animals are infected, 620 pairs were mated on the same day. Only females that showed PUUV-specific antibodies and gave offspring within 26 days after the mating were retained. All individuals of the parental generation were euthanized before the last weaning. The weaned offspring was moved to individually ventilated cages (IVC) and repeatedly tested for the presence of PUUV-specific antibodies and RNA. A few infected and suspicious animals were euthanised. Then the animals were mated (in IVC) and after producing grand-offspring euthanised and tested for PUUV RNA in lungs. No PUUV RNA was detected, and no animals showed PUUV-specific antibodies in next generations. The successful clearance confirmed the protective efficiency of PUUV-specific MatAb. The procedure for clearance of PUUV in the bank vole colony may represent a blueprint for similar approaches in precious colonies of other rodents infected by similar pathogens. Author SummaryIn 2006 we started a unique long-term experiment on the bank vole, a common European rodent. Our goal was to study how animals can adapt to different challenges - a process called adaptive radiation. We established 16 vole lines: four control lines and others selected for specific behavioural and physiological traits. Over the years, this colony became an important model for studying evolution, physiology, and behaviour. Unfortunately, the colony became infected with Puumala hantavirus. The virus is mild for voles but can cause serious zoonotic illness in humans, without specific medical treatment available. At first, it seemed that the entire colony would have to be destroyed - a loss of thousands of animals and many years of research. However, we used a natural advantage: young voles born to infected mothers are temporarily protected by maternal antibodies. By carefully planning breeding, isolation, and testing, we created conditions where the virus lost its strength before the young lost their protection. This simple yet challenging approach worked - we saved the colony. Because many animals respond to viruses in a similar way, our method can help rescue other valuable research populations without complex procedures like embryo transfer or cross-fostering.

zoology↗

Does the evolution of predatory behaviour alter stress response? Insights from a selection experiment on bank voles

The ability to cope with challenging situations, such as the predator-prey interactions, can determine Darwinian fitness. While many studies concerned the stress response of prey facing a predator, the stress response of the predator remains understudied. We hypothesised that evolution of predatory lifestyle involves adaptive changes in the HPA axis regulation and tested this using an experimental evolution model comprising lines of bank voles (Clethrionomys = Myodes glareolus) selected for predatory behaviour towards crickets (P-lines) and unselected control lines (C-lines). We measured plasma corticosterone after a cricket hunting test and a sham test, where the voles experienced identical conditions but without prey. The test conditions affected corticosterone levels differently depending on the selection linetype and sex (significant interactions). After the sham hunting test, corticosterone level was significantly higher in P-lines than in C-lines, suggesting an increased alertness and mobilisation. Following the cricket hunting test, corticosterone levels tended to decrease in P-lines, but to increase in C-lines, although not significantly. These results support the hypothesis that selection for predatory behaviour has adaptively altered the HPA axis regulation. However, these effects were primarily driven by differences in females, highlighting the need to consider sex differences in studies of stress physiology.

evolutionary biology↗

Effect of Western diet on body composition, locomotor performance and blood biochemical profile in the bank vole

ObjectiveThe adverse effects of diets high in both fat and simple sugars ("Western diets", WD), which are one of the causes of the epidemics of obesity and related disorders, have been extensively studied in laboratory rodents, but not in non-laboratory animals, which limits the scope of conclusions. For example, a few studies have shown that, unlike the laboratory mice or rats, non-laboratory rodents that reduce body mass for winter do not develop obesity when fed a high-fat diet. However, it is not known whether these rodents are also resistant to the adverse effects of WD. Here, we investigated the effects of WD on body composition, locomotor performance and blood biochemical profile in such a rodent, the bank vole (Clethrionomys = Myodes glareolus). MethodsYoung voles were fed either a standard diet or one of six versions of WD (varying in fat, sucrose, and cholesterol content) from the age of 21 days until adulthood (16 individuals per group), and then several morpho-physiological and biochemical traits were analyzed. ResultsNeither body mass, fat content nor blood glucose were elevated by WD (p[≥]0.11). Basal metabolic rate, sprint speed, endurance distance, and aerobic exercise capacity were also not significantly affected by the diet (p[≥]0.2). However, altered respiratory exchange rates indicated altered metabolic pathways, and the liver and spleen were enlarged in the groups fed WD with added cholesterol (p[≤]0.002). Similarly, concentrations of cholesterol, high-density lipoprotein (HDL), non-HDL, glutamic pyruvic transaminase, glutamic oxaloacetate transaminase (GOT), and lactate dehydrogenase (LDH) were elevated in the WD groups, especially the cholesterol-supplemented WD (p[≤]0.0001), indicating altered liver function. ConclusionsBank voles appeared to be resistant to diet-induced obesity and diabetes, but not to other adverse effects of WD, especially cholesterol-supplemented WD. Therefore, the bank vole is a promising model species to study diet-induced liver disease in lean individuals.

physiology↗