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van Schothorst, E. M.

Publications and source records attributed to van Schothorst, E. M..

2 recordsLinked to original sources

Increased ambient temperature mitigates pathology in the Ndufs4-/- mouse model of Leigh Syndrome

Leigh syndrome (LS) is a devastating mitochondrial disease (MD) for which there is no treatment. Together with Leigh-like syndrome (LLS), LS constitutes part of the Leigh syndrome spectrum (LSS) disorders, which are the most frequent manifestation of a primary mitochondrial disease (MD) in children. Ndufs4-/- mice are a widely used animal model to study LS pathophysiology and interventions. These mice display an isolated mitochondrial complex I deficiency and a brain-specific pathomechanism. Similar to other mouse models of human disease, Ndufs4-/- mice are routinely housed and studied at a sub-thermoneutral ambient temperature. This means that these mice experience chronic cold-stress, which potentially aggravates disease symptoms and reduces their translational value. Here, we provide evidence that housing Ndufs4-/- mice at 26 {degrees}C instead of 20 {degrees}C increases their skin, core and brain temperature. At this higher temperature, Ndufs4-/- mice displayed lower energy expenditure and, importantly, a longer lifespan, pathology reversal in specific brain regions, as well as increased voluntary locomotor activity. We conclude that ambient temperature is a previously overlooked but highly relevant disease modifier in Ndufs4-/- mice. Given the reduced mitochondrial energy production and aberrant thermoregulation in LSS and other MD patients, our findings suggest that reducing energy requirements might be of therapeutic value and/or contribute to an improved quality of life in these patients. In a broader sense, our results advocate the use of (more) thermoneutral housing to evaluate pathomechanisms and intervention strategies in murine models of human disease. SignificanceWe conclude that ambient temperature is a previously overlooked but highly relevant disease modifier in Ndufs4-/- mice. Given the reduced mitochondrial energy production and aberrant thermoregulation in LS and other MD patients, our findings suggest that reducing energy requirements might be of therapeutic value and/or contribute to an improved quality of life in these patients. In a broader sense, our results clearly demonstrate why it is essential to use a (more) thermoneutral housing to evaluate pathomechanisms and intervention strategies in translational research with murine models of human disease.

neuroscience↗

Weight cycling-induced hypothalamic and metabolic tissue immune remodeling is uncoupled from metabolic dysfunctions

BackgroundObesity-induced insulin resistance is associated with white adipose tissue (WAT) and liver inflammation, which are both mitigated by weight loss. However, most individuals undergoing weight loss will regain lost weight, resulting in weight cycling (WC), which may exacerbate metabolic dysfunctions. Here, we studied the immunometabolic impact of WC in mice. MethodsC57BL/6J mice were exposed to two cycles of weight gain and weight loss by alternating between low (LFD) and high-fat diet (HFD) feeding. Animals were sacrificed when WC mice were weight stable for 10 weeks upon weight loss (WC-lean) and after a subsequent exposure to weight regain for 10 weeks (WC-obese), and compared to mice persistently fed LFD (LFD-lean) or HFD (HFD-obese). ResultsBody weight stabilized at a higher level in WC-lean mice after two weight gain/loss cycles compared to LFD-lean controls. While insulin resistance, metabolic tissue inflammation, and hepatic steatosis normalized between the two groups of lean mice, WC-lean mice exhibited features of WAT dysfunction. In the hypothalamus, inflammatory microglia were less abundant in WC-lean mice compared to LFD-lean mice, but mean individual microglial cell volume was larger. WC-obese mice stabilized at slightly lower weight compared with HFD-obese controls. Intriguingly, WC-obese mice exhibited increased WAT macrophages and reduced WAT and liver effector T cells compared to HFD-obese mice, whereas energy intake, body composition, whole-body insulin resistance and hepatic steatosis were similar. ConclusionsOur results suggest that WC in mice differently impacts animals in the weight-stable lean and obese states. WC-lean mice display features of a novel body weight settling point, associated with hypothalamic inflammatory changes. However, metabolic dysfunctions were uncoupled from WC-induced metabolic tissue inflammation in WC-obese mice.

immunology↗