28.04.2023 – 2min 揭开肠道微生物群和宿主能量代谢的秘密:基于PhenoMaster隔离系统的新方法 The gut microbiota plays a vital role in regulating the host’s energy metabolism. Until recently, studies have shown that mice without microbiota accumulate less fat and are protected from obesity induced by high-fat diet. Several proposed mechanisms suggest that the interaction between gut microbiota and host energy metabolism is a complex process with multiple factors at play. However, identifying causal relationships has been a significant experimental challenge. Gnotobiotic mice, colonised with a simplified microbiota made up of defined species such as OligoMM12, have become a major tool to identify potential mechanisms of interaction between the microbiota and the host. Researchers from the group of Emma Slack at the Department of Health Sciences and Technology ETH Zürich compared the metabolic profile of germ-free (GF), gnotobiotic OligoMM12 and conventionally raised male C57Bl6/J mice (specific-opportunistic-pathogen-free (SPF)) with a focus on circadian rhythm. Addressing the influence of the OligoMM12 microbiota on host metabolism has been a challenging task. Long-term experiments require hygiene barrier conditions like those required to work with GF mice. TSE Systems, in collaboration with the authors, built an isolator-housed metabolic cage system based on the TSE PhenoMaster, which allowed longitudinal monitoring of O2, CO2, and hydrogen levels over periods of several weeks in GF and gnotobiotic mice while maintaining a strict hygienic barrier. The authors could confirm that GF mice maintain their GF status over at least 10 days of accommodation in PhenoMaster cages inside an isolator. The results showed that OligoMM12 mice had increased fat mass compared to GF and SPF mice, and GF mice exhibited slightly increased food intake without an effect on energy expenditure. However, GF mice had a lower respiratory exchange ratio (RER) than SPF mice in both light and dark phases, indicating an increased fat/decreased glucose metabolism. Additionally, circadian changes in RER, microbiota-derived hydrogen, and short-chain fatty acids were observed. This study demonstrates for the first time that isolator-based indirect calorimetry is possible and allows detailed analysis of the metabolism of GF and gnotobiotic mice in real time. As microbial dysbiosis is associated with various human diseases, circadian analysis of energy balance represents a crucial tool for mining microbiome data for therapeutic and diagnostic purposes. Hoces, D., Lan, J., Sun, W., Geiser, T., Stäubli, M. L., Cappio Barazzone, E., … & Slack, E. (2022). Metabolic reconstitution of germ-free mice by a gnotobiotic microbiota varies over the circadian cycle. PLoS biology, 20(9), e3001743. Read the full article: Metabolic reconstitution of germ-free mice by a gnotobiotic microbiota varies over the circadian cycle | PLOS Biology More news 神经科学的先锋:Diego Bohórquez博士谈通过肠道治愈大脑 神经科学的先锋:Diego Bohórquez博士谈通过肠道治愈大脑 了解更多 深入探究:IntelliCage肥鼠角(Fat Mouse Corner)及其对肥胖研究的影响 肥胖是全球关注的健康问题,也是认知能力下降和神经退行性疾病的重要风险因素。利用肥胖小鼠模型进行临床前研究起着至关重要的…… 了解更多 年轻血液可能是逆转衰老的关键 随着时间的无情流逝,细胞功能逐渐衰退。这个过程被称为衰老,它打破了我们细胞内部的微妙平衡…… 了解更多 海马体的力量:揭示压力引发的记忆力增强 这项题为《海马体机制支持皮质醇引发的记忆力增强》Hippocampal Mechanisms Support Cortisol-Induced Memory Enhancements|神经科学杂志(jneurosci.org)的激动人心的研究,探讨了错综复杂的联系…… 了解更多 探索认知老化:使用IntelliCage System对啮齿动物模型进行不同研究的见解 在过去的几十年里,人们的预期寿命大大增加,但与年龄有关的疾病发病率也随之上升,其中包括…… 了解更多 为什么 MotoRater 是高级运动步态分析的最佳选择 啮齿动物(大鼠和小鼠)运动步态分析是展示基因组和神经退行性/再生性临床前研究的基本方法。技术和分析工具的最新进展… 了解更多
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