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Microbial Nutrition

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Organisms exhibit remarkable metabolic diversity, categorized based on how they acquire energy and carbon. These strategies enable survival in various ecological niches and are essential for maintaining energy flow and nutrient cycling within ecosystems.Energy and Carbon SourcesOrganisms are classified as phototrophs or chemotrophs based on energy acquisition. Phototrophs use light as their energy source, while chemotrophs rely on oxidizing chemical compounds. Further differentiation arises...
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Regulation of Food Intake01:30

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Short-term regulation of food intake primarily involves neural signals from the gastrointestinal (GI) tract, blood nutrient levels, and GI tract hormones. Communication between the gut and brain via vagal nerve fibers plays a significant role in evaluating the contents of the gut. Clinical studies have shown that protein ingestion produces a more prolonged response in these nerve fibers compared to an equivalent amount of glucose. Additionally, the activation of stretch receptors caused by GI...
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Microbial growth media are essential tools in microbiology, providing the nutrients and conditions necessary to cultivate and study microorganisms. These media are categorized by their composition, consistency, and functional roles, enabling researchers to investigate microbial physiology, behavior, and interactions.Types and Consistencies of Growth MediaGrowth media can be solid, liquid, or semisolid. Solid media, often agar-based, allow visible colony growth for isolation and enumeration.
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Microbial growth control refers to various methods employed to inhibit, reduce, or eliminate microorganisms to ensure safety and hygiene across different settings. These methods are categorized based on the target environment and the level of microbial control required.Biocides are versatile agents designed to control microorganisms by either inhibiting their growth or outright killing them. These agents work through various physical, chemical, mechanical, or biological mechanisms. The...
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Biological agents offer an effective means of controlling microbial growth by leveraging natural processes like predation, competition, and the secretion of antimicrobial substances.Predatory bacteria such as Bdellovibrio species target and kill pathogens like Salmonella and E. coli. They are widely used in poultry farms to control infections. Myxococcus species help combat plant-pathogenic fungi. These naturally occurring predators serve as eco-friendly alternatives to chemical pesticides and...
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Bacterial growth is closely tied to nutrient availability, with cells proliferating exponentially under favorable conditions and entering a stationary phase when resources become scarce. This transition is mediated by a regulatory mechanism known as the stringent response, which allows bacteria to adapt to nutrient deprivation by modulating gene expression and metabolic activity.During nutrient scarcity, intracellular amino acid levels decline. It results in the accumulation of uncharged tRNAs...
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一个微生物模式的肠道感知调节食

Winston W Liu1,2,3,4, Naama Reicher1,3, Emily Alway1,2,3

  • 1Laboratory of Gut Brain Neurobiology, Duke University, Durham, NC, USA.

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概括

科学家发现了一种新的肠-大脑感觉, 这种感觉使用鞭毛蛋白,一种微生物分子,通过Toll-like受体5 (TLR5) 向大脑发出信号并调节食行为.

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科学领域:

  • 神经科学
  • 微生物学
  • 胃肠病学

背景情况:

  • 主体需要感知和响应寄居微生物的机制.
  • 肠道与大脑之间的沟通调节了宿主行为, 包括食选择.
  • 对于肠道微生物刺激的实时感官机制以前是未知的.

研究的目的:

  • 发现一种能使宿主对肠道微生物刺激作出反应的感官机制.
  • 确定肠道微生物感应所涉及的分子通路.
  • 描述这种感官在调节宿主行为中的作用.

主要方法:

  • 研究了鞭毛素对小鼠大肠神经动物细胞的影响.
  • 使用托尔类受体5 (TLR5) 淘汰模型.
  • 检查的YY (PYY) 释放和节神经元激活.
  • 评估养行为和体重增加作为对鞭毛蛋白的反应.

主要成果:

  • 在结肠神经细胞中刺激TLR5,导致PYY释放.
  • 这种信号通路可以调节食行为,减少食物摄入量.
  • 在神经动物细胞中缺乏TLR5的小鼠的食物摄入量增加和体重增加.
  • 弗拉格林诱导的食减少与免疫反应或微生物群的存在无关.

结论:

  • 一个新的肠-大脑感觉通路, 神经生物感觉, 已被确定.
  • 这种感觉使宿主能够调整行为以应对像鞭毛状的微生物分子模式.
  • 神经生物感官通过肠-大脑神经电路运行, 涉及神经足细胞和迷走神经元.