人类肠道微生物生态系统模拟器 (SHIME®):当前发展,应用和未来前景
Wei Zhu1, Xiaoyong Zhang2, Dong Wang3
1College of Pharmaceutical Sciences, Zhejiang University, Hangzhou 310058, China.
Pharmaceuticals (Basel, Switzerland)
|January 8, 2025
概括
人类肠道微生物生态系统模拟器 (SHIME®) 是一个动态的体外模型,精确地模拟了人类的肠道. 这种多功能技术有助于营养,药物开发和肠道健康方面的研究.
科学领域:
- 微生物学 微生物学
- 胃肠病学 胃肠病学
- 生物技术是生物技术.
背景情况:
- 人的胃肠道微生物群对于健康和疾病预防至关重要.
- 需要体外模型来研究复杂的肠道微生物相互作用.
- 人体肠道微生物生态系统模拟器 (SHIME®) 是一个领先的动态体外模型.
研究的目的:
- 审查SHIME®系统的最新进展和应用.
- 突出SHIME®技术在微生物组研究中的多功能性和潜力.
- 讨论SHIME®与其他新兴技术的整合.
主要方法:
- 审查最近在SHIME®模型 (M-SHIME®,双SHIME®,三重SHIME®,小孩SHIME®) 的发展.
- 分析SHIME®在各种科学领域的应用.
- 利用先进技术探索未来的整合前景.
主要成果:
- SHIME®系统提供持续的实时监控和灵活的设置.
- SHIME®精确地模仿了人类肠道生态系统,具有高动态性和稳定性.
- 最近的SHIME®模型在食品科学,药物开发,肠道健康和传统中医等领域得到了广泛的应用.
结论:
- SHIME®技术是肠道生态系统研究的一个多功能和有价值的工具.
- SHIME®对了解微生物组相关领域做出了重大贡献.
- 未来将SHIME®与其他技术集成,有望带来进一步的创新.
相关概念视频
iChip
The cultivation of environmental microorganisms has long been hindered by the inability to replicate complex native conditions in vitro. The isolation chip (iChip) addresses this limitation by facilitating the growth of previously uncultivable microorganisms through in situ incubation. Designed for high-throughput microbial cultivation, the iChip comprises hundreds of microchambers, each capable of housing a single microbial cell. These microchambers are loaded with a mixture of molten agar and...
Introduction to the Human Microbiota
Microorganisms colonize various regions of the human body, including the mouth, nasal passages, throat, stomach, intestines, urogenital tract, and skin. The total number of microbial cells is estimated to range from 10¹³ to 10¹⁴—comparable to, or exceeding, the number of human somatic cells. This host–microbiome relationship has led to the conceptualization of humans as supraorganisms, wherein microbial communities perform vital roles in development, immunity, and disease...
Development of Human Microbiota
The human microbiota begins developing at birth and undergoes continual change as we age. Infancy marks a critical period of microbial sensitivity, offering a “window of opportunity” during which beneficial microbes help mature the immune system. By age three, children typically develop a more stable and diverse microbial community. Newborns acquire microbes from their immediate environment; vaginal delivery favors maternal vaginal microbes, while cesarean births favor microbes from the skin...
Microbiota of the Stomach and Small Intestine
The human gastrointestinal (GI) tract is characterized by distinct physicochemical conditions that shape its microbial communities. Among these, the stomach presents a particularly challenging environment for microbial colonization due to its highly acidic pH, ranging from 1 to 3. This extreme acidity effectively limits microbial density. However, certain acid-tolerant microorganisms are capable of surviving in this niche. Notably, Helicobacter pylori can colonize the gastric mucosa,...
Microbiota of the Large Intestine
The large intestine hosts the most densely populated microbial ecosystem in the human body. This complex community primarily consists of anaerobic bacteria, with Bacillota (formerly Firmicutes) and Bacteroidota (formerly Bacteroidetes) as the predominant groups. The distribution of these microbes varies along different sections of the large intestine, influenced by local environmental factors such as oxygen availability and nutrient composition.The cecum, located at the beginning of the large...
Functions of the Gut Microbiota
The gut microbiota includes trillions of microorganisms that colonize the human gastrointestinal tract, including bacteria, archaea, viruses, and fungi. This complex ecosystem plays a critical role in maintaining intestinal and systemic health. Most of these microbes inhabit the large intestine, establishing a relatively stable and diverse community that contributes to gut homeostasis through various metabolic, immunological, and protective mechanisms.Dominant bacterial phyla, such as...


