23 research outputs found
Gut Microbiota, Probiotics and Diabetes
Diabetes is a condition of multifactorial origin, involving several molecular mechanisms related to the intestinal
microbiota for its development. In type 2 diabetes, receptor activation and recognition by microorganisms from
the intestinal lumen may trigger inflammatory responses, inducing the phosphorylation of serine residues in insulin
receptor substrate-1, reducing insulin sensitivity. In type 1 diabetes, the lowered expression of adhesion proteins
within the intestinal epithelium favours a greater immune response that may result in destruction of pancreatic
β cells by CD8+ T-lymphocytes, and increased expression of interleukin-17, related to autoimmunity. Research in
animal models and humans has hypothesized whether the administration of probiotics may improve the prognosis
of diabetes through modulation of gut microbiota. We have shown in this review that a large body of evidence
suggests probiotics reduce the inflammatory response and oxidative stress, as well as increase the expression of
adhesion proteins within the intestinal epithelium, reducing intestinal permeability. Such effects increase insulin sensitivity and reduce autoimmune response. However, further investigations are required to clarify whether the administration of probiotics can be efficiently used for the prevention and management of diabetes
Microbiome to Brain:Unravelling the Multidirectional Axes of Communication
The gut microbiome plays a crucial role in host physiology. Disruption of its community structure and function can have wide-ranging effects making it critical to understand exactly how the interactive dialogue between the host and its microbiota is regulated to maintain homeostasis. An array of multidirectional signalling molecules is clearly involved in the host-microbiome communication. This interactive signalling not only impacts the gastrointestinal tract, where the majority of microbiota resides, but also extends to affect other host systems including the brain and liver as well as the microbiome itself. Understanding the mechanistic principles of this inter-kingdom signalling is fundamental to unravelling how our supraorganism function to maintain wellbeing, subsequently opening up new avenues for microbiome manipulation to favour desirable mental health outcome