Kyushu University · 의학
Sudo 교수의 연구실은 장내 미생물군이 숙주 생리 기능, 특히 신경-내분비 반응과 면역 조절에 미치는 영향을 중심으로 연구를 진행하고 있습니다. 특히 스트레스 반응 조절, 장내 세로토닌 및 도파민 생성 메커니즘, 그리고 항생제 투여 후 면역 반응의 변화와 관련된 미생물-숙주 상호작용을 밝혀내는 데 초점을 맞추고 있습니다. 장내 미생물의 기능적 역할을 기반으로 한 질병 예방 및 치료 전략 개발을 목표로 하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Indigenous microbiota have several beneficial effects on host physiological functions; however, little is known about whether or not postnatal microbial colonization can affect the development of brain plasticity and a subsequent physiological system response. To test the idea that such microbes may affect the development of neural systems that govern the endocrine response to stress, we investigated hypothalamic-pituitary-adrenal (HPA) reaction to stress by comparing germfree (GF), specific pat
The role of intestinal bacterial flora in oral tolerance induction to the IgE response was investigated using germfree (GF) mice. When GF mice were orally administered 20 mg of OVA as tolerogen before a systemic challenge with OVA, the Th1-mediated responses, such as the production of IgG2a and IFN-gamma, were abrogated, while the Th2-mediated immune responses, such as the production of IgE, IgG1, and IL-4, were maintained. Moreover, the basal level of IL-4 production in vitro was significantly
There is increasing interest in the bidirectional communication between the mammalian host and prokaryotic cells. Catecholamines (CA), candidate molecules for such communication, are presumed to play an important role in the gut lumen; however, available evidence is limited because of the lack of actual data about luminal CA. This study evaluated luminal CA levels in the gastrointestinal tract and elucidated the involvement of gut microbiota in the generation of luminal CA by comparing the findi
Anorexia nervosa (AN) is a psychological illness with devastating physical consequences; however, its pathophysiological mechanism remains unclear. Because numerous reports have indicated the importance of gut microbiota in the regulation of weight gain, it is reasonable to speculate that AN patients might have a microbial imbalance, i.e. dysbiosis, in their gut. In this study, we compared the fecal microbiota of female patients with AN (n = 25), including restrictive (ANR, n = 14) and binge-eat
Gut lumen serotonin (5-hydroxytryptamine: 5-HT) contributes to several gastrointestinal functions such as peristaltic reflexes. 5-HT is released from enterochromaffin (EC) cells in response to a number of stimuli, including signals from the gut microbiota. However, the specific mechanism by which the gut microbiota regulates 5-HT levels in the gut lumen has not yet been clarified. Our previous work with gnotobiotic mice showed that free catecholamines can be produced by the deconjugation of conj
These results suggest that adequate probiotic intervention after antibiotic treatment may improve the intestinal ecosystem, and thereby prevent the Th2-shifted immunity induced by neonatal antibiotic use. In addition, the difference of genetic backgrounds also contributes to such an antibiotic-induced Th2-skewed response.
There is increasing interest in the interactions among the gut microbiota, gut, and brain, which is often referred to as the "microbiota-gut-brain" axis. Biogenic amines including dopamine, norepinephrine, serotonin, and histamines are all generated by commensal gut microorganisms and are suggested to play roles as signaling molecules mediating the function of the "microbiota-gut-brain" axis. In addition, such amines generated in the gut have attracted attention in terms of possible clues into t
Anorexia nervosa (AN) results in gut dysbiosis, but whether the dysbiosis contributes to AN-specific pathologies such as poor weight gain and neuropsychiatric abnormalities remains unclear. To address this, germ-free mice were reconstituted with the microbiota of four patients with restricting-type AN (gAN mice) and four healthy control individuals (gHC mice). The effects of gut microbes on weight gain and behavioral characteristics were examined. Fecal microbial profiles in recipient gnotobioti
There has been an increasing and intense interest in the role that gut bacteria play in maintaining the health of the host. Gut microbiota have an estimated mass of 1-2 kg, number 100 trillion and together possess 100 times the number of genes in the human genome. In addition to their well-established role in the postnatal maturation of the mammalian immune system, they are also responsible for an enormous array of metabolic activities that include effects on the digestion of food and the produc
Gut microbiota are responsible for a variety of metabolic activities including food digestion and production of biologically active substances. Moreover, several recent works, including our own, have also shown that gut microbiota play an important role not only in the development of brain function but also in the pathology of stress-related diseases and neurodevelopmental disorders. In this review, we focus on the interaction between gut microbes and the brain-gut axis and introduce some basic