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Kawabe, K.

Publications and source records attributed to Kawabe, K..

2 recordsLinked to original sources

Wild gut microbiome suppresses the opportunistic pathogen Aeromonas in medaka under domesticated rearing conditions

BackgroundThe gut microbiome plays a crucial role in the metabolic health and pathogen resistance of various host animals. It is also well established that external environmental factors can influence the gut microbiome, leading to differences in its composition. However, the functional implications of these differences remain poorly understood. This study examined the gut microbiome of medaka (Oryzias latipes species complex) by comparing domesticated and wild populations, with the aim of gaining insights into the functional significance of their specific characteristics, particularly those of the wild-type microbiome. ResultsFor the comparative analysis of the gut microbiome, 48 domesticated and 122 wild medaka were collected from multiple laboratories, pet stores and streams across Japan. The results showed that wild medaka exhibited significantly higher gut microbiome diversity, with a broader range of bacterial members. In contrast, the gut microbiome of domesticated medaka harbored lower microbial diversity and was consistently dominated by Aeromonas, a typical opportunistic pathogen in fish. Additionally, 88.6% of Aeromonas isolates from domesticated medaka exhibited haemolytic activity. Moreover, a domesticated rearing experiment with wild populations showed no proliferation or dominance of Aeromonas in their gut, as observed in domesticated medaka. A further rearing experiment revealed that pre-exposing antibiotic-treated medaka to sediments from their natural habitats prevented Aeromonas colonisation, even when reared under domesticated conditions. ConclusionsThese findings suggest that the habitat-derived wild gut microbiome can inhibit Aeromonas proliferation in domesticated fish, highlighting its potential to mitigate opportunistic diseases in aquaculture.

microbiology↗

Vascular Endothelial Cells Perform Distinct Sensing and Signaling of Laminar and Disturbed Flows across Plasma Membranes and Mitochondria

BACKGROUNDVascular endothelial cells (ECs) experience two different blood flow patterns: laminar and disturbed flows. Their responses to laminar flow contribute to vascular homeostasis, whereas their responses to disturbed flow result in EC dysfunction and vascular diseases. However, it remains unclear how ECs differentially sense laminar and disturbed flows and trigger signalings that elicit different EC responses. We aimed to investigate EC flow-sensing and signaling mechanisms, focusing on the role of the plasma membrane and mitochondria. METHODSWe exposed cultured human aortic ECs to laminar flow and disturbed flow in flow-loading devices and used real-time imaging with optical probes to examine changes in the lipid order of the plasma and mitochondria membranes and the mitochondrial adenosine triphosphate (ATP) production and hydrogen peroxide (H2O2) release. RESULTSThe lipid order of EC plasma membranes immediately decreased in response to laminar flow, while it increased in response to disturbed flow. Laminar flow also decreased the lipid order of mitochondrial membranes and increased mitochondrial ATP production. In contrast, disturbed flow increased the lipid order of mitochondrial membranes and increased the release of H2O2 from mitochondria. Addition of cholesterol to the cells increased the lipid order of both membranes and abrogated the laminar flow-induced ATP production, while treatment of the cells with a cholesterol-depleting reagent, methyl-{beta} cyclodextrin, decreased the lipid order of both membranes and abolished the disturbed flow-induced H2O2 release, indicating that the changes in the membrane lipid order are closely linked to the flow-induced changes in the mitochondrial functions. CONCLUSIONSECs differentially sense laminar and disturbed flows by altering the lipid order of their plasma and mitochondrial membranes in opposite directions, which result in distinct changes in the mitochondrial functions, namely, increased ATP production for laminar flow and increased H2O2 release for disturbed flow, leading to ATP- and H2O2-mediated signalings, respectively.

physiology↗