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Yokoi, N.

Publications and source records attributed to Yokoi, N..

4 recordsLinked to original sources

Intestinal fructose metabolism/GLP-1/β-cell axis counteracts hyperglycemia after short-term fructose ingestion

Fructose ingestion increases circulating GLP-1 and insulin, yet the specific contributions of these hormonal responses to glycaemic control remain incompletely defined. We hypothesised that fructose metabolism in intestinal L-cells triggers GLP-1 secretion, which then potentiates insulin secretion and counteracts fructose-induced hyperglycaemia. To test this hypothesis, we systematically characterised metabolic responses across multiple mouse strains after 24 h ad libitum fructose ingestion. In both lean (NSY.B6-a/a) and obese diabetic (NSY.B6-Ay/a) mice, fructose elevated plasma insulin, glucagon-like peptide 1 (GLP-1), and glucose-dependent insulinotropic polypeptide (GIP). The insulin response was preserved in GIP receptor-deficient mice (Gipr-/-) but was abolished in proglucagon-deficient mice (Gcg-/-) by pharmacological GLP-1 receptor antagonism, indicating a requirement for GLP-1, but not GIP. Across strains, fructose-induced insulin response correlated with attenuation of post-fructose glycaemia, consistent with insulin being essential for suppressing fructose-induced hyperglycaemia. To explore the mechanism underlying fructose-induced GLP-1 secretion, we combined ATP-sensitive potassium channel-deficient mice (Kcnj11-/-), GLUTag L-cell line, and metabolic tracing of 13C-labelled fructose in freshly isolated intestinal crypts. These complementary approaches support a model in which fructolysis increases the ATP/ADP ratio in L-cells, closes KATP channels, and stimulates GLP-1 secretion. In obese diabetic mice, increased fructolytic flux and a higher ATP/ADP ratio were associated with elevated GLP-1 levels, further corroborating this model. Collectively, our findings indicate that intestinal fructose metabolism drives GLP-1 secretion required to potentiate insulin secretion, thereby establishing a gut-pancreas axis that counter-regulates fructose-induced hyperglycaemia. KEY POINTS SUMMARYO_LIFructose ingestion acutely increases plasma insulin levels, but the underlying mechanisms and physiological significance remain elusive. C_LIO_LIOur study demonstrates that short-term (24h) fructose ingestion in mice elevates both insulin and glucagon-like peptide 1 (GLP-1) levels in the blood, with the plasma insulin response being GLP-1-dependent. C_LIO_LIWe found that fructose metabolism in intestinal L-cells triggered GLP-1 secretion by increasing the ATP/ADP ratio and closing ATP-sensitive K+ channels (KATP channels). C_LIO_LIThis intestinal fructose metabolism/GLP-1/{beta}-cell axis plays a crucial role in preventing fructose-induced hyperglycaemia, an effect that is compromised in obese diabetic mice. C_LIO_LIThese insights highlight the previously unclear metabolic responses following short-term fructose ingestion and their importance in glucose homeostasis. C_LI 1. ABSTRACT FIGURE LEGENDThis study investigated the hormonal effects of short-term fructose consumption in mice, allowing them ad-lib access to fructose solution for 24 h. Fructose metabolism in intestinal L-cells increases the intracellular ATP/ADP ratio, leading to GLP-1 secretion via KATP channel closure and Ca2+ influx. GLP-1 promotes insulin secretion from pancreatic {beta}-cells. The fructose metabolism/GLP-1/insulin pathway is essential for mitigation of fructose-induced hyperglycaemia. Figures were drawn using BioRender.com.

physiology↗

Comparative transcriptome and variant analyses of the pancreatic islets of a rat model of obese type 2 diabetes identifies a frequently distributed nonsense mutation in the lipocalin 2 gene

We have recently established the Zucker fatty diabetes mellitus (ZFDM) rat as a novel model of obese type 2 diabetes (T2D), originating from the obese Zucker fatty (ZF) rat harboring a missense mutation in the leptin receptor gene. Pathogenesis of dysfunction of the pancreatic islets and genetic factors of T2D in ZFDM rats remain unknown. Here, we perform comparative transcriptome and variant analyses of the pancreatic islets between the two strains. Among differentially expressed genes irrespective of obesity and glucose intolerance states, we identify a nonsense mutation, c.409C>T (p.Gln137X), in the lipocalin 2 (Lcn2) gene which encodes a secreted protein called neutrophil gelatinase-associated lipocalin, a well-known biomarker for inflammation. Interestingly, we find that the Lcn2 mutation is distributed widely in rat species, such as commonly used DA and F344 strains. We examine the Lcn2 mutation as a strong candidate gene for T2D in ZFDM rats by using genome editing of ZFDM rats in which the nonsense mutation is replaced with a wild-type nucleotide. We find that the genome editing well works but also observe that there is no significant difference in the development of T2D between genome-edited and original ZFDM rats. Finally, we perform a genetic linkage analysis by using backcross progeny between ZF and ZFDM rats and confirm that the Lcn2 mutation exhibits no significant association with the onset of T2D. Our data indicate that several rat strains would serve as Lcn2 deficient models, contributing to elucidate pathophysiological roles of Lcn2 in a wide variety of phenotypes.

genetics↗

Pyruvate kinase modulates the link between β-cell fructose metabolism and insulin secretion

2Glucose triggers insulin secretion from pancreatic {beta}-cells through intracellular glucose metabolism, ATP production, and closure of ATP-sensitive K+ channels (KATP channels). Fructose also stimulates insulin secretion, but the underlying mechanisms remain unclear. This study investigated the contribution of phospholipase C (PLC) signaling and fructose metabolism to fructose-stimulated insulin secretion (FSIS) using MIN6-K8 clonal {beta}-cells and mouse islets. Fructose-induced PLC activation, assessed by inositol 1-phosphate accumulation, was reduced in fructose-unresponsive {beta}-cell models, such as diabetic mouse islets and KATP channel-deficient {beta}-cells, suggesting that {beta}-cell fructose responsiveness is primarily determined by PLC signaling. Although FSIS was dependent on KATP channels and Ca2+ influx, the ATP/ADP ratio was unexpectedly lowered by fructose, and suppression of intracellular fructose metabolism hardly affected FSIS. Metabolic flux analysis revealed that the accumulation of fructose 1-phosphate (F1P) suppressed pyruvate kinase (PK) activity, contributing to ATP depletion. Strikingly, a small-molecule PK activator, TEPP-46, antagonized F1P-mediated PK suppression, prevented the drop in the ATP/ADP ratio, and restored FSIS in MIN6-K8 cells, normal mouse islets, and fructose-unresponsive diabetic mouse islets. These findings revealed the metabolic effects of fructose in {beta}-cells and identified PK as a key regulator linking {beta}-cell fructose metabolism and FSIS, thereby providing new insights into the mechanisms of insulin secretion and potential therapeutic targets for fructose-associated metabolic diseases. 1 GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=124 SRC="FIGDIR/small/608033v2_ufig1.gif" ALT="Figure 1"> View larger version (27K): org.highwire.dtl.DTLVardef@11ce1e9org.highwire.dtl.DTLVardef@1339f22org.highwire.dtl.DTLVardef@1493a5org.highwire.dtl.DTLVardef@e97026_HPS_FORMAT_FIGEXP M_FIG C_FIG Left: Fructose-stimulated insulin secretion (FSIS) is driven by sweet taste receptor (STR)-mediated PLC signaling in pancreatic {beta}-cells. Meanwhile, fructose metabolism does not promote FSIS because fructose causes accumulation of fructose 1-phosphate (F1P), which suppresses pyruvate kinase M2 (PKM2), lowering the ATP/ADP ratio. Right: A small-molecule PK activator counteracted F1P-mediated PKM2 inhibition, prevented ATP decrease, and substantially enhanced FSIS in normal and diabetic mouse {beta}-cells. Thus, PK has been identified as a key regulator linking {beta}-cell fructose metabolism and FSIS.

cell biology↗

Laboratory evolution of the bacterial genome structure through insertion sequence activation

The genome structure critically impacts bacterial physiology, ecology, and evolution. However, its evolution, driven by transposons called insertion sequences (IS), has been challenging to track in laboratories due to its slow pace. Here, we accelerated this process by introducing multiple copies of a high-activity IS into Escherichia coli. Mimicking bursts of IS copies in host-restricted endosymbionts and pathogens, we evolved the bacteria under relaxed neutral conditions. Within ten weeks, we observed a median of 24.5 IS insertions per genome, comparable to a decade of wild-type evolution. Long-read sequencing revealed extensive IS-mediated genome rearrangements, resulting in novel IS variants and genome size changes exceeding {+/-}5 %. By achieving such drastic genome evolution under relaxed selection, our study establishes a baseline for assessing the fitness effects of IS insertions, genome size changes, and rearrangements. This work paves the way for experimentally studying bacterial genome structure evolution, complementing analyses of genome structures in nature.

microbiology↗