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1.
Hum Brain Mapp ; 45(7): e26689, 2024 May.
Article in English | MEDLINE | ID: mdl-38703095

ABSTRACT

Tau pathology and its spatial propagation in Alzheimer's disease (AD) play crucial roles in the neurodegenerative cascade leading to dementia. However, the underlying mechanisms linking tau spreading to glucose metabolism remain elusive. To address this, we aimed to examine the association between pathologic tau aggregation, functional connectivity, and cascading glucose metabolism and further explore the underlying interplay mechanisms. In this prospective cohort study, we enrolled 79 participants with 18F-Florzolotau positron emission tomography (PET), 18F-fluorodeoxyglucose PET, resting-state functional, and anatomical magnetic resonance imaging (MRI) images in the hospital-based Shanghai Memory Study. We employed generalized linear regression and correlation analyses to assess the associations between Florzolotau accumulation, functional connectivity, and glucose metabolism in whole-brain and network-specific manners. Causal mediation analysis was used to evaluate whether functional connectivity mediates the association between pathologic tau and cascading glucose metabolism. We examined 22 normal controls and 57 patients with AD. In the AD group, functional connectivity was associated with Florzolotau covariance (ß = .837, r = 0.472, p < .001) and glucose covariance (ß = 1.01, r = 0.499, p < .001). Brain regions with higher tau accumulation tend to be connected to other regions with high tau accumulation through functional connectivity or metabolic connectivity. Mediation analyses further suggest that functional connectivity partially modulates the influence of tau accumulation on downstream glucose metabolism (mediation proportion: 49.9%). Pathologic tau may affect functionally connected neurons directly, triggering downstream glucose metabolism changes. This study sheds light on the intricate relationship between tau pathology, functional connectivity, and downstream glucose metabolism, providing critical insights into AD pathophysiology and potential therapeutic targets.


Subject(s)
Alzheimer Disease , Fluorodeoxyglucose F18 , Magnetic Resonance Imaging , Nerve Net , Positron-Emission Tomography , tau Proteins , Humans , Alzheimer Disease/diagnostic imaging , Alzheimer Disease/metabolism , Alzheimer Disease/physiopathology , Male , Female , Aged , tau Proteins/metabolism , Middle Aged , Nerve Net/diagnostic imaging , Nerve Net/metabolism , Nerve Net/physiopathology , Glucose/metabolism , Connectome , Prospective Studies , Brain/diagnostic imaging , Brain/metabolism , Brain/physiopathology , Aged, 80 and over
2.
Mol Biol Rep ; 51(1): 641, 2024 May 10.
Article in English | MEDLINE | ID: mdl-38727798

ABSTRACT

BACKGROUND: The interrelationship between cellular metabolism and the epithelial-to-mesenchymal transition (EMT) process has made it an interesting topic to investigate the adjuvant effect of therapeutic diets in the treatment of cancers. However, the findings are controversial. In this study, the effects of glucose limitation along and with the addition of beta-hydroxybutyrate (bHB) were examined on the expression of specific genes and proteins of EMT, Wnt, Hedgehog, and Hippo signaling pathways, and also on cellular behavior of gastric cancer stem-like (MKN-45) and non-stem-like (KATO III) cells. METHODS AND RESULTS: The expression levels of chosen genes and proteins studied in cancer cells gradually adopted a low-glucose condition of one-fourth, along and with the addition of bHB, and compared to the unconditioned control cells. The long-term switching of the metabolic fuels successfully altered the expression profiles and behaviors of both gastric cancer cells. However, the results for some changes were the opposite. Glucose limitation along and with the addition of bHB reduced the CD44+ population in MKN-45 cells. In KATO III cells, glucose restriction increased the CD44+ population. Glucose deprivation alleviated EMT-related signaling pathways in MKN-45 cells but stimulated EMT in KATO III cells. Interestingly, bHB enrichment reduced the beneficial effect of glucose starvation in MKN-45 cells, but also alleviated the adverse effects of glucose restriction in KATO III cells. CONCLUSIONS: The findings of this research clearly showed that some controversial results in clinical trials for ketogenic diet in cancer patients stemmed from the different signaling responses of various cells to the metabolic changes in a heterogeneous cancer mass.


Subject(s)
3-Hydroxybutyric Acid , Epithelial-Mesenchymal Transition , Glucose , Signal Transduction , Stomach Neoplasms , Epithelial-Mesenchymal Transition/genetics , Stomach Neoplasms/metabolism , Stomach Neoplasms/genetics , Stomach Neoplasms/pathology , Humans , Cell Line, Tumor , 3-Hydroxybutyric Acid/pharmacology , 3-Hydroxybutyric Acid/metabolism , Glucose/metabolism , Ketosis/metabolism , Gene Expression Regulation, Neoplastic , Neoplastic Stem Cells/metabolism , Neoplastic Stem Cells/pathology , Hyaluronan Receptors/metabolism , Hyaluronan Receptors/genetics
3.
Biotechnol J ; 19(5): e2400014, 2024 May.
Article in English | MEDLINE | ID: mdl-38719614

ABSTRACT

Microbial production of L-malic acid from renewable carbon sources has attracted extensive attention. The reduced cofactor NADPH plays a key role in biotransformation because it participates in both biosynthetic reactions and cellular stress responses. In this study, NADPH or its precursors nicotinamide and nicotinic acid were added to the fermentation medium of Aspergillus niger RG0095, which significantly increased the yield of malic acid by 11%. To further improve the titer and productivity of L-malic acid, we increased the cytoplasmic NADPH levels of A. niger by upregulating the NAD kinases Utr1p and Yef1p. Biochemical analyses demonstrated that overexpression of Utr1p and Yef1p reduced oxidative stress, while also providing more NADPH to catalyze the conversion of glucose into malic acid. Notably, the strain overexpressing Utr1p reached a malate titer of 110.72 ± 1.91 g L-1 after 108 h, corresponding to a productivity of 1.03 ± 0.02 g L-1 h-1. Thus, the titer and productivity of malate were increased by 24.5% and 44.7%, respectively. The strategies developed in this study may also be useful for the metabolic engineering of fungi to produce other industrially relevant bulk chemicals.


Subject(s)
Aspergillus niger , Fermentation , Malates , Metabolic Engineering , NADP , Aspergillus niger/metabolism , Aspergillus niger/genetics , Malates/metabolism , Metabolic Engineering/methods , NADP/metabolism , Fungal Proteins/genetics , Fungal Proteins/metabolism , Glucose/metabolism , Phosphotransferases (Alcohol Group Acceptor)/genetics , Phosphotransferases (Alcohol Group Acceptor)/metabolism
4.
Food Res Int ; 186: 114338, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38729719

ABSTRACT

Women with the extremely prevalent polycystic ovary syndromegather multiple cardiovascular risk factors and chronic subclinical inflammation. Interactions between diet, adiposity, and gut microbiota modulate intestinal permeabilityand bacterial product translocation, and may contribute to the chronic inflammation process associated with the polycystic ovary syndrome. In the present study, we aimed to address the effects of obesity, functional hyperandrogenism, and diverse oral macronutrients on intestinal permeabilityby measuring circulating markers of gut barrier dysfunction and endotoxemia. Participants included 17 non-hyperandrogenic control women, 17 women with polycystic ovary syndrome, and 19 men that were submitted to glucose, lipid, and protein oral loads. Lipopolysaccharide-binding protein, plasma soluble CD14, succinate, zonulin family peptide, and glucagon-like peptide-2 were determined at fasting and after oral challenges. Macronutrient challenges induced diverse changes on circulating intestinal permeabilitybiomarkers in the acute postprancial period, with lipids and proteins showing the most unfavorable and favorable effects, respectively. Particularly, lipopolysaccharide-binding protein, zonulin family peptide, and glucagon-like peptide-2 responses were deregulated by the presence of obesity after glucose and lipid challenges. Obese subjects showed higher fasting intestinal permeabilitybiomarkers levels than non-obese individuals, except for plasma soluble CD14. The polycystic ovary syndromeexacerbated the effect of obesity further increasing fasting glucagon-like peptide-2, lipopolysaccharide-binding protein, and succinate concentrations. We observed specific interactions of the polycystic ovary syndromewith obesity in the postprandial response of succinate, zonulin family peptide, and glucagon-like peptide-2. In summary, obesity and polycystic ovary syndromemodify the effect of diverse macronutrients on the gut barrier, and alsoinfluence intestinal permeabilityat fasting,contributing to the morbidity of functional hyperandrogenism by inducing endotoxemia and subclinical chronic inflammation.


Subject(s)
Fasting , Glucagon-Like Peptide 2 , Obesity , Permeability , Polycystic Ovary Syndrome , Humans , Polycystic Ovary Syndrome/metabolism , Female , Adult , Fasting/blood , Male , Glucagon-Like Peptide 2/blood , Intestinal Mucosa/metabolism , Gastrointestinal Microbiome , Nutrients , Young Adult , Haptoglobins/metabolism , Endotoxemia , Lipopolysaccharide Receptors/blood , Acute-Phase Proteins/metabolism , Biomarkers/blood , Membrane Glycoproteins/blood , Membrane Glycoproteins/metabolism , Dietary Fats , Glucose/metabolism , Intestinal Barrier Function , Carrier Proteins , Protein Precursors
5.
Elife ; 122024 May 03.
Article in English | MEDLINE | ID: mdl-38700926

ABSTRACT

The gain-of-function mutation in the TALK-1 K+ channel (p.L114P) is associated with maturity-onset diabetes of the young (MODY). TALK-1 is a key regulator of ß-cell electrical activity and glucose-stimulated insulin secretion. The KCNK16 gene encoding TALK-1 is the most abundant and ß-cell-restricted K+ channel transcript. To investigate the impact of KCNK16 L114P on glucose homeostasis and confirm its association with MODY, a mouse model containing the Kcnk16 L114P mutation was generated. Heterozygous and homozygous Kcnk16 L114P mice exhibit increased neonatal lethality in the C57BL/6J and the CD-1 (ICR) genetic background, respectively. Lethality is likely a result of severe hyperglycemia observed in the homozygous Kcnk16 L114P neonates due to lack of glucose-stimulated insulin secretion and can be reduced with insulin treatment. Kcnk16 L114P increased whole-cell ß-cell K+ currents resulting in blunted glucose-stimulated Ca2+ entry and loss of glucose-induced Ca2+ oscillations. Thus, adult Kcnk16 L114P mice have reduced glucose-stimulated insulin secretion and plasma insulin levels, which significantly impairs glucose homeostasis. Taken together, this study shows that the MODY-associated Kcnk16 L114P mutation disrupts glucose homeostasis in adult mice resembling a MODY phenotype and causes neonatal lethality by inhibiting islet insulin secretion during development. These data suggest that TALK-1 is an islet-restricted target for the treatment for diabetes.


Subject(s)
Diabetes Mellitus, Type 2 , Glucagon , Glucose , Insulin Secretion , Mice, Inbred C57BL , Animals , Male , Mice , Animals, Newborn , Diabetes Mellitus, Type 2/genetics , Diabetes Mellitus, Type 2/metabolism , Disease Models, Animal , Glucagon/metabolism , Glucose/metabolism , Homeostasis , Insulin/metabolism , Insulin Secretion/drug effects , Insulin Secretion/genetics , Islets of Langerhans/metabolism , Mutation , Potassium Channels/metabolism , Potassium Channels/genetics
6.
BMC Med ; 22(1): 189, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38715017

ABSTRACT

BACKGROUND: Sleep loss is a common public health problem that causes hyperalgesia, especially that after surgery, which reduces the quality of life seriously. METHODS: The 48-h sleep restriction (SR) mouse model was created using restriction chambers. In vivo imaging, transmission electron microscopy (TEM), immunofluorescence staining and Western blot were performed to detect the status of the blood-spinal cord barrier (BSCB). Paw withdrawal mechanical threshold (PWMT) was measured to track mouse pain behavior. The role of infiltrating regulatory T cells (Tregs) and endothelial cells (ECs) in mouse glycolysis and BSCB damage were analyzed using flow cytometry, Western blot, CCK-8 assay, colorimetric method and lactate administration. RESULTS: The 48-h SR made mice in sleep disruption status and caused an acute damage to the BSCB, resulting in hyperalgesia and neuroinflammation in the spinal cord. In SR mice, the levels of glycolysis and glycolysis enzymes of ECs in the BSCB were found significantly decreased [CON group vs. SR group: CD31+Glut1+ cells: p < 0.001], which could cause dysfunction of ECs and this was confirmed in vitro. Increased numbers of infiltrating T cells [p < 0.0001] and Treg population [p < 0.05] were detected in the mouse spinal cord after 48-h SR. In the co-cultured system of ECs and Tregs in vitro, the competition of Tregs for glucose resulted in the glycolysis disorder of ECs [Glut1: p < 0.01, ENO1: p < 0.05, LDHα: p < 0.05; complete tubular structures formed: p < 0.0001; CCK8 assay: p < 0.001 on 24h, p < 0.0001 on 48h; glycolysis level: p < 0.0001]. An administration of sodium lactate partially rescued the function of ECs and relieved SR-induced hyperalgesia. Furthermore, the mTOR signaling pathway was excessively activated in ECs after SR in vivo and those under the inhibition of glycolysis or co-cultured with Tregs in vitro. CONCLUSIONS: Affected by glycolysis disorders of ECs due to glucose competition with infiltrating Tregs through regulating the mTOR signaling pathway, hyperalgesia induced by 48-h SR is attributed to neuroinflammation and damages to the barriers, which can be relieved by lactate supplementation.


Subject(s)
Endothelial Cells , Glucose , Hyperalgesia , Sleep Deprivation , Spinal Cord , T-Lymphocytes, Regulatory , Animals , T-Lymphocytes, Regulatory/immunology , Mice , Glucose/metabolism , Endothelial Cells/metabolism , Spinal Cord/metabolism , Spinal Cord/pathology , Male , Sleep Deprivation/complications , Glycolysis/physiology , Disease Models, Animal , Mice, Inbred C57BL
7.
JCI Insight ; 9(9)2024 Apr 02.
Article in English | MEDLINE | ID: mdl-38716728

ABSTRACT

The importance of the proper localization of most receptors at the cell surface is often underestimated, although this feature is essential for optimal receptor response. Endospanin 1 (Endo1) (also known as OBRGRP or LEPROT) is a protein generated from the same gene as the human leptin receptor and regulates the trafficking of proteins to the surface, including the leptin receptor. The systemic role of Endo1 on whole-body metabolism has not been studied so far. Here, we report that general Endo1-KO mice fed a high-fat diet develop metabolically healthy obesity with lipid repartitioning in organs and preferential accumulation of fat in adipose tissue, limited systematic inflammation, and better controlled glucose homeostasis. Mechanistically, Endo1 interacts with the lipid translocase CD36, thus regulating its surface abundance and lipid uptake in adipocytes. In humans, the level of Endo1 transcripts is increased in the adipose tissue of patients with obesity, but low levels rather correlate with a profile of metabolically healthy obesity. We suggest here that Endo1, most likely by controlling CD36 cell surface abundance and lipid uptake in adipocytes, dissociates obesity from diabetes and that its absence participates in metabolically healthy obesity.


Subject(s)
Adipose Tissue , CD36 Antigens , Diet, High-Fat , Mice, Knockout , Obesity , Animals , Female , Humans , Male , Mice , Adipocytes/metabolism , Adipose Tissue/metabolism , CD36 Antigens/metabolism , CD36 Antigens/genetics , Diet, High-Fat/adverse effects , Glucose/metabolism , Lipid Metabolism/genetics , Mice, Inbred C57BL , Obesity/metabolism , Obesity/genetics
8.
Cell Mol Life Sci ; 81(1): 241, 2024 May 29.
Article in English | MEDLINE | ID: mdl-38806811

ABSTRACT

Aspergillus ochraceus is the traditional ochratoxin A (OTA)-producing fungus with density-dependent behaviors, which is known as quorum sensing (QS) that is mediated by signaling molecules. Individual cells trend to adapt environmental changes in a "whole" flora through communications, allowing fungus to occupy an important ecological niche. Signals perception, transmission, and feedback are all rely on a signal network that constituted by membrane receptors and intracellular effectors. However, the interference of density information in signal transduction, which regulates most life activities of Aspergillus, have yet to be elucidated. Here we show that the G protein-coupled receptor (GPCR) to cAMP pathway is responsible for transmitting density information, and regulates the key point in life cycle of A. ochraceus. Firstly, the quorum sensing phenomenon of A. ochraceus is confirmed, and identified the density threshold is 103 spores/mL, which represents the low density that produces the most OTA in a series quorum density. Moreover, the GprC that classified as sugar sensor, and intracellular adenylate cyclase (AcyA)-cAMP-PKA pathway that in response to ligands glucose and HODEs are verified. Furthermore, GprC and AcyA regulate the primary metabolism as well as secondary metabolism, and further affects the growth of A. ochraceus during the entire life cycle. These studies highlight a crucial G protein signaling pathway for cell communication that is mediated by carbohydrate and oxylipins, and clarified a comprehensive effect of fungal development, which include the direct gene regulation and indirect substrate or energy supply. Our work revealed more signal molecules that mediated density information and connected effects on important adaptive behaviors of Aspergillus ochraceus, hoping to achieve comprehensive prevention and control of mycotoxin pollution from interrupting cell communication.


Subject(s)
Aspergillus ochraceus , Cyclic AMP , Glucose , Quorum Sensing , Signal Transduction , Aspergillus ochraceus/metabolism , Aspergillus ochraceus/genetics , Glucose/metabolism , Cyclic AMP/metabolism , Adenylyl Cyclases/metabolism , Adenylyl Cyclases/genetics , Receptors, G-Protein-Coupled/metabolism , Receptors, G-Protein-Coupled/genetics , Fungal Proteins/metabolism , Fungal Proteins/genetics , Ochratoxins/metabolism
9.
Discov Med ; 36(184): 865-873, 2024 May.
Article in English | MEDLINE | ID: mdl-38798247

ABSTRACT

Insulin plays a central role in blood glucose regulation, with insulin resistance contributing to the progression of prediabetes to diabetes, underscoring the importance of early intervention. Androgens, primarily synthesized in the testis under pituitary gland influence, impact male reproductive function. Testosterone, crucial for sexual development and secondary male characteristics, declines with age, leading to issues like anemia, sexual dysfunction, and reduced bone density. Sex-specific differences in glucose metabolism highlight males' lower insulin sensitivity and less effective glucose utilization compared to females due to androgenic effects. Testosterone's intricate role extends to potential benefits in glycemic control, fat mass reduction, and muscle strength increase in men with diabetes. However, cautious consideration of testosterone therapy is crucial, especially in the presence of underlying health conditions, warranting further research for clear guidelines in managing hyperglycemia.


Subject(s)
Homeostasis , Testosterone , Humans , Male , Testosterone/therapeutic use , Testosterone/metabolism , Glucose/metabolism , Blood Glucose/metabolism , Adult , Insulin Resistance
10.
Biol Open ; 13(5)2024 May 15.
Article in English | MEDLINE | ID: mdl-38809145

ABSTRACT

Bone is increasingly recognized as a target for diabetic complications. In order to evaluate the direct effects of high glucose on bone, we investigated the global transcriptional changes induced by hyperglycemia in osteoblasts in vitro. Rat bone marrow-derived mesenchymal stromal cells were differentiated into osteoblasts for 10 days, and prior to analysis, they were exposed to hyperglycemia (25 mM) for the short-term (1 or 3 days) or long-term (10 days). Genes and pathways regulated by hyperglycemia were identified using mRNA sequencing and verified with qPCR. Genes upregulated by 1-day hyperglycemia were, for example, related to extracellular matrix organization, collagen synthesis and bone formation. This stimulatory effect was attenuated by 3 days. Long-term exposure impaired osteoblast viability, and downregulated, for example, extracellular matrix organization and lysosomal pathways, and increased intracellular oxidative stress. Interestingly, transcriptional changes by different exposure times were mostly unique and only 89 common genes responding to glucose were identified. In conclusion, short-term hyperglycemia had a stimulatory effect on osteoblasts and bone formation, whereas long-term hyperglycemia had a negative effect on intracellular redox balance, osteoblast viability and function.


Subject(s)
Gene Expression Regulation , Glucose , Osteoblasts , Osteoblasts/metabolism , Osteoblasts/drug effects , Animals , Glucose/metabolism , Rats , Gene Expression Regulation/drug effects , Gene Expression Profiling , Hyperglycemia/metabolism , Hyperglycemia/genetics , Cell Differentiation/drug effects , Cell Differentiation/genetics , Mesenchymal Stem Cells/metabolism , Mesenchymal Stem Cells/drug effects , Transcriptome , Osteogenesis/drug effects , Osteogenesis/genetics , Cell Survival/drug effects , Transcription, Genetic/drug effects , Cells, Cultured , Oxidative Stress/drug effects
11.
PeerJ ; 12: e17414, 2024.
Article in English | MEDLINE | ID: mdl-38784400

ABSTRACT

Background: Sepsis-induced myocardial injury, as one of the important complications of sepsis, can significantly increase the mortality of septic patients. Our previous study found that nucleolin affected mitochondrial function in energy synthesis and had a protective effect on septic cardiomyopathy in mice. During sepsis, glucose metabolism disorders aggravated myocardial injury and had a negative effect on septic patients. Objectives: We investigated whether nucleolin could regulate glucose metabolism during endotoxemia-induced myocardial injury. Methods: The study tested whether the nucleolin cardiac-specific knockout in the mice could affect glucose metabolism through untargeted metabolomics, and the results of metabolomics were verified experimentally in H9C2 cells. The ATP content, lactate production, and oxygen consumption rate (OCR) were evaluated. Results: The metabolomics results suggested that glycolytic products were increased in endotoxemia-induced myocardial injury, and that nucleolin myocardial-specific knockout altered oxidative phosphorylation-related pathways. The experiment data showed that TNF-α combined with LPS stimulation could increase the lactate content and the OCR values by about 25%, and decrease the ATP content by about 25%. However, interference with nucleolin expression could further decrease ATP content and OCR values by about 10-20% and partially increase the lactate level in the presence of TNF-α and LPS. However, nucleolin overexpression had the opposite protective effect, which partially reversed the decrease in ATP content and the increase in lactate level. Conclusion: Down-regulation of nucleolin can exacerbate glucose metabolism disorders in endotoxemia-induced myocardial injury. Improving glucose metabolism by regulating nucleolin was expected to provide new therapeutic ideas for patients with septic cardiomyopathy.


Subject(s)
Endotoxemia , Glucose , Mice, Knockout , Nucleolin , Phosphoproteins , RNA-Binding Proteins , Endotoxemia/metabolism , Animals , RNA-Binding Proteins/metabolism , RNA-Binding Proteins/genetics , Mice , Phosphoproteins/metabolism , Phosphoproteins/genetics , Phosphoproteins/deficiency , Glucose/metabolism , Myocardium/metabolism , Myocardium/pathology , Cardiomyopathies/metabolism , Cardiomyopathies/genetics , Cardiomyopathies/etiology , Tumor Necrosis Factor-alpha/metabolism , Tumor Necrosis Factor-alpha/genetics , Metabolomics , Adenosine Triphosphate/metabolism , Cell Line , Oxygen Consumption , Lipopolysaccharides , Oxidative Phosphorylation
12.
Biomolecules ; 14(5)2024 Apr 30.
Article in English | MEDLINE | ID: mdl-38785950

ABSTRACT

Limited substrate availability because of the blood-brain barrier (BBB) has made the brain develop specific molecular mechanisms to survive, using lactate synthesized by astrocytes as a source of energy in neurons. To understand if lactate improves cellular viability and susceptibility to glutamate toxicity, primary cortical cells were incubated in glucose- or lactate-containing media and toxic concentrations of glutamate for 24 h. Cell death was determined by immunostaining and lactate dehydrogenase (LDH) release. Mitochondrial membrane potential and nitric oxide (NO) levels were measured using Tetramethylrhodamine, methyl ester (TMRM) and 4-Amino-5-Methylamino-2',7'-Difluorofluorescein Diacetate (DAF-FM) live staining, respectively. LDH activity was quantified in single cells in the presence of lactate (LDH substrate) and oxamate (LDH inhibitor). Nuclei of cells were stained with DAPI and neurons with MAP2. Based on the distance between neurons and glial cells, they were classified as linked (<10 µm) and non-linked (>10 µm) neurons. Lactate increased cell death rate and the mean value of endogenous NO levels compared to glucose incubations. Mitochondrial membrane potential was lower in the cells cultured with lactate, but this effect was reversed when glutamate was added to the lactate medium. LDH activity was higher in linked neurons compared to non-linked neurons, supporting the hypothesis of the existence of the lactate shuttle between astrocytes and at least a portion of neurons. In conclusion, glucose or lactate can equally preserve primary cortical neurons, but those neurons having a low level of LDH activity and incubated with lactate cannot cover high energetic demand solely with lactate and become more susceptible to glutamate toxicity.


Subject(s)
Glucose , Glutamic Acid , L-Lactate Dehydrogenase , Lactic Acid , Membrane Potential, Mitochondrial , Neurons , Animals , Glutamic Acid/metabolism , Glutamic Acid/toxicity , Membrane Potential, Mitochondrial/drug effects , Neurons/metabolism , Neurons/drug effects , L-Lactate Dehydrogenase/metabolism , Cells, Cultured , Lactic Acid/metabolism , Glucose/metabolism , Energy Metabolism/drug effects , Cerebral Cortex/metabolism , Cerebral Cortex/drug effects , Cerebral Cortex/cytology , Nitric Oxide/metabolism , Astrocytes/metabolism , Astrocytes/drug effects , Cell Survival/drug effects , Rats , Cell Death/drug effects
13.
Food Res Int ; 187: 114428, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38763678

ABSTRACT

In this study, blackberry polysaccharide-selenium nanoparticles (BBP-24-3Se) were first prepared via Na2SeO3/Vc redox reaction, followed by coating with red blood cell membrane (RBC) to form core-shell structure polysaccharide-selenium nanoparticles (RBC@BBP-24-3Se). The particle size of BBP-24-3Se (167.1 nm) was increased to 239.8 nm (RBC@BBP-24-3Se) with an obvious core-shell structure after coating with RBC. FT-IR and XPS results indicated that the interaction between BBP-24-3 and SeNPs formed a new C-O···Se bond with valence state of Se0. Bioassays indicated that RBC coating markedly enhanced both the biocompatibility and bioabsorbability of RBC@BBP-24-3Se, and the absorption rate of RBC@BBP-24-3Se in HepG2 cells was 4.99 times higher than that of BBP-24-3Se at a concentration of 10 µg/mL. Compared with BBP-24-3Se, RBC@BBP-24-3Se possessed significantly heightened protective efficacy against oxidative damage and better regulation of glucose/lipid metabolism disorder induced by palmitic acid in HepG2 cells. Mechanistic studies demonstrated that RBC@BBP-24-3Se could effectively improve PI3K/AKT signaling pathway to promote glucose metabolism, inhibit the expression of lipid synthesis genes and up-regulate the expression of lipid-decomposing genes through AMPK signaling pathway to improve lipid metabolism. These results provided a theoretical basis for developing a new type of selenium supplement for the treatment of insulin resistance.


Subject(s)
Glucose , Lipid Metabolism , Nanoparticles , Polysaccharides , Rubus , Selenium , Humans , Selenium/chemistry , Hep G2 Cells , Polysaccharides/pharmacology , Polysaccharides/chemistry , Lipid Metabolism/drug effects , Glucose/metabolism , Nanoparticles/chemistry , Rubus/chemistry , Particle Size , Oxidative Stress/drug effects , Antioxidants/pharmacology , Signal Transduction/drug effects
14.
Arch Microbiol ; 206(6): 270, 2024 May 20.
Article in English | MEDLINE | ID: mdl-38767668

ABSTRACT

Candida tropicalis is a human pathogen and one of the most prevalent non-Candida albicans Candida (NCAC) species causing invasive infections. Azole antifungal resistance in C. tropicalis is also gradually increasing with the increasing incidence of infections. The pathogenic success of C. tropicalis depends on its effective response in the host microenvironment. To become a successful pathogen, cellular metabolism, and physiological status determine the ability of the pathogen to counter diverse stresses inside the host. However, to date, limited knowledge is available on the impact of carbon substrate metabolism on stress adaptation and azole resistance in C. tropicalis. In this study, we determined the impact of glucose, fructose, and sucrose as the sole carbon source on the fluconazole resistance and osmotic (NaCl), oxidative (H2O2) stress adaptation in C. tropicalis clinical isolates. We confirmed that the abundance of carbon substrates influences or increases drug resistance and osmotic and oxidative stress tolerance in C. tropicalis. Additionally, both azole-resistant and susceptible isolates showed similar stress adaptation phenotypes, confirming the equal efficiency of becoming successful pathogens irrespective of drug susceptibility profile. To the best of our knowledge, our study is the first on C. tropicalis to demonstrate the direct relation between carbon substrate metabolism and stress tolerance or drug resistance.


Subject(s)
Antifungal Agents , Candida tropicalis , Carbon , Drug Resistance, Fungal , Fluconazole , Microbial Sensitivity Tests , Oxidative Stress , Candida tropicalis/drug effects , Candida tropicalis/physiology , Antifungal Agents/pharmacology , Humans , Fluconazole/pharmacology , Carbon/metabolism , Candidiasis/microbiology , Osmotic Pressure , Glucose/metabolism , Sucrose/metabolism , Sucrose/pharmacology , Hydrogen Peroxide/pharmacology , Hydrogen Peroxide/metabolism , Fructose/metabolism , Fructose/pharmacology , Stress, Physiological
15.
Int J Med Sci ; 21(6): 1049-1063, 2024.
Article in English | MEDLINE | ID: mdl-38774747

ABSTRACT

Peritoneal dialysis (PD), hemodialysis and kidney transplantation are the three therapies to treat uremia. However, PD is discontinued for peritoneal membrane fibrosis (PMF) and loss of peritoneal transport function (PTF) due to damage from high concentrations of glucose in PD fluids (PDFs). The mechanism behind PMF is unclear, and there are no available biomarkers for the evaluation of PMF and PTF. Using microarray screening, we found that a new long noncoding RNA (lncRNA), RPL29P2, was upregulated in the PM (peritoneal membrane) of long-term PD patients, and its expression level was correlated with PMF severity and the PTF loss. In vitro and rat model assays suggested that lncRNA RPL29P2 targets miR-1184 and induces the expression of collagen type I alpha 1 chain (COL1A1). Silencing RPL29P2 in the PD rat model might suppress the HG-induced phenotypic transition of Human peritoneal mesothelial cells (HPMCs), alleviate HG-induced fibrosis and prevent the loss of PTF. Overall, our findings revealed that lncRNA RPL29P2, which targets miR-1184 and collagen, may represent a useful marker and therapeutic target of PMF in PD patients.


Subject(s)
Collagen Type I, alpha 1 Chain , Collagen Type I , MicroRNAs , Peritoneal Dialysis , Peritoneal Fibrosis , Peritoneum , RNA, Long Noncoding , RNA, Long Noncoding/genetics , RNA, Long Noncoding/metabolism , Animals , MicroRNAs/genetics , MicroRNAs/metabolism , Humans , Peritoneal Dialysis/adverse effects , Peritoneal Fibrosis/genetics , Peritoneal Fibrosis/metabolism , Peritoneal Fibrosis/pathology , Peritoneal Fibrosis/etiology , Rats , Collagen Type I, alpha 1 Chain/genetics , Male , Peritoneum/pathology , Collagen Type I/metabolism , Collagen Type I/genetics , Middle Aged , Female , Disease Models, Animal , Glucose/metabolism
16.
J Neurosci Res ; 102(5): e25342, 2024 May.
Article in English | MEDLINE | ID: mdl-38773878

ABSTRACT

Glucose is the primary energy source for neural stem cells (NSCs), supporting their proliferation, differentiation, and quiescence. However, the high demand for glucose during brain development often exceeds its supply, leading to the utilization of alternative energy sources including ketone bodies. Ketone bodies, including ß-hydroxybutyrate, are short-chain fatty acids produced through hepatic ketogenesis and play a crucial role in providing energy and the biosynthetic components for NSCs when required. The interplay between glucose and ketone metabolism influences NSC behavior and fate decisions, and disruptions in these metabolic pathways have been linked to neurodevelopmental, neuropsychiatric, and neurodegenerative disorders. Additionally, ketone bodies exert neuroprotective effects on NSCs and modulate cellular responses to oxidative stress, energy maintenance, deacetylation, and inflammation. As such, understanding the interdependence of glucose and ketone metabolism in NSCs is crucial to understanding their roles in NSC function and their implications for neurological conditions. This article reviews the mechanisms of glucose and ketone utilization in NSCs, their impact on NSC function, and the therapeutic potential of targeting these metabolic pathways in neurological disorders.


Subject(s)
Glucose , Ketone Bodies , Neural Stem Cells , Ketone Bodies/metabolism , Neural Stem Cells/metabolism , Humans , Animals , Glucose/metabolism , Energy Metabolism/physiology , Cell Differentiation/physiology
17.
J Cell Mol Med ; 28(10): e18239, 2024 May.
Article in English | MEDLINE | ID: mdl-38774996

ABSTRACT

The occurrence and development of diabetic vascular diseases are closely linked to inflammation-induced endothelial dysfunction. Puerarin (Pue), the primary component of Pueraria lobata, possesses potent anti-inflammatory properties. However, its vasoprotective role remains elusive. Therefore, we investigated whether Pue can effectively protect against vascular damage induced by diabetes. In the study, Pue ameliorated lipopolysaccharide-adenosine triphosphate (LPS-ATP) or HG-primed cytotoxicity and apoptosis, while inhibited reactive oxygen species (ROS)-mediated NLR family pyrin domain containing 3 (NLRP3) inflammasome in HUVECs, as evidenced by significantly decreased ROS level, NOX4, Caspase-1 activity and expression of NLRP3, GSDMD, cleaved caspase-1, IL-1ß and IL-18. Meanwhile, ROS inducer CoCI2 efficiently weakened the effects of Pue against LPS-ATP-primed pyroptosis. In addition, NLRP3 knockdown notably enhanced Pue's ability to suppress pyroptosis in LPS-ATP-primed HUVECs, whereas overexpression of NLRP3 reversed the inhibitory effects of Pue. Furthermore, Pue inhibited the expression of ROS and NLRP3 inflammasome-associated proteins on the aorta in type 2 diabetes mellitus rats. Our findings indicated that Pue might ameliorate LPS-ATP or HG-primed damage in HUVECs by inactivating the ROS-NLRP3 signalling pathway.


Subject(s)
Adenosine Triphosphate , Human Umbilical Vein Endothelial Cells , Inflammasomes , Isoflavones , Lipopolysaccharides , NLR Family, Pyrin Domain-Containing 3 Protein , Reactive Oxygen Species , Signal Transduction , NLR Family, Pyrin Domain-Containing 3 Protein/metabolism , Reactive Oxygen Species/metabolism , Isoflavones/pharmacology , Isoflavones/therapeutic use , Humans , Animals , Signal Transduction/drug effects , Human Umbilical Vein Endothelial Cells/metabolism , Rats , Male , Adenosine Triphosphate/metabolism , Inflammasomes/metabolism , Cardiovascular Diseases/metabolism , Cardiovascular Diseases/etiology , Cardiovascular Diseases/drug therapy , Diabetes Mellitus, Experimental/metabolism , Diabetes Mellitus, Experimental/complications , Pyroptosis/drug effects , Rats, Sprague-Dawley , Endothelial Cells/metabolism , Endothelial Cells/drug effects , Glucose/metabolism , Apoptosis/drug effects
18.
J Cell Biol ; 223(8)2024 Aug 05.
Article in English | MEDLINE | ID: mdl-38775785

ABSTRACT

Autophagy is an important metabolic pathway that can non-selectively recycle cellular material or lead to targeted degradation of protein aggregates or damaged organelles. Autophagosome formation starts with autophagy factors accumulating on lipid vesicles containing ATG9. These phagophores attach to donor membranes, expand via ATG2-mediated lipid transfer, capture cargo, and mature into autophagosomes, ultimately fusing with lysosomes for their degradation. Autophagy can be activated by nutrient stress, for example, by a reduction in the cellular levels of amino acids. In contrast, how autophagy is regulated by low cellular ATP levels via the AMP-activated protein kinase (AMPK), an important therapeutic target, is less clear. Using live-cell imaging and an automated image analysis pipeline, we systematically dissect how nutrient starvation regulates autophagosome biogenesis. We demonstrate that glucose starvation downregulates autophagosome maturation by AMPK-mediated inhibition of phagophore tethering to donor membrane. Our results clarify AMPKs regulatory role in autophagy and highlight its potential as a therapeutic target to reduce autophagy.


Subject(s)
AMP-Activated Protein Kinases , Autophagosomes , Autophagy , Humans , AMP-Activated Protein Kinases/metabolism , Autophagosomes/metabolism , Glucose/metabolism , Cell Line
19.
Ecotoxicol Environ Saf ; 278: 116402, 2024 Jun 15.
Article in English | MEDLINE | ID: mdl-38728940

ABSTRACT

Perfluorobutanesulfonic acid (PFBS), a short-chain alternative to perfluorooctanesulfonic acid (PFOS), is widely used in various products and is increasingly present in environmental media and human bodies. Recent epidemiological findings have raised concerns about its potential adverse health effects, although the specific toxic mechanism remains unclear. This study aimed to investigate the metabolic toxicity of gestational PFBS exposure in maternal rats. Pregnant Sprague Dawley (SD) rats were randomly assigned to three groups and administered either 3% starch gel (control), 5, or 50 mg/kg bw·d PFBS. Oral glucose tolerance tests (OGTT) and lipid profiles were measured, and integrated omics analysis (transcriptomics and non-targeted metabolomics) was employed to identify changes in genes and metabolites and their relationships with metabolic phenotypes. The results revealed that rats exposed to 50 mg/kg bw·d PFBS exhibited a significant decrease in 1-h glucose levels and the area under the curve (AUC) of OGTT compared with the starch group. Transcriptomics analysis indicated significant alterations in gene expression related to cytochrome P450 exogenous metabolism, glutathione metabolism, bile acid secretion, tumor pathways, and retinol metabolism. Differentially expressed metabolites (DEMs) were enriched in pathways such as pyruvate metabolism, the glucagon signaling pathway, central carbon metabolism in cancer, and the citric acid cycle. Co-enrichment analysis and pairwise correlation analysis among genes, metabolites, and outcomes identified several differentially expressed genes (DEGs), including Gstm1, Kit, Adcy1, Gck, Ppp1r3c, Ppp1r3d, and DEMs such as fumaric acid, L-lactic acid, 4-hydroxynonenal, and acetylvalerenolic acid. These DEGs and DEMs may play a role in the modulation of glucolipid metabolic pathways. In conclusion, our results suggest that gestational exposure to PFBS may induce molecular perturbations in glucose homeostasis. These findings provide insights into the potential mechanisms contributing to the heightened risk of abnormal glucose tolerance associated with PFBS exposure.


Subject(s)
Fluorocarbons , Homeostasis , Rats, Sprague-Dawley , Animals , Female , Pregnancy , Fluorocarbons/toxicity , Rats , Homeostasis/drug effects , Glucose/metabolism , Sulfonic Acids/toxicity , Glucose Tolerance Test , Metabolomics , Environmental Pollutants/toxicity , Blood Glucose , Maternal Exposure/adverse effects , Multiomics
20.
J Mol Cell Cardiol ; 191: 50-62, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38703412

ABSTRACT

Exercise training can promote physiological cardiac growth, which has been suggested to involve changes in glucose metabolism to facilitate hypertrophy of cardiomyocytes. In this study, we used a dietary, in vivo isotope labeling approach to examine how exercise training influences the metabolic fate of carbon derived from dietary glucose in the heart during acute, active, and established phases of exercise-induced cardiac growth. Male and female FVB/NJ mice were subjected to treadmill running for up to 4 weeks and cardiac growth was assessed by gravimetry. Cardiac metabolic responses to exercise were assessed via in vivo tracing of [13C6]-glucose via mass spectrometry and nuclear magnetic resonance. We found that the half-maximal cardiac growth response was achieved by approximately 1 week of daily exercise training, with near maximal growth observed in male mice with 2 weeks of training; however, female mice were recalcitrant to exercise-induced cardiac growth and required a higher daily intensity of exercise training to achieve significant, albeit modest, increases in cardiac mass. We also found that increases in the energy charge of adenylate and guanylate nucleotide pools precede exercise-induced changes in cardiac size and were associated with higher glucose tracer enrichment in the TCA pool and in amino acids (aspartate, glutamate) sourced by TCA intermediates. Our data also indicate that the activity of collateral biosynthetic pathways of glucose metabolism may not be markedly altered by exercise. Overall, this study provides evidence that metabolic remodeling in the form of heightened energy charge and increased TCA cycle activity and cataplerosis precedes cardiac growth caused by exercise training in male mice.


Subject(s)
Glucose , Heart , Myocardium , Physical Conditioning, Animal , Animals , Male , Female , Glucose/metabolism , Myocardium/metabolism , Mice , Heart/growth & development , Energy Metabolism
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