Plants produce numerous natural compounds developed into commercial products. These compounds offer medicinal benefits for treating diseases like diabetes, neurological disorders, malaria, and cancer. They also serve as hepatoprotective agents and immunomodulators. These natural products are secondary metabolites that plants produce for their defense and adaptation. Recently, numerous reports have highlighted the effectiveness of natural products in different diseases. However, comprehensive analysis of plant-based products currently used in the clinical setting for various human diseases is insufficient. This review provides extensive information about the application of natural plant products in both clinical and preclinical settings. It highlights their role in developing drugs for human diseases. Additionally, these plant products could serve as diagnostic tools for various diseases. Plant-derived natural products, integrated with advanced nanotechnology-based approaches, could enhance healthcare monitoring without compromising treatment efficacy. Nanotechnology techniques employing both diagnostics and therapeutics, known as nanotheranostics, utilize engineered biocompatible nanomaterials with potential prospects for healthcare management. Nanomaterials like polymeric nanoparticles and liposomes offer diagnostic value by enabling real-time imaging of disease progression and treatment response. Functionalized with contrast agents or dyes, they enhance MRI, CT, PET, and fluorescence imaging, improving diagnosis, patient stratification, and monitoring of drug delivery and efficacy. With the increasing demand for natural dietary supplements, this issue encompasses the identification of various plant-based natural products as potential nanotheranostics with promising potential for chronic disorders such as cancer, neurological pathologies, diabetes, and immunological issues. This review focuses on applications of nanotheranostics utilizing natural products in biomedical applications, outlining the current breakthroughs, supplemented with future potentialities.
Photonics/light localization techniques are essential in understanding the structural changes in biological cells/tissues at the nano- to sub-micron scale. It is now known that structural alterations begin at the nanoscale, marking the onset of cancer progression. This photonics study examines the molecular-specific nano-structural alterations of chronic alcoholism and probiotic effects on colon cancer using a mouse model of colon cancer. We assessed alcohol-treated and azoxymethane (AOM) with dextran sulfate sodium (DSS)-induced colitis models, including ethanol (EtOH) and probiotic (L.casei) treatments separately and together. The confocal images were analyzed using the mesoscopic physics-based Inverse Participation Ratio (IPR) technique to quantify structural alterations at nano- to submicron scales. Significant enhancement of cancer progression was observed in the EtOH-treated group, and probiotic treatment with EtOH showed substantial reversal of these changes in colon cancer, underscoring the potential of the IPR technique in detecting and monitoring cancer progression.
Emerging research highlights the profound interplay between the microbiome and cancer, offering novel avenues for therapeutic interventions. This review explores the burgeoning field of microbiome-targeted therapies in oncology, focusing on how microbial communities influence cancer development, progression, and response to treatment. The microbiome's role in modulating immune responses, drug metabolism, and tumor microenvironment is examined, revealing its potential to both inhibit and promote tumorigenesis. We discuss current strategies that leverage microbiome modulation, including probiotics, prebiotics, and fecal microbiota transplantation, to enhance the efficacy of conventional cancer therapies and mitigate side effects. Additionally, the review addresses the challenges and future directions in integrating microbiome-based approaches into clinical practice. By elucidating the mechanisms through which the microbiome affects cancer and therapy outcomes, this work aims to pave the way for innovative, personalized treatment strategies that harness the power of microbial communities to improve cancer care.
Dystonia is a neurological movement disorder characterized by involuntary, sustained, or intermittent muscle contractions, that result in twisting movements, repetitive motor patterns, or abnormal postures. While genetic mutations such as Tor1a+/ΔGAG are known contributors, the environmental and peripheral factors influencing disease onset and progression remain poorly understood. Emerging evidence implicates the gut microbiome in shaping neurodevelopment and host behavioral function, yet its contribution to dystonia pathobiology is largely unexplored. Here, we longitudinally profiled the gut microbiome of Tor1a+/ΔGAG mouse model using 16S rRNA gene sequencing and uncovered early emerging, persistent disruptions in microbial diversity and community composition that track with progressive motor impairment. Mutant mice exhibited an alteration of key commensal taxa, and molecular signatures indicative of compromised gut-barrier integrity. Parallel transcriptomic profiling of colonic epithelium reveals coordinated dysregulation of pathways governing epithelial stress responses, endoplasmic reticulum homeostasis, lipid signaling, autophagy, and DNA damage and repair, pointing to a previously unrecognized epithelial stress state in Tor1a+/ΔGAG mouse model. Integrative microbial-host interaction correlation analyses uncovered robust associations between specific dysbiotic taxa and host signaling pathways. These peripheral perturbations coincide with longitudinal motor deficits, suggesting a mechanistic gut-brain axis linking intestinal dysfunction to central neuronal vulnerability. Together, our findings provide the first experimental framework connecting microbiome perturbations, gut-barrier disruption, and neuronal vulnerability in a genetic model of dystonia. This work positions the gut microbiome and its regulation of epithelial and neuronal homeostasis as a novel entry point for disease modification in individuals carrying deleterious dystonia-associated variants. ### Competing Interest Statement The authors have declared no competing interest. United States Department of Defense, HT9425-24-1-0246
Introduction: About 15% of heavy drinkers develop liver disease, suggesting the “Multiple hit hypothesis” of Alcohol-Associated Liver Diseases (AALD). Chronic stress is a potential second hit in AALD pathogenesis. Our recent study showed that alcohol-induced gut and liver injury is exacerbated by chronic restraint stress or corticosterone. JNK2 plays an essential role in stress-induced cell injury. In this study, we investigated the role of JNK2 in ethanol (EtOH) and corticosterone-induced gut and liver injury and microbiota dysbiosis in mice. Methods: Wildtype (WT) and JNK2 knockout (JNK2-KO) mice (male and female; 8-10 wks) were fed a Lieber-DiCarli liquid diet with or without EtOH (0% 2d, 1% 2d, 2% 2d, 4% 1wk, 5% 1wk, & 6% 1wk). Control groups were pair-fed isocaloric EtOH-free diet. One group of pair-fed and EtOH-fed WT and JNK2-KO mice were administered corticosterone (CORT, 25 mg/kg/day; s.c.). Intestinal permeability was measured by vascular-to-luminal flux of FITC-inulin in vivo, tight junction (TJ) and adherens junction (AJ) integrity was assessed by confocal microscopy for occludin, ZO-1, E-cadherin, and β-catenin, and mucosal inflammation by RT-PCR for cytokines/chemokines. Plasma lipopolysaccharide (LPS) and cytokines were measured to evaluate endotoxemia and systemic inflammation. Liver damage was assessed by measuring plasma AST/ALT, liver triglyceride, and cytokine/chemokine mRNA. Gut microbiota was analyzed by 16S rRNA sequencing of colonic flushing followed by bioinformatics analyses. Results and conclusion: In WT mice, EtOH feeding increased intestinal permeability, disrupted epithelial TJ and AJ, and elevated mucosal cytokine expression, indicating epithelial barrier dysfunction and mucosal inflammation. EtOH increased plasma LPS and cytokine/chemokine levels, indicating endotoxemia and systemic inflammation. Plasma AST/ALT and liver triglyceride levels were increased, indicating EtOH-induced liver damage. CORT significantly elevated EtOH-induced intestinal permeability, TJ/AJ disruption, endotoxemia, systemic inflammation, and liver damage in WT mice. These effects of EtOH and CORT were absent in JNK2-KO mice. Microbiota α-diversity was higher in JNK2-KO mice than in WT mice, and β-diversity analysis showed that the microbiota composition in WT mice differed from that of KO mice. Microbiota α- and β-diversities were altered by EtOH and CORT in WT mice but not in JNK2-KO mice. The relative abundance of Nocardiaceae and Verrucomicrobiaceae was high, and Ruminococcaceae and Bacillaceae were low in KO mice. CORT decreased the abundance of Caulobacteriaceae and Ruminococcaceae and increased Verrucomicrobiaceae and Lactobacillaceae in WT but not KO mice. EtOH increased Ruminococcaceae and Bacillaceae and decreased Lactobacillaceae in WT mice but not KO mice. CORT-induced modulation of EtOH-induced microbiota dysbiosis was observed in WT mice but not KO mice. In conclusion, these data demonstrate that JNK2 regulates gut microbiota in mice, and JNK2 deficiency confers resistance to alcohol and corticosterone-induced tissue injury and microbiota dysbiosis. Acknowledgements: NIH/NIAAA - R01AA012307, AA029270; VA - IO1BX003014. This is the full abstract presented at the American Physiology Summit 2024 meeting and is only available in HTML format. There are no additional versions or additional content available for this abstract. Physiology was not involved in the peer review process.
Introduction: Alcohol misuse results in hepatitis, pancreatitis, and neurodegenerative disorders. Alcohol consumption alters gut microbiota and increases gut permeability, leading to endotoxemia and multiple organ damage. However, the cellular and molecular mechanisms of alcohol-induced microbiota dysbiosis and barrier dysfunction remain poorly defined. Antimicrobial peptides such as α-defensins, secreted by the Paneth cells, regulate gut microbiota homeostasis. We previously reported that ethanol (EtOH) feeding reduces α-defensin expression in mice. α-Defensin expression is regulated by Wnt signaling and T-cell factor 4 (TCF4). We investigated the role of Paneth cell TCF4 in alcohol-induced microbiota dysbiosis and tissue injury at the gut-liver axis. Materials and methods: TCF4fl/wt (WT) and TCF4fl/wt-Defa6Cre (KD; heterozygous Paneth cell-specific knockout of TCF4) mice were fed a Lieber-DiCarli liquid diet with or without EtOH (0% 2d, 1% 2d, 2% 2d, 4% 1wk, 5% 1wk, & 6% 1wk) (EF). Control groups were pair-fed (PF) isocaloric EtOH-free diet. Intestinal permeability was measured by the vascular-to-luminal flux of FITC-inulin (6 kDa) in vivo, and tight junction (TJ) and adherens junction (AJ) integrity were assessed by confocal microscopy for occludin, ZO-1, E-cadherin, and β-catenin. Paneth cell function and mucosal inflammation were assessed by RT-PCR for defensins and cytokines. Gut microbiota was analyzed by 16S rRNA sequencing of colonic flushing. Plasma lipopolysaccharide (LPS) and cytokines were measured to evaluate endotoxemia and systemic inflammation. Liver damage was assessed by measuring plasma AST, liver triglyceride, and cytokine mRNA. Results and conclusion: EtOH reduced TCF4 expression in the ileum in both WT and KD mice; lowest TCF4 expression was observed in KD-EF mice. Similarly, the expression of DEFA5 and DEFA6 was reduced by EtOH in WT and KD mice, with the lowest expression in KD-EF mice. EtOH-induced mucosal permeability was associated with reduced staining for TJ and AJ proteins, indicating the mucosal barrier dysfunction. EtOH increased intestinal mRNA for IL-1β, IL-6, TNFα, and MCP-1, indicating the mucosal inflammatory response. EtOH-induced gut permeability, TJ/AJ disruption, and mucosal inflammation were significantly higher in KD-EF mice than in WT-EF mice. Shannon index analysis indicated that EtOH reduced α-diversity of microbiota in KD but not in WT mice. Firmicutes: Bacteriodetes ratio and the abundance of Verrucomicrobia were reduced by EtOH in WT but not in KD mice. The abundance of Bacillus was increased by EtOH both in WT and KD mice; however, this effect was more severe in KD mice. EtOH-induced plasma LPS and cytokine elevations were higher in KD mice than in WT mice. Elevation of plasma AST, liver triglyceride, and liver cytokine mRNA indicated EtOH-induced liver damage; the damage was more severe in KD mice. These data indicate that Paneth cell TCF4 downregulation exacerbates alcohol-induced microbiota dysbiosis, gut barrier dysfunction, endotoxemia, systemic inflammation, and liver damage; suggesting that Paneth cell Wnt signal downregulation plays a crucial role in alcohol-associated organ damage. NIH/NIAA - R01AA012307, AA029270; Veterans Administration - IO1BX003014. This is the full abstract presented at the American Physiology Summit 2024 meeting and is only available in HTML format. There are no additional versions or additional content available for this abstract. Physiology was not involved in the peer review process.
Consumption of alcohol has widespread effects on the human body. The organs that are most significantly impacted are the liver and digestive system. When alcohol is consumed, it is absorbed in the intestines and processed by the liver. However, excessive alcohol use may affect gut epithelial integrity, microbiome composition, and lipid metabolism. Despite past studies investigating the effect of ethanol on hepatic lipid metabolism, the focus on colonic lipid metabolism has not been well explored. In this study, we investigated the sex-specific effect of ethanol on the colonic content lipidome in a mouse model using nontargeted liquid chromatography-mass spectrometry. Comprehensive lipidome analysis of colonic flush samples was performed using ethanol-fed (EF) and pair-fed (PF) mice of each sex. Partial least-squares discriminant analysis revealed that ethanol altered colonic lipid composition largely in male mice compared with female mice. A significant increase in free fatty acids, ceramides, and hexosylceramides and decreased phosphatidylglycerols (PG) was observed in the EF group compared to the PF group in male mice. Phosphatidylethanolamine (PE) levels were increased significantly in the EF group of both sexes compared to the PF group. The volcanic plot shows that PG (O-15:1/15:0) and PE (O-18:2/15:0) are common markers that are increased in both sexes of the EF group. In addition, decreased fatty acid esters of hydroxy fatty acids (FAHFA) were observed specifically in the EF group of female mice. Overall, a significant variation in the mice colonic content lipidome between the EF and PF groups was observed. Target pathways, such as sphingolipid metabolism in males, FAHFA in females, and PE metabolism in both sexes, were suggested. This study provides new insight into the sex-dependent lipid change associated with alcohol-induced gut-microbiota dysfunction and its potential health impacts.
Introduction: The mucosal immune system is crucial in regulating gut microbiota composition. Paneth cells, the specialized secretory cells in the small intestine, produce α-defensins that regulate gut microbiota. The Wnt signaling pathway with T-cell factor-4 (TCF4) as the terminal signaling molecule regulates Paneth cell differentiation and function. Wnt signaling plays a role in Paneth cell α-defensin expression. TCF4 binds to the α-defensin promoter and increases the transcriptional activity. In this study, we investigated the role of Paneth cell TCF4 in regulating gut microbiota and the host intestinal gene expression. Materials and methods: We generated the Paneth cell-specific TCF4 knockout mice by crossing Tcf4flox/flox mice with the Defa6Cre mice. Tcf4flox/flox-Defa6Cre (KO) were compared with Tcf4flox/flox and Defa6Cre mice (WT). Colonic flushing from these mice was subjected to metatranscriptomics, metagenomics, and proteomics. Colonic tissue was analyzed for transcriptomics. Plasma lipopolysaccharide (LPS) was measured to evaluate endotoxemia. Intestinal mucosal inflammatory response and Paneth cell function were assessed by RT-PCR for cytokines, defensins, and lysozyme. Bioinformatics was applied to assess the taxonomic diversity and functional activity of the gut microbiome, colonic luminal peptides, and colonic mucosal gene expression. Results: The metatranscriptome profile of colonic contents showed an altered microbial diversity in KO mice compared to WT mice. PCoA analyses indicated that the microbial composition in the three strains was distinctly different from each other. At the phylum level, Proteobacteria and viruses such as Pisuviricota, Cressdnaviricota, and Artiverviricota were higher in KO mice than in WT mice. LEfSe analyses showed that the abundance of numerous bacterial and viral populations, such as Firmicutes, Clostridia, and Geminiviridae, was high in KO mice. Functional profiling further confirmed the alteration of microbial diversity in the KO mice. The increased abundance of bacteria in KO mice was related to human diseases, infectious diseases, and bacterial toxin production. Proteomic analyses indicated that nearly 36% of proteins identified in the KO mice were significantly altered compared to WT mice. The Reactome analyses indicated that the altered proteins in the KO mice were related to the immune system, cell cycle, cell signaling, and protein metabolism. RT-PCR of intestinal tissue showed that the expression of Defa6, lysozyme, and Reg3γ was low in KO mice compared to WT mice. On the other hand, the expression of IL-1β, IL-6, and MCP1 in the intestine was higher in KO mice compared to WT mice. These changes in microbiota and mucosa in the KO mice were associated with increased plasma LPS. Finally, there was a significant sex-dependent differences in the Paneth TCF4 activity on gut microbiota, intestinal gene expression and endotoxemia. Conclusion: This study indicates that the Paneth cell TCF4 is essential in regulating the gut microbial composition and host intestinal gene expression. NIH/NIAID, UO1-AI170019 and U01-AI172991. This is the full abstract presented at the American Physiology Summit 2024 meeting and is only available in HTML format. There are no additional versions or additional content available for this abstract. Physiology was not involved in the peer review process.
Introduction: Endotoxemia plays an essential role in alcohol-associated tissue injury. Two factors contributing to endotoxemia are gut microbiota dysbiosis and epithelial barrier dysfunction. Previous studies indicated that TRPV6 channel-mediated Ca2+ influx plays a crucial role in alcohol-induced epithelial tight junction (TJ) disruption, mucosal barrier dysfunction, and endotoxemia. Trpv6 knockout mice were resistant to alcohol-induced intestinal barrier dysfunction and modulated microbiota dysbiosis, raising the question of how TRPV6 regulates microbiota composition. In this study, we investigated the role of Paneth cell-specific TRPV6 in alcohol-induced microbiota dysbiosis and barrier dysfunction. Methods: Adult Trpv6fl/fl (WT) and Trpv6fl/fl-Defa6Cre (KO; Paneth cell-specific TRPV6 knockout) mice were fed a Lieber-DiCarli liquid diet with EtOH (0% 2d, 1% 2d, 2% 2d, 4% 1wk, 5% 1wk, & 6% 1wk). Control groups were pair-fed an isocaloric EtOH-free diet. Intestinal permeability was measured by vascular-to-luminal flux of FITC-inulin in vivo, and mucosal inflammation was assessed by RT-PCR for cytokines/chemokines. Plasma lipopolysaccharide (LPS) was measured to evaluate endotoxemia. Gut microbiota was analyzed by 16S rRNA sequencing of colonic flushing. Lipidome in colonic flushing was analyzed using nontargeted liquid chromatography-mass spectrometry. Microbiome and lipidome data were processed by bioinformatic analyses. Results and conclusion: Data show that colon length was reduced, and colonic mucosal permeability in vivo was elevated by EtOH in WT mice. The increase in mucosal permeability was associated with increased plasma LPS levels. EtOH feeding elevated the expression of IL-6, IL-1β, and TNFα in the colon. EtOH-induced changes in colon length, mucosal permeability, cytokine expression, and plasma LPS were absent in KO mice. 16S rRNA sequencing data indicated that the microbiota composition in KO mice differed from that of WT mice. The relative abundance of Prevotellaceae, Xanthomonadaceae, and Streptococaceae were higher, and Psuedomonadaceae and Verrucomicrobiaceae abundance were lower in KO mice compared to WT mice. EtOH-induced increase in the abundance of Norcardiaceae and Psuedomonadaceae was low or absent in KO mice. EtOH increased Rhodococcus, Odoribacter, and Pseudomonas abundance at the genus level in WT but not KO mice. On the other hand, Clostridium, Turicibacter, and Helicobacter abundance were increased by EtOH in KO but not WT mice. Lipidomic analysis of colonic flushing showed that phospholipid contents were higher in KO mice than WT mice, irrespective of sex and treatments. A cluster of sphingolipids was dramatically high in KO female mice, which was reduced by EtOH feeding. Short-chain fatty acid esters of hydroxy fatty acids (AAHFA 3:0/24:0;O) were elevated by EtOH in male WT mice but not in female WT and male or female KO mice. In conclusion, these data indicate that Paneth cell-specific deletion of TRPV6 attenuates alcohol-induced changes in gut microbiota, colonic luminal lipids, mucosal barrier function, and endotoxemia in mice. NIH/NIAAA, RO1-AA029270; Veterans Administration IO1-BX003014. This is the full abstract presented at the American Physiology Summit 2024 meeting and is only available in HTML format. There are no additional versions or additional content available for this abstract. Physiology was not involved in the peer review process.
Photonics/light localization techniques are important in understanding the structural changes in biological tissues at the nano- to sub-micron scale. It is now known that structural alteration starts at the nanoscale at the beginning of cancer progression. This study examines the molecular-specific nano-structural alterations of chronic alcoholism and probiotic effects on colon cancer using a mouse model of colon cancer. Confocal microscopy and mesoscopic light-scattering analysis are applied to quantify structural changes in DNA (chromatin), cytoskeleton, and ki-67 protein cells with appropriate staining dyes. We assessed alcohol-treated and azoxymethane (AOM) with dextran sulfate sodium (DSS)-induced colitis models, including ethanol (EtOH) and probiotic (L.Casei) treatments separately and together. The inverse participation ratio (IPR) technique was employed to quantify the degree of light localization to access the molecular-specific spatial structural disorder as a biomarker for cancer progression detection. Significant enhancement of cancer progression was observed in the alcohol-treated group, and probiotics treatment with alcohol showed partial reversal of these changes in colon cancer. The results underscore the potential of the IPR technique in detecting early structural changes in colon cancer, offering insights into the mitigating effects of probiotics on alcohol-induced enhancement of colon cancer.
Introduction:The mechanism underlying radiation-induced gut microbiota dysbiosis is undefined. This study examined the effect of radiation on the intestinal Paneth cell α-defensin expression and its impact on microbiota composition and mucosal tissue injury and evaluated the radio-mitigative effect of human α-defensin 5 (HD5).Methods:Adult mice were subjected to total body irradiation, and Paneth cell α-defensin expression was evaluated by measuring α-defensin mRNA by RT-PCR and α-defensin peptide levels by mass spectrometry. Vascular-to-luminal flux of FITC-inulin was measured to evaluate intestinal mucosal permeability and endotoxemia by measuring plasma lipopolysaccharide. HD5 was administered in a liquid diet 24 hours before or after irradiation. Gut microbiota was analyzed by 16S rRNA sequencing. Intestinal epithelial junctions were analyzed by immunofluorescence confocal microscopy and mucosal inflammatory response by cytokine expression. Systemic inflammation was evaluated by measuring plasma cytokine levels.Results:Ionizing radiation reduced the Paneth cell α-defensin expression and depleted α-defensin peptides in the intestinal lumen. α-Defensin down-regulation was associated with the time-dependent alteration of gut microbiota composition, increased gut permeability, and endotoxemia. Administration of human α-defensin 5 (HD5) in the diet 24 hours before irradiation (prophylactic) significantly blocked radiation-induced gut microbiota dysbiosis, disruption of intestinal epithelial tight junction and adherens junction, mucosal barrier dysfunction, and mucosal inflammatory response. HD5, administered 24 hours after irradiation (treatment), reversed radiation-induced microbiota dysbiosis, tight junction and adherens junction disruption, and barrier dysfunction. Furthermore, HD5 treatment also prevents and reverses radiation-induced endotoxemia and systemic inflammation.Conclusion:These data demonstrate that radiation induces Paneth cell dysfunction in the intestine, and HD5 feeding prevents and mitigates radiation-induced intestinal mucosal injury, endotoxemia, and systemic inflammation.
Inflammation is a vital element of the tumor microenvironment. The interleukin-1 (IL-1) family cytokines are the crucial orchestrators of inflammation and play a key role in tumor initiation, growth, and metastasis of many malignancies. Preclinical and clinical studies findings suggest that the translation potential of IL-1 targeting needs extensive analysis. In this chapter, we describe the pleiotropic role of IL-1 in solid tumors and hematological malignancies, focusing on how IL-1-mediated inflammatory responses and mitogenic signals in the tumor microenvironment promote cancer cell growth and angiogenesis, leading to tumor progression.
Fetal alcohol spectrum disorders (FASDs) are associated with systemic inflammation and neurodevelopmental abnormalities. Several candidate genes were found to be associated with fetal alcohol exposure (FAE)-associated behaviors, but a sex-specific complete transcriptomic analysis was not performed at the adult stage. Recent studies have shown that they are regulated at the developmental stage. However, the sex-specific role of RNA in FAE offspring brain development and function has not been studied yet. Here, we carried out the first systematic RNA profiling by utilizing a high-throughput transcriptomic (RNA-seq) approach in response to FAE in the brain cortex of male and female offspring at adulthood (P60). Our RNA-seq data analysis suggests that the changes in RNA expression in response to FAE are marked sex-specific. We show that the genes Muc3a, Pttg1, Rec8, Clcnka, Capn11, and pnp2 exhibit significantly higher expression in the male offspring than in the female offspring at P60. FAE female mouse brain sequencing data also show an increased expression of Eno1, Tpm3, and Pcdhb2 compared to male offspring. We performed a pathway analysis using a commercial software package (Ingenuity Pathway Analysis). We found that the sex-specific top regulator genes (Rictor, Gaba, Fmri, Mlxipl) are highly associated with eIF2 (translation initiation), synaptogenesis (the formation of synapses between neurons in the nervous system), sirtuin (metabolic regulation), and estrogen receptor (involved in obesity, aging, and cancer) signaling. Taken together, our transcriptomic results demonstrate that FAE differentially alters RNA expression in the adult brain in a sex-specific manner.
EDITORIAL article Front. Med., 28 November 2023Sec. Gastroenterology Volume 10 - 2023 | https://doi.org/10.3389/fmed.2023.1331207
IntroductionChronic stress is co-morbid with alcohol use disorder that feedback on one another, thus impeding recovery from both disorders. Stress and the stress hormone corticosterone aggravate alcohol-induced intestinal permeability and liver damage. However, the mechanisms involved in compounding tissue injury by stress/corticosterone and alcohol are poorly defined. Here we explored the involvement of the TRPV6 channel in stress (or corticosterone) 3and alcohol-induced intestinal epithelial permeability, microbiota dysbiosis, and systemic inflammation. MethodsChronic alcohol feeding was performed on adult wild-type and Trpv6-/- mice with or without corticosterone treatment or chronic restraint stress (CRS). The barrier function was determined by evaluating inulin permeability in vivo and assessing tight junction (TJ) and adherens junction (AJ) integrity by immunofluorescence microscopy. The gut microbiota composition was evaluated by 16S rRNA sequencing and metagenomic analyses. Systemic responses were assessed by evaluating endotoxemia, systemic inflammation, and liver damage. ResultsCorticosterone and CRS disrupted TJ and AJ, increased intestinal mucosal permeability, and caused endotoxemia, systemic inflammation, and liver damage in wild-type but not Trpv6-/- mice. Corticosterone and CRS synergistically potentiated the alcohol-induced breakdown of intestinal epithelial junctions, mucosal barrier impairment, endotoxemia, systemic inflammation, and liver damage in wild-type but not Trpv6-/- mice. TRPV6 deficiency also blocked the effects of CRS and CRS-mediated potentiation of alcohol-induced dysbiosis of gut microbiota. ConclusionsThese findings indicate an essential role of TRPV6 in stress, corticosterone, and alcohol-induced intestinal permeability, microbiota dysbiosis, endotoxemia, systemic inflammation, and liver injury. This study identifies TRPV6 as a potential therapeutic target for developing treatment strategies for stress and alcohol-associated comorbidity.
Intestinal epithelial tight junction disruption is a primary contributing factor in alcohol-associated endotoxemia, systemic inflammation, and multiple organ damage. Ethanol and acetaldehyde disrupt tight junctions by elevating intracellular Ca2+. Here we identify TRPV6, a Ca2+-permeable channel, as responsible for alcohol-induced elevation of intracellular Ca2+, intestinal barrier dysfunction, and systemic inflammation. Ethanol and acetaldehyde elicit TRPV6 ionic currents in Caco-2 cells. Studies in Caco-2 cell monolayers and mouse intestinal organoids show that TRPV6 deficiency or inhibition attenuates ethanol- and acetaldehyde-induced Ca2+ influx, tight junction disruption, and barrier dysfunction. Moreover, Trpv6-/- mice are resistant to alcohol-induced intestinal barrier dysfunction. Photoaffinity labeling of 3-azibutanol identifies a histidine as a potential alcohol-binding site in TRPV6. The substitution of this histidine, and a nearby arginine, reduces ethanol-activated currents. Our findings reveal that TRPV6 is required for alcohol-induced gut barrier dysfunction and inflammation. Molecules that decrease TRPV6 function have the potential to attenuate alcohol-associated tissue injury.
Neuroinflammation is implicated in the pathogenesis of alcohol use disorders. We investigated the role of Gut-Brain interactions in alcohol-induced neuroinflammation by probiotic-mediated manipulation of intestinal dysbiosis in mice. Chronic ethanol feeding induced dysbiosis, as evidenced by an increase in Firmicutes/Bacteroidetes ratio and depletion of Lactobacillus species in the colon. Ethanol increased the levels of IL-1β, IL-6, and TNFα in plasma and the mRNA for IL-1β, IL-6, TNFα, and MCP1 genes in the cerebral cortex and hippocampus. Ethanol feeding increased inulin flux from the circulation into different brain regions, accompanied by the increase in TLR4 mRNA levels in the cerebral cortex and hippocampus. The immunofluorescence confocal microscopy showed that ethanol elevates the expression of microglial activation marker TMEM119 in the cerebral cortex. Feeding L. plantarum suppressed the ethanol-induced dysbiosis to some extent, as evidenced by attenuation of ethanol effects on Firmicutes/Bacteroidetes ratio and abundance of Lactobacillus spp. L. plantarum blocked ethanol-induced elevation of plasma cytokines, inulin permeability to the brain, mRNA for TLR4, IL-1β, IL-6, TNFα, and MCP1 in brain regions, and the expression of TMEM119 in the cerebral cortex. The L. plantarum effect was absent in mice that express a dominant-negative EGFR, suggesting that the EGFR receptor plays an essential role in the protective effect of L. plantarum against ethanol-induced neuroinflammation. L. plantarum, when administered after chronic ethanol-induced injury, rescued the ethanol-induced systemic inflammation and neuroinflammation. This study demonstrates that L. plantarum in the gut prevents and mitigates ethanol-induced neuroinflammation by an EGFR-dependent mechanism.