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1.
Cell Host Microbe ; 32(5): 623-624, 2024 May 08.
Article En | MEDLINE | ID: mdl-38723597

Common nutrients in our diet often affect our health through unexpected mechanisms. In a recent issue of Nature, Scott et al. show gut microbes convert dietary tryptophan into metabolites activating intestinal dopamine receptors, which can block attachment of bacterial pathogens to host cells.


Dopamine , Gastrointestinal Microbiome , Gastrointestinal Microbiome/physiology , Dopamine/metabolism , Humans , Receptors, Dopamine/metabolism , Animals , Tryptophan/metabolism , Gastrointestinal Tract/microbiology , Gastrointestinal Tract/metabolism , Bacteria/metabolism , Host-Pathogen Interactions , Bacterial Adhesion
2.
Food Res Int ; 186: 114317, 2024 Jun.
Article En | MEDLINE | ID: mdl-38729709

Lipids play a pivotal role in the nutrition of preterm infants, acting as a primary energy source. Due to their underdeveloped gastrointestinal systems, lipid malabsorption is common, leading to insufficient energy intake and slowed growth. Therefore, it is critical to explore the reasons behind the low lipid absorption rate in formulas for preterm infants. This study utilized a simulated in intro gastrointestinal digestion model to assess the differences in lipid digestion between preterm human milk and various infant formulas. Results showed that the fatty acid release rates for formulas IF3, IF5, and IF7 were 58.90 %, 56.58 %, and 66.71 %, respectively, lower than human milk's 72.31 %. The primary free fatty acids (FFA) and 2-monoacylglycerol (2-MAG) released during digestion were C14:0, C16:0, C18:0, C18:1n-9, and C18:2n-6, in both human milk and formulas. Notably, the higher release of C16:0 in formulas may disrupt fatty acid balance, impacting lipid absorption. Further investigations are necessary to elucidate lipid absorption differences, which will inform the optimization of lipid content in preterm infant formulas.


Digestion , Infant Formula , Infant, Premature , Milk, Human , Milk, Human/chemistry , Milk, Human/metabolism , Humans , Infant Formula/chemistry , Infant, Newborn , Fatty Acids/analysis , Fatty Acids/metabolism , Lipids/analysis , Fatty Acids, Nonesterified/analysis , Fatty Acids, Nonesterified/metabolism , Lipid Metabolism , Gastrointestinal Tract/metabolism , Models, Biological , Monoglycerides/metabolism , Monoglycerides/analysis , Dietary Fats/metabolism , Dietary Fats/analysis
3.
Gut Microbes ; 16(1): 2350785, 2024.
Article En | MEDLINE | ID: mdl-38725230

Interactions between diet and gastrointestinal microbiota influence health status and outcomes. Evaluating these relationships requires accurate quantification of dietary variables relevant to microbial metabolism, however current dietary assessment methods focus on dietary components relevant to human digestion only. The aim of this study was to synthesize research on foods and nutrients that influence human gut microbiota and thereby identify knowledge gaps to inform dietary assessment advancements toward better understanding of diet-microbiota interactions. Thirty-eight systematic reviews and 106 primary studies reported on human diet-microbiota associations. Dietary factors altering colonic microbiota included dietary patterns, macronutrients, micronutrients, bioactive compounds, and food additives. Reported diet-microbiota associations were dominated by routinely analyzed nutrients, which are absorbed from the small intestine but analyzed for correlation to stool microbiota. Dietary derived microbiota-relevant nutrients are more challenging to quantify and underrepresented in included studies. This evidence synthesis highlights advancements needed, including opportunities for expansion of food composition databases to include microbiota-relevant data, particularly for human intervention studies. These advances in dietary assessment methodology will facilitate translation of microbiota-specific nutrition therapy to practice.


Diet , Gastrointestinal Microbiome , Humans , Gastrointestinal Tract/microbiology , Gastrointestinal Tract/metabolism , Nutrients/metabolism
4.
Food Res Int ; 187: 114413, 2024 Jul.
Article En | MEDLINE | ID: mdl-38763665

In this study, the highly loaded myofibrillar protein (MP)-luteolin (Lut) complexes were noncovalently constructed by using green high-pressure homogenization technology (HPH) and high-pressure micro-fluidization technology (HPM), aiming to optimize the encapsulation efficiency of flavonoids in the protein-based vehicle without relying on the organic solvent (i.e. DMSO, ethanol, etc.). The loading efficiency of Lut into MPs could reach 100 % with a concentration of 120 µmol/g protein by using HPH (103 MPa, 2 passes) without ethanol adoption. The in vitro gastrointestinal digestion behavior and antioxidant activity of the complexes were then compared with those of ethanol-assisted groups. During gastrointestinal digestion, the MP digestibility of complexes, reaching more than 70.56 % after thermal treatment, was higher than that of sole protein. The release profile of Lut encapsulated in ethanol-containing and ethanol-free samples both well fitted with the Hixson-Crowell release kinetic model (R2 = 0.92 and 0.94, respectively), and the total phenol content decreased by ≥ 40.02 % and ≥ 62.62 %, respectively. The in vitro antioxidant activity (DPPH, ABTS, and Fe2+) of the digestive products was significantly improved by 23.89 %, 159.69 %, 351.12 % (ethanol groups) and 13.43 %, 125.48 %, 213.95 % (non-ethanol groups). The 3 mg/mL freeze-dried digesta significantly alleviated lipid accumulation and oxidative stress in HepG2 cells. The triglycerides and malondialdehyde contents decreased by at least 57.62 % and 67.74 % after digesta treatment. This study provides an easily approached and environment-friendly strategy to construct a highly loaded protein-flavonoid conjugate, which showed great potential in the formulation of healthier meat products.


Antioxidants , Biological Availability , Digestion , Humans , Antioxidants/chemistry , Myofibrils/chemistry , Myofibrils/metabolism , Flavonoids/chemistry , Flavonoids/pharmacokinetics , Gastrointestinal Tract/metabolism , Animals
5.
Food Res Int ; 187: 114426, 2024 Jul.
Article En | MEDLINE | ID: mdl-38763676

Germination is a process that enhances the content of health-promoting secondary metabolites. However, the bioaccessibility of these compounds depends on their stability and solubility throughout the gastrointestinal tract. The study aimed to explore how germination time influences the content and bioaccessibility of γ-aminobutyric acid and polyphenols and antioxidant capacity of lupin (Lupinus angustifolius L.) sprouts during simulated gastrointestinal digestion. Gamma-aminobutyric acid showed a decrease following gastrointestinal digestion (GID) whereas phenolic acids and flavonoids exhibited bioaccessibilities of up to 82.56 and 114.20%, respectively. Although the digestion process affected the profile of phenolic acids and flavonoids, certain isoflavonoids identified in 7-day sprouts (G7) showed resistance to GID. Germination not only favored antioxidant activity but also resulted in germinated samples exhibiting greater antioxidant properties than ungerminated counter parts after GID. Intestinal digests from G7 did not show cytotoxicity in RAW 264.7 macrophages, and notably, they showed an outstanding ability to inhibit the production of reactive oxygen species. This suggests potential benefit in mitigating oxidative stress. These findings contribute to understand the dynamic interplay between bioprocessing and digestion in modulating the bioaccessibility of bioactive compounds in lupin, thereby impacting health.


Antioxidants , Biological Availability , Digestion , Germination , Lupinus , Lupinus/metabolism , Lupinus/chemistry , Antioxidants/metabolism , Germination/drug effects , Mice , RAW 264.7 Cells , Animals , Polyphenols/metabolism , Flavonoids/analysis , Flavonoids/metabolism , gamma-Aminobutyric Acid/metabolism , Reactive Oxygen Species/metabolism , Hydroxybenzoates/metabolism , Hydroxybenzoates/analysis , Gastrointestinal Tract/metabolism
6.
Gut Microbes ; 16(1): 2347728, 2024.
Article En | MEDLINE | ID: mdl-38706226

Indole in the gut is formed from dietary tryptophan by a bacterial tryptophan-indole lyase. Indole not only triggers biofilm formation and antibiotic resistance in gut microbes but also contributes to the progression of kidney dysfunction after absorption by the intestine and sulfation in the liver. As tryptophan is an essential amino acid for humans, these events seem inevitable. Despite this, we show in a proof-of-concept study that exogenous indole can be converted to an immunomodulatory tryptophan metabolite, indole-3-lactic acid (ILA), by a previously unknown microbial metabolic pathway that involves tryptophan synthase ß subunit and aromatic lactate dehydrogenase. Selected bifidobacterial strains converted exogenous indole to ILA via tryptophan (Trp), which was demonstrated by incubating the bacterial cells in the presence of (2-13C)-labeled indole and l-serine. Disruption of the responsible genes variedly affected the efficiency of indole bioconversion to Trp and ILA, depending on the strains. Database searches against 11,943 bacterial genomes representing 960 human-associated species revealed that the co-occurrence of tryptophan synthase ß subunit and aromatic lactate dehydrogenase is a specific feature of human gut-associated Bifidobacterium species, thus unveiling a new facet of bifidobacteria as probiotics. Indole, which has been assumed to be an end-product of tryptophan metabolism, may thus act as a precursor for the synthesis of a host-interacting metabolite with possible beneficial activities in the complex gut microbial ecosystem.


Bifidobacterium , Gastrointestinal Microbiome , Indoles , Tryptophan , Tryptophan/metabolism , Humans , Indoles/metabolism , Bifidobacterium/metabolism , Bifidobacterium/genetics , Tryptophan Synthase/metabolism , Tryptophan Synthase/genetics , Gastrointestinal Tract/microbiology , Gastrointestinal Tract/metabolism
7.
Gut Microbes ; 16(1): 2351520, 2024.
Article En | MEDLINE | ID: mdl-38717832

Links between the gut microbiota and human health have been supported throughout numerous studies, such as the development of neurological disease disorders. This link is referred to as the "microbiota-gut-brain axis" and is the focus of an emerging field of research. Microbial-derived metabolites and gut and neuro-immunological metabolites regulate this axis in health and many diseases. Indeed, assessing these signals, whether induced by microbial metabolites or neuro-immune mediators, could significantly increase our knowledge of the microbiota-gut-brain axis. However, this will require the development of appropriate techniques and potential models. Methods for studying the induced signals originating from the microbiota remain crucial in this field. This review discusses the methods and techniques available for studies of microbiota-gut-brain interactions. We highlight several much-debated elements of these methodologies, including the widely used in vivo and in vitro models, their implications, and perspectives in the field based on a systematic review of PubMed. Applications of various animal models (zebrafish, mouse, canine, rat, rabbit) to microbiota-gut-brain axis research with practical examples of in vitro methods and innovative approaches to studying gut-brain communications are highlighted. In particular, we extensively discuss the potential of "organ-on-a-chip" devices and their applications in this field. Overall, this review sheds light on the most widely used models and methods, guiding researchers in the rational choice of strategies for studies of microbiota-gut-brain interactions.


Brain-Gut Axis , Gastrointestinal Microbiome , Host Microbial Interactions , Animals , Gastrointestinal Microbiome/physiology , Brain-Gut Axis/physiology , Humans , Brain/microbiology , Brain/metabolism , Brain/physiology , Gastrointestinal Tract/microbiology , Gastrointestinal Tract/metabolism , Models, Animal , Mice
8.
Gut Microbes ; 16(1): 2356284, 2024.
Article En | MEDLINE | ID: mdl-38769683

Inflammatory bowel disease (IBD) is a chronic and recurrent condition affecting the gastrointestinal tract. Disturbed gut microbiota and abnormal bile acid (BA) metabolism are notable in IBD, suggesting a bidirectional relationship. Specifically, the diversity of the gut microbiota influences BA composition, whereas altered BA profiles can disrupt the microbiota. IBD patients often exhibit increased primary bile acid and reduced secondary bile acid concentrations due to a diminished bacteria population essential for BA metabolism. This imbalance activates BA receptors, undermining intestinal integrity and immune function. Consequently, targeting the microbiota-BA axis may rectify these disturbances, offering symptomatic relief in IBD. Here, the interplay between gut microbiota and bile acids (BAs) is reviewed, with a particular focus on the role of gut microbiota in mediating bile acid biotransformation, and contributions of the gut microbiota-BA axis to IBD pathology to unveil potential novel therapeutic avenues for IBD.


Bacteria , Bile Acids and Salts , Gastrointestinal Microbiome , Inflammatory Bowel Diseases , Inflammatory Bowel Diseases/microbiology , Inflammatory Bowel Diseases/drug therapy , Inflammatory Bowel Diseases/metabolism , Humans , Bile Acids and Salts/metabolism , Animals , Bacteria/metabolism , Bacteria/classification , Bacteria/genetics , Dysbiosis/microbiology , Gastrointestinal Tract/microbiology , Gastrointestinal Tract/metabolism
9.
Methods Cell Biol ; 186: 25-49, 2024.
Article En | MEDLINE | ID: mdl-38705603

One of the earliest applications of flow cytometry was the measurement of DNA content in cells. This method is based on the ability to stain DNA in a stoichiometric manner (i.e., the amount of stain is directly proportional to the amount of DNA within the cell). For more than 40years, a number of studies have consistently demonstrated the utility of DNA flow cytometry as a potential diagnostic and/or prognostic tool in patients with most epithelial tumors, including pre-invasive lesions (such as dysplasia) in the gastrointestinal tract. However, its availability as a clinical test has been limited to few medical centers due to the requirement for fresh tissue in earlier studies and perceived technical demands. However, more recent studies have successfully utilized formalin-fixed paraffin-embedded (FFPE) tissue to generate high-quality DNA content histograms, demonstrating the feasibility of this methodology. This review summarizes step-by-step methods on how to perform DNA flow cytometry using FFPE tissue and analyze DNA content histograms based on the published consensus guidelines in order to assist in the diagnosis and/or risk stratification of many different epithelial tumors, with particular emphasis on dysplasia associated with Barrett's esophagus and inflammatory bowel disease.


Flow Cytometry , Gastrointestinal Neoplasms , Genomic Instability , Humans , Flow Cytometry/methods , Gastrointestinal Neoplasms/genetics , Gastrointestinal Neoplasms/diagnosis , Gastrointestinal Neoplasms/pathology , Genomic Instability/genetics , Precancerous Conditions/genetics , Precancerous Conditions/diagnosis , Precancerous Conditions/pathology , Tissue Fixation/methods , Paraffin Embedding/methods , DNA/genetics , DNA/analysis , Gastrointestinal Tract/pathology , Gastrointestinal Tract/metabolism , Barrett Esophagus/genetics , Barrett Esophagus/pathology , Barrett Esophagus/diagnosis
10.
PLoS Pathog ; 20(5): e1012189, 2024 May.
Article En | MEDLINE | ID: mdl-38713723

Successful microbial colonization of the gastrointestinal (GI) tract hinges on an organism's ability to overcome the intense competition for nutrients in the gut between the host and the resident gut microbiome. Enteric pathogens can exploit ethanolamine (EA) in the gut to bypass nutrient competition. However, Klebsiella pneumoniae (K. pneumoniae) is an asymptomatic gut colonizer and, unlike well-studied enteric pathogens, harbors two genetically distinct ethanolamine utilization (eut) loci. Our investigation uncovered unique roles for each eut locus depending on EA utilization as a carbon or nitrogen source. Murine gut colonization studies demonstrated the necessity of both eut loci in the presence of intact gut microbiota for robust GI colonization by K. pneumoniae. Additionally, while some Escherichia coli gut isolates could metabolize EA, other commensals were incapable, suggesting that EA metabolism likely provides K. pneumoniae a selective advantage in gut colonization. Molecular and bioinformatic analyses unveiled the conservation of two eut loci among K. pneumoniae and a subset of the related taxa in the K. pneumoniae species complex, with the NtrC-RpoN regulatory cascade playing a pivotal role in regulation. These findings identify EA metabolism as a critical driver of K. pneumoniae niche establishment in the gut and propose microbial metabolism as a potential therapeutic avenue to combat K. pneumoniae infections.


Ethanolamine , Gastrointestinal Microbiome , Klebsiella Infections , Klebsiella pneumoniae , Klebsiella pneumoniae/metabolism , Klebsiella pneumoniae/genetics , Mice , Animals , Ethanolamine/metabolism , Gastrointestinal Microbiome/physiology , Klebsiella Infections/microbiology , Klebsiella Infections/metabolism , Gastrointestinal Tract/microbiology , Gastrointestinal Tract/metabolism , Mice, Inbred C57BL , Female
11.
J Med Microbiol ; 73(4)2024 Apr.
Article En | MEDLINE | ID: mdl-38629677

With the development of social economy, the incidence of gout is increasing, which is closely related to people's increasingly rich diet. Eating a diet high in purine, fat, sugar and low-fibre for a long time further aggravates gout by affecting uric acid metabolism. The renal metabolism mechanism of uric acid has been thoroughly studied. To find a new treatment method for gout, increasing studies have recently been conducted on the mechanism of intestinal excretion, metabolism and absorption of uric acid. The most important research is the relationship between intestinal microbiota and the risk of gout. Gut microbiota represent bacteria that reside in a host's gastrointestinal tract. The composition of the gut microbiota is associated with protection against pathogen colonization and disease occurrence. This review focuses on how gut microbiota affects gout through uric acid and discusses the types of bacteria that may be involved in the occurrence and progression of gout. We also describe potential therapy for gout by restoring gut microbiota homeostasis and reducing uric acid levels. We hold the perspective that changing intestinal microbiota may become a vital method for effectively preventing or treating gout.


Gastrointestinal Microbiome , Gout , Humans , Uric Acid/metabolism , Gout/metabolism , Gastrointestinal Tract/metabolism , Bacteria/metabolism
12.
J Hazard Mater ; 470: 134269, 2024 May 15.
Article En | MEDLINE | ID: mdl-38613952

Mercury (Hg) is one of the most widespread pollutants that pose serious threats to public health and the environment. People are inevitably exposed to Hg via different routes, such as respiration, dermal contact, drinking or diet. Hg poisoning could cause gingivitis, inflammation, vomiting and diarrhea, respiratory distress or even death. Especially during the developmental stage, there is considerable harm to the brain development of young children, causing serious symptoms such as intellectual disability and motor impairments, and delayed neural development. Therefore, it's of great significance to develop a specific, quick, practical and labor-saving assay for monitoring Hg2+. Herein, a mitochondria-targeted dual (excitation 700 nm and emission 728 nm) near-infrared (NIR) fluorescent probe JZ-1 was synthesized to detect Hg2+, which is a turn-on fluorescent probe designed based on the rhodamine fluorophore thiolactone, with advantages of swift response, great selectivity, and robust anti-interference capability. Cell fluorescence imaging results showed that JZ-1 could selectively target mitochondria in HeLa cells and monitor exogenous Hg2+. More importantly, JZ-1 has been successfully used to monitor gastrointestinal damage of acute mercury poisoning in a drug-induced mouse model, which provided a great method for sensing Hg species in living subjects, as well as for prenatal diagnosis.


Fluorescent Dyes , Mercury Poisoning , Mercury , Mitochondria , Fluorescent Dyes/chemistry , Mitochondria/drug effects , Humans , Animals , HeLa Cells , Mercury Poisoning/diagnostic imaging , Mercury/toxicity , Optical Imaging , Mice , Gastrointestinal Tract/drug effects , Gastrointestinal Tract/diagnostic imaging , Gastrointestinal Tract/metabolism , Female , Gastrointestinal Diseases/diagnostic imaging , Gastrointestinal Diseases/chemically induced , Rhodamines/chemistry , Rhodamines/toxicity
13.
Article En | MEDLINE | ID: mdl-38657943

In mammals, physiological processes related to lipid metabolism, such as chylomicron synthesis or fatty acid oxidation (FAO), modulate eating, highlighting the importance of energostatic mechanisms in feeding control. This study, using rainbow trout (Oncorhynchus mykiss) as model, aimed to characterize the role of FAO and chylomicron formation as peripheral lipid sensors potentially able to modulate feeding in fish. Fish fed with either a normal- (24%) or high- (32%) fat diet were intraperitoneally injected with water alone or containing etomoxir (inhibitor of FAO rate-limiting enzyme carnitine palmitoyl-transferase 1). First, feed intake levels were recorded. We observed an etomoxir-derived decrease in feeding at short times, but a significant increase at 48 h after treatment in fish fed normal-fat diet. Then, we evaluated putative etomoxir effects on the mRNA abundance of genes related to lipid metabolism, chylomicron synthesis and appetite-regulating peptides. Etomoxir treatment upregulated mRNA levels of genes related to chylomicron assembly in proximal intestine, while opposite effects occurred in distal intestine, indicating a clear regionalization in response. Etomoxir also modulated gastrointestinal hormone mRNAs in proximal intestine, upregulating ghrl in fish fed normal-fat diet and pyy and gcg in fish fed high-fat diet. These results provide evidence for an energostatic control of feeding related to FAO and chylomicron formation at the peripheral level in fish.


Chylomicrons , Dietary Fats , Fatty Acids , Lipid Metabolism , Oncorhynchus mykiss , Oxidation-Reduction , Animals , Oncorhynchus mykiss/metabolism , Fatty Acids/metabolism , Chylomicrons/metabolism , Dietary Fats/metabolism , Dietary Fats/pharmacology , Gastrointestinal Tract/metabolism , Epoxy Compounds/metabolism , Epoxy Compounds/pharmacology , Carnitine O-Palmitoyltransferase/metabolism , Carnitine O-Palmitoyltransferase/genetics
14.
Food Chem Toxicol ; 188: 114683, 2024 Jun.
Article En | MEDLINE | ID: mdl-38670304

Malondialdehyde (MDA), which is composed when n-6 and n-3 PUFAs are peroxidized, has been utilized as an indicator of lipid peroxidation and has been considered neurotoxic, cytotoxic, and mutagenic. This study aimed to determine the bioaccessibility level of MDA in diet bars sold as healthy snacks in the market using in vitro gastrointestinal digestive model. In our study, 28 different diet bar samples were bought from markets in Istanbul. MDA contents of the products were determined by the HPLC-FLD method. The investigation showed that diet bars had an average MDA concentration of 116.25 µg/100 g before digestion, while the average MDA concentration was 90.50 µg/100 g after in vitro digestion. In line with these data, the average MDA bioaccessibility of 28 diet bar samples was calculated as 77.3%. For this reason, more studies are needed to understand the relationship between both the MDA content and the reaction and nutritional components.


Digestion , Malondialdehyde , Malondialdehyde/metabolism , Humans , Gastrointestinal Tract/metabolism , Models, Biological , Biological Availability , Lipid Peroxidation , Diet , Snacks
15.
Nat Commun ; 15(1): 3018, 2024 Apr 08.
Article En | MEDLINE | ID: mdl-38589357

Ionizing radiation induces cell death in the gastrointestinal (GI) epithelium by activating p53. However, p53 also prevents animal lethality caused by radiation-induced acute GI syndrome. Through single-cell RNA-sequencing of the irradiated mouse small intestine, we find that p53 target genes are specifically enriched in regenerating epithelial cells that undergo fetal-like reversion, including revival stem cells (revSCs) that promote animal survival after severe damage of the GI tract. Accordingly, in mice with p53 deleted specifically in the GI epithelium, ionizing radiation fails to induce fetal-like revSCs. Using intestinal organoids, we show that transient p53 expression is required for the induction of revival stem cells and is controlled by an Mdm2-mediated negative feedback loop. Together, our findings reveal that p53 suppresses severe radiation-induced GI injury by promoting fetal-like reprogramming of irradiated intestinal epithelial cells.


Radiation Injuries , Tumor Suppressor Protein p53 , Mice , Animals , Tumor Suppressor Protein p53/genetics , Tumor Suppressor Protein p53/metabolism , Intestines , Gastrointestinal Tract/metabolism , Radiation Injuries/genetics , Radiation Injuries/metabolism , Stem Cells/metabolism , Apoptosis/genetics
16.
Food Funct ; 15(8): 3959-3979, 2024 Apr 22.
Article En | MEDLINE | ID: mdl-38568171

The majority of known peptides with high bioactivity (BAPs) such as antihypertensive, antidiabetic, antioxidant, hypocholesterolemic, anti-inflammatory and antimicrobial actions, are short-chain sequences of less than ten amino acids. These short-chain BAPs of varying natural and synthetic origin must be bioaccessible to be capable of being adsorbed systemically upon oral administration to show their full range of bioactivity. However, in general, in vitro and in vivo studies have shown that gastrointestinal digestion reduces BAPs bioactivity unless they are protected from degradation by encapsulation. This review gives a critical analysis of short-chain BAP encapsulation and performance with regard to the oral delivery route. In particular, it focuses on short-chain BAPs with antihypertensive and antidiabetic activity and encapsulation methods via nanoparticles and microparticles. Also addressed are the different wall materials used to form these particles and their associated payloads and release kinetics, along with the current challenges and a perspective of the future applications of these systems.


Gastrointestinal Tract , Peptides , Humans , Peptides/chemistry , Peptides/administration & dosage , Gastrointestinal Tract/metabolism , Animals , Drug Delivery Systems/methods , Nanoparticles/chemistry , Administration, Oral , Drug Compounding , Digestion , Hypoglycemic Agents/administration & dosage , Hypoglycemic Agents/chemistry
17.
Int J Biol Macromol ; 267(Pt 2): 131434, 2024 May.
Article En | MEDLINE | ID: mdl-38614182

The gastrointestinal (GI) tract's mucus layer serves as a critical barrier and a mediator in drug nanoparticle delivery. The mucus layer's diverse molecular structures and spatial complexity complicates the mechanistic study of the diffusion dynamics of particulate materials. In response, we developed a bi-component coarse-grained mucus model, specifically tailored for the colorectal cancer environment, that contained the two most abundant glycoproteins in GI mucus: Muc2 and Muc5AC. This model demonstrated the effects of molecular composition and concentration on mucus pore size, a key determinant in the permeability of nanoparticles. Using this computational model, we investigated the diffusion rate of polyethylene glycol (PEG) coated nanoparticles, a widely used muco-penetrating nanoparticle. We validated our model with experimentally characterized mucus pore sizes and the diffusional coefficients of PEG-coated nanoparticles in the mucus collected from cultured human colorectal goblet cells. Machine learning fingerprints were then employed to provide a mechanistic understanding of nanoparticle diffusional behavior. We found that larger nanoparticles tended to be trapped in mucus over longer durations but exhibited more ballistic diffusion over shorter time spans. Through these discoveries, our model provides a promising platform to study pharmacokinetics in the GI mucus layer.


Mucus , Nanoparticles , Polyethylene Glycols , Humans , Nanoparticles/chemistry , Diffusion , Polyethylene Glycols/chemistry , Mucus/metabolism , Mucus/chemistry , Mucin-2/metabolism , Mucin-2/chemistry , Mucin 5AC/metabolism , Mucin 5AC/chemistry , Intestinal Mucosa/metabolism , Gastrointestinal Tract/metabolism , Goblet Cells/metabolism , Models, Biological
18.
Immunity ; 57(5): 1019-1036.e9, 2024 May 14.
Article En | MEDLINE | ID: mdl-38677292

Group 3 innate lymphoid cells (ILC3) are the major subset of gut-resident ILC with essential roles in infections and tissue repair, but how they adapt to the gut environment to maintain tissue residency is unclear. We report that Tox2 is critical for gut ILC3 maintenance and function. Gut ILC3 highly expressed Tox2, and depletion of Tox2 markedly decreased ILC3 in gut but not at central sites, resulting in defective control of Citrobacter rodentium infection. Single-cell transcriptional profiling revealed decreased expression of Hexokinase-2 in Tox2-deficient gut ILC3. Consistent with the requirement for hexokinases in glycolysis, Tox2-/- ILC3 displayed decreased ability to utilize glycolysis for protein translation. Ectopic expression of Hexokinase-2 rescued Tox2-/- gut ILC3 defects. Hypoxia and interleukin (IL)-17A each induced Tox2 expression in ILC3, suggesting a mechanism by which ILC3 adjusts to fluctuating environments by programming glycolytic metabolism. Our results reveal the requirement for Tox2 to support the metabolic adaptation of ILC3 within the gastrointestinal tract.


Citrobacter rodentium , Enterobacteriaceae Infections , Glycolysis , Immunity, Innate , Lymphocytes , Mice, Knockout , Animals , Mice , Citrobacter rodentium/immunology , Enterobacteriaceae Infections/immunology , Lymphocytes/immunology , Lymphocytes/metabolism , Mice, Inbred C57BL , Trans-Activators/metabolism , Trans-Activators/genetics , Hexokinase/metabolism , Hexokinase/genetics , Gastrointestinal Tract/immunology , Gastrointestinal Tract/metabolism , Interleukin-17/metabolism , Adaptation, Physiological/immunology
19.
Cell ; 187(8): 2010-2028.e30, 2024 Apr 11.
Article En | MEDLINE | ID: mdl-38569542

Gut inflammation involves contributions from immune and non-immune cells, whose interactions are shaped by the spatial organization of the healthy gut and its remodeling during inflammation. The crosstalk between fibroblasts and immune cells is an important axis in this process, but our understanding has been challenged by incomplete cell-type definition and biogeography. To address this challenge, we used multiplexed error-robust fluorescence in situ hybridization (MERFISH) to profile the expression of 940 genes in 1.35 million cells imaged across the onset and recovery from a mouse colitis model. We identified diverse cell populations, charted their spatial organization, and revealed their polarization or recruitment in inflammation. We found a staged progression of inflammation-associated tissue neighborhoods defined, in part, by multiple inflammation-associated fibroblasts, with unique expression profiles, spatial localization, cell-cell interactions, and healthy fibroblast origins. Similar signatures in ulcerative colitis suggest conserved human processes. Broadly, we provide a framework for understanding inflammation-induced remodeling in the gut and other tissues.


Colitis, Ulcerative , Colitis , Animals , Humans , Mice , Colitis/metabolism , Colitis/pathology , Colitis, Ulcerative/metabolism , Colitis, Ulcerative/pathology , Fibroblasts/metabolism , Fibroblasts/pathology , In Situ Hybridization, Fluorescence/methods , Inflammation/metabolism , Inflammation/pathology , Cell Communication , Gastrointestinal Tract/metabolism , Gastrointestinal Tract/pathology
20.
J Nutr Sci Vitaminol (Tokyo) ; 70(2): 158-163, 2024.
Article En | MEDLINE | ID: mdl-38684386

The Ussing chamber is a tool for analyzing drug absorption. We investigated whether the Ussing chamber can be used to analyze the process from digestion to absorption of protein in the gastrointestinal tract. Mixtures containing infant formula, whole cow's milk, processed soy milk, enteral nutrition, or human breast milk, were placed in the apical membrane side equipped with Caco-2 cells. After the addition of first pepsin then pancreatin, samples from the apical and basal membranes were collected. Infant formula showed the highest digestibility and absorption rate. This may be attributed to the presence of whey protein, which is rapidly digested and absorbed. The digestion and absorption of human breast milk showed different results in each donor, suggesting that digestion and absorption may vary among individuals. We concluded that the Ussing chamber can continuously analyze the process from digestion to absorption of proteins in the gastrointestinal tract.


Digestion , Gastrointestinal Tract , Infant Formula , Intestinal Absorption , Milk Proteins , Milk, Human , Milk , Whey Proteins , Digestion/physiology , Humans , Caco-2 Cells , Gastrointestinal Tract/metabolism , Milk, Human/chemistry , Milk, Human/metabolism , Infant Formula/chemistry , Animals , Milk Proteins/metabolism , Milk/chemistry , Dietary Proteins/metabolism , Dietary Proteins/pharmacokinetics , Enteral Nutrition/methods , Soy Milk/chemistry , Infant , Pepsin A/metabolism
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