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Biology subjects

Cartwright, I. M.

Publications and source records attributed to Cartwright, I. M..

4 recordsLinked to original sources

Metabolite mimicry identifies butyrate analogs with select protective functions in the intestinal mucosa

Microbial-derived short-chain fatty acids regulate a variety of pathways in the healthy colonic mucosa. In particular, butyrate serves as the primary energy source for colonocytes and regulates gene transcription by stabilizing the transcription factor hypoxia-inducible-factors (HIF) and functioning as a histone deacetylase (HDAC) inhibitor. A limitation of butyrate as a therapeutic is its rapid metabolism in differentiated colonocytes. Furthermore, intestinal stem cells (ISCs) respond differently to butyrate, preferentially using glucose for energy procurement. To address these limitations, we explored metabolite-mimicry to discover compounds with potent or selective biological responses within the butyrate pathway(s). We discovered an analog, 3-chlorobutyrate (3-Cl BA), that significantly enhances epithelial barrier formation and wound healing in vitro. Mechanistically, we revealed that 3-Cl BA is a potent HDAC inhibitor. Furthermore, unlike butyrate, 3-Cl BA does not stabilize HIF and it is not used as metabolic fuel. In vivo studies in a DSS-colitis model revealed that contrary to butyrate, 3-Cl BA is protective. Studies in stem-like colonoids demonstrated that only butyrate inhibits ISC proliferation and differentiation. Furthermore, it was recently reported that HIF stabilization inhibits ISCs activity. Given the fact that butyrate but not 3-Cl BA stabilizes HIF, we surmised that 3-Cl BA would circumvent these detrimental functional consequences. We demonstrate here that pharmacologic HIF stabilization inhibits colonoid differentiation and that genetic loss of HIF significantly promotes ISC differentiation. This study reveals a promising butyrate analog protective in colitis and demonstrates the advantages of metabolite-mimicry to dissect selective biological functions from major metabolites in the gut. Significance statementButyrate is a well-studied microbial short-chain fatty acid that regulates a number of mucosal pathways and is paramount in maintaining intestinal integrity. In health, it is a major source of energy for colonocytes and regulates gene transcription. The role of butyrate in disease is still controversial and not well understood. When butyrate is not metabolized or well-utilized (e.g. disease), it accumulates in intestinal stem cells leading to reduced cell proliferation and differentiation, thereby hampering intestinal barrier recovery. In this study, we describe a butyrate analog that enhances epithelial barrier formation and wound healing. Furthermore, as opposed to native butyrate, this butyrate analog is protective in a colitis mouse model and does not exhibit detrimental influences on intestinal stem cells. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=140 SRC="FIGDIR/small/697087v1_ufig1.gif" ALT="Figure 1"> View larger version (51K): org.highwire.dtl.DTLVardef@1dd0f0borg.highwire.dtl.DTLVardef@6d27forg.highwire.dtl.DTLVardef@1e5d07corg.highwire.dtl.DTLVardef@dab74f_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOGraphical abstractC_FLOATNO Microbially derived butyrate plays a key role in intestinal homeostasis. It is the primary source of energy for colonocytes, contributing to a metabolic and oxygen gradient as it is metabolized by differentiated cells along the intestinal crypt. Through the regulation of transcription factors such as HIF and the inhibition of HDAC, it regulates barrier formation and wound healing promoting a strong tight junction profile. Furthermore, well oxygenated ISCs at the bottom of the crypt are unaccustomed to the effects of butyrate, including HIF stabilization (left). In disease, loss of intestinal architecture leads to a disrupted metabolic/oxygen gradient where butyrate accumulates in stem cells leading to decreased proliferation, differentiation, and increases in apoptosis. 3-Cl BA selectively acts as an HDACi and does not stabilize HIF, exhibiting no significant detrimental effects on ISCs (right). Created in BioRender. Ornelas, A. (2026) https://BioRender.com/x9cy8mw C_FIG

molecular biology↗

Regulation of Epithelial HIF by Probiotic Escherichia coli

The gastrointestinal tract is home to trillions of microorganisms that interact with their host in profound ways, including regulation of immune, endocrine, and neurological functions. One mechanism by which these microbes interact with their eukaryotic host is through the generation of short-chain fatty acids (SCFAs), which are metabolized by the intestinal epithelium creating a state of "physiologic hypoxia". This hypoxia, in turn, results in stabilization and activation of hypoxia-inducible factor (HIF), a transcription factor family shown to support gut barrier function and homeostasis, in the intestinal epithelium. The association between HIF and intestinal homeostasis has been long understood, as both genetic and pharmacologic potentiation of the HIF signaling pathway has been shown to promote barrier function both in vitro and in vivo. Although it has been previously established that pathogenic bacteria regulate HIF stabilization and activity in the intestinal epithelium independent of SCFA metabolism, it is not clear whether this property extends to noninfectious and/or commensal bacterial species. Here, we demonstrate that nonpathogenic, commensal strains of Escherichia coli stabilize HIF in intestinal epithelial cells in vitro. Further, we show that HIF is transcriptionally active in these cells and drives a "pro-barrier" transcriptional program. This property was found to be dependent on bacterial aerobic respiration, as genetic elimination of E. coli aerobic respiration abolished HIF stabilization and the subsequent transcriptional phenotype. Finally, we observed induction of tissue hypoxia in vivo using antibiotic-treated mice colonized with wild-type, but not respiration-deficient, E. coli. These findings demonstrate a novel ability for probiotic E. coli to regulate intestinal homeostasis through activation of HIF and suggest that this mechanism might be leveraged in as a novel therapeutic to combat intestinal inflammation, such as that observed during inflammatory bowel disease (IBD).

cell biology↗

Epithelial heme oxygenase-1 enhances colonic tumorigenesis by inhibiting ferroptosis

Induction of heme oxygenase-1 (HO-1/Hmox1) is broadly considered cytoprotective, but the role of colonic epithelial HO-1 in colitis-associated tumorigenesis is poorly defined. HO-1 catabolizes heme, releasing ferrous iron, a key driver of oxidative stress and lipid peroxidation. We observed that colonic epithelial HO-1 is induced during colitis and tumorigenesis. We also found that HO-1 is upregulated in ferroptosis-inducing conditions in murine and human colonic epithelial organoids, and correlated with lipid peroxidation and ferroptosis markers in colonic tumors. In colonic epithelial organoids exposed to heme, deletion of Hmox1 amplified a compensatory oxidative stress and detoxification transcriptional program, likely reflecting unresolved oxidative and non-oxidative toxicity from heme. In vivo, epithelial HO-1 deficient mice developed significantly fewer and smaller tumors compared to littermate controls in a colitis-associated tumorigenesis model, despite similar inflammatory injury. Tumors from knockout mice exhibited reduced iron levels, decreased lipid peroxidation, lower oxidative DNA damage, and decreased proliferation. Single-cell RNA sequencing of tumor epithelial cells revealed a shift from a proliferative to a stress-adaptive program with loss of HO-1. These findings identify epithelial HO-1 as a context-dependent regulator of tumorigenesis: protective against acute heme toxicity, but promoting iron-dependent oxidative damage and proliferation in the setting of chronic inflammation.

cancer biology↗

The TNF{blacktriangleup}ARE mouse as a model of intestinal fibrosis

Background & AimsCrohns disease (CD) is a highly morbid chronic inflammatory disease. The majority of CD patients also develop fibrostenosing complications. Despite this, there are no medical therapies for intestinal fibrosis. This is in part due to lack of high-fidelity biomimetic models to enhance understanding and drug development. There is a need to develop in vivo models of inflammatory bowel disease-related intestinal fibrosis. We sought to determine if the TNF{Delta}ARE mouse, a model of ileal inflammation, may also develop intestinal fibrosis. MethodsSeveral clinically relevant outcomes were studied including features of structural fibrosis, histological fibrosis, and gene expression. These include the use of a luminal casting technique we developed, traditional histological outcomes, use of second harmonic imaging, and quantitative PCR. These features were studied in aged TNF{Delta}ARE mice as well as in cohorts of numerous ages. ResultsAt ages of 24+ weeks, TNF{Delta}ARE mice develop structural, histological, and genetic changes of ileal fibrosis. Genetic expression profiles have changes as early as six weeks, followed by histological changes occurring as early as 14-15 weeks, and overt structural fibrosis delayed until after 24 weeks. DiscussionThe TNF{Delta}ARE mouse is a viable and highly tractable model of intestinal fibrosis. This model and the techniques employed can be leveraged for both mechanistic studies and therapeutic development for the treatment of intestinal fibrosis.

cell biology↗