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	<title>indole metabolites &#8211; Science</title>
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	<title>indole metabolites &#8211; Science</title>
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		<title>Gut Bacteria&#8217;s Tryptophan Byproducts May Repair the Intestine in IBD</title>
		<link>https://scienmag.com/gut-bacterias-tryptophan-byproducts-may-repair-the-intestine-in-ibd/</link>
		
		<dc:creator><![CDATA[Morgan Morrow]]></dc:creator>
		<pubDate>Sat, 12 Sep 2026 16:48:51 +0000</pubDate>
				<category><![CDATA[Biology]]></category>
		<category><![CDATA[aryl hydrocarbon receptor]]></category>
		<category><![CDATA[aryl hydrocarbon receptor (AhR) activation]]></category>
		<category><![CDATA[bacterial role in Crohn's disease and ulcerative colitis]]></category>
		<category><![CDATA[dysbiosis]]></category>
		<category><![CDATA[endogenous ligands for AhR in gut health]]></category>
		<category><![CDATA[epithelial barrier]]></category>
		<category><![CDATA[gut bacteria and epithelial barrier integrity]]></category>
		<category><![CDATA[Gut microbiome]]></category>
		<category><![CDATA[Gut microbiome tryptophan metabolites]]></category>
		<category><![CDATA[gut microbiota and barrier function restoration]]></category>
		<category><![CDATA[indole metabolites]]></category>
		<category><![CDATA[inflammatory bowel disease]]></category>
		<category><![CDATA[interleukin-22]]></category>
		<category><![CDATA[intestinal barrier repair in inflammatory bowel disease]]></category>
		<category><![CDATA[microbial influence on immune regulation]]></category>
		<category><![CDATA[microbial products and intestinal homeostasis]]></category>
		<category><![CDATA[microbial regulation of gut inflammation]]></category>
		<category><![CDATA[microbiome]]></category>
		<category><![CDATA[microbiome-derived signaling molecules]]></category>
		<category><![CDATA[microbiome-targeted therapy]]></category>
		<category><![CDATA[postbiotics]]></category>
		<category><![CDATA[tight junctions]]></category>
		<category><![CDATA[tryptophan metabolism]]></category>
		<category><![CDATA[tryptophan metabolism in IBD]]></category>
		<guid isPermaLink="false">https://scienmag.com/?p=196579</guid>

					<description><![CDATA[A new review details how gut bacteria convert dietary tryptophan into aryl hydrocarbon receptor ligands that restore intestinal barrier integrity in inflammatory bowel disease, while warning that inflammation itself disrupts this protective axis.]]></description>
										<content:encoded><![CDATA[<p>Inflammatory bowel disease, which includes Crohn&#8217;s disease and ulcerative colitis, affects millions of people worldwide and is defined in large part by a broken intestinal barrier. When the single layer of epithelial cells lining the gut loses its tight junction architecture and its protective mucus coating, bacterial antigens and microbial products slip into the underlying tissue, igniting chronic inflammation that in turn damages the barrier further. A comprehensive review published in MicrobiologyOpen argues that this self-perpetuating cycle may be interrupted by an unexpected group of players: bacteria living in the gut that convert dietary tryptophan into signaling molecules capable of restoring the very barrier that inflammation destroys.</p>
<p>The review, authored by Mohammad Ali Mahdiabadi, Asma Moghaddam, and Nafiseh Erfanian, synthesizes evidence that microbiome-derived tryptophan metabolites act as endogenous ligands for the aryl hydrocarbon receptor, or AhR, a transcription factor long studied as a sensor of environmental toxins but now recognized as a central regulator of intestinal homeostasis. In its resting state, AhR sits in the cytoplasm bound to a complex of chaperone proteins. When a ligand binds, the receptor moves into the nucleus, pairs with the AhR nuclear translocator, and switches on genes involved in epithelial maintenance, immune regulation, and detoxification. The gut bacteria supply a steady stream of these ligands: indole-3-aldehyde, indole-3-propionic acid, indole-3-lactic acid, and indole-3-acetic acid, all produced from tryptophan by enzymes such as tryptophanase distributed across Lactobacillus, Clostridium, Bifidobacterium, Bacteroides, and Escherichia coli species.</p>
<p>The foundational observation came from Zelante and colleagues in 2013, who showed that when dietary tryptophan is plentiful, gut lactobacilli shift toward tryptophan catabolism and produce indole-3-aldehyde, which drives AhR-dependent production of interleukin-22. This cytokine, secreted by innate lymphoid cells type 3 and T helper 17 cells, promotes epithelial regeneration, antimicrobial peptide output, and goblet cell function. Later work extended the template to tight junction preservation, mucus maintenance, and intestinal stem cell renewal, establishing the microbiota-tryptophan-AhR axis as a mechanistic linchpin of mucosal health.</p>
<p>Each major metabolite has now been dissected in preclinical colitis models. Indole-3-aldehyde, produced notably by Lactobacillus reuteri, reduces inflammatory cytokines such as interleukin-6, restores the tight junction proteins zonula occludens-1 and occludin, and improves measures of barrier integrity in dextran sulfate sodium colitis. Interestingly, two studies report different degrees of AhR dependence: one found the protection only partially dependent on the receptor, while a more recent analysis documented a strictly AhR- and AMPK-dependent mechanism, with efficacy nearly abolished by receptor inhibition. The discrepancy, the review suggests, likely reflects differences in dosing, treatment duration, and model responsiveness rather than contradictory biology, underscoring that receptor dependence is not an all-or-none property even for a single ligand.</p>
<p>Indole-3-propionic acid, efficiently produced by Clostridium sporogenes, restores tight junction proteins and induces interleukin-22 in ulcerative colitis models, and metabolomic studies consistently find it depleted in IBD patients in correlation with disease severity. Yet its pharmacology is complicated: recent work indicates it can also act directly on heat shock protein 70 to trigger apoptosis of inflammatory Th1 and Th17 cells, independently of AhR or the pregnane X receptor it additionally engages. Indole-3-lactic acid from Lactiplantibacillus plantarum activates both AhR and the antioxidant regulator Nrf2 while suppressing nuclear factor-kappa B, coordinating barrier protection and anti-inflammatory signaling through a single metabolite. Indole-3-acetic acid, by contrast, retains anti-inflammatory activity even when AhR is pharmacologically blocked, showing that at least some protective effects of the indole class operate through receptor-independent routes such as heme oxygenase-1 induction and free radical scavenging.</p>
<p>Downstream of AhR, the review maps an integrated signaling network rather than a simple linear cascade. The AhR-AMPK axis links metabolite sensing to autophagy and mitochondrial resilience in epithelial cells. AhR-Nrf2 crosstalk, though not a strictly hierarchical relationship, induces antioxidant enzymes including superoxide dismutase, catalase, and heme oxygenase-1, blunting the oxidative stress that drives NF-kappa B activation. AhR signaling also directly induces interleukin-22 transcription in immune cells and upregulates the interleukin-10 receptor on epithelia, amplifying anti-inflammatory STAT3 signaling. Finally, AhR-dependent reduction of myosin light chain phosphorylation relaxes the actomyosin cytoskeleton, easing junctional tension and lowering paracellular permeability, the hallmark of the so-called leaky gut.</p>
<p>The review&#8217;s most conceptually important contribution may be its insistence that this axis is bidirectional. Active inflammation induces indoleamine 2,3-dioxygenase 1, which diverts tryptophan away from microbial indole synthesis and into the host kynurenine pathway, further depleting protective AhR ligands precisely when the barrier needs them most. Dysbiosis in IBD simultaneously strips away the metabolite-producing taxa themselves, including Lactobacillus, Clostridium clusters, and Allobaculum species. The result is a self-reinforcing loop in which inflammation suppresses the very metabolites that would repair the tissue damage inflammation causes, and CARD9 deficiency, a human genetic risk factor for Crohn&#8217;s disease, has been shown to impair this axis by reducing AhR ligand-producing commensals.</p>
<p>Crucially, the authors caution that AhR activation is not uniformly beneficial. Microbial indoles are weak, rapidly metabolized agonists that produce the transient, low-amplitude receptor engagement compatible with tissue repair. Host-derived kynurenine metabolites, or sustained high-affinity activation by compounds such as dioxin, can drive immunosuppressive, barrier-impairing, or even pro-tumorigenic programs. Cell-type-specific transcriptional landscapes add further complexity, and in autoimmune models high-affinity ligands can promote Th17 differentiation, a potentially inflammation-amplifying outcome whose relevance for microbiota-derived indoles remains incompletely characterized. Therapeutic strategies, the review argues, must therefore be ligand-selective, replicating physiological kinetics rather than broadly amplifying AhR signaling.</p>
<p>On the translational front, human evidence remains supportive but limited. Multiple metabolomic cohorts have independently confirmed reduced fecal indole-3-acetate and indole-3-propionate in IBD patients, and direct tissue studies show that AhR expression is reduced in IBD mucosa while remaining functionally responsive to agonist stimulation. A randomized trial of indigo naturalis, an AhR-ligand preparation, achieved significant mucosal healing in ulcerative colitis but was halted early over pulmonary safety concerns, providing proof of concept without an approved therapy. No randomized human trial has yet tested purified indole metabolites, defined probiotic strains, or postbiotic formulations targeting this axis, and most mechanistic data derive from the acute DSS colitis model, which poorly replicates the chronic, immune-mediated pathology of human disease.</p>
<p>The authors propose postbiotics, standardized preparations of purified metabolites such as indole-3-aldehyde, indole-3-propionic acid, and indole-3-lactic acid, as the most practical near-term strategy, offering dose standardization, stability, and direct mechanistic targeting compared with live probiotics. Compounds such as berberine and ganoderic acid A, which enhance endogenous microbial tryptophan metabolism, represent indirect alternatives. But the review closes with measured language: targeting the microbial tryptophan-AhR axis is biologically compelling yet clinically unproven, and its translation will depend on well-designed interventional trials, standardized metabolomic methodology, careful attention to ligand selectivity, and honest reckoning with the feedback loop through which inflammation itself sabotages the repair machinery. Until those data arrive, the trillions of bacteria metabolizing a single dietary amino acid remain both the most promising and the least clinically validated allies in the fight against inflammatory bowel disease.</p>
<p><strong>Subject of Research:</strong> Microbiome-derived tryptophan metabolites as ligands of the aryl hydrocarbon receptor that regulate epithelial barrier integrity in inflammatory bowel disease.</p>
<p><strong>Article Title:</strong> Microbiome‐Derived Tryptophan Metabolites Regulate AhR Signaling to Restore Epithelial Barrier Integrity in Inflammatory Bowel Disease</p>
<p><strong>Article References:</strong> Mahdiabadi, M. A., Moghaddam, A., &amp; Erfanian, N. (2026). Microbiome‐Derived Tryptophan Metabolites Regulate AhR Signaling to Restore Epithelial Barrier Integrity in Inflammatory Bowel Disease. <em>MicrobiologyOpen, 15</em>(5), Article e70386. <a href="https://doi.org/10.1002/mbo3.70386" rel="noopener noreferrer">https://doi.org/10.1002/mbo3.70386</a></p>
<p><strong>Image Credits:</strong> AI Generated</p>
<p><strong>DOI:</strong> <a href="https://doi.org/10.1002/mbo3.70386" rel="noopener noreferrer">10.1002/mbo3.70386</a></p>
<p><strong>Keywords:</strong> inflammatory bowel disease, gut microbiome, tryptophan metabolism, aryl hydrocarbon receptor, indole metabolites, epithelial barrier, tight junctions, interleukin-22, postbiotics, dysbiosis, microbiome-targeted therapy, Microbiome</p>
]]></content:encoded>
					
		
		
		<post-id xmlns="com-wordpress:feed-additions:1">196579</post-id>	</item>
		<item>
		<title>Why Blocking One Immune Enzyme Fails: Cells Reroute Tryptophan Metabolism</title>
		<link>https://scienmag.com/why-blocking-one-immune-enzyme-fails-cells-reroute-tryptophan-metabolism/</link>
		
		<dc:creator><![CDATA[Daisy Hatcher]]></dc:creator>
		<pubDate>Sat, 12 Sep 2026 13:06:40 +0000</pubDate>
				<category><![CDATA[Biology]]></category>
		<category><![CDATA[aryl hydrocarbon receptor]]></category>
		<category><![CDATA[challenges in targeting immune enzymes]]></category>
		<category><![CDATA[compensatory metabolic pathways in immune response]]></category>
		<category><![CDATA[epacadostat]]></category>
		<category><![CDATA[Gut microbiome]]></category>
		<category><![CDATA[IDO1]]></category>
		<category><![CDATA[IDO1 enzyme in cancer therapy]]></category>
		<category><![CDATA[IDO1 inhibitors clinical failure]]></category>
		<category><![CDATA[IL4I1]]></category>
		<category><![CDATA[immune enzyme blocking]]></category>
		<category><![CDATA[immune regulation]]></category>
		<category><![CDATA[immunosuppressive kynurenine pathway]]></category>
		<category><![CDATA[Immunotherapy Resistance]]></category>
		<category><![CDATA[indole metabolites]]></category>
		<category><![CDATA[kynurenine pathway]]></category>
		<category><![CDATA[limitations of IDO1-targeted cancer treatments]]></category>
		<category><![CDATA[metabolic rerouting in immune suppression]]></category>
		<category><![CDATA[regulatory T cells and myeloid-derived suppressor cells]]></category>
		<category><![CDATA[role of aryl hydrocarbon receptor in immunity]]></category>
		<category><![CDATA[serotonin pathway]]></category>
		<category><![CDATA[TDO2]]></category>
		<category><![CDATA[tryptophan metabolism]]></category>
		<category><![CDATA[tryptophan metabolism in immune regulation]]></category>
		<category><![CDATA[Tumor immune evasion mechanisms]]></category>
		<guid isPermaLink="false">https://scienmag.com/?p=194683</guid>

					<description><![CDATA[A new review explains why IDO1 inhibitors often fail, revealing that tumors and tissues compensate by rerouting tryptophan metabolism through alternative enzymes, serotonin pathways, IL4I1 and gut microbes.]]></description>
										<content:encoded><![CDATA[<p>For more than a decade, the enzyme indoleamine 2,3-dioxygenase 1, better known as IDO1, has been one of immunology&#8217;s most tempting drug targets. Sitting at the gateway between tryptophan metabolism and immune control, IDO1 is switched on by interferon-gamma during inflammation and quietly converts the amino acid tryptophan into kynurenine, a metabolite with potent immunosuppressive credentials. In tumors, this enzymatic activity starves cytotoxic T cells of tryptophan, feeds regulatory T cells and myeloid-derived suppressor cells, and activates the aryl hydrocarbon receptor, a transcription factor that reprograms immunity toward tolerance. Inhibiting IDO1, the logic went, should release the brakes on antitumor immunity. Yet a comprehensive new review published in Molecular Biology Reports argues that the story is far more tangled: blocking IDO1 rarely shuts down tryptophan metabolism, because the body deploys an arsenal of compensatory pathways that preserve the very biological outputs the inhibitors were designed to eliminate.</p>
<p>The review, authored by Isabela Gontijo, Mariana Camurça and José Roberto Kfoury of the University of São Paulo, systematically dissects why IDO1-targeted drugs have underperformed in the clinic. The most famous failure was epacadostat, which, despite robustly lowering kynurenine when combined with pembrolizumab in a randomized phase 2 study in metastatic non-small-cell lung cancer, did not improve objective response rates over pembrolizumab alone. The authors argue that such disappointing results should not be read as evidence that the drug failed to engage its target. Instead, they propose, IDO1 operates within a distributed metabolic network in which substrate availability, alternative enzymes, non-enzymatic signaling, cell-specific metabolic programs, downstream receptors and even the gut microbiome can each sustain tryptophan-dependent immunoregulation after the primary enzyme is pharmacologically silenced.</p>
<p>To appreciate the scale of the problem, it helps to understand how IDO1 works. The enzyme is a cytosolic, heme-containing oxidoreductase expressed in dendritic cells, macrophages, stromal cells and cancer cells. Its transcription is induced when interferon-gamma binds its receptor, activating JAK1 and JAK2 kinases that phosphorylate STAT1. Phosphorylated STAT1 dimers, known as gamma-activated factor, translocate to the nucleus and bind gamma-activated sites in the IDO1 promoter, while a secondary wave of interferon regulatory factor 1 amplifies the signal through interferon-stimulated response elements. Once made, IDO1 is catalytically active only when its heme iron is in the reduced ferrous state, allowing it to cleave the indole ring of L-tryptophan and generate N-formyl-L-kynurenine, which arylformamidase rapidly converts to L-kynurenine. This step is the rate-limiting entry point of tryptophan into the kynurenine pathway, which ultimately feeds de novo NAD+ biosynthesis.</p>
<p>The downstream consequences of this reaction extend well beyond substrate consumption. Tryptophan depletion activates the GCN2 integrated stress response while dampening mTORC1 signaling, the nutrient-sensing hub that drives protein translation, cell-cycle progression and clonal expansion in activated T lymphocytes. Meanwhile, accumulated kynurenine acts as an endogenous ligand for the aryl hydrocarbon receptor, which sheds its cytoplasmic chaperone complex, enters the nucleus, pairs with ARNT and switches on a tolerogenic transcriptional program in antigen-presenting and myeloid cells. This favors regulatory T-cell differentiation and blunts effector immunity, although the review is careful to note that AHR biology is context dependent: in some settings, such as resident-memory CD8-positive T cells and natural killer cells, AHR activity actually enhances antitumor function. IDO1 also has a second, entirely non-enzymatic identity. In TGF-beta-conditioned dendritic cells, the enzyme is phosphorylated on immunoreceptor tyrosine-based inhibitory motifs by the Src-family kinase Fyn, recruiting the phosphatases SHP-1 and SHP-2 and triggering non-canonical NF-kappa-B signaling through p52/RelB complexes, a positive feedback loop that sustains long-term immune tolerance independently of catalysis.</p>
<p>Against this backdrop, the review catalogs a series of compensatory routes that survive IDO1 blockade. The first is enzymatic redundancy. Tryptophan 2,3-dioxygenase 2, or TDO2, is a hepatic, glucocorticoid-regulated heme enzyme that catalyzes exactly the same initial reaction as IDO1, oxidizing tryptophan to N-formyl-L-kynurenine. Because selective IDO1 inhibitors leave the substrate itself untouched, any cell expressing active TDO2 can simply absorb the surplus tryptophan and feed it back into the kynurenine pathway, preserving kynurenine-dependent AHR signaling without any restoration of IDO1 activity. Its paralog IDO2, encoded next to IDO1, has weak catalytic efficiency but may contribute through membrane-associated signaling functions of its own. This mechanistic logic underlies the development of dual IDO1/TDO2 inhibitors such as M4112 and SHR9146, which are designed to close both enzymatic entry points simultaneously.</p>
<p>A second form of compensation is metabolic rerouting. When IDO1-dependent consumption falls, more tryptophan remains available to competing enzymes, including tryptophan hydroxylase 1 and 2, which commit the amino acid to the serotonergic pathway instead. The resulting surge in 5-hydroxytryptophan and serotonin does not simply vanish into a metabolic dead end: serotonin is itself an extracellular signaling molecule, sensed by a family of G-protein-coupled receptors and the ion-channel receptor 5-HT3 on monocytes, macrophages, dendritic cells and lymphocytes, where it modulates cytokine production, migration and differentiation. Serotonin can be further converted to melatonin through AANAT and ASMT, adding another layer of immunomodulatory chemistry. Clinical evidence supports this rewiring: in ovarian cancer patients treated with an IDO1 inhibitor, tumor metabolic adaptation toward the serotonin pathway was documented and found to constrain antitumor immune responses.</p>
<p>A third route runs through IL4I1, a secreted FAD-dependent amino acid oxidase induced by interleukin-4 that oxidizes tryptophan to indole-3-pyruvic acid, releasing ammonia and hydrogen peroxide. Because this chemistry is fundamentally different from heme-dependent dioxygenation, IDO1 inhibitors have no direct effect on it. Yet the indole metabolites IL4I1 produces, including indole-3-aldehyde, are potent AHR ligands, meaning the pathway bypasses the kynurenine step entirely while converging on the same tolerogenic receptor. Recent studies have linked IL4I1/AHR signaling to macrophage polarization in allergic rhinitis and to anti-inflammatory programs in cytokine-primed muscle stem cells, underscoring how a single receptor can be fed by multiple, pharmacologically independent metabolic tributaries.</p>
<p>The review also elevates compensation from the single-cell to the tissue level. Tryptophan transporters such as LAT1 and SLC7A11 are distributed unevenly across cell types, so when IDO1-expressing cells stop consuming tryptophan, neighboring cells with high transporter activity act as alternative metabolic sinks, redirecting the shared substrate according to their own enzymatic repertoires. Single-cell RNA sequencing in inflammatory intestinal tissue has revealed sharply different tryptophan-metabolic profiles among macrophages, fibroblasts and epithelial cells, while work in macrophages shows that efferocytosis induces a coordinated program of tryptophan uptake, IDO1 expression and kynurenine production that aids tissue resolution. In this non-cell-autonomous model, substrate consumption, metabolite production and metabolite sensing can all occur in different compartments of the same tissue, which means that inhibiting one enzymatic source may merely reshuffle the cellular geography of tryptophan metabolism rather than extinguishing its outputs.</p>
<p>Perhaps the most surprising player is the gut microbiome. Commensal bacteria wielding tryptophanases, aminotransferases and reductases convert dietary tryptophan into a diverse library of indoles, including indole-3-aldehyde, indole-3-lactic acid, indole-3-acetic acid and indole-3-propionic acid, many of which activate AHR in epithelial and immune cells. Landmark work by Zelante and colleagues showed in IDO1-deficient mice that microbiota-derived catabolites engage AHR and balance mucosal immunity through interleukin-22, and more recent studies demonstrate that lactic acid bacteria are particularly prolific producers of these ligands. Microbial compensation is not uniformly immunosuppressive: cooperative metabolism between Lactobacillus johnsonii and Clostridium sporogenes boosts indole-3-propionic acid, which promotes H3K27 acetylation at the Tcf7 super-enhancer and maintains progenitor exhausted CD8-positive T cells, thereby enhancing the efficacy of anti-PD-1 therapy across multiple cancer models. The microbiome, in other words, can either restore immune suppression or sharpen antitumor immunity, depending on which community members dominate.</p>
<p>The translational message of the review is a shift from enzyme-specific inhibition to network-based regulation. The authors draw a sharp distinction between target engagement, which merely confirms that IDO1 catalysis has been suppressed, and network suppression, which asks whether the broader biological output has actually fallen. Clinical data reinforce the point: in a phase 1/2 study of the irreversible inhibitor linrodostat combined with nivolumab, kynurenine fell across patient groups regardless of response, while therapeutic benefit associated instead with an interferon-gamma transcriptional signature and, in non-melanoma cohorts, with the combination of low TDO2 expression and high interferon-gamma signaling. Patient stratification in head and neck cancer likewise showed benefit only in subgroups with high baseline IDO1 RNA and context-specific immune signatures. The authors argue that future trials should pair serial plasma metabolomics with tissue-resolved assessment of IDO1, TDO2 and IL4I1 expression, AHR-responsive transcriptional markers and stool metagenomics, using adaptive designs that identify which compensatory node dominates in each patient. Emerging tools such as IDO1-targeting PROTACs, which degrade the protein and thereby disrupt both its catalytic and non-enzymatic signaling functions, may widen the mechanistic reach of treatment, but even protein removal cannot touch TDO2, IL4I1, microbial metabolism or downstream AHR activity. The lesson is sobering and clarifying at once: IDO1 is not a switch but one node in a dynamic, redundantly wired metabolic network, and effective immunometabolic therapy will require mapping exactly where compensation lives in each patient before deciding where to strike.</p>
<p><strong>Subject of Research:</strong> Compensatory tryptophan metabolism and immune regulation pathways activated following IDO1 enzyme inhibition</p>
<p><strong>Article Title:</strong> Compensatory pathways in tryptophan metabolism and immune regulation following IDO inhibition</p>
<p><strong>Article References:</strong> Gontijo, I., Camurça, M., &amp; Kfoury, J. R. (2026). Compensatory pathways in tryptophan metabolism and immune regulation following IDO inhibition. <em>Molecular Biology Reports, 53</em>(1), Article 1567. <a href="https://doi.org/10.1007/s11033-026-12707-9" rel="noopener noreferrer">https://doi.org/10.1007/s11033-026-12707-9</a></p>
<p><strong>Image Credits:</strong> AI Generated</p>
<p><strong>DOI:</strong> <a href="https://doi.org/10.1007/s11033-026-12707-9" rel="noopener noreferrer">10.1007/s11033-026-12707-9</a></p>
<p><strong>Keywords:</strong> IDO1, tryptophan metabolism, kynurenine pathway, TDO2, IL4I1, aryl hydrocarbon receptor, immunotherapy resistance, epacadostat, gut microbiome, indole metabolites, serotonin pathway, immune regulation</p>
]]></content:encoded>
					
		
		
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