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Biology subjects

Achamrah, N.

Publications and source records attributed to Achamrah, N..

3 recordsLinked to original sources

Characterisation of changes in the gut microbiota associated with eating disorders

BackgroundEating disorders are serious pathologies that often begin in adolescence or young adulthood and persist for a significant period of time, with a strong negative impact on patients quality of life and mortality. The etiological origins of eating disorders are complex and involve both biological, psychological and societal factors. The gut microbiota was recently proposed as one of the potential factors involved in eating disorders. To gain a better understanding of the potential role of the gut microbiota in these diseases, we used 16S rRNA sequencing to compare the composition of the faecal microbiota of patients with all typical forms of eating disorders, i.e. anorexia nervosa, bulimia nervosa or binge-eating disorder, with that of healthy individuals. ResultsOur results demonstrate that each type of eating disorder is associated with a specific gut bacterial signature. We observed, for example, a decrease in the relative abundances of Agathobacter and Romboutsia genera and an increase in Pseudomonas in patients with anorexia, while patients with binge-eating disorder exhibit a decrease in the relative abundances of Akkermansia and Intestinimonas and an increase in Streptococcus, Eggerthella and Proteus. We also highlight a heterogeneity of gut microbiota composition in different subcategories of eating disorders, such as restricting versus binge-purge type anorexia or typical versus atypical binge-eating disorder. By focusing on the comorbidities reported by patients, we finally identified several bacterial taxa, such as Acidaminococcus and Eggerthella, whose level correlates with the occurrence of anxiety or depressive-like symptoms. ConclusionsTogether, our work demonstrates that eating disorders are associated with specific changes in gut microbiota composition and highlight the necessity to finely stratify patients to identify robust microbial signatures. In addition, we identified bacterial taxa correlating with comorbidities and decreased quality of life reported by patients. Our results now pave the way for determining the predictive value of the abundance of these taxa on the duration of the pathology or on the likelihood of relapse. They also constitute a valuable resource to further demonstrate the causal role of the gut microbiota in the onset or chronicisation of eating disorders.

microbiology↗

Sex-dependent effects of intestinal epithelial TLR4 deletion induced before activity-based anorexia

RationaleA role for the microbiota-gut-brain axis in the pathophysiology of anorexia nervosa (AN) has emerged in the last decade. An alteration of intestinal Toll-like receptor type 4 (TLR4) has been reported in the activity-based anorexia (ABA) model with an increase in its expression at the cell surface of colonic epithelial cells. In addition, inducible TLR4 invalidation in intestinal epithelial cells (IECs) was associated with behavioral and energy balance changes in ABA mice. The aim of this study was to assess the intestinal response, e.g. inflammation, gut barrier function and gut microbiota composition, to TLR4 invalidation in IEC in ABA mice. MethodsMale and female Villin-CreERT2-TLR4 LoxP C57Bl/6 mice were injected with tamoxifen to induce a specific invalidation of TLR4 in IECs (TLR4IEC-/- mice). Then, wild-type (wt) and TLR4IEC-/- mice were subjected or not to the ABA protocol which combines an access to a running wheel and a progressively limited access to food. After 12 days, colon samples were collected and the expression of 44 mRNAs encoding proteins involved in inflammatory response, gut barrier function and homeostatic regulation was measured by qPCR. Results were compared by a two-way ANOVA (ABA x TLR4IEC-/-). Gut microbiota composition was analysed by 16S rRNA Illumina sequencing. ResultsIn both male and female ABA TLR4IEC-/- mice, the kinetics of body weight loss was slowed down. In addition, male and female ABA TLR4IEC-/- mice showed an increase and a decrease in food intake, respectively. In males, TLR4 invalidation in IEC was associated with a reduction of Tlr2, Ticam1, Myd88, Tnf, I{kappa}B, Irf3, Cxcr3 and Tgf{beta} mRNA expression and fecal calprotectin levels under control conditions but not in response to the ABA model. In females, Myd88, Il6, Cxcl1 and Ccl2 mRNA levels were increased by TLR4IEC invalidation in control mice but not in ABA, except for Ccl2. TLR4 invalidation also affected the expression of genes involved in gut barrier function in control and ABA mice in a sex-dependent manner. Male mice exhibited more marked alterations. For instance, male CT TLR4IEC-/- showed a decrease of numerous targets (Ocln, Marveld2, F11r, Tjp1, Cldn7, Cldn12, Cldn15). ABA TLR4IEC-/- mice did not exhibit this decrease but other changes were observed such as an increase in Cldn3 and Cldn7 mRNA levels. Finally, TLR4IEC invalidation in control mice, but not in ABA, altered the gut microbiota in a sex dependent manner with an increase in the abundance of Parasutterella and Desulfovibrio genera in females and males, respectively. Interestingly, the ABA model per se induced an increase in the abundance of the Lactobacillus genus in both sexes, which was not observed in ABA TLR4IEC-/-. ConclusionsOur study shows for the first time the impact of inducible TLR4 invalidation in IEC on the intestinal response. We highlighted numerous colonic alterations regarding epithelial permeability, mucosal inflammation and gut microbiota composition, in control and ABA conditions: all were partially reversed in ABA TLR4IEC-/-. TLR4 invalidation in IEC also induced changes in energy homeostasis in response to the ABA model both in female and male mice. Further studies are warranted to deeply evaluate the underlying mechanisms.

physiology↗

Gut microbiota regulates food intake in a rodent model of binge-eating disorder

ObjectiveBinge-eating disorder is characterized by recurrent episodes of consumption of large amounts of food within a short period of time, without compensatory behaviours. This disease is a major public health issue since it decreases patients quality of life and is associated with numerous comorbidities, encompassing anxiety, depression and complications associated with obesity. The pathophysiology of binge-eating disorder is complex and involves both endogenous, environmental and sociocultural factors. The gut microbiota has been proposed to be an important player in the onset or maintenance of eating disorders. Here, we aim to better delineate the potential role of the gut microbiota in binge-eating disorder. MethodWe used a model of binge-eating disorder where eight-weeks-old C57Bl/6 female mice had access during 2 hours, every 2 days over a 10-day period, to a highly palatable and high-calorie diet. Half of the animals received antibiotics to deplete their gut microbiota. Eating behaviour and other behavioural parameters were compared between groups. ResultsWe observed an increase in food intake in mouse exposed to high-fat high-sucrose diet, as well as tachyphagia and craving for food during binge-eating episodes. We demonstrate the gut microbiota depletion further increases food intake, specifically during binge-eating episodes. DiscussionThese results show that the gut microbiota is involved in the control of food intake during episodes of binge-eating. This strengthens the potential role of the gut bacteria in binge-eating disorder and open the way for future therapeutic strategies aiming at targeting patients gut microbiota.

animal behavior and cognition↗