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Lejla Ridzal

Društvene mreže:

Lejla Ridžal, T. Frieling, R. Róka, O. Inczefi, P. Bacsur, D. Bajcsi, M. Neunlist, Claire Cardaillac, V. Théodorou et al.

BACKGROUND Luminal proteases have been implicated in epithelial barrier dysfunction and visceral hypersensitivity in irritable bowel syndrome (IBS), yet their impact on the enteric nervous system (ENS), the principal regulator of gastrointestinal function, remains unknown. OBJECTIVE To investigate whether faecal mediators differentially activate enteric neurons across IBS subtypes and whether proteolytic and proteomic profiles explain neuronal phenotypes. DESIGN The effects of faecal supernatants (FSN) from 21 IBS-D (diarrhoea-predominant), 9 IBS-C (constipation-predominant) and 18 healthy control (HC) patients recruited across centres in three countries on guinea pig distal colon submucous plexus neurons were assessed using a neuroimaging technique. Faecal proteolytic activities and proteomic profiles were analysed. RESULTS IBS-D and IBS-C supernatants evoked significantly stronger neuronal activation than HC, demonstrating that FSN directly modulate ENS. In IBS-D, but not IBS-C, effects were mediated by serine and cysteine proteases and PAR-1. Proteome analysis revealed a significant difference in 47 proteins between IBS-D and HC, including several immunoglobulin components, underlying the role of microinflammation in IBS-D. A combination of amylases, trypsin-2 and an immunoglobulin protein demonstrated high diagnostic performance to distinguish IBS-D from HC. CONCLUSION These findings uncover a previously unrecognised luminal-ENS axis in IBS and reveal fundamentally different pathological mechanisms between IBS-D and IBS-C. IBS-D is characterised by proteases and PAR-1-dependent neuronal activation and a distinct immune-enriched faecal proteome, whereas mediators in IBS-C act independently of these factors. These findings establish a functional link between faecal protease activity, ENS signalling and molecular biomarkers, highlighting new therapeutic and diagnostic avenues for subtype-specific management of IBS.

Anita Annaházi, B. Kuch, Lejla Ridžal, Nooshin Mansouri, Ida Hosni, Michael Schemann

Fennel (Foeniculum vulgare), a culinary and folk medicinal plant used worldwide in infantile colic, bloating, and indigestion, has scarce scientific evidence.

Tobias Kohl, Lejla Ridžal, B. Kuch, Marlene Hartel, Corinna Kreft, Ahmed Musoski, K. Michel, H. Luksch, M. Schemann et al.

Background Gastrointestinal (GI) functions are controlled by the enteric nervous system (ENS) in vertebrates, but data on snakes are scarce, as most studies were done in mammals. However, the feeding of many snakes, including Crotalus atrox , is in strong contrast with mammals, as it consumes an immense, intact prey that is forwarded, stored, and processed by the GI tract. We performed immunohistochemistry in different regions of the GI tract to assess the neuronal density and to quantify cholinergic, nitrergic, and VIPergic enteric neurons. We recorded motility patterns and determined the role of different neurotransmitters in the control of motility. Neuroimaging experiments complemented motility findings. Results A well-developed ganglionated myenteric plexus (MP) was found in the oesophagus, stomach, and small and large intestines. In the submucous plexus (SMP) most neurons were scattered individually without forming ganglia. The lowest number of neurons was present in the SMP of the proximal colon, while the highest was in the MP of the oesophagus. The total number of neurons in the ENS was estimated to be approx. 1.5 million. In all regions of the SMP except for the oesophagus more nitric oxide synthase+ than choline-acetyltransferase (ChAT)+ neurons were counted, while in the MP ChAT+ neurons dominated. In the SMP most nerve cells were VIP+, contrary to the MP, where numerous VIP+ nerve fibers but hardly any VIP+ neuronal cell bodies were seen. Regular contractions were observed in muscle strips from the distal stomach, but not from the proximal stomach or the colon. We identified acetylcholine as the main excitatory and nitric oxide as the main inhibitory neurotransmitter. Furthermore, 5-HT and dopamine stimulated, while VIP and the ß-receptor-agonist isoproterenol inhibited motility. ATP had only a minor inhibitory effect. Nerve-evoked contractile responses were sodium-dependent, insensitive to tetrodotoxin (TTX), but sensitive to lidocaine, supported by neuroimaging experiments. Conclusions The structure of the ENS, and patterns of gastric and colonic contractile activity of Crotalus atrox are strikingly different from mammalian models. However, the main excitatory and inhibitory pathways appear to be conserved. Future studies have to explore how the observed differences are an adaptation to the particular feeding strategy of the snake.

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