Limosilactobacillus fermentum modulates the gut-airway axis by improving the immune response through FOXP3 activation on combined allergic rhinitis and asthma syndrome (CARAS).
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A. F. Alves | M. Piuvezam | Francisco A. A. F. Gadelha | Laércia K. D. Paiva Ferreira | Larissa A. M. Paiva Ferreira | F. S. de Souza | Leônia Maria Batista | R. F. Cavalcanti | Taynara Batista Lins Melo | R. S. de Araújo Batista | J. V. Chaves Júnior
[1] R. Jiménez-García,et al. Trends in asthma hospitalizations among adults in Spain: Analysis of hospital discharge data from 2011 to 2020. , 2022, Respiratory medicine.
[2] T. G. Singh,et al. Short Chain Fatty Acids: Fundamental mediators of the gut-lung axis and their involvement in pulmonary diseases. , 2022, Chemico-biological interactions.
[3] W. Tafuri,et al. Characterization of macrophage polarization in lesions of dogs inoculated with Leishmania (Leishmania) infantum (BH40) strain , 2022, Brazilian Journal of Veterinary Pathology.
[4] J. Garssen,et al. Dietary Fibers: Effects, Underlying Mechanisms and Possible Role in Allergic Asthma Management , 2021, Nutrients.
[5] M. Barbosa,et al. Immunomodulatory properties of Musa paradisiaca L. inflorescence in Combined Allergic Rhinitis and Asthma Syndrome (CARAS) model towards NFκB pathway inhibition , 2021 .
[6] A. F. Alves,et al. MHTP, a synthetic alkaloid, attenuates combined allergic rhinitis and asthma syndrome through downregulation of the p38/ERK1/2 MAPK signaling pathway in mice. , 2021, International immunopharmacology.
[7] H. Hammad,et al. The basic immunology of asthma , 2021, Cell.
[8] M. Keikha,et al. Probiotics function and modulation of the immune system in allergic diseases. , 2020, Allergologia et immunopathologia.
[9] M. Piuvezam,et al. Warifteine and methylwarifteine inhibited the type 2 immune response on combined allergic rhinitis and asthma syndrome (CARAS) experimental model through NF-кB pathway. , 2020, International immunopharmacology.
[10] T. Ulven,et al. Butyrate ameliorates allergic airway inflammation by limiting eosinophil trafficking and survival. , 2019, The Journal of allergy and clinical immunology.
[11] M. Piuvezam,et al. Combined allergic rhinitis and asthma syndrome (CARAS). , 2019, International immunopharmacology.
[12] H. Castro-Faria-Neto,et al. Oral feeding of Lactobacillus bulgaricus N45.10 inhibits the lung inflammation and airway remodeling in murine allergic asthma: Relevance to the Th1/Th2 cytokines and STAT6/T-bet. , 2019, Cellular immunology.
[13] Wei Chen,et al. Lactobacillus fermentum and its potential immunomodulatory properties , 2019, Journal of Functional Foods.
[14] B. Marsland,et al. Microbes, metabolites, and the gut–lung axis , 2019, Mucosal Immunology.
[15] S. Nobs,et al. GM‐CSF intrinsically controls eosinophil accumulation in the setting of allergic airway inflammation , 2019, The Journal of allergy and clinical immunology.
[16] Takuya Suzuki,et al. Dietary Fermentable Fibers Attenuate Chronic Kidney Disease in Mice by Protecting the Intestinal Barrier. , 2018, The Journal of nutrition.
[17] P. Bozza,et al. Warifteine, an alkaloid of Cissampelos sympodialis, modulates allergic profile in a chronic allergic rhinitis model , 2018 .
[18] E. Martín-Orozco,et al. Regulatory T Cells in Allergy and Asthma , 2017, Front. Pediatr..
[19] M. M. del Giudice,et al. Bifidobacterium mixture (B longum BB536, B infantis M-63, B breve M-16V) treatment in children with seasonal allergic rhinitis and intermittent asthma , 2017, Italian Journal of Pediatrics.
[20] L. Wood,et al. Soluble Fibre Meal Challenge Reduces Airway Inflammation and Expression of GPR43 and GPR41 in Asthma , 2017, Nutrients.
[21] F. Bäckhed,et al. From Dietary Fiber to Host Physiology: Short-Chain Fatty Acids as Key Bacterial Metabolites , 2016, Cell.
[22] Weiming Zhu,et al. Dietary Non-digestible Polysaccharides Ameliorate Intestinal Epithelial Barrier Dysfunction in IL-10 Knockout Mice. , 2016, Journal of Crohn's & colitis.
[23] D. Price,et al. IgE-mediated asthma: New revelations and future insights. , 2016, Respiratory medicine.
[24] D. Welsh,et al. Regulation of lung immunity and host defense by the intestinal microbiota , 2015, Front. Microbiol..
[25] Robert J. Moore,et al. Evidence that asthma is a developmental origin disease influenced by maternal diet and bacterial metabolites , 2015, Nature Communications.
[26] S. Lynch,et al. Microbiota in allergy and asthma and the emerging relationship with the gut microbiome. , 2015, Cell host & microbe.
[27] C. Riccardi,et al. The viability of Lactobacillus fermentum CECT5716 is not essential to exert intestinal anti-inflammatory properties. , 2015, Food & function.
[28] Glenn R. Gibson,et al. The International Scientific Association for Probiotics and Prebiotics consensus statement on the scope and appropriate use of the term probiotic , 2014 .
[29] Esther Swee Lan Chong,et al. A potential role of probiotics in colorectal cancer prevention: review of possible mechanisms of action , 2014, World journal of microbiology & biotechnology.
[30] J. Faith,et al. Identifying Gut Microbe–Host Phenotype Relationships Using Combinatorial Communities in Gnotobiotic Mice , 2014, Science Translational Medicine.
[31] R. Medzhitov,et al. The microbial metabolite butyrate regulates intestinal macrophage function via histone deacetylase inhibition , 2014, Proceedings of the National Academy of Sciences.
[32] W. Garrett,et al. The Microbial Metabolites, Short-Chain Fatty Acids, Regulate Colonic Treg Cell Homeostasis , 2013, Science.
[33] C. Bachert,et al. Immunomodulatory effects of IL‐23 and IL‐17 in a mouse model of allergic rhinitis , 2013, Clinical and experimental allergy : journal of the British Society for Allergy and Clinical Immunology.
[34] I. Adcock,et al. Probiotics in the Management of Lung Diseases , 2013, Mediators of inflammation.
[35] J. Bressan,et al. Higher level of faecal SCFA in women correlates with metabolic syndrome risk factors , 2012, British Journal of Nutrition.
[36] M. Martins,et al. Effectiveness of Cissampelos sympodialis and its isolated alkaloid warifteine in airway hyperreactivity and lung remodeling in a mouse model of asthma. , 2012, International immunopharmacology.
[37] Jigar H. Shah,et al. Allergic rhinitis: an update on disease, present treatments and future prospects. , 2011, International immunopharmacology.
[38] D. Robinson,et al. The role of the T cell in asthma. , 2010, The Journal of allergy and clinical immunology.
[39] H. Kakuta,et al. Effect of 5-aminosalicylate on allergic rhinitis model in mice. , 2010, International immunopharmacology.
[40] Shu-Fen Wu,et al. Oral administration of Lactobacillus salivarius inhibits the allergic airway response in mice. , 2010, Canadian journal of microbiology.
[41] James Tonascia,et al. Predictors of remitting, periodic, and persistent childhood asthma. , 2010, The Journal of allergy and clinical immunology.
[42] J. Bousquet,et al. Allergic rhinitis and its impact on asthma update (ARIA 2008)--western and Asian-Pacific perspective. , 2009, Asian Pacific journal of allergy and immunology.
[43] R. Curi,et al. Effects of short chain fatty acids on effector mechanisms of neutrophils , 2009, Cell biochemistry and function.
[44] A. Braun,et al. Improved mouse models of allergy and allergic asthma--chances beyond ovalbumin. , 2008, Current drug targets.
[45] M. Inman,et al. Oral treatment with live Lactobacillus reuteri inhibits the allergic airway response in mice. , 2007, American journal of respiratory and critical care medicine.
[46] S. Prescott,et al. Clinical effects of probiotics are associated with increased interferon‐γ responses in very young children with atopic dermatitis , 2005, Clinical and experimental allergy : journal of the British Society for Allergy and Clinical Immunology.
[47] A. Liddle,et al. Analgesia during radial artery cannulation: Comparison of the effects of lidocaine applied by local injection or iontophoresis , 2003, Anaesthesia.