The effects and combinational effects of Bacillus subtilis and montmorillonite on the intestinal health status in laying hens
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J.F. Chen | S.C. Guo | X. Qu | S. Guo | M. Xu | K. Kang | S. Tang | C. He | J. Chen | S. Tang | K. Kang | M.M. Xu
[1] Y. F. Cheng,et al. Dietary mannan oligosaccharide ameliorates cyclic heat stress-induced damages on intestinal oxidative status and barrier integrity of broilers. , 2019, Poultry science.
[2] J.F. Chen,et al. The effects and combinational effects of Bacillus subtilis and montmorillonite supplementation on performance, egg quality, oxidation status, and immune response in laying hens , 2019, Livestock Science.
[3] Songchang Guo,et al. Montmorillonite improved the intestinal mucosal barrier functions of laying hens in late production. , 2019, Journal of animal physiology and animal nutrition.
[4] E. Devillard,et al. Bacillus subtilis 29784 induces a shift in broiler gut microbiome toward butyrate-producing bacteria and improves intestinal histomorphology and animal performance. , 2019, Poultry science.
[5] M. Al-Ghadi,et al. The effect of some natural alternative to antibiotics on growth and changes in intestinal histology in broiler exposed to Salmonella challenge , 2019, Poultry science.
[6] G. Jurgens,et al. The impact of Bacillus subtilis DSM 32315 on the pathology, performance, and intestinal microbiome of broiler chickens in a necrotic enteritis challenge , 2018, Poultry science.
[7] K. Ding,et al. Effects of lactic acid bacteria and smectite after aflatoxin B1 challenge on the growth performance, nutrient digestibility and blood parameters of broilers , 2018, Journal of animal physiology and animal nutrition.
[8] J. Tong,et al. High‐throughput sequencing reveals the effect of Bacillus subtilis CGMCC 1.921 on the cecal microbiota and gene expression in ileum mucosa of laying hens , 2018, Poultry science.
[9] F. Yan,et al. Supplementation of Bacillus subtilis-based probiotic reduces heat stress-related behaviors and inflammatory response in broiler chickens. , 2018, Journal of animal science.
[10] K. Takeda,et al. Maintenance of intestinal homeostasis by mucosal barriers , 2018, Inflammation and Regeneration.
[11] S. Johnston,et al. Effects of modified montmorillonite adsorbent on performance, egg quality, serum biochemistry, oxidation status, and immune response of laying hens in late production , 2018 .
[12] S. Citi. Intestinal barriers protect against disease , 2018, Science.
[13] Shao-Cong Sun,et al. NF-κB signaling in inflammation , 2017, Signal Transduction and Targeted Therapy.
[14] D. Kang,et al. Protective effects of Bacillus subtilis against Salmonella infection in the microbiome of Hy-Line Brown layers , 2017, Asian-Australasian journal of animal sciences.
[15] M. Kleerebezem,et al. Can probiotics modulate human disease by impacting intestinal barrier function? , 2017, The British journal of nutrition.
[16] J. Tong,et al. Effects of long‐term Bacillus subtilis CGMCC 1.921 supplementation on performance, egg quality, and fecal and cecal microbiota of laying hens , 2016, Poultry science.
[17] E. Manuali,et al. Effects of two different probiotics on microflora, morphology, and morphometry of gut in organic laying hens. , 2016, Poultry science.
[18] D. Winer,et al. The Intestinal Immune System in Obesity and Insulin Resistance. , 2016, Cell metabolism.
[19] Shao-Cong Sun,et al. NF-κB in inflammation and renal diseases , 2015, Cell & Bioscience.
[20] T. Yang,et al. Effects of dietary supplementation with lysine-yielding Bacillus subtilis on gut morphology, cecal microflora, and intestinal immune response of Linwu ducks. , 2015, Journal of animal science.
[21] Chen Xiaoming,et al. Lactobacillus casei immobilized onto montmorillonite: Survivability in simulated gastrointestinal conditions, refrigeration and yogurt , 2014 .
[22] Tian Wang,et al. The effects of natural and modified clinoptilolite on intestinal barrier function and immune response to LPS in broiler chickens. , 2013, Veterinary immunology and immunopathology.
[23] G. Daş,et al. Effects of dietary Bacillus subtilis and inulin supplementation on performance, eggshell quality, intestinal morphology and microflora composition of laying hens in the late phase of production , 2013 .
[24] Takuya Suzuki. Regulation of intestinal epithelial permeability by tight junctions , 2012, Cellular and Molecular Life Sciences.
[25] A. Fasano. Zonulin, regulation of tight junctions, and autoimmune diseases , 2012, Annals of the New York Academy of Sciences.
[26] N. Mantis,et al. Secretory IgA's complex roles in immunity and mucosal homeostasis in the gut , 2011, Mucosal Immunology.
[27] P. Moughan,et al. Regulation of tight junction permeability by intestinal bacteria and dietary components. , 2011, The Journal of nutrition.
[28] B. Cabane,et al. Ca/Na montmorillonite: structure, forces and swelling properties. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[29] Ashlee M Earl,et al. Ecology and genomics of Bacillus subtilis. , 2008, Trends in microbiology.
[30] W. Yeh,et al. LPS/TLR4 signal transduction pathway. , 2008, Cytokine.
[31] Carola Förster,et al. Tight junctions and the modulation of barrier function in disease , 2008, Histochemistry and Cell Biology.
[32] M. Hornef,et al. Innate immune recognition on the intestinal mucosa. , 2007, International journal of medical microbiology : IJMM.
[33] M. M. Boiago,et al. Intestinal mucosa development in broiler chickens fed natural growth promoters , 2005 .
[34] H. Ford,et al. The role of the glutathione antioxidant system in gut barrier failure in a rodent model of experimental necrotizing enterocolitis. , 2004, Surgery.
[35] S. Ivković,et al. Dietary supplementation with the tribomechanically activated zeolite clinoptilolite in immunodeficiency: Effects on the immune system , 2004, Advances in therapy.
[36] S. Urien,et al. Interactions between smectite, a mucus stabilizer, and acidic and basic drugs , 1985, European Journal of Clinical Pharmacology.