Page 88 - Read Online
P. 88
Page 18 of 19 Misera et al. Microbiome Res Rep 2024;3:48 https://dx.doi.org/10.20517/mrr.2023.81
63. Li N, Wang Q, Wang Y, et al. Oral probiotics ameliorate the behavioral deficits induced by chronic mild stress in mice via the gut
microbiota-inflammation axis. Front Behav Neurosci 2018;12:266. DOI PubMed PMC
64. Ge X, Ding C, Zhao W, et al. Antibiotics-induced depletion of mice microbiota induces changes in host serotonin biosynthesis and
intestinal motility. J Transl Med 2017;15:13. DOI PubMed PMC
65. Kennedy EA, King KY, Baldridge MT. Mouse microbiota models: comparing germ-free mice and antibiotics treatment as tools for
modifying gut bacteria. Front Physiol 2018;9:1534. DOI PubMed PMC
66. Zareie M, Johnson-Henry K, Jury J, et al. Probiotics prevent bacterial translocation and improve intestinal barrier function in rats
following chronic psychological stress. Gut 2006;55:1553-60. DOI PubMed PMC
67. Emge JR, Huynh K, Miller EN, et al. Modulation of the microbiota-gut-brain axis by probiotics in a murine model of inflammatory
bowel disease. Am J Physiol Gastrointest Liver Physiol 2016;310:G989-98. DOI PubMed
68. Messaoudi M, Lalonde R, Violle N, et al. Assessment of psychotropic-like properties of a probiotic formulation (Lactobacillus
helveticus R0052 and Bifidobacterium longum R0175) in rats and human subjects. Br J Nutr 2011;105:755-64. DOI PubMed
69. Messaoudi M, Violle N, Bisson JF, Desor D, Javelot H, Rougeot C. Beneficial psychological effects of a probiotic formulation
(Lactobacillus helveticus R0052 and Bifidobacterium longum R0175) in healthy human volunteers. Gut Microbes 2011;2:256-61.
DOI PubMed
70. Government of Canada. Product Information. Available from: https://health-products.canada.ca/lnhpd-bdpsnh/info?licence=
80021343. [Last accessed on 4 Sep 2024].
71. Arksey H, O’Malley L. Scoping studies: towards a methodological framework. Int J Soc Res Methodol 2005;8:19-32. DOI
72. Pham MT, Rajić A, Greig JD, Sargeant JM, Papadopoulos A, McEwen SA. A scoping review of scoping reviews: advancing the
approach and enhancing the consistency. Res Synth Methods 2014;5:371-85. DOI PubMed PMC
73. Mazzantini D, Calvigioni M, Celandroni F, Lupetti A, Ghelardi E. Spotlight on the compositional quality of probiotic formulations
marketed worldwide. Front Microbiol 2021;12:693973. DOI PubMed PMC
74. Kolaček S, Hojsak I, Berni Canani R, et al; ESPGHAN Working Group for Probiotics and Prebiotics. Commercial probiotic products:
a call for improved quality control. A position paper by the ESPGHAN Working Group for probiotics and prebiotics. J Pediatr
Gastroenterol Nutr 2017;65:117-24. DOI PubMed
75. Ma L, Tu H, Chen T. Postbiotics in human health: a narrative review. Nutrients 2023;15:291. DOI PubMed PMC
76. Belzer C, de Vos WM. Microbes inside - from diversity to function: the case of Akkermansia. ISME J 2012;6:1449-58. DOI
PubMed PMC
77. Cani PD, Depommier C, Derrien M, Everard A, de Vos WM. Akkermansia muciniphila: paradigm for next-generation beneficial
microorganisms. Nat Rev Gastroenterol Hepatol 2022;19:625-37. DOI PubMed
78. Cani PD, de Vos WM. Next-generation beneficial microbes: the case of Akkermansia muciniphila. Front Microbiol 2017;8:1765.
DOI PubMed PMC
79. Wang L, Tang L, Feng Y, et al. A purified membrane protein from Akkermansia muciniphila or the pasteurised bacterium blunts
+
colitis associated tumourigenesis by modulation of CD8 T cells in mice. Gut 2020;69:1988-97. DOI PubMed PMC
80. Plovier H, Everard A, Druart C, et al. A purified membrane protein from Akkermansia muciniphila or the pasteurized bacterium
improves metabolism in obese and diabetic mice. Nat Med 2017;23:107-13. DOI PubMed
81. Ashrafian F, Keshavarz Azizi Raftar S, Shahryari A, et al. Comparative effects of alive and pasteurized Akkermansia muciniphila on
normal diet-fed mice. Sci Rep 2021;11:17898. DOI PubMed PMC
82. Wang J, Xiang R, Wang R, et al. The variable oligomeric state of Amuc_1100 from Akkermansia muciniphila. J Struct Biol
2020;212:107593. DOI PubMed
83. Shi M, Yue Y, Ma C, Dong L, Chen F. Pasteurized Akkermansia muciniphila ameliorate the LPS-induced intestinal barrier
dysfunction via modulating AMPK and NF-κB through TLR2 in Caco-2 cells. Nutrients 2022;14:764. DOI PubMed PMC
84. Gu Z, Pei W, Shen Y, et al. Akkermansia muciniphila and its outer protein Amuc_1100 regulates tryptophan metabolism in colitis.
Food Funct 2021;12:10184-95. DOI PubMed
85. Myint AM, Halaris A. Imbalances in kynurenines as potential biomarkers in the diagnosis and treatment of psychiatric disorders.
Front Psychiatry 2022;13:913303. DOI PubMed PMC
86. Ottman N, Reunanen J, Meijerink M, et al. Pili-like proteins of Akkermansia muciniphila modulate host immune responses and gut
barrier function. PLoS One 2017;12:e0173004. DOI PubMed PMC
87. Muccioli GG, Naslain D, Bäckhed F, et al. The endocannabinoid system links gut microbiota to adipogenesis. Mol Syst Biol
2010;6:392. DOI PubMed PMC
88. Carabotti M, Scirocco A, Maselli MA, Severi C. The gut-brain axis: interactions between enteric microbiota, central and enteric
nervous systems. Ann Gastroenterol 2015;28:203-9. PubMed PMC
89. Nie X, Kitaoka S, Tanaka K, et al. The innate immune receptors TLR2/4 mediate repeated social defeat stress-induced social
avoidance through prefrontal microglial activation. Neuron 2018;99:464-79.e7. DOI PubMed
90. Quave CB, Nieto SJ, Haile CN, Kosten TA. Immune receptor toll-like receptor 4 contributes to stress-induced affective responses in a
sex-specific manner. Brain Behav Immun Health 2021;14:100248. DOI PubMed PMC
91. Figueroa-Hall LK, Paulus MP, Savitz J. Toll-like receptor signaling in depression. Psychoneuroendocrinology 2020;121:104843.
DOI PubMed PMC
92. Hung YY, Huang KW, Kang HY, Huang GY, Huang TL. Antidepressants normalize elevated Toll-like receptor profile in major

