| A | B | C | D | E | F | G | H | I | J | K | L | M | N | O | P | Q | R | S | T | U | V | W | X | Y | Z | AA | AB | |
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1 | Date Added | Urgency/Rank | Title | First Author | Year Published | In Mendeley? | ||||||||||||||||||||||
2 | **Could this be used for SusR?** | Systematic approach for dissecting the molecular mechanisms of transcriptional regulation in bacteria | http://www.pnas.org/content/early/2018/05/02/1722055115?collection= | |||||||||||||||||||||||||
3 | TetR in bacteria | https://www.nature.com/articles/s41467-019-09479-1?utm_source=ncomms_etoc&utm_medium=email&utm_campaign=toc_41467_10_1&utm_content=20190410&WT.ec_id=NCOMMS-20190410&sap-outbound-id=1A1D5E12F2DA7B74E866B7B4C097FA0475282350 | ||||||||||||||||||||||||||
4 | Tools and Approaches for Dissecting Protein Bacteriocin Import in Gram-Negative Bacteria | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6455109/ | ||||||||||||||||||||||||||
5 | Multiple Signals Govern Utilization of a Polysaccharide in the Gut Bacterium Bacteroides thetaiotaomicron | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5061871/ | ||||||||||||||||||||||||||
6 | Rewiring bacterial two-component systems by modular DNA-binding domain swapping | https://www.nature.com/articles/s41589-019-0286-6?utm_source=nchembio_etoc&utm_medium=email&utm_campaign=toc_41589_15_7&utm_content=20190625&WT.ec_id=NCHEMBIO-201907&sap-outbound-id=77217E64C34387E55F9A5C46314769ED879F058F&mkt-key=005056B0331B1EE88A8E031BFB468E8E | ||||||||||||||||||||||||||
7 | Biochemical characterization of syntenic xyloglucan utilization loci in human gut Bacteroidetesreveals adaption to polysaccharide sidechain diversity. | https://www.ncbi.nlm.nih.gov/pubmed/31420336 | ||||||||||||||||||||||||||
8 | Large-Scale Analyses of Human Microbiomes Reveal Thousands of Small, Novel Genes | https://www.sciencedirect.com/science/article/pii/S0092867419307810 | ||||||||||||||||||||||||||
9 | Dynamic oligopeptide acquisition by the RagAB transporter from Porphyromonas gingivalis | https://www.biorxiv.org/content/10.1101/755678v1 | ||||||||||||||||||||||||||
10 | https://www.cell.com/cell/pdf/S0092-8674(19)30899-2.pdf | |||||||||||||||||||||||||||
11 | Depletion of microbiome-derived molecules in the host using Clostridium genetics | https://science.sciencemag.org/content/366/6471/eaav1282?utm_campaign=toc_sci-mag_2019-12-12&et_rid=196458176&et_cid=3121433 | ||||||||||||||||||||||||||
12 | A metagenomic strategy for harnessing the chemical repertoire of the human microbiome | https://science.sciencemag.org/content/366/6471/eaax9176?utm_campaign=toc_sci-mag_2019-12-12&et_rid=196458176&et_cid=3121433 | ||||||||||||||||||||||||||
13 | Cooking shapes the structure and function of the gut microbiome | https://www.nature.com/articles/s41564-019-0569-4?utm_source=nmicrobiol_etoc&utm_medium=email&utm_campaign=toc_41564_4_12&utm_content=20191126&WT.ec_id=NMICROBIOL-201912&sap-outbound-id=39C9DFB4FCB195EBDA805365FAA8370858B49CAA&utm_source=hybris-campaign&utm_medium=email&utm_campaign=000_CKN6573_0000017280_41564-NatureMicrobiology-EAlert-Dec2019&utm_content=EN_internal_38382_20191126&mkt-key=005056B0331B1EE88A8E031BFB468E8E | ||||||||||||||||||||||||||
14 | Intestinal serotonin and fluoxetine exposure modulate bacterial colonization in the gut | https://www.nature.com/articles/s41564-019-0540-4?utm_source=nmicrobiol_etoc&utm_medium=email&utm_campaign=toc_41564_4_12&utm_content=20191126&WT.ec_id=NMICROBIOL-201912&sap-outbound-id=39C9DFB4FCB195EBDA805365FAA8370858B49CAA&utm_source=hybris-campaign&utm_medium=email&utm_campaign=000_CKN6573_0000017280_41564-NatureMicrobiology-EAlert-Dec2019&utm_content=EN_internal_38382_20191126&mkt-key=005056B0331B1EE88A8E031BFB468E8E | ||||||||||||||||||||||||||
15 | Gut bacteria responding to dietary change encode sialidases that exhibit preference for red meat-associated carbohydrates | https://www.nature.com/articles/s41564-019-0564-9?utm_source=nmicrobiol_etoc&utm_medium=email&utm_campaign=toc_41564_4_12&utm_content=20191126&WT.ec_id=NMICROBIOL-201912&sap-outbound-id=39C9DFB4FCB195EBDA805365FAA8370858B49CAA&utm_source=hybris-campaign&utm_medium=email&utm_campaign=000_CKN6573_0000017280_41564-NatureMicrobiology-EAlert-Dec2019&utm_content=EN_internal_38382_20191126&mkt-key=005056B0331B1EE88A8E031BFB468E8E | ||||||||||||||||||||||||||
16 | Mucin glycans attenuate the virulence of Pseudomonas aeruginosa in infection | https://www.nature.com/articles/s41564-019-0581-8?utm_source=nmicrobiol_etoc&utm_medium=email&utm_campaign=toc_41564_4_12&utm_content=20191126&WT.ec_id=NMICROBIOL-201912&sap-outbound-id=39C9DFB4FCB195EBDA805365FAA8370858B49CAA&utm_source=hybris-campaign&utm_medium=email&utm_campaign=000_CKN6573_0000017280_41564-NatureMicrobiology-EAlert-Dec2019&utm_content=EN_internal_38382_20191126&mkt-key=005056B0331B1EE88A8E031BFB468E8E | ||||||||||||||||||||||||||
17 | Deciphering the unique cellulose degradation mechanism of the ruminal bacterium Fibrobacter succinogenes S85 | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6851124/ | ||||||||||||||||||||||||||
18 | Microbiota-derived peptide mimics drive lethal inflammatory cardiomyopathy | https://science.sciencemag.org/content/366/6467/881?utm_campaign=toc_sci-mag_2019-11-14&et_rid=196458176&et_cid=3074020 | ||||||||||||||||||||||||||
19 | Human gut bacteria contain acquired interbacterial defence systems | https://www.nature.com/articles/s41586-019-1708-z?WT.ec_id=NATURE-201910&sap-outbound-id=A93E1D86FFD55548140E9BD432EE87AE8803B727&utm_source=hybris-campaign&utm_medium=email&utm_campaign=000_SKN6563_0000016535_41586-Nature-20191031-EAlert&utm_content=EN_internal_36376_20191031&mkt-key=005056B0331B1EE88A8E031BFB468E8E | https://www.nature.com/articles/d41586-019-02974-x?WT.ec_id=NATURE-20191031&utm_source=nature_etoc&utm_medium=email&utm_campaign=20191031&sap-outbound-id=A93E1D86FFD55548140E9BD432EE87AE8803B727&utm_source=hybris-campaign&utm_medium=email&utm_campaign=000_SKN6563_0000016535_41586-Nature-20191031-EAlert&utm_content=EN_internal_36376_20191031&mkt-key=005056B0331B1EE88A8E031BFB468E8E | |||||||||||||||||||||||||
20 | Whole Food–Based Approaches to Modulating Gut Microbiota and Associated Diseases | https://www.annualreviews.org/doi/10.1146/annurev-food-111519-014337 | ||||||||||||||||||||||||||
21 | Microbial Production of Bioactive Chemicals for Human Health | https://www.sciencedirect.com/science/article/pii/S2214799319301365 | ||||||||||||||||||||||||||
22 | Monitoring glycosidase activity for clustered sugar substrates, a study on β-glucuronidase | https://pubs.rsc.org/en/content/articlehtml/2019/ra/c9ra08847d | ||||||||||||||||||||||||||
23 | Ensuring Success Among First-Generation, Low-Income, and Underserved Minority Students: Developing a Unified Community of Support | https://journals.sagepub.com/doi/full/10.1177/0002764219869413?journalCode=absb& | ||||||||||||||||||||||||||
24 | Exploring interactions between xenobiotics, microbiota, and neurotoxicity in zebrafish | https://www.sciencedirect.com/science/article/pii/S0161813X19301354 | ||||||||||||||||||||||||||
25 | Commensal Bacteroidetes protect against Klebsiella pneumoniae colonization and transmission through IL-36 signalling | https://www.nature.com/articles/s41564-019-0640-1?utm_source=nmicrobiol_etoc&utm_medium=email&utm_campaign=toc_41564_5_2&utm_content=20200129&WT.ec_id=NMICROBIOL-202002&sap-outbound-id=5C6874A3FA2507D5A6C66BA809B8239E83445D94&mkt-key=005056B0331B1EE88A8E031BFB468E8E | ||||||||||||||||||||||||||
26 | Diet-derived galacturonic acid regulates virulence and intestinal colonization in enterohaemorrhagic Escherichia coli and Citrobacter rodentium | https://www.nature.com/articles/s41564-019-0641-0?utm_source=nmicrobiol_etoc&utm_medium=email&utm_campaign=toc_41564_5_2&utm_content=20200129&WT.ec_id=NMICROBIOL-202002&sap-outbound-id=5C6874A3FA2507D5A6C66BA809B8239E83445D94&mkt-key=005056B0331B1EE88A8E031BFB468E8E | ||||||||||||||||||||||||||
27 | Diet–microbiota interactions and personalized nutrition | https://www.nature.com/articles/s41579-019-0256-8?utm_source=internal&utm_medium=alert&utm_campaign=fcus-microbiometranslation&utm_content=dietmicrobiotainteractions&sap-outbound-id=5C6874A3FA2507D5A6C66BA809B8239E83445D94&mkt-key=005056B0331B1EE88A8E031BFB468E8E | ||||||||||||||||||||||||||
28 | https://www.nature.com/collections/eccfeecfae?WT.ec_id=NATURE-20200130&utm_source=nature_etoc&utm_medium=email&utm_campaign=20200130&sap-outbound-id=826B7C5D60887F4DF45028916F44F8C7356F732F&mkt-key=005056B0331B1EE88A8E031BFB468E8E | |||||||||||||||||||||||||||
29 | The role of the microbiota in sedentary lifestyle disorders and ageing: lessons from the animal kingdom | https://onlinelibrary.wiley.com/doi/full/10.1111/joim.13021 | ||||||||||||||||||||||||||
30 | Microbial-Based and Microbial-Targeted Therapies for Inflammatory Bowel Diseases | https://link.springer.com/article/10.1007%2Fs10620-020-06090-z | ||||||||||||||||||||||||||
31 | Precision Microbiome Modulation with Discrete Dietary Fiber Structures Directs Short-Chain Fatty Acid Production | https://www.sciencedirect.com/science/article/abs/pii/S1931312820300457?via%3Dihub | ||||||||||||||||||||||||||
32 | Metabolism of multiple glycosaminoglycans by Bacteroides thetaiotaomicron is orchestrated by a versatile core genetic locus | https://www.nature.com/articles/s41467-020-14509-4 | ||||||||||||||||||||||||||
33 | Relationship Between the Gut Microbiome and Systemic Chemotherapy | https://link.springer.com/article/10.1007%2Fs10620-020-06119-3 | ||||||||||||||||||||||||||
34 | Harvesting of Prebiotic Fructooligosaccharides by Nonbeneficial Human Gut Bacteria. | https://www.ncbi.nlm.nih.gov/pubmed/31915220 | ||||||||||||||||||||||||||
35 | Impact of host and environmental factors on β-glucuronidase enzymatic activity: implications for gastrointestinal serotonin. | https://www.ncbi.nlm.nih.gov/pubmed/32146834 | ||||||||||||||||||||||||||
36 | Computational approach to the systematic prediction of glycolytic abilities: looking into human microbiota. | https://www.ncbi.nlm.nih.gov/pubmed/32149650 | ||||||||||||||||||||||||||
37 | Maltotriose-based probes for fluorescence and photoacoustic imaging of bacterial infections | https://www.nature.com/articles/s41467-020-14985-8?utm_source=ncomms_etoc&utm_medium=email&utm_campaign=toc_41467_11_1&utm_content=20200311&WT.ec_id=NCOMMS-20200311&sap-outbound-id=9AD377ABD097753EE2DC4BB46CEA7C3D310D419C&mkt-key=005056B0331B1EE88A8E031BFB468E8E | ||||||||||||||||||||||||||
38 | A genome-wide approach for identification and characterisation of metabolite-inducible systems | https://www.nature.com/articles/s41467-020-14941-6?utm_source=ncomms_etoc&utm_medium=email&utm_campaign=toc_41467_11_1&utm_content=20200311&WT.ec_id=NCOMMS-20200311&sap-outbound-id=9AD377ABD097753EE2DC4BB46CEA7C3D310D419C&mkt-key=005056B0331B1EE88A8E031BFB468E8E | ||||||||||||||||||||||||||
39 | The microbiome modulating activity of bile acids | https://www.tandfonline.com/doi/full/10.1080/19490976.2020.1732268 | ||||||||||||||||||||||||||
40 | A Cardiovascular Disease-Linked Gut Microbial Metabolite Acts via Adrenergic Receptors. | https://www.ncbi.nlm.nih.gov/pubmed/32142679 | ||||||||||||||||||||||||||
41 | Diet influences the functions of the human intestinal microbiome | https://www.nature.com/articles/s41598-020-61192-y | ||||||||||||||||||||||||||
42 | Short‐term changes in polysaccharide utilization mechanisms of marine bacterioplankton during a spring phytoplankton bloom | https://sfamjournals.onlinelibrary.wiley.com/doi/abs/10.1111/1462-2920.14971?campaign=wolacceptedarticle | ||||||||||||||||||||||||||
43 | Synergy between Cell Surface Glycosidases and Glycan-Binding Proteins Dictates the Utilization of Specific Beta(1,3)-Glucans by Human Gut Bacteroides. | https://www.ncbi.nlm.nih.gov/pubmed/32265336 | ||||||||||||||||||||||||||
44 | In sickness and health: Effects of gut microbial metabolites on human physiology | https://journals.plos.org/plospathogens/article?id=10.1371/journal.ppat.1008370 | ||||||||||||||||||||||||||
45 | Infection with novel Bacteroides phage BV01 alters host transcriptome and bile acid metabolism in a common human gut microbe | https://www.biorxiv.org/content/10.1101/2020.04.06.028910v2.abstract?%3Fcollection= | ||||||||||||||||||||||||||
46 | Subtle Variations in Dietary-Fiber Fine Structure Differentially Influence the Composition and Metabolic Function of Gut Microbiota | https://msphere.asm.org/content/5/3/e00180-20 | ||||||||||||||||||||||||||
47 | Synergy between Cell Surface Glycosidases and Glycan-Binding Proteins Dictates the Utilization of Specific Beta(1,3)-Glucans by Human Gut Bacteroides | https://mbio.asm.org/content/11/2/e00095-20 | ||||||||||||||||||||||||||
48 | https://link.springer.com/book/10.1007/978-3-030-43246-1 | |||||||||||||||||||||||||||
49 | https://www.nature.com/articles/s41467-020-16274-w?utm_source=ncomms_etoc&utm_medium=email&utm_campaign=toc_41467_11_1&utm_content=20200520&WT.ec_id=NCOMMS-20200520&sap-outbound-id=B87B4B696AE50D341437C46350A6A6FC0F1AE79A | |||||||||||||||||||||||||||
50 | https://pubmed.ncbi.nlm.nih.gov/32386606/ | |||||||||||||||||||||||||||
51 | https://www.biorxiv.org/content/10.1101/2020.06.08.140780v1.full?%3Fcollection= | |||||||||||||||||||||||||||
52 | Personalized Mapping of Drug Metabolism by the Human Gut Microbiome | https://www.cell.com/cell/fulltext/S0092-8674(20)30563-8 | ||||||||||||||||||||||||||
53 | https://science.sciencemag.org/content/369/6499/eaba0165?utm_campaign=toc_sci-mag_2020-07-02&et_rid=196458176&et_cid=3387105 | |||||||||||||||||||||||||||
54 | https://www.ncbi.nlm.nih.gov/pubmed/32611614 | |||||||||||||||||||||||||||
55 | Relationship Between the Gut Microbiome and Systemic Chemotherapy | https://link.springer.com/article/10.1007/s10620-020-06119-3 | ||||||||||||||||||||||||||
56 | The gut microbiome switches mutant p53 from tumour-suppressive to oncogenic | https://www.nature.com/articles/s41586-020-2541-0?WT.ec_id=NATURE-202007&sap-outbound-id=BA0C6B9E5F91E997126E8CF678CCFC7B21CC0F4D | ||||||||||||||||||||||||||
57 | Targeted inhibition of gut bacterial β-glucuronidase activity enhances anticancer drug efficacy | https://pubmed.ncbi.nlm.nih.gov/32170007/ | ||||||||||||||||||||||||||
58 | Adaptation of Syntenic Xyloglucan Utilization Loci of Human Gut Bacteroidetes to Polysaccharide Side Chain Diversity | https://pubmed.ncbi.nlm.nih.gov/31420336/ | ||||||||||||||||||||||||||
59 | Glycan degradation writ large in the ocean | https://www.nature.com/articles/s41564-020-0765-2?utm_source=nmicrobiol_etoc&utm_medium=email&utm_campaign=toc_41564_5_8&utm_content=20200724&WT.ec_id=NMICROBIOL-202008&sap-outbound-id=02304543C00130D0A39BFAA4E85BEE32595B0D98 | ||||||||||||||||||||||||||
60 | A high-resolution transcriptome map identifies small RNA regulation of metabolism in the gut microbe Bacteroides thetaiotaomicron | https://www.nature.com/articles/s41467-020-17348-5?utm_source=ncomms_etoc&utm_medium=email&utm_campaign=toc_41467_11_1&utm_content=20200722&WT.ec_id=NCOMMS-20200722&sap-outbound-id=908770D74A5188831C1B38D0978C8E2DE623BDD6 | ||||||||||||||||||||||||||
61 | Enzymes knuckle down to the job | https://www.nature.com/articles/s41589-020-0585-y?utm_source=nchembio_etoc&utm_medium=email&utm_campaign=toc_41589_16_8&utm_content=20200722&sap-outbound-id=9BEC38AA641B4BE71C60DF53E803B154895336AC | ||||||||||||||||||||||||||
62 | Structural insights into β-1,3-glucan cleavage by a glycoside hydrolase family | https://www.nature.com/articles/s41589-020-0554-5?utm_source=nchembio_etoc&utm_medium=email&utm_campaign=toc_41589_16_8&utm_content=20200722&sap-outbound-id=9BEC38AA641B4BE71C60DF53E803B154895336AC | ||||||||||||||||||||||||||
63 | Prominent members of the human gut microbiota express endo-acting O-glycanases to initiate mucin breakdown | https://www.nature.com/articles/s41467-020-17847-5?utm_source=ncomms_etoc&utm_medium=email&utm_campaign=toc_41467_11_1&utm_content=20200812&WT.ec_id=NCOMMS-20200812&sap-outbound-id=9023BFD5502BCFDA0E3DFD29B24F82E61394E639 | ||||||||||||||||||||||||||
64 | A carbohydrate-active enzyme (CAZy) profile links successful metabolic specialization of Prevotella to its abundance in gut microbiota | https://www.nature.com/articles/s41598-020-69241-2 | ||||||||||||||||||||||||||
65 | Essential oils and microbiota: Implications for diet and weight control | https://www.sciencedirect.com/science/article/abs/pii/S0924224420305434 | ||||||||||||||||||||||||||
66 | Cholesterol Metabolism by Uncultured Human Gut Bacteria Influences Host Cholesterol Leve | https://www.sciencedirect.com/science/article/pii/S193131282030295X | ||||||||||||||||||||||||||
67 | Polysaccharides catabolism by the human gut bacterium -Bacteroides thetaiotaomicron: advances and perspectives | https://www.tandfonline.com/doi/full/10.1080/10408398.2020.1803198 | ||||||||||||||||||||||||||
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