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1. Single-cell analysis reveals that cryptic prophage protease LfgB protects Escherichia coli during oxidative stress by cleaving antitoxin MqsA

2. Toxin/antitoxin systems induce persistence and work in concert with restriction/modification systems to inhibit phage

3. Forming and waking dormant cells: The ppGpp ribosome dimerization persister model

4. A Primary Physiological Role of Toxin/Antitoxin Systems Is Phage Inhibition

5. Combatting Persister Cells With Substituted Indoles

6. Persister Cells Resuscitate Using Membrane Sensors that Activate Chemotaxis, Lower cAMP Levels, and Revive Ribosomes

7. Phages Mediate Bacterial Self-Recognition

8. The Primary Physiological Roles of Autoinducer 2 in Escherichia coli Are Chemotaxis and Biofilm Formation

10. Serine Hydroxymethyltransferase ShrA (PA2444) Controls Rugose Small-Colony Variant Formation in Pseudomonas aeruginosa

11. Substrate Binding Protein DppA1 of ABC Transporter DppBCDF Increases Biofilm Formation in Pseudomonas aeruginosa by Inhibiting Pf5 Prophage Lysis

16. Toxin/Antitoxin Systems Induce Persistence and Work in Concert with Restriction/Modification Systems to Inhibit Phage

18. Promoting Access to Health Technologies in the Post-pandemic Era: Gavi, Global Fund, Unitaid, and Access to COVID-19 Tools Accelerator (ACT-A) Programs

19. Escherichia coli cryptic prophages sense nutrients to influence persister cell resuscitation

20. CRISPR-Cas Controls Cryptic Prophages

21. Are we really studying persister cells?

22. Identification of a potent indigoid persister antimicrobial by screening dormant cells

23. Phages Mediate Bacterial Self-Recognition

24. Ribosome dependence of persister cell formation and resuscitation

25. Escherichia coli Cryptic Prophages Sense Nutrients to Control Persister Cell Resuscitation

26. 'Viable but non-culturable cells' are dead

27. Combatting Persister Cells With Substituted Indoles

28. Lactobacillus acidophilus NS1 attenuates diet-induced obesity and fatty liver

29. Single cell observations show persister cells wake based on ribosome content

32. ppGpp ribosome dimerization model for bacterial persister formation and resuscitation

33. Toxin/Antitoxin System Paradigms: Toxins Bound to Antitoxins Are Not Likely Activated by Preferential Antitoxin Degradation

34. Comment on Metabolomics for a Millenniums-Old Crop: Tea Plant (

35. Persister Cells Resuscitate via Ribosome Modification by 23S rRNA Pseudouridine Synthase RluD

36. Interkingdom signal indole inhibits Pseudomonas aeruginosa persister cell waking

37. The Primary Physiological Roles of Autoinducer 2 in Escherichia coli Are Chemotaxis and Biofilm Formation

38. The anti-allergic activity of Lactobacillus plantarum L67 and its application to yogurt

39. Lactobacillus plantarum L67 glycoprotein protects against cadmium chloride toxicity in RAW 264.7 cells

41. The glycoprotein (18 kDa) isolated from Lactobacillus plantarum L67 suppressed ß-hexosaminidase, histamine, and the expression of TNF-α and IL-4 in the BPA-stimulated RBL-2H3 cells

42. Forming and waking dormant cells: The ppGpp ribosome dimerization persister model

43. Phage Mediate Bacterial Self Recognition

44. Post-segregational Killing and Phage Inhibition Are Not Mediated by Cell Death Through Toxin/Antitoxin Systems

45. Serine Hydroxymethyltransferase ShrA (PA2444) Controls Rugose Small-Colony Variant Formation in Pseudomonas aeruginosa

46. GhoT of the GhoT/GhoS toxin/antitoxin system damages lipid membranes by forming transient pores

47. Comment on Metabolomics for a Millenniums-Old Crop: Tea Plant (Camellia sinensis)

48. Bioactivity of proteins isolated from Lactobacillus plantarum L67 treated with Zanthoxylum piperitum DC glycoprotein

49. The proteins (12 and 15 kDa) isolated from heat-killedLactobacillus plantarumL67 induces apoptosis in HT-29 cells

50. Oligosaccharides Properties

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