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1. Spatio-temporal based deep learning for rapid detection and identification of bacterial colonies through lens-free microscopy time-lapses

2. Identification of a two-component regulatory system involved in antimicrobial peptide resistance in Streptococcus pneumoniae.

3. Deletion of the Zinc Transporter Lipoprotein AdcAII Causes Hyperencapsulation of Streptococcus pneumoniae Associated with Distinct Alleles of the Type I Restriction-Modification System

4. Lipid Phases and Cell Geometry During the Cell Cycle of Streptococcus pneumoniae

5. New insights into histidine triad proteins: solution structure of a Streptococcus pneumoniae PhtD domain and zinc transfer to AdcAII.

6. Effects of deletion of the Streptococcus pneumoniae lipoprotein diacylglyceryl transferase gene lgt on ABC transporter function and on growth in vivo.

7. Deletion of the Zinc Transporter Lipoprotein AdcAII Causes Hyperencapsulation of Streptococcus pneumoniae Associated with Distinct Alleles of the Type I Restriction-Modification System

8. Nanoscale dynamics of peptidoglycan assembly during the cell cycle of Streptococcus pneumoniae

9. One-Pot Two-Step Metabolic Labeling of Teichoic Acids and Direct Labeling of Peptidoglycan Reveals Tight Coordination of Both Polymers Inserted into Pneumococcus Cell Wall

10. Peptidoglycan O-acetylation is functionally related to cell wall biosynthesis and cell division inStreptococcus pneumoniae

11. Nanoscale Dynamics of Peptidoglycan Assembly During the Cell Cycle of Streptococcus pneumoniae

12. Nanoscale dynamics of peptidoglycan assembly during the cell cycle of Streptococcus pneumoniae

13. Lipid Phases and Cell Geometry During the Cell Cycle of

14. Nascent teichoic acids insertion into the cell wall directs the localization and activity of the major pneumococcal autolysin LytA

15. Specific and spatial labeling of choline-containing teichoic acids in Streptococcus pneumoniae by click chemistry

16. Peptidoglycan O-acetylation is functionally related to cell wall biosynthesis and cell division in Streptococcus pneumoniae

17. PatA and PatB Form a Functional Heterodimeric ABC Multidrug Efflux Transporter Responsible for the Resistance of Streptococcus pneumoniae to Fluoroquinolones

18. Zinc uptake by Streptococcus pneumoniae depends on both AdcA and AdcAII and is essential for normal bacterial morphology and virulence

19. The Interaction of Streptococcus pneumoniae with Plasmin Mediates Transmigration across Endothelial and Epithelial Monolayers by Intercellular Junction Cleavage

20. Structure of artificial and natural VE-cadherinbased adherens junctions

21. Streptococcus pneumoniaeCholine-Binding Protein E Interaction with Plasminogen/Plasmin Stimulates Migration across the Extracellular Matrix

22. Les biomolécules en biotechnologies: Chapitre 6

23. Streptococcus pneumoniae Lipoproteins and ABC Transporters

24. List of Contributors

25. Structure of the Fiber Head of Ad3, a Non-CAR-Binding Serotype of Adenovirus

26. On-chip microbial culture for the specific detection of very low levels of bacteria

27. Infection with conditionally virulent Streptococcus pneumoniae Δpab strains induces antibody to conserved protein antigens but does not protect against systemic infection with heterologous strains

28. Biochemical characterization of the histidine triad protein PhtD as a cell surface zinc-binding protein of Pneumococcus

29. The Motor Protein Myosin-X Transports VE-Cadherin along Filopodia To Allow the Formation of Early Endothelial Cell-Cell Contacts▿ †

30. AdcAII, a new pneumococcal Zn-binding protein homologous with ABC transporters: biochemical and structural analysis

31. Architecture of the VE-cadherin hexamer

32. L'absence d'une protéine impliquée dans le maintien de la polarité chez la bactérie Gram-négatif Caulobacter crescentus induit une sensibilité à la vancomycine

33. Le fonctionnement du transporteur ABC de Streptococcus pneumoniae impliqué dans la résistance contre les peptides antimicrobiens

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