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1. Development of 2nd generation aminomethyl spectinomycins that overcome native efflux in Mycobacterium abscessus.

2. A genome-wide atlas of antibiotic susceptibility targets and pathways to tolerance.

3. Synthesis and Structure-Activity Relationship of Thioacetamide-Triazoles against Escherichia coli .

4. Chiral evasion and stereospecific antifolate resistance in Staphylococcus aureus.

5. Azaindole Based Potentiator of Antibiotics against Gram-Negative Bacteria.

6. Synthesis, antibacterial action, and ribosome inhibition of deoxyspectinomycins.

7. Combating Multidrug-Resistant Bacteria by Integrating a Novel Target Site Penetration and Receptor Binding Assay Platform Into Translational Modeling.

8. Discovery and Characterization of the Antimetabolite Action of Thioacetamide-Linked 1,2,3-Triazoles as Disruptors of Cysteine Biosynthesis in Gram-Negative Bacteria.

9. Novel Cassette Assay To Quantify the Outer Membrane Permeability of Five β-Lactams Simultaneously in Carbapenem-Resistant Klebsiella pneumoniae and Enterobacter cloacae .

10. Toward Broad Spectrum Dihydrofolate Reductase Inhibitors Targeting Trimethoprim Resistant Enzymes Identified in Clinical Isolates of Methicillin Resistant Staphylococcus aureus .

11. Structure-Guided In Vitro to In Vivo Pharmacokinetic Optimization of Propargyl-Linked Antifolates.

12. OSPREY Predicts Resistance Mutations Using Positive and Negative Computational Protein Design.

13. MRSA Isolates from United States Hospitals Carry dfrG and dfrK Resistance Genes and Succumb to Propargyl-Linked Antifolates.

14. Charged Propargyl-Linked Antifolates Reveal Mechanisms of Antifolate Resistance and Inhibit Trimethoprim-Resistant MRSA Strains Possessing Clinically Relevant Mutations.

15. Charged Nonclassical Antifolates with Activity Against Gram-Positive and Gram-Negative Pathogens.

16. Nonracemic Antifolates Stereoselectively Recruit Alternate Cofactors and Overcome Resistance in S. aureus.

17. Protein design algorithms predict viable resistance to an experimental antifolate.

18. Understanding the structural mechanisms of antibiotic resistance sets the platform for new discovery.

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