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4. Novel routes to defined post translational modifications using non-canonical amino acids

5. Glycosylation increases active site rigidity leading to improved enzyme stability and turnover

6. Structural characterization of a novel cyclic 2,3-diphosphoglycerate synthetase involved in extremolyte production in the archaeon Methanothermus fervidus.

9. N-linked glycosylation increases horse radish peroxidase rigidity leading to enhanced activity and stability

12. enzyme structure and dynamics figures from Structure and in silico simulations of a cold-active esterase reveals its prime cold-adaptation mechanism

13. The Crystal Structure of Bacillus cereus HblL1

14. Structure and dynamics of a cold-active esterase reveals water entropy and active site accessibility as the likely drivers for cold-adaptation

15. Author Correction:Positive functional synergy of structurally integrated artificial protein dimers assembled by Click chemistry (Communications Chemistry, (2019), 2, 1, (83), 10.1038/s42004-019-0185-5)

16. Association of Fluorescent Protein Pairs and Its Significant Impact on Fluorescence and Energy Transfer

18. Site-Specific Protein Photochemical Covalent Attachment to Carbon Nanotube Side Walls and Its Electronic Impact on Single Molecule Function

20. Molecular basis for functional switching of GFP by two disparate non-native post-translational modifications of a phenyl azide reaction handle† †Electronic supplementary information (ESI) available. See DOI: 10.1039/c6sc00944a Click here for additional data file

23. Association of Fluorescent Protein Pairs and Its Significant Impact on Fluorescence and Energy Transfer.

26. Site-Specific Protein Photochemical Covalent Attachment to Carbon Nanotube Side Walls and Its Electronic Impact on Single Molecule Function

27. ΔFlucs: Brighter Photinus pyralis firefly luciferases identified by surveying consecutive single amino acid deletion mutations in a thermostable variant.

28. Fluorescent Proteins: Crystallization, Structural Determination, and Nonnatural Amino Acid Incorporation.

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