Erik Procko, Ph.D.
Affiliations: | University of Illinois, Urbana-Champaign, Urbana-Champaign, IL | ||
2008 | Harvard University, Cambridge, MA, United States |
Area:
Membrane Protein Structure and Function, Molecular Recognition, Neurotransmitters, Taste, G Protein-Coupled ReceptorsGoogle:
"Erik Procko"Mean distance: 17.7 | S | N | B | C | P |
Cross-listing: Chemistry Tree
Parents
Sign in to add mentorRachelle Gaudet | grad student | 2008 | Harvard (Chemistry Tree) | |
(General mechanisms for ABC transporters revealed by the transporter associated with antigen processing.) |
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Publications
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Chan MC, Chan KK, Procko E, et al. (2023) Machine Learning Guided Design of High-Affinity ACE2 Decoys for SARS-CoV-2 Neutralization. The Journal of Physical Chemistry. B. 127: 1995-2001 |
Chan MC, Chan KK, Procko E, et al. (2021) Machine learning guided design of high affinity ACE2 decoys for SARS-CoV-2 neutralization. Biorxiv : the Preprint Server For Biology |
McShan AC, Devlin CA, Morozov GI, et al. (2021) TAPBPR promotes antigen loading on MHC-I molecules using a peptide trap. Nature Communications. 12: 3174 |
Chan KK, Dorosky D, Sharma P, et al. (2020) Engineering human ACE2 to optimize binding to the spike protein of SARS coronavirus 2. Science (New York, N.Y.) |
Park J, Gill KS, Aghajani AA, et al. (2020) Engineered receptors for human cytomegalovirus that are orthogonal to normal human biology. Plos Pathogens. 16: e1008647 |
Procko E. (2020) The sequence of human ACE2 is suboptimal for binding the S spike protein of SARS coronavirus 2. Biorxiv : the Preprint Server For Biology |
Zhang J, Kim EC, Chen C, et al. (2020) Identifying mutation hotspots reveals pathogenetic mechanisms of KCNQ2 epileptic encephalopathy. Scientific Reports. 10: 4756 |
McShan AC, Devlin CA, Overall SA, et al. (2019) Molecular determinants of chaperone interactions on MHC-I for folding and antigen repertoire selection. Proceedings of the National Academy of Sciences of the United States of America |
Heredia JD, Park J, Choi H, et al. (2019) Conformational engineering of HIV-1 Env based on mutational tolerance in the CD4 and PG16 bound states. Journal of Virology |
Park J, Selvam B, Sanematsu K, et al. (2019) Structural architecture of a dimeric class C GPCR based on co-trafficking of sweet taste receptor subunits. The Journal of Biological Chemistry |