Structural basis for target site selection in RNA-guided DNA transposition systems JU Park, AWL Tsai, E Mehrotra, MT Petassi, SC Hsieh, A Ke, JE Peters, ... Science 373 (6556), 768-774, 2021 | 62 | 2021 |
Genome mining reveals high topological diversity of ω-ester-containing peptides and divergent evolution of ATP-grasp macrocyclases H Lee, M Choi, JU Park, H Roh, S Kim Journal of the American Chemical Society 142 (6), 3013-3023, 2020 | 44 | 2020 |
Structures of the holo CRISPR RNA-guided transposon integration complex JU Park, AWL Tsai, AN Rizo, VH Truong, TX Wellner, RD Schargel, ... Nature 613 (7945), 775-782, 2023 | 39 | 2023 |
Mechanistic details of CRISPR-associated transposon recruitment and integration revealed by cryo-EM JU Park, AWL Tsai, TH Chen, JE Peters, EH Kellogg Proceedings of the National Academy of Sciences 119 (32), e2202590119, 2022 | 27 | 2022 |
Introduction of bifunctionality into the multidomain architecture of the ω-ester-containing peptide plesiocin C Lee, H Lee, JU Park, S Kim Biochemistry 59 (3), 285-289, 2019 | 22 | 2019 |
CRISPR-Csx28 forms a Cas13b-activated membrane pore required for robust CRISPR-Cas adaptive immunity AR VanderWal, JU Park, B Polevoda, EH Kellogg, MR O’Connell BioRxiv, 2021.11. 02.466367, 2021 | 18 | 2021 |
Csx28 is a membrane pore that enhances CRISPR-Cas13b–dependent antiphage defense AR VanderWal, JU Park, B Polevoda, JK Nicosia, AM Molina Vargas, ... Science 380 (6643), 410-415, 2023 | 13 | 2023 |
Mechanism of target site selection by type VK CRISPR-associated transposases JT George, C Acree, JU Park, M Kong, T Wiegand, YL Pignot, EH Kellogg, ... Science 382 (6672), eadj8543, 2023 | 7 | 2023 |
Multiple adaptations underly co-option of a CRISPR surveillance complex for RNA-guided DNA transposition JU Park, MT Petassi, SC Hsieh, E Mehrotra, G Schuler, J Budhathoki, ... Molecular cell 83 (11), 1827-1838. e6, 2023 | 5 | 2023 |