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Kevin K. Yang
Kevin K. Yang
Microsoft Research
Zweryfikowany adres z microsoft.com - Strona główna
Tytuł
Cytowane przez
Cytowane przez
Rok
Machine-learning-guided directed evolution for protein engineering
KK Yang, Z Wu, FH Arnold
Nature methods, 1, 2019
10092019
Learned protein embeddings for machine learning
KK Yang, Z Wu, CN Bedbrook, FH Arnold
Bioinformatics 34 (15), 2642-2648, 2018
3652018
Machine learning-guided channelrhodopsin engineering enables minimally invasive optogenetics
CN Bedbrook, KK Yang, JE Robinson, ED Mackey, V Gradinaru, ...
Nature methods 16 (11), 1176-1184, 2019
2232019
Protein structure generation via folding diffusion
KE Wu, KK Yang, R van den Berg, S Alamdari, JY Zou, AX Lu, AP Amini
Nature communications 15 (1), 1059, 2024
1672024
Protein sequence design with deep generative models
Z Wu, KE Johnston, FH Arnold, KK Yang
Current opinion in chemical biology 65, 18-27, 2021
1562021
Three-dimensional fibrous scaffolds with microstructures and nanotextures for tissue engineering
R Ng, R Zang, KK Yang, N Liu, ST Yang
Rsc Advances 2 (27), 10110-10124, 2012
1532012
FLIP: Benchmark tasks in fitness landscape inference for proteins
C Dallago, J Mou, KE Johnston, BJ Wittmann, N Bhattacharya, S Goldman, ...
bioRxiv, 2021.11. 09.467890, 2021
1352021
Machine learning to design integral membrane channelrhodopsins for efficient eukaryotic expression and plasma membrane localization
CN Bedbrook, KK Yang, AJ Rice, V Gradinaru, FH Arnold
PLoS computational biology 13 (10), e1005786, 2017
1342017
Evolutionary velocity with protein language models predicts evolutionary dynamics of diverse proteins
BL Hie, KK Yang, PS Kim
Cell Systems 13 (4), 274-285. e6, 2022
111*2022
Convolutions are competitive with transformers for protein sequence pretraining
KK Yang, N Fusi, AX Lu
Cell Systems 15 (3), 286-294. e2, 2024
1052024
Signal peptides generated by attention-based neural networks
Z Wu, KK Yang, MJ Liszka, A Lee, A Batzilla, D Wernick, DP Weiner, ...
ACS Synthetic Biology 9 (8), 2154-2161, 2020
1032020
Adaptive machine learning for protein engineering
BL Hie, KK Yang
Current opinion in structural biology 72, 145-152, 2022
972022
Protein generation with evolutionary diffusion: sequence is all you need
S Alamdari, N Thakkar, R van den Berg, N Tenenholtz, B Strome, ...
BioRxiv, 2023.09. 11.556673, 2023
93*2023
Learned embeddings from deep learning to visualize and predict protein sets
C Dallago, K Schütze, M Heinzinger, T Olenyi, M Littmann, AX Lu, ...
Current Protocols 1 (5), e113, 2021
922021
Machine learning modeling of family wide enzyme-substrate specificity screens
S Goldman, R Das, KK Yang, CW Coley
PLoS computational biology 18 (2), e1009853, 2022
842022
Masked inverse folding with sequence transfer for protein representation learning
KK Yang, N Zanichelli, H Yeh
Protein Engineering, Design and Selection 36, gzad015, 2023
752023
Structure-guided SCHEMA recombination generates diverse chimeric channelrhodopsins
CN Bedbrook, AJ Rice, KK Yang, X Ding, S Chen, EM LeProust, ...
Proceedings of the National Academy of Sciences 114 (13), E2624-E2633, 2017
602017
Exploring evolution-aware &-free protein language models as protein function predictors
M Hu, F Yuan, K Yang, F Ju, J Su, H Wang, F Yang, Q Ding
Advances in Neural Information Processing Systems 35, 38873-38884, 2022
512022
The Generation of Thermostable Fungal Laccase Chimeras by SCHEMA-RASPP Structure-Guided Recombination in Vivo
I Mateljak, A Rice, K Yang, T Tron, M Alcalde
ACS Synthetic Biology 8 (4), 833-843, 2019
442019
Computational scoring and experimental evaluation of enzymes generated by neural networks
SR Johnson, X Fu, S Viknander, C Goldin, S Monaco, A Zelezniak, ...
Nature biotechnology, 1-10, 2024
432024
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