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Published:
DDPM: high quality image synthesis results using different probabilisitc models Read more
Published in Thirty-seventh Conference on Neural Information Processing Systems (NeurIPS 2023), 2023
Author: Shiwei Liu*, Tian Zhu*, Milong Ren, Chungong Yu, Dongbo Bu, Haicang Zhang
In this work, we propose SidechainDiff, a representation learning-based approach that leverages unlabelled experimental protein structures. SidechainDiff utilizes a Riemannian diffusion model to learn the generative process of side-chain conformations and can also give the structural context representations of mutations on the protein-protein interface. Read more
Published in Forty-first International Conference on Machine Learning (ICML 2024), 2024
Author: Tian Zhu, Milong Ren, Haicang Zhang
We present AbX, a new score-based diffusion generative model guided by evolutionary, physical, and geometric constraints for antibody design. AbX is the first score-based diffusion model with continuous timesteps for antibody design, jointly modeling the discrete sequence space and the $SE(3)$ structure space. Read more
Published in Forty-first International Conference on Machine Learning (ICML 2024), 2024
Author: Milong Ren, Tian Zhu, Haicang Zhang
We propose CarbonNovo, a unified energy-based model for jointly generating protein structure and sequence. Specifically, we leverage a score-based generative model and Markov Random Fields for describing the energy landscape of protein structure and sequence. Read more
Published in Bioinformatics, 2024
Author: Xiaoyang Hou*, Tian Zhu*, Milong Ren*, Bo Duan, Chunming Zhang, Dongbo Bu, Shiwei Sun
We present a novel contrastive learning strategy for molecular representation learning, named Geometric Triangle Awareness Model (GTAM). This method integrates innovative molecular encoders for both 2D graphs and 3D conformations, enabling the accurate capture of geometric dependencies among edges in graph-based molecular structures. Read more
Published in Thirty-eighth Annual Conference on Neural Information Processing Systems (NeurIPS 2024), AIDrugX Workshop, 2024
Author: Tian Zhu*, Xiaoyang Hou*, Milong Ren, Dongbo Bu, Xin Gao, Chunming Zhang, Shiwei Sun
To enhance generation performance and training stability, we propose GGFlow, a discrete flow matching generative model incorporating optimal transport for molecular graphs and it incorporates an edge-augmented graph transformer to enable the direct communications among chemical bounds. Additionally, GGFlow introduces a novel goal-guided generation framework to control the generative trajectory of our model, aiming to design novel molecular structures with the desired properties. Read more
Published in BioRxiv, 2024
Author: Tian Zhu*, Milong Ren*, Zaikai He, Siyuan Tao, Ming Li, Dongbo Bu, Haicang Zhang
We propose ImmuneFold, a transfer learning approach that fine-tunes ESMFold specifically for immune proteins. We leverage low-rank adaption (LoRA), a parameter-efficient fine-tuning technique that requires considerably less memory and substantially fewer parameters. Read more