SOTAVerified

Protein Design

Formally, given the design requirements of users, models are required to generate protein amino acid sequences that align with those requirements.

Papers

Showing 101125 of 175 papers

TitleStatusHype
Enhancing the efficiency of protein language models with minimal wet-lab data through few-shot learning0
Fast and Accurate Antibody Sequence Design via Structure Retrieval0
Fast fixed-backbone protein sequence and rotamer design0
Folding and Stabilization of Native-Sequence-Reversed Proteins0
From thermodynamics to protein design: Diffusion models for biomolecule generation towards autonomous protein engineering0
Annotation-guided Protein Design with Multi-Level Domain Alignment0
Generative AI for Controllable Protein Sequence Design: A Survey0
Generative artificial intelligence for de novo protein design0
Generative modeling for protein structures0
Geometric deep learning assists protein engineering. Opportunities and Challenges0
Gradient-Informed Quality Diversity for the Illumination of Discrete Spaces0
Ideal gas behavior of rotamerically defined conformers in native globular proteins0
Implicitly Guided Design with PropEn: Match your Data to Follow the Gradient0
Improving Protein Sequence Design through Designability Preference Optimization0
Iterative Importance Fine-tuning of Diffusion Models0
Lattice protein design using Bayesian learning0
Learning immune receptor representations with protein language models0
Leveraging Deep Generative Model For Computational Protein Design And Optimization0
CCPL: Cross-modal Contrastive Protein Learning0
ProteinWeaver: A Divide-and-Assembly Approach for Protein Backbone Design0
ProteinZero: Self-Improving Protein Generation via Online Reinforcement Learning0
ProtFlow: Fast Protein Sequence Design via Flow Matching on Compressed Protein Language Model Embeddings0
ProT-GFDM: A Generative Fractional Diffusion Model for Protein Generation0
ProtTeX: Structure-In-Context Reasoning and Editing of Proteins with Large Language Models0
Recent advances in interpretable machine learning using structure-based protein representations0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1GraphTransPerplexity6.63Unverified
2StructGNNPerplexity6.4Unverified
3AlphaDesignPerplexity6.3Unverified
4GCAPerplexity6.05Unverified
5GVPPerplexity5.36Unverified
6ProteinMPNNPerplexity4.61Unverified
7PiFoldPerplexity4.55Unverified
8Knowledge-DesignPerplexity3.46Unverified
#ModelMetricClaimedVerifiedStatus
1ESM-IFPerplexity6.44Unverified
2GVP-largePerplexity6.17Unverified