LGQMJun 14

Circuit Tracing in Autoregressive Protein Language Models

arXiv:2606.1604411.6
Predicted impact top 31% in LG · last 90 daysOriginality Highly original
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This work addresses the need for understanding mechanisms in generative protein language models, enabling interpretable and steerable protein generation for computational biology.

ProGenMech is a mechanistic interpretability framework for generative protein language models that uses cross-layer transcoders to recover inter-layer generative computation, outperforming local transcoder baselines in recovering ProGen3's probability distribution and functional scoring behavior while matching the original model's generative distribution in span infilling tasks.

Protein language models (pLMs) can generate novel protein sequences with properties beyond those observed in nature, yet the mechanisms underlying protein generation remain poorly understood. Existing mechanistic interpretability methods based on sparse autoencoders and transcoders primarily focus on protein representation learning models and do not capture the computation required for autoregressive generation. Here, we introduce ProGenMech, a mechanistic interpretability framework for generative protein language models that extends cross-layer transcoders (CLTs) to ProGen3, a sparse Mixture-of-Experts model trained for both causal generation and span infilling. Unlike per-layer approaches, CLTs reconstruct each layer using sparse latent variables from all preceding layers, enabling faithful recovery of inter-layer generative computation. We further develop a zero-shot circuit discovery framework to identify sparse latent circuits responsible for protein generation and fitness prediction. In causal generation and zero-shot fitness estimation tasks, ProGenMech outperforms local transcoder baselines in recovering ProGen3's probability distribution and functional scoring behavior, while matching the original model's generative distribution in span infilling tasks. Moreover, the recovered circuits reveal biologically meaningful motifs and functional regions associated with conserved sequence patterns and protein fitness landscapes, establishing a foundation for interpretable and steerable protein generation.

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