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Machine learning's role in directed evolution falls short due to misaligned goals

A retrospective on machine learning's impact on directed evolution reveals a significant gap between the goals of ML-assisted directed evolution (MLDE) researchers and the broader field. While MLDE researchers often aim to identify the single optimal protein, the traditional directed evolution approach prioritizes finding a sufficient protein within practical time and resource constraints. This disconnect, particularly the neglect of DNA synthesis costs in many MLDE methods, limits their real-world applicability. The author suggests a reframe of MLDE objectives to better align with practical constraints, highlighting recent exceptions and emphasizing the potential for synergy. AI

IMPACT Highlights a disconnect in research goals that may hinder practical applications of machine learning in protein engineering.

RANK_REASON The item is a retrospective paper discussing research methodology in machine learning for directed evolution. [lever_c_demoted from research: ic=1 ai=1.0]

Read on Hugging Face Daily Papers →

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Machine learning's role in directed evolution falls short due to misaligned goals

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The item is a retrospective paper discussing research methodology in machine learning for directed evolution. [lever_c_demoted from research: ic=1 ai=1.0]
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COVERAGE [1]

  1. Hugging Face Daily Papers TIER_1 English(EN) ·

    Advances in Machine Learning for Directed Evolution: A Five-Year Retrospective

    The last five-plus years have seen many protein engineering disciplines transformed by advances in machine learning (ML), but the same cannot be said for directed evolution. Reflecting on a previously co-authored perspective, I discuss why I believe this to be the case, arguing t…