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Research PaperResearchia:202609.30077

RNA Design via Conditioned Flow Matching and Finite-Policy Reinforcement Learning

Zefeng Lin

Abstract

RNA design aims to identify sequences that fold into specified secondary structures. Existing methods formulate the task as target-specific search or conditional generation. However, natural RNA evolution proceeds through sequence variation and selection, with compensatory substitutions, whereas these methods do not explicitly model this process. To address this limitation, we propose a two-stage framework comprising RNA Inverse-Folding Flow (RNA-IFlow) and RNA-IFlow-RL. RNA-IFlow uses structure...

Submitted: September 30, 2026Subjects: Biochemistry; Pharmaceutical Research

Description / Details

RNA design aims to identify sequences that fold into specified secondary structures. Existing methods formulate the task as target-specific search or conditional generation. However, natural RNA evolution proceeds through sequence variation and selection, with compensatory substitutions, whereas these methods do not explicitly model this process. To address this limitation, we propose a two-stage framework comprising RNA Inverse-Folding Flow (RNA-IFlow) and RNA-IFlow-RL. RNA-IFlow uses structure-conditioned Dirichlet Flow Matching to model coordinated variation across the sequence, while RNA-IFlow-RL maps the learned flow to a pairing-preserving finite policy and refines it with thermodynamic feedback. Our framework achieves leading performance on multiple benchmarks, reaching 85.19% Pass@1 on Rfam-27. Further analyses reveal thermodynamic gains, policy dynamics, and robustness across settings. Our work couples coordinated variation with thermodynamic selection, offering a novel paradigm for RNA design.


Source: arXiv:2609.36885v1 - http://arxiv.org/abs/2609.36885v1 PDF: https://arxiv.org/pdf/2609.36885v1 Original Link: http://arxiv.org/abs/2609.36885v1

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Submission Info
Date:
Sep 30, 2026
Topic:
Pharmaceutical Research
Area:
Biochemistry
Comments:
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