计算机科学
相互依存
序列(生物学)
计算生物学
编码(社会科学)
编码器
DNA测序
仿真
Petri网
生物生产
编码(内存)
推论
人工智能
理论计算机科学
解码方法
鉴定(生物学)
分布式计算
合成生物学
系统生物学
编码
翻译(生物学)
顺序图
体系结构域
表达式(计算机科学)
模块化设计
生物
组分(热力学)
作者
Mingchen Li,Yuchen Ren,Peng Ye,Jiabei Cheng,Xinzhu Ma,Yuchen Cai,Wanli Ouyang,Bozitao Zhong,Banghao Wu,Nanqing Dong,Liang Hong,Pan Tan
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2025-03-02
标识
DOI:10.1101/2025.02.26.640480
摘要
Abstract The interdependent orchestration of proteins, coding DNA sequences (CDS), and adjacent regulatory DNA elements underpins biological functionality, where evolutionary constraints shape codon usage, transcriptional regulation, and structural stability. We present ProDMM, a multimodal framework that deciphers these systemic relationships through unified sequence modeling. Integrating a context-aware encoder with conditional generation, our architecture captures codependent patterns between protein motifs and cis-regulatory syntax. ProDMM’s encoder demonstrates superior predictive capabilities in forecasting pathway-level phenotypes and protein expression profiles, outperforming conventional single-modality approaches. Its decoder generates synthetically optimized regulatory elements by resolving spatial dependencies between coding sequences and adjacent non-coding regions, enabling transcriptional fine-tuning unavailable to sequence-agnostic methods. By resolving how localized CDS-NCDS-protein interdependencies propagate to system-level phenotypes, ProDMM establishes a paradigm for holistic biological sequence engineering. This approach enables coordinated optimization of translation efficiency, enzymatic activity, and pathway flux, offering transformative potential for designing tailored biosynthesis systems and advancing sustainable bioproduction strategies.
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