arXiv Open Access 2022

Accurate RNA 3D structure prediction using a language model-based deep learning approach

Tao Shen Zhihang Hu Siqi Sun Di Liu Felix Wong +12 lainnya
Lihat Sumber

Abstrak

Accurate prediction of RNA three-dimensional (3D) structure remains an unsolved challenge. Determining RNA 3D structures is crucial for understanding their functions and informing RNA-targeting drug development and synthetic biology design. The structural flexibility of RNA, which leads to scarcity of experimentally determined data, complicates computational prediction efforts. Here, we present RhoFold+, an RNA language model-based deep learning method that accurately predicts 3D structures of single-chain RNAs from sequences. By integrating an RNA language model pre-trained on ~23.7 million RNA sequences and leveraging techniques to address data scarcity, RhoFold+ offers a fully automated end-to-end pipeline for RNA 3D structure prediction. Retrospective evaluations on RNA-Puzzles and CASP15 natural RNA targets demonstrate RhoFold+'s superiority over existing methods, including human expert groups. Its efficacy and generalizability are further validated through cross-family and cross-type assessments, as well as time-censored benchmarks. Additionally, RhoFold+ predicts RNA secondary structures and inter-helical angles, providing empirically verifiable features that broaden its applicability to RNA structure and function studies.

Penulis (17)

T

Tao Shen

Z

Zhihang Hu

S

Siqi Sun

D

Di Liu

F

Felix Wong

J

Jiuming Wang

J

Jiayang Chen

Y

Yixuan Wang

L

Liang Hong

J

Jin Xiao

L

Liangzhen Zheng

T

Tejas Krishnamoorthi

I

Irwin King

S

Sheng Wang

P

Peng Yin

J

James J. Collins

Y

Yu Li

Format Sitasi

Shen, T., Hu, Z., Sun, S., Liu, D., Wong, F., Wang, J. et al. (2022). Accurate RNA 3D structure prediction using a language model-based deep learning approach. https://arxiv.org/abs/2207.01586

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Tahun Terbit
2022
Bahasa
en
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arXiv
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Open Access ✓