1. Academic Validation
  2. De novo design of transmembrane fluorescence-activating proteins

De novo design of transmembrane fluorescence-activating proteins

  • Nature. 2025 Apr;640(8057):249-257. doi: 10.1038/s41586-025-08598-8.
Jingyi Zhu # 1 2 3 4 Mingfu Liang # 1 2 3 4 Ke Sun # 2 3 4 Yu Wei 2 3 4 Ruiying Guo 2 3 4 Lijing Zhang 2 3 4 Junhui Shi 2 3 4 Dan Ma 2 3 4 Qi Hu 2 3 4 Gaoxingyu Huang 2 3 4 Peilong Lu 5 6 7
Affiliations

Affiliations

  • 1 College of Life Sciences, Zhejiang University, Hangzhou, China.
  • 2 Westlake Laboratory of Life Sciences and Biomedicine, Hangzhou, China.
  • 3 Research Center for Industries of the Future, School of Life Sciences, Westlake University, Hangzhou, China.
  • 4 Institute of Biology, Westlake Institute for Advanced Study, Hangzhou, China.
  • 5 Westlake Laboratory of Life Sciences and Biomedicine, Hangzhou, China. lupeilong@westlake.edu.cn.
  • 6 Research Center for Industries of the Future, School of Life Sciences, Westlake University, Hangzhou, China. lupeilong@westlake.edu.cn.
  • 7 Institute of Biology, Westlake Institute for Advanced Study, Hangzhou, China. lupeilong@westlake.edu.cn.
  • # Contributed equally.
Abstract

The recognition of ligands by transmembrane proteins is essential for the exchange of Materials, energy and information across biological membranes. Progress has been made in the de novo design of transmembrane proteins1-6, as well as in designing water-soluble proteins to bind small molecules7-12, but de novo design of transmembrane proteins that tightly and specifically bind to small molecules remains an outstanding challenge13. Here we present the accurate design of ligand-binding transmembrane proteins by integrating deep learning and energy-based methods. We designed pre-organized ligand-binding pockets in high-quality four-helix backbones for a fluorogenic ligand, and generated a transmembrane span using gradient-guided hallucination. The designer transmembrane proteins specifically activated fluorescence of the target fluorophore with mid-nanomolar affinity, exhibiting higher brightness and quantum yield compared to those of enhanced green fluorescent protein. These proteins were highly active in the membrane fraction of live Bacterial and eukaryotic cells following expression. The crystal and cryogenic electron microscopy structures of the designer protein-ligand complexes were very close to the structures of the design models. We showed that the interactions between ligands and transmembrane proteins within the membrane can be accurately designed. Our work paves the way for the creation of new functional transmembrane proteins, with a wide range of applications including imaging, ligand sensing and membrane transport.

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