De novo design of high-affinity binders of bioactive helical peptides

被引:0
|
作者
Susana Vázquez Torres
Philip J. Y. Leung
Preetham Venkatesh
Isaac D. Lutz
Fabian Hink
Huu-Hien Huynh
Jessica Becker
Andy Hsien-Wei Yeh
David Juergens
Nathaniel R. Bennett
Andrew N. Hoofnagle
Eric Huang
Michael J. MacCoss
Marc Expòsit
Gyu Rie Lee
Asim K. Bera
Alex Kang
Joshmyn De La Cruz
Paul M. Levine
Xinting Li
Mila Lamb
Stacey R. Gerben
Analisa Murray
Piper Heine
Elif Nihal Korkmaz
Jeff Nivala
Lance Stewart
Joseph L. Watson
Joseph M. Rogers
David Baker
机构
[1] University of Washington,Department of Biochemistry
[2] University of Washington,Institute for Protein Design
[3] University of Washington,Graduate Program in Biological Physics, Structure and Design
[4] University of Washington,Graduate Program in Molecular Engineering
[5] University of Washington,Department of Bioengineering
[6] University of Copenhagen,Department of Drug Design and Pharmacology
[7] University of Washington,Department of Laboratory Medicine and Pathology
[8] University of Washington,Department of Genome Sciences
[9] University of Washington,School of Computer Science and Engineering
[10] University of Washington,Molecular Engineering and Sciences Institute
[11] University of Washington,Howard Hughes Medical Institute
来源
Nature | 2024年 / 626卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Many peptide hormones form an α-helix on binding their receptors1–4, and sensitive methods for their detection could contribute to better clinical management of disease5. De novo protein design can now generate binders with high affinity and specificity to structured proteins6,7. However, the design of interactions between proteins and short peptides with helical propensity is an unmet challenge. Here we describe parametric generation and deep learning-based methods for designing proteins to address this challenge. We show that by extending RFdiffusion8 to enable binder design to flexible targets, and to refining input structure models by successive noising and denoising (partial diffusion), picomolar-affinity binders can be generated to helical peptide targets by either refining designs generated with other methods, or completely de novo starting from random noise distributions without any subsequent experimental optimization. The RFdiffusion designs enable the enrichment and subsequent detection of parathyroid hormone and glucagon by mass spectrometry, and the construction of bioluminescence-based protein biosensors. The ability to design binders to conformationally variable targets, and to optimize by partial diffusion both natural and designed proteins, should be broadly useful.
引用
收藏
页码:435 / 442
页数:7
相关论文
共 50 条
  • [1] De novo design of high-affinity binders of bioactive helical peptides
    Torres, Susana Vazquez
    Leung, Philip J. Y.
    Venkatesh, Preetham
    Lutz, Isaac D.
    Hink, Fabian
    Huynh, Huu-Hien
    Becker, Jessica
    Yeh, Andy Hsien-Wei
    Juergens, David
    Bennett, Nathaniel R.
    Hoofnagle, Andrew N.
    Huang, Eric
    MacCoss, Michael J.
    Exposit, Marc
    Lee, Gyu Rie
    Bera, Asim K.
    Kang, Alex
    De La Cruz, Joshmyn
    Levine, Paul M.
    Li, Xinting
    Lamb, Mila
    Gerben, Stacey R.
    Murray, Analisa
    Heine, Piper
    Korkmaz, Elif Nihal
    Nivala, Jeff
    Stewart, Lance
    Watson, Joseph L.
    Rogers, Joseph M.
    Baker, David
    NATURE, 2024, 626 (7998) : 435 - 442
  • [2] HIGH-THROUGHPUT DE NOVO DESIGN OF STABLE AND HIGH-AFFINITY BINDERS
    Korkmaz, Nihal
    Brunette, T. J.
    Baker, David
    PROTEIN SCIENCE, 2019, 28 : 153 - 153
  • [3] De Novo Discovery of High-Affinity Peptide Binders for the SARS-CoV-2 Spike Protein
    Pomplun, Sebastian
    Jbara, Muhammad
    Quartararo, Anthony J.
    Zhang, Genwei
    Brown, Joseph S.
    Lee, Yen-Chun
    Ye, Xiyun
    Hanna, Stephanie
    Pentelute, Bradley L.
    ACS CENTRAL SCIENCE, 2021, 7 (01) : 156 - 163
  • [4] De novo design and synthesis of amphiphilic α-helical peptides
    Hao, XL
    Chen, XH
    Ye, YH
    PEPTIDES: BIOLOGY AND CHEMISTRY, 1998, : 126 - 127
  • [5] De novo approach to the design of high-affinity carbohydrate ligands in a crystallographically defined system.
    Gagné, RA
    Bundle, DR
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1999, 218 : U188 - U189
  • [6] Design of high-affinity binders to immune modulating receptors for cancer immunotherapy
    Yang, Wei
    Hicks, Derrick R.
    Ghosh, Agnidipta
    Schwartze, Tristin A.
    Conventry, Brian
    Goreshnik, Inna
    Allen, Aza
    Halabiya, Samer F.
    Kim, Chan Johng
    Hinck, Cynthia S.
    Lee, David S.
    Bera, Asim K.
    Li, Zhe
    Wang, Yujia
    Schlichthaerle, Thomas
    Cao, Longxing
    Huang, Buwei
    Garrett, Sarah
    Gerben, Stacey R.
    Rettie, Stephen
    Heine, Piper
    Murray, Analisa
    Edman, Natasha
    Carter, Lauren
    Stewart, Lance
    Almo, Steven C.
    Hinck, Andrew P.
    Baker, David
    NATURE COMMUNICATIONS, 2025, 16 (01)
  • [7] The de novo design of α-helical peptides for supramolecular self-assembly
    Beesley, Joseph L.
    Woolfson, Derek N.
    CURRENT OPINION IN BIOTECHNOLOGY, 2019, 58 : 175 - 182
  • [8] De novo design of α-helical antimicrobial peptides with enhanced therapeutic index
    Chen, Yuxin
    JOURNAL OF BIOTECHNOLOGY, 2008, 136 : S77 - S77
  • [9] de novo design of bioactive peptides: a novel approach for cancer therapeutics
    Istivan, T.
    Gan, E.
    Almansour, N.
    Coloe, P.
    Cosic, I.
    Pirogova, E.
    TUMOR BIOLOGY, 2012, 33 : 51 - 51
  • [10] De novo design of fibrils made of short α-helical coiled coil peptides
    Potekhin, SA
    Melnik, TN
    Popov, V
    Lanina, NF
    Vazina, AA
    Rigler, P
    Verdini, AS
    Corradin, G
    Kajava, AV
    CHEMISTRY & BIOLOGY, 2001, 8 (11): : 1025 - 1032