Literature DB >> 32041676

De novo protein design, a retrospective.

Ivan V Korendovych1, William F DeGrado2.   

Abstract

Proteins are molecular machines whose function depends on their ability to achieve complex folds with precisely defined structural and dynamic properties. The rational design of proteins from first-principles, or de novo, was once considered to be impossible, but today proteins with a variety of folds and functions have been realized. We review the evolution of the field from its earliest days, placing particular emphasis on how this endeavor has illuminated our understanding of the principles underlying the folding and function of natural proteins, and is informing the design of macromolecules with unprecedented structures and properties. An initial set of milestones in de novo protein design focused on the construction of sequences that folded in water and membranes to adopt folded conformations. The first proteins were designed from first-principles using very simple physical models. As computers became more powerful, the use of the rotamer approximation allowed one to discover amino acid sequences that stabilize the desired fold. As the crystallographic database of protein structures expanded in subsequent years, it became possible to construct proteins by assembling short backbone fragments that frequently recur in Nature. The second set of milestones in de novo design involves the discovery of complex functions. Proteins have been designed to bind a variety of metals, porphyrins, and other cofactors. The design of proteins that catalyze hydrolysis and oxygen-dependent reactions has progressed significantly. However, de novo design of catalysts for energetically demanding reactions, or even proteins that bind with high affinity and specificity to highly functionalized complex polar molecules remains an importnant challenge that is now being achieved. Finally, the protein design contributed significantly to our understanding of membrane protein folding and transport of ions across membranes. The area of membrane protein design, or more generally of biomimetic polymers that function in mixed or non-aqueous environments, is now becoming increasingly possible.

Entities:  

Keywords:  Protein design

Mesh:

Substances:

Year:  2020        PMID: 32041676      PMCID: PMC7243446          DOI: 10.1017/S0033583519000131

Source DB:  PubMed          Journal:  Q Rev Biophys        ISSN: 0033-5835            Impact factor:   5.318


  325 in total

Review 1.  Tertiary templates for the design of diiron proteins.

Authors:  C M Summa; A Lombardi; M Lewis; W F DeGrado
Journal:  Curr Opin Struct Biol       Date:  1999-08       Impact factor: 6.809

2.  Toward the development of peptide nanofilaments and nanoropes as smart materials.

Authors:  Daniel E Wagner; Charles L Phillips; Wasif M Ali; Grant E Nybakken; Emily D Crawford; Alexander D Schwab; Walter F Smith; Robert Fairman
Journal:  Proc Natl Acad Sci U S A       Date:  2005-08-29       Impact factor: 11.205

3.  A frequent, GxxxG-mediated, transmembrane association motif is optimized for the formation of interhelical Cα-H hydrogen bonds.

Authors:  Benjamin K Mueller; Sabareesh Subramaniam; Alessandro Senes
Journal:  Proc Natl Acad Sci U S A       Date:  2014-02-25       Impact factor: 11.205

Review 4.  The coming of age of de novo protein design.

Authors:  Po-Ssu Huang; Scott E Boyken; David Baker
Journal:  Nature       Date:  2016-09-15       Impact factor: 49.962

5.  De novo design of the hydrophobic cores of proteins.

Authors:  J R Desjarlais; T M Handel
Journal:  Protein Sci       Date:  1995-10       Impact factor: 6.725

6.  Topological stability and self-association of a completely hydrophobic model transmembrane helix in lipid bilayers.

Authors:  Yoshiaki Yano; Tomokazu Takemoto; Satoe Kobayashi; Hiroyuki Yasui; Hiromu Sakurai; Wakana Ohashi; Miki Niwa; Shiroh Futaki; Yukio Sugiura; Katsumi Matsuzaki
Journal:  Biochemistry       Date:  2002-03-05       Impact factor: 3.162

7.  Catalysis of the cleavage of uridine 3'-2,2,2-trichloroethylphosphate by a designed helix-loop-helix motif peptide.

Authors:  Jesus Razkin; Helena Nilsson; Lars Baltzer
Journal:  J Am Chem Soc       Date:  2007-11-07       Impact factor: 15.419

8.  Computational design and characterization of a monomeric helical dinuclear metalloprotein.

Authors:  Jennifer R Calhoun; Hidetoshi Kono; Steven Lahr; Wei Wang; William F DeGrado; Jeffery G Saven
Journal:  J Mol Biol       Date:  2003-12-12       Impact factor: 5.469

9.  Knowledge-based potential for positioning membrane-associated structures and assessing residue-specific energetic contributions.

Authors:  Chaim A Schramm; Brett T Hannigan; Jason E Donald; Chen Keasar; Jeffrey G Saven; William F Degrado; Ilan Samish
Journal:  Structure       Date:  2012-05-09       Impact factor: 5.006

10.  Mutational scanning reveals the determinants of protein insertion and association energetics in the plasma membrane.

Authors:  Assaf Elazar; Jonathan Weinstein; Ido Biran; Yearit Fridman; Eitan Bibi; Sarel Jacob Fleishman
Journal:  Elife       Date:  2016-01-29       Impact factor: 8.140

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  33 in total

1.  De Novo Design, Solution Characterization, and Crystallographic Structure of an Abiological Mn-Porphyrin-Binding Protein Capable of Stabilizing a Mn(V) Species.

Authors:  Samuel I Mann; Animesh Nayak; George T Gassner; Michael J Therien; William F DeGrado
Journal:  J Am Chem Soc       Date:  2020-12-29       Impact factor: 15.419

2.  Making or Breaking Metal-Dependent Catalytic Activity: The Role of Stammers in Designed Three-Stranded Coiled Coils.

Authors:  Tyler B J Pinter; Elizabeth C Manickas; Audrey E Tolbert; Karl J Koebke; Aniruddha Deb; James E Penner-Hahn; Vincent L Pecoraro
Journal:  Angew Chem Int Ed Engl       Date:  2020-09-02       Impact factor: 15.336

3.  Influence of circular permutations on the structure and stability of a six-fold circular symmetric designer protein.

Authors:  Bram Mylemans; Hiroki Noguchi; Els Deridder; Eveline Lescrinier; Jeremy R H Tame; Arnout R D Voet
Journal:  Protein Sci       Date:  2020-10-16       Impact factor: 6.725

4.  A defined structural unit enables de novo design of small-molecule-binding proteins.

Authors:  Nicholas F Polizzi; William F DeGrado
Journal:  Science       Date:  2020-09-04       Impact factor: 47.728

5.  De novo designed peptides for cellular delivery and subcellular localisation.

Authors:  Guto G Rhys; Jessica A Cross; William M Dawson; Harry F Thompson; Sooruban Shanmugaratnam; Nigel J Savery; Mark P Dodding; Birte Höcker; Derek N Woolfson
Journal:  Nat Chem Biol       Date:  2022-07-14       Impact factor: 16.174

6.  De novo design of discrete, stable 310-helix peptide assemblies.

Authors:  Prasun Kumar; Neil G Paterson; Jonathan Clayden; Derek N Woolfson
Journal:  Nature       Date:  2022-06-22       Impact factor: 69.504

7.  A De Novo-Designed Artificial Metallopeptide Hydrogenase: Insights into Photochemical Processes and the Role of Protonated Cys.

Authors:  Sreya Malayam Parambath; Ashley E Williams; Leigh Anna Hunt; Dhanashree Selvan; Nathan I Hammer; Saumen Chakraborty
Journal:  ChemSusChem       Date:  2021-04-28       Impact factor: 8.928

Review 8.  Evolution, folding, and design of TIM barrels and related proteins.

Authors:  Sergio Romero-Romero; Sina Kordes; Florian Michel; Birte Höcker
Journal:  Curr Opin Struct Biol       Date:  2021-01-13       Impact factor: 6.809

9.  The pH-Induced Selectivity Between Cysteine or Histidine Coordinated Heme in an Artificial α-Helical Metalloprotein.

Authors:  Karl J Koebke; Toni Kühl; Elisabeth Lojou; Borries Demeler; Barbara Schoepp-Cothenet; Olga Iranzo; Vincent L Pecoraro; Anabella Ivancich
Journal:  Angew Chem Int Ed Engl       Date:  2020-12-23       Impact factor: 15.336

Review 10.  Molecular understanding of heteronuclear active sites in heme-copper oxidases, nitric oxide reductases, and sulfite reductases through biomimetic modelling.

Authors:  Christopher J Reed; Quan N Lam; Evan N Mirts; Yi Lu
Journal:  Chem Soc Rev       Date:  2021-03-01       Impact factor: 54.564

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