Design and Thermodynamics Principles to Program the Cooperativity of Molecular Assemblies

被引:0
作者
Lauzon, Dominic [1 ]
Vallee-Belisle, Alexis [1 ]
机构
[1] Univ Montreal, Dept Chem, Lab Biosensors & Nanomachines, Montreal, PQ H2V 0B3, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Cooperativity; DNA Nanotechnology; Protein Complexes; Self-Assembly; Supramolecular Chemistry; RATIONAL DESIGN; DNA SWITCHES; SUPRAMOLECULAR SYSTEMS; QUATERNARY STRUCTURE; PROTEIN LINKERS; EVOLUTION; COMPLEXES; DYNAMICS; LIGANDS;
D O I
10.1002/anie.202313944
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Most functional nanosystems in living organisms are constructed using multimeric assemblies that provide multiple advantages over their monomeric counterparts such as cooperative or anti-cooperative responses, integration of multiple signals and self-regulation. Inspired by these natural nanosystems, chemists have been synthesizing self-assembled supramolecular systems over the last 50 years with increasing complexity with applications ranging from biosensing, drug delivery, synthetic biology, and system chemistry. Although many advances have been made concerning the design principles of novel molecular architectures and chemistries, little is still known, however, about how to program their dynamic of assembly so that they can assemble at the required concentration and with the right sensitivity. Here, we used synthetic DNA assemblies and double-mutant cycle analysis to explore the thermodynamic basis to program the cooperativity of molecular assemblies. The results presented here exemplify how programmable molecular assemblies can be efficiently built by fusing interacting domains and optimizing their compaction. They may also provide the rational basis for understanding the thermodynamic and mechanistic principles driving the evolution of multimeric biological complexes. Molecular assembly can be designed by fusing binding domains. A precise optimization of the level of compaction of the assembly using linker of different lengths or compositions can provide a simple strategy to program their assembly properties (e.g., midpoint, dynamic range, and inhibition). The thermodynamic and mechanistic principles demonstrated herein also shine light behind the evolution of biological molecular assembly. image
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页数:11
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共 72 条
  • [1] Protein oligomerization: How and why
    Ali, MH
    Imperiali, B
    [J]. BIOORGANIC & MEDICINAL CHEMISTRY, 2005, 13 (17) : 5013 - 5020
  • [2] Protein self-assembly via supramolecular strategies
    Bai, Yushi
    Luo, Quan
    Liu, Junqiu
    [J]. CHEMICAL SOCIETY REVIEWS, 2016, 45 (10) : 2756 - 2767
  • [3] The geometry of domain combination in proteins
    Bashton, M
    Chothia, C
    [J]. JOURNAL OF MOLECULAR BIOLOGY, 2002, 315 (04) : 927 - 939
  • [4] Domain rearrangements in protein evolution
    Björklund, ÅK
    Ekman, D
    Light, S
    Frey-Skött, J
    Elofsson, A
    [J]. JOURNAL OF MOLECULAR BIOLOGY, 2005, 353 (04) : 911 - 923
  • [5] Structural Insights into RNA Dimerization: Motifs, Interfaces and Functions
    Bou-Nader, Charles
    Zhang, Jinwei
    [J]. MOLECULES, 2020, 25 (12):
  • [6] Chemically controlled self-assembly of protein nanorings
    Carlson, Jonathan C. T.
    Jena, Sidhartha S.
    Flenniken, Michelle
    Chou, Tsui-fen
    Siegel, Ronald A.
    Wagner, Carston R.
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2006, 128 (23) : 7630 - 7638
  • [7] From Conception to Development: Investigating PROTACs Features for Improved Cell Permeability and Successful Protein Degradation
    Cecchini, Carlotta
    Pannilunghi, Sara
    Tardy, Sebastien
    Scapozza, Leonardo
    [J]. FRONTIERS IN CHEMISTRY, 2021, 9
  • [8] Fusion protein linkers: Property, design and functionality
    Chen, Xiaoying
    Zaro, Jennica L.
    Shen, Wei-Chiang
    [J]. ADVANCED DRUG DELIVERY REVIEWS, 2013, 65 (10) : 1357 - 1369
  • [9] Entropy-Enthalpy Compensation: Role and Ramifications in Biomolecular Ligand Recognition and Design
    Chodera, John D.
    Mobley, David L.
    [J]. ANNUAL REVIEW OF BIOPHYSICS, VOL 42, 2013, 42 : 121 - 142
  • [10] De Novo Design of an Allosteric Metalloprotein Assembly with Strained Disulfide Bonds
    Churchfield, Lewis A.
    Medina-Morales, Annette
    Brodin, Jeffrey D.
    Perez, Alfredo
    Tezcan, F. Akif
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2016, 138 (40) : 13163 - 13166