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-Structure paper
タイトル | A suite of designed protein cages using machine learning and protein fragment-based protocols. |
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ジャーナル・号・ページ | Structure, Vol. 32, Issue 6, Page 751-765.e11, Year 2024 |
掲載日 | 2024年6月6日 |
著者 | Kyle Meador / Roger Castells-Graells / Roman Aguirre / Michael R Sawaya / Mark A Arbing / Trent Sherman / Chethaka Senarathne / Todd O Yeates / |
PubMed 要旨 | Designed protein cages and related materials provide unique opportunities for applications in biotechnology and medicine, but their creation remains challenging. Here, we apply computational ...Designed protein cages and related materials provide unique opportunities for applications in biotechnology and medicine, but their creation remains challenging. Here, we apply computational approaches to design a suite of tetrahedrally symmetric, self-assembling protein cages. For the generation of docked conformations, we emphasize a protein fragment-based approach, while for sequence design of the de novo interface, a comparison of knowledge-based and machine learning protocols highlights the power and increased experimental success achieved using ProteinMPNN. An analysis of design outcomes provides insights for improving interface design protocols, including prioritizing fragment-based motifs, balancing interface hydrophobicity and polarity, and identifying preferred polar contact patterns. In all, we report five structures for seven protein cages, along with two structures of intermediate assemblies, with the highest resolution reaching 2.0 Å using cryo-EM. This set of designed cages adds substantially to the body of available protein nanoparticles, and to methodologies for their creation. |
リンク | Structure / PubMed:38513658 / PubMed Central |
手法 | EM (単粒子) / X線回折 |
解像度 | 2.02 - 6 Å |
構造データ | EMDB-42181, PDB-8uf0: EMDB-42286, PDB-8ui2: EMDB-42355, PDB-8ukm: EMDB-42381, PDB-8ump: EMDB-42382, PDB-8umr: EMDB-42390, PDB-8un1: PDB-8uja: |
化合物 | ChemComp-HOH: |
由来 |
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キーワード | DE NOVO PROTEIN / Nanohedra / protein cage / tetrahedral / de novo protein interface / machine learning / two components / ProteinMPNN / nanoparticle / tetrahedral nanoparticle / designed protein / de novo interface / two-component complex / Rosetta |