Polymorphic Self‐Assembly with Procedural Flexibility for Monodisperse Quaternary Protein Structures of DegQ Enzymes

Author:

Jeon Hanul12ORCID,Han Ah‐reum3,Oh Sangmin4,Park Jin‐Gyeong12,Namkoong Myeong4,Bang Kyeong‐Mi56,Kim Ho Min37,Kim Nak‐Kyoon5,Hwang Kwang Yeon2,Hur Kahyun4,Lee Bong‐Jin89,Heo Jeongyun1,Kim Sehoon110,Song Hyun Kyu6,Cho Hyesung4,Lee In‐Gyun1ORCID

Affiliation:

1. Biomedical Research Division Korea Institute of Science and Technology 5, Hwarang‐ro 14‐gil, Seongbuk‐gu Seoul 02792 Republic of Korea

2. Department of Biotechnology Korea University 145, Anam‐ro, Seongbuk‐gu Seoul 02841 Republic of Korea

3. Center for Biomolecular and Cellular Structure Life Science Cluster Institute for Basic Science (IBS) 55, Expo‐ro Daejeon 34126 Republic of Korea

4. Extreme Materials Research Center Korea Institute of Science and Technology 5, Hwarang‐ro 14‐gil, Seongbuk‐gu Seoul 02792 Republic of Korea

5. Advanced Analysis Center Korea Institute of Science and Technology 5, Hwarang‐ro 14‐gil, Seongbuk‐gu Seoul 02792 Republic of Korea

6. Department of Life Science Korea University 145, Anam‐ro, Seongbuk‐gu Seoul 02841 Republic of Korea

7. Graduate School of Medical Science and Engineering Korea Advanced Institute of Science and Technology (KAIST) 291, Daehak‐ro Daejeon 34126 Republic of Korea

8. The Research Institute of Pharmaceutical Science Seoul National University 599, Gwanak‐ro, Gwanak‐gu Seoul 08826 Republic of Korea

9. College of Pharmacy Ajou University 206, Worldcup‐ro, Yeongtong‐gu, Suwon‐si Gyeonggi‐do 16499 Republic of Korea

10. KU‐KIST Graduate School of Converging Science and Technology Korea University 145, Anam‐ro, Seongbuk‐gu Seoul 02841 Republic of Korea

Abstract

AbstractAs large molecular tertiary structures, some proteins can act as small robots that find, bind, and chaperone target protein clients, showing the potential to serve as smart building blocks in self‐assembly fields. Instead of using such intrinsic functions, most self‐assembly methodologies for proteins aim for de novo‐designed structures with accurate geometric assemblies, which can limit procedural flexibility. Here, a strategy enabling polymorphic clustering of quaternary proteins, exhibiting simplicity and flexibility of self‐assembling paths for proteins in forming monodisperse quaternary cage particles is presented. It is proposed that the enzyme protomer DegQ, previously solved at low resolution, may potentially be usable as a threefold symmetric building block, which can form polyhedral cages incorporated by the chaperone action of DegQ in the presence of protein clients. To obtain highly monodisperse cage particles, soft, and hence, less resistive client proteins, which can program the inherent chaperone activity of DegQ to efficient formations of polymorphic cages, depending on the size of clients are utilized. By reconstructing the atomic resolution cryogenic electron microscopy DegQ structures using obtained 12‐ and 24‐meric clusters, the polymorphic clustering of DegQ enzymes is validated in terms of soft and rigid domains, which will provide effective routes for protein self‐assemblies with procedural flexibility.

Funder

Korea Institute of Science and Technology

National Research Council of Science and Technology

Publisher

Wiley

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