Spider Silk Protein Forms Amyloid‐Like Nanofibrils through a Non‐Nucleation‐Dependent Polymerization Mechanism

Author:

Qi Xingmei1,Wang Yu23,Yu Hairui1,Liu Ruifang1,Leppert Axel4,Zheng Zihan25,Zhong Xueying6,Jin Zhen25,Wang Han1,Li Xiaoli7,Wang Xiuzhe8,Landreh Michael4,A. Morozova‐Roche Ludmilla9ORCID,Johansson Jan2,Xiong Sidong1,Iashchishyn Igor9ORCID,Chen Gefei2ORCID

Affiliation:

1. The Jiangsu Key Laboratory of Infection and Immunity Institutes of Biology and Medical Sciences Soochow University Suzhou 215123 China

2. Department of Biosciences and Nutrition Karolinska Institutet Huddinge 14157 Sweden

3. College of Wildlife and Protected Area Northeast Forestry University Harbin 150040 China

4. Department of Microbiology Tumor and Cell Biology Karolinska Institutet Solna 17165 Sweden

5. Department of Pharmacology Xi'an Jiaotong University Shaanxi 710061 China

6. School of Engineering Sciences in Chemistry Biotechnology and Health Department of Biomedical Engineering and Health Systems KTH Royal Institute of Technology Huddinge 14152 Sweden

7. Department of Pharmacology College of Pharmacy Chongqing Medical University Chongqing 400016 China

8. Department of Neurology Shanghai Sixth People's Hospital Shanghai Jiao Tong University School of Medicine Shanghai 200233 China

9. Department of Medical Biochemistry and Biophysics Umeå University Umeå 90187 Sweden

Abstract

AbstractAmyloid fibrils—nanoscale fibrillar aggregates with high levels of order—are pathogenic in some today incurable human diseases; however, there are also many physiologically functioning amyloids in nature. The process of amyloid formation is typically nucleation‐elongation‐dependent, as exemplified by the pathogenic amyloid‐β peptide (Aβ) that is associated with Alzheimer's disease. Spider silk, one of the toughest biomaterials, shares characteristics with amyloid. In this study, it is shown that forming amyloid‐like nanofibrils is an inherent property preserved by various spider silk proteins (spidroins). Both spidroins and Aβ capped by spidroin N‐ and C‐terminal domains, can assemble into macroscopic spider silk‐like fibers that consist of straight nanofibrils parallel to the fiber axis as observed in native spider silk. While Aβ forms amyloid nanofibrils through a nucleation‐dependent pathway and exhibits strong cytotoxicity and seeding effects, spidroins spontaneously and rapidly form amyloid‐like nanofibrils via a non‐nucleation‐dependent polymerization pathway that involves lateral packing of fibrils. Spidroin nanofibrils share amyloid‐like properties but lack strong cytotoxicity and the ability to self‐seed or cross‐seed human amyloidogenic peptides. These results suggest that spidroins´ unique primary structures have evolved to allow functional properties of amyloid, and at the same time direct their fibrillization pathways to avoid formation of cytotoxic intermediates.

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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