Small· 2026Q1
Cryo‐EM Structures of Sunflower Amyloid Fibrils Reveal Two Distinct Disulfide‑Linked Assembly Modes
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- Q1SCImago
- 2026year
Short summary
The first cryo-EM structures of sunflower amyloid fibrils reveal two distinct polymorphs (PM1 and PM2) with different helical assembly modes and handedness, stabilized by distinct disulfide bonds.
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Key points
- First cryo-EM structures of sunflower amyloid fibrils resolved at 3.05 Å (PM1) and 3.18 Å (PM2).
- Two distinct polymorphs (PM1 and PM2) exhibit different helical half-pitch (389 Å vs. 1087 Å) and handedness (left vs. right).
- PM1 is assembled from acidic and basic subunits linked by an inter-subunit disulfide bond (Cys111–Cys338).
- PM2 is formed from an acidic-subunit segment stabilized by an intra-subunit disulfide bond (Cys32–Cys65).
- Sunflower globulin fibril assembly differs from apricot globulin, notably in the orientation of the basic subunit.
AI-generated from the title and abstract; the full text is not read.
Abstract
ABSTRACT Sunflower meal is an abundant but underutilized plant protein source. Recent studies have demonstrated that its amyloid fibrils exhibit exceptional functional properties, yet the atomic‐level structural basis remains unknown. The first cryo‑electron microscopy (cryo‑EM) structures of sunflower amyloid fibrils prepared under acidic heating conditions are presented. Two distinct polymorphs (PM1 and PM2) are resolved at 3.05 and 3.18 Å, respectively. They differ markedly in both helical half‐pitch (389 Å for PM1 vs. 1087 Å for PM2) and handedness (left‐handed for PM1 vs. right‐handed for PM2). High‐resolution atomic modeling reveals that they adopt distinct assembly modes. PM1 is assembled from the acidic (Leu94–Phe115) and basic (Val333–Phe344) subunits of 11S globulin, covalently linked by an inter‐subunit disulfide bond (Cys111–Cys338); whereas PM2 is formed by an acidic‐subunit segment (Asn30–Val68) and stabilized by an intra‐subunit disulfide bond (Cys32–Cys65). Comparison of the PM1 structure with the apricot globulin fibril reveals divergent assembly strategies, most strikingly an opposite orientation of the basic subunit relative to the acidic fragment despite high sequence homology. These structural insights provide a molecular foundation for understanding and engineering sunflower amyloid fibrils for diverse applications in food, agriculture, and nanotechnology.
The authors' abstract, as published at the source. Small, 2026 · DOI ↗
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Field: Food Science
Food ScienceAgricultural and Biological Sciences