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April 13, 2026Nature Communications0 citationsOpen Access

Structural polymorphism of ex-vivo ALECT2 amyloid fibrils revealed by cryo-EM

SAShumaila AfrinBNBinh A. NguyenVSVirender Singh

Key Points

  • This research aims to understand the structural variations of ALECT2 amyloid fibrils and their implications for disease.
  • Cryo-electron microscopy was used to analyze ex-vivo ALECT2 fibrils from a patient’s kidney.
  • Fibril structures were categorized into single and double-protofilament morphologies.
  • Mass spectrometry was performed to detect modifications within the fibrils.
  • Three distinct fibril polymorphs were identified: one single-protofilament and two double-protofilament morphologies.
  • The dominant single-protofilament morphology contains the full-length 133-residue LECT2 protein and retains three native disulfide bonds.
  • Low-resolution reconstructions of double-protofilament morphologies suggest similar folds but different inter-filament interfaces.

Abstract

Abstract ALECT2 amyloidosis is a rare systemic disease characterized by the pathological deposition of leukocyte cell-derived chemotaxin-2 (LECT2) as amyloid fibrils, primarily affecting the kidneys and liver. The molecular mechanisms underlying LECT2 aggregation remain poorly defined, hindering diagnostic and therapeutic development. Here, we present cryo-electron microscopy structures of ex-vivo ALECT2 fibrils extracted from a patient’s kidney. We identified three fibril polymorphs: a predominant single-protofilament morphology and two minor double-protofilament morphologies. The dominant single-protofilament morphology comprises the full-length 133-residue LECT2 protein and retains all three native disulfide bonds. Low-resolution reconstructions of double-protofilament morphologies suggest they adopt a similar fold to the single protofilament morphology, but form paired assemblies with different inter-filament interfaces. Mass spectrometry also reveals acetylation within the fibrils. These findings offer critical insights into the structural basis of ALECT2 amyloid formation and identify molecular features that could inform future diagnostic and therapeutic approaches.

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Cite This Study

Afrin et al. (2026) studied this question.

synapsesocial.com/papers/69dc887f3afacbeac03ea561https://doi.org/10.1038/s41467-026-71223-3
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