A novel substitution of proline (P32L) destabilises β2-microglobulin inducing hereditary systemic amyloidosis

Tatiana Prokaeva1, Tracy Joshi1, Elena S Klimtchuk1

  • 1Amyloidosis Center, Boston University School of Medicine, Boston, MA, USA.

Abstract

Insights

A new variant of beta-2-microglobulin (β2M), P32L, causes hereditary amyloidosis. This protein variant is unstable, leading to amyloid deposits and systemic disease.

Area of Science:

  • Biochemistry
  • Genetics
  • Pathology

Background:

  • Beta-2-microglobulin (β2M) amyloidosis is a protein deposition disease historically linked to long-term hemodialysis.
  • Recent discoveries include inherited forms of β2M amyloidosis due to specific gene mutations.
  • This study identifies a novel β2M variant, P32L, associated with systemic hereditary amyloidosis.

Observation:

  • A Portuguese family presented with cardiomyopathy, organ transplant needs, and soft tissue, gastrointestinal, neuropathic, and sicca syndrome symptoms.
  • The P32L variant arose from a unique heterozygous dinucleotide mutation (c.154_155delinsTT).
  • Patients exhibited reduced serum β2M levels with comparable P32L and wild-type proteins, but amyloid deposits contained only P32L.

Findings:

  • In vitro analysis revealed P32L exhibits thermodynamic and chemical instability.
  • The P32L variant is more susceptible to proteolysis, rapidly forming pre-fibrillar oligomers.
  • N- and C-terminally truncated species of P32L contribute to oligomer formation under physiological conditions.

Implications:

  • This research highlights the P32 residue's crucial role in β2M amyloid fibril formation.
  • Understanding P32L's properties offers insights into hereditary amyloidosis pathogenesis.
  • The findings may guide future therapeutic strategies for β2M-related amyloid diseases.

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