Microsporidia Can Acquire Lamin-like Intermediate Filaments and Cell Adhesion Catenin-cadherin Complexes from the

Earl Weidner1, Yuliya Y Sokolova2,3, Robin M Overstreet4

  • 1Louisiana State University, Baton Rouge, Louisiana, USA.

Insights

Microsporidia parasites may acquire host cell adhesion molecules (CAMs) and intermediate filaments (IFs), like lamins, from their hosts. This study investigated how these proteins attach to microsporidia spores and if they originate from the host animal.

Area of Science:

  • Cell Biology
  • Parasitology
  • Molecular Biology

Background:

  • Microsporidia spores possess external filaments resembling intermediate filaments (IFs).
  • Lamins are the known IFs in invertebrates, capable of binding cell adhesion molecules (CAMs) like cadherins.

Purpose of the Study:

  • To investigate the presence and origin of lamins and CAMs on microsporidia spores.
  • To determine if microsporidia can acquire host-derived lamins and CAMs.

Main Methods:

  • Localization studies of lamins and CAMs on microsporidia spores and host tissues.
  • Experiments using transgenic Drosophila melanogaster to track host CAM acquisition by Anncaliia algerae.

Main Results:

  • Lamins and CAMs were detected on the spores of multiple microsporidia species.
  • Spores of Ameson michaelis and Anncaliia algerae successfully bound vertebrate nuclear lamin.
  • Transgenic fly experiments confirmed that A. algerae can acquire host cadherins.

Conclusions:

  • Microsporidia spores possess external lamins and CAMs.
  • Microsporidia are capable of acquiring host lamin IFs and catenin-cadherin complexes.
  • This acquisition mechanism may play a role in microsporidia-host interactions.

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