The tumor suppressor annexin A10 is a novel component of nuclear paraspeckles

Nina Quiskamp1, Michaela Poeter, Carsten Alexander Raabe

  • 1Institute of Medical Biochemistry, Centre for Molecular Biology of Inflammation, and Interdisciplinary Clinical Research Centre, University of Münster, 48149, Münster, Germany.

Insights

Annexin A10, a novel protein, functions independently of calcium and membranes. It regulates paraspeckles and mRNA processing, impacting apoptosis and cell growth, suggesting a tumor suppressor role.

Area of Science:

  • Molecular and Cellular Biology
  • Cancer Research

Background:

  • Annexin A10 is a recently identified annexin family member.
  • Previous studies suggested a tumor suppressor role due to its downregulation in tumors.
  • Its biochemical properties and functions were previously unknown.

Purpose of the Study:

  • To elucidate the biochemical characteristics and cellular functions of Annexin A10.
  • To investigate its role in nuclear bodies and mRNA regulation.
  • To determine its potential involvement in cancer progression.

Main Methods:

  • Biochemical characterization of Annexin A10.
  • Cellular localization studies using HeLa cells.
  • Analysis of Annexin A10's interaction with paraspeckles and mRNA-binding proteins.
  • Assessment of apoptosis and colony formation upon Annexin A10 overexpression.

Main Results:

  • Annexin A10 exhibits Ca(2+)- and membrane-binding-independent functions.
  • It co-localizes with SFPQ and PSPC1 at paraspeckles and reduces their numbers.
  • Annexin A10 relocates to perinucleolar caps under transcriptional inhibition.
  • Overexpression increases apoptosis sensitivity and reduces colony formation.

Conclusions:

  • Annexin A10 possesses unique nuclear and biochemical properties.
  • It plays a membrane-independent role in paraspeckle-associated mRNA regulation or processing.
  • These findings suggest Annexin A10's involvement in cancer progression and highlight its potential as a therapeutic target.

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