Talin2 and KANK2 functionally interact to regulate microtubule dynamics, paclitaxel sensitivity and cell migration in

Marija Lončarić1, Nikolina Stojanović1, Anja Rac-Justament1

  • 1Laboratory for Cell Biology and Signalling, Division of Molecular Biology, Ruđer Bošković Institute, Zagreb, Croatia.

Abstract

Insights

KANK2, not KANK1, interacts with talin2 to regulate microtubule dynamics and cell migration. This talin2-KANK2 interaction is crucial for cell sensitivity to microtubule poisons like paclitaxel, offering potential cancer therapy targets.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Cancer Research

Background:

  • Focal adhesions (FAs) link the extracellular matrix to intracellular actin, regulating cell functions.
  • Microtubules (MTs) interact with FAs via the cortical microtubule stabilizing complex (CMSC).
  • KANK proteins (KANK1, KANK2) mediate actin-MT crosstalk by binding talin within FAs.

Purpose of the Study:

  • Investigate the role of KANK1 in FA-MT crosstalk.
  • Determine which talin isoform binds KANK2.
  • Analyze the impact of KANK protein knockdown on cell behavior and MT dynamics.

Main Methods:

  • Utilized MDA-MB-435S melanoma cells and a clone with reduced integrin αV expression.
  • Performed transient knockdown of talin1, talin2, KANK1, and KANK2 using siRNAs.
  • Analyzed protein expression via SDS-PAGE and Western blot.
  • Conducted immunofluorescence, live cell imaging, and cell migration assays.

Main Results:

  • KANK1 is not associated with integrin αVβ5 FAs; its knockdown did not affect MT growth or paclitaxel (PTX) sensitivity.
  • Talin2 knockdown mimicked KANK2 knockdown, perturbing actin-MT crosstalk.
  • Talin2 knockdown led to increased MT growth velocity, heightened sensitivity to PTX, and reduced cell migration.

Conclusions:

  • KANK2 functionally interacts with talin2, influencing microtubule dynamics.
  • The observed increased sensitivity to PTX is linked to altered microtubule dynamics.
  • Talin2 and KANK2 play cell-type-specific roles and represent potential therapeutic targets in cancer therapy.

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