Dynamic localization of C. elegans TPR-GoLoco proteins mediates mitotic spindle orientation by extrinsic signaling

Adam D Werts1, Minna Roh-Johnson, Bob Goldstein

  • 1Biology Department, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599, USA.

Development (Cambridge, England)
|September 10, 2011
PubMed

Insights

Cell division orientation relies on dynamic protein localization. In C. elegans, GPR-1/2 proteins asymmetrically localize in P(2) cells, guided by MES-1/Src signaling, to orient mitotic spindle divisions.

Area of Science:

  • Cell Biology
  • Developmental Biology
  • Genetics

Background:

  • Mitotic spindle orientation is crucial for cell division and development.
  • Extrinsic signals guide cell division orientation through poorly understood mechanisms.
  • TPR-GoLoco domain proteins, like C. elegans GPR-1/2, are candidates for mediating this process.

Purpose of the Study:

  • To investigate the localization mechanisms of GPR-1/2 proteins in response to extrinsic cues.
  • To determine the role of GPR-1/2 localization in mitotic spindle orientation.
  • To elucidate the signaling pathways involved in asymmetric protein localization during cell division.

Main Methods:

  • Generation of mosaic C. elegans embryos with differentially fluorescently tagged GPR-1/2.
  • Microscopy to observe GPR-1/2 localization in EMS and P(2) cells.
  • Genetic manipulation to study the roles of MES-1/Src signaling and LET-99.

Main Results:

  • GPR-1/2 localization was found to be asymmetric specifically in the P(2) cell, not EMS.
  • MES-1/Src signaling in P(2) is essential for asymmetric GPR-1/2 localization and spindle orientation.
  • Asymmetric distribution of GPR-1/2 involves destabilization, diffusion, and trapping at cell contacts.
  • Microtubule-dependent removal of GPR-1/2 acts as a negative feedback mechanism.

Conclusions:

  • Dynamic localization of TPR-GoLoco proteins is key for mitotic spindle alignment.
  • Asymmetric GPR-1/2 localization in P(2) is regulated by MES-1/Src signaling and cell contact dynamics.
  • This study reveals a novel mechanism for translating extrinsic cues into directed cell division.

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