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.
Abstract:
Cell divisions are sometimes oriented by extrinsic signals, by mechanisms that are poorly understood. Proteins containing TPR and GoLoco-domains (C. elegans GPR-1/2, Drosophila Pins, vertebrate LGN and AGS3) are candidates for mediating mitotic spindle orientation by extrinsic signals, but the mechanisms by which TPR-GoLoco proteins may localize in response to extrinsic cues are not well defined. The C. elegans TPR-GoLoco protein pair GPR-1/2 is enriched at a site of contact between two cells - the endomesodermal precursor EMS and the germline precursor P(2) - and both cells align their divisions toward this shared cell-cell contact. To determine whether GPR-1/2 is enriched at this site within both cells, we generated mosaic embryos with GPR-1/2 bearing a different fluorescent tag in different cells. We were surprised to find that GPR-1/2 distribution is symmetric in EMS, where GPR-1/2 had been proposed to function as an asymmetric cue for spindle orientation. Instead, GPR-1/2 is asymmetrically distributed only in P(2). We demonstrate a role for normal GPR-1/2 localization in P(2) division orientation. We show that MES-1/Src signaling plays an instructive role in P(2) for asymmetric GPR-1/2 localization and normal spindle orientation. We ruled out a model in which signaling localizes GPR-1/2 by locally inhibiting LET-99, a GPR-1/2 antagonist. Instead, asymmetric GPR-1/2 distribution is established by destabilization at one cell contact, diffusion, and trapping at another cell contact. Once the mitotic spindle of P(2) is oriented normally, microtubule-dependent removal of GPR-1/2 prevented excess accumulation, in an apparent negative-feedback loop. These results highlight the role of dynamic TPR-GoLoco protein localization as a key mediator of mitotic spindle alignment in response to instructive, external cues.
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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