Brown University

Insights into Directional Motor-Driven RNA Localization from the Xenopus Oocyte

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Abstract:
RNA localization is a widely conserved mechanism for generating cellular asymmetry. In Xenopus oocytes, microtubule-dependent transport of RNAs to the vegetal cortex underlies germ layer patterning. However, the mechanisms that control transport and directionality during asymmetric RNA transport are not yet clear. We have analyzed the participation of kinesin and dynein motors in vegetal RNA transport and identified a direct role for kinesin-1 and cytoplasmic dynein. Moreover, in vivo interference and biochemical experiments reveal a key function for multiple motors, specifically kinesin-1, kinesin-2 and cytoplasmic dynein, and suggest that these motors may interact during transport. Critically, we have discovered a sub-population of microtubules with plus ends at the vegetal cortex, supporting roles for these kinesin motors in vegetal RNA transport. Using a novel approach to measure directionality of mRNA transport in live oocytes, we observe discrete domains of unidirectional and bidirectional transport that are dependent on distinct molecular motors. Specifically, both dynein and kinesin motors mediate steps in the vegetal RNA transport pathway, with dynein acting prior to kinesin. Moreover, dynein, but not kinesin-1, promotes unidirectional transport of RNA towards the vegetal cortex. Thus, vegetal RNA transport occurs through a multi-step pathway, providing a new framework for understanding the mechanistic basis of cell polarity.
Notes:
Thesis (Ph.D. -- Brown University (2011)

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Citation

Gagnon, James A., "Insights into Directional Motor-Driven RNA Localization from the Xenopus Oocyte" (2011). Molecular Biology, Cell Biology, and Biochemistry Theses and Dissertations. Brown Digital Repository. Brown University Library. https://doi.org/10.7301/Z0B27SJ6

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