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Biology subjects

Ferguson, S. M.

Publications and source records attributed to Ferguson, S. M..

2 recordsLinked to original sources

Pleiotropic requirements for human TDP-43 in the regulation of cell and organelle homeostasis

TDP-43 is an RNA-binding protein that forms cytoplasmic aggregates in multiple neurodegenerative diseases. Although the loss of normal TDP-43 functions likely contributes to disease pathogenesis, the cell biological consequences of human TDP-43 depletion are not well understood. We therefore generated human TDP-43 knockout cells and subjected them to parallel cell biological and transcriptomic analyses. These efforts yielded three important discoveries. First, complete loss of TDP-43 resulted in widespread morphological defects related to multiple organelles including: Golgi, endosomes, lysosomes, mitochondria and the nuclear envelope. Second, we identified a new role for TDP-43 in controlling mRNA splicing of Nup188 (nuclear pore protein). Third, analysis of multiple amyotrophic lateral sclerosis (ALS) causing TDP-43 mutations revealed a broad ability to support splicing of TDP-43 target genes. However, as some TDP-43 disease causing mutants failed to support the regulation of specific target transcripts, our results raise the possibility of mutation-specific loss-of-function contributions to disease pathology.

cell biology

Minimal membrane interactions conferred by Rheb C-terminal farnesylation are essential for mTORC1 activation

Stable localization of the Rheb GTPase to lysosomes is thought to be required for activation of mTORC1 signaling. However, the lysosome targeting mechanisms for Rheb remain unclear. We therefore investigated the relationship between Rheb subcellular localization and mTORC1 activation. Surprisingly, we found that although Rheb was prominently enriched at the endoplasmic reticulum (ER), Rheb was undetectable at lysosomes. Functional assays in knockout human cells revealed that farnesylation of the C-terminal CaaX motif on Rheb was essential for both Rheb enrichment on ER membranes and mTORC1 activation. However, constitutively targeting Rheb to ER membranes did not support mTORC1 activation. Further systematic analysis of the Rheb hypervariable region revealed that weak, non-selective, farnesylation-dependent, membrane interactions confer Rheb function without the need for a specific lysosome targeting motif. Collectively, these results argue against stable interactions of Rheb with lysosomes and instead that transient membrane interactions optimally allow Rheb to activate mTORC1 signaling.

cell biology