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Paschall, S.-C.

Publications and source records attributed to Paschall, S.-C..

2 recordsLinked to original sources

A systems-level proteomic analysis identifies kinesin targets of KIFBP during neuronal development

Kinesins are molecular motor proteins essential for organizing and remodeling the cytoskeleton during neuronal development and maintenance. One key regulator is kinesin family binding protein (KIFBP), which inhibits a subset of kinesins by blocking motor-microtubule interactions. Homozygous mutations in KIFBP cause Goldberg-Shprintzen Syndrome (GOSHS), a neurodevelopmental disorder characterized by intellectual disability, microcephaly, and axonal neuropathy. Although loss of KIFBP has been linked to reduced neurite length and microtubule disorganization, the specific kinesins underlying these phenotypes remain unclear. Here we use a CRISPR-Cas9 generated KIFBP knockout Neuro-2a cell line to demonstrate that KIFBP is required for neurite extension and use inducible GFP-KIFBP to define the KIFBP interactome during neuronal differentiation. Immunoprecipitation coupled with mass spectrometry identified both known and novel KIFBP-associated kinesins. Single molecule TIRF microscopy confirmed direct inhibition of a subset of kinesins that co-immunoprecipitated with KIFBP. Notably, we identified KIF5A and KIF18B as previously unrecognized regulatory targets with potential roles in neuronal development. Together, these findings establish Neuro-2a cells as a model for studying KIFBP function and provide new insight into the regulation of kinesin activity and cytoskeletal dynamics in neurons.

cell biology↗

KIF18A Maintains Kinetochore-Microtubule Attachments in CIN Cells by Limiting Microtubule Polymerization

Chromosomal instability (CIN) generates vulnerabilities that can be therapeutically exploited, including sensitivity to inhibition of the kinesin motor KIF18A. However, the mechanistic basis for why a subset of CIN tumor cells depend on KIF18A remains unclear. Here, we compare mitotic phenotypes across KIF18A-sensitive and -insensitive cell models. In sensitive CIN cells, KIF18A inhibition leads to formation of polar chromosomes with unattached kinetochores, recruitment of spindle assembly checkpoint proteins, and prolonged mitotic arrest. Although KIF18A loss reduces kinetochore-microtubule stability in all cell lines, sensitive cells exhibit lower baseline attachment stability and heightened microtubule polymerization rates, predisposing them to attachment failure. Acute KIF18A inhibition disrupts maintenance of attachments after metaphase alignment, while reducing microtubule polymerization suppresses mitotic defects. These findings support a model in which CIN tumor cells rely on KIF18A to restrain excessive microtubule dynamics and maintain attachment.

cancer biology↗