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Herman, J. A.

Publications and source records attributed to Herman, J. A..

2 recordsLinked to original sources

Functional dissection of human mitotic proteins using CRISPR-Cas9 tiling screens

Kinetochores are large protein complexes that assemble at the centromere and bind to mitotic spindle microtubules to ensure accurate chromosome segregation. Like most protein-coding genes, the full multifunctional nature of kinetochore factors remains uncharacterized due to the limited experimental tools for unbiased dissection of human protein sequences. We developed a method that leverages CRISPR-Cas9 induced mutations to identify key functional regions within protein sequences required for cellular outgrowth. Our analysis of 48 human mitotic genes revealed hundreds of regions required for cell proliferation, including known domains and uncharacterized ones. We validated the essential nature for 15 of these regions, including amino acids 387-402 of Mad1, which identified an unknown domain that contributes to Mad1 kinetochore localization and chromosome segregation fidelity. Altogether, we demonstrate that CRISPR-Cas9-based tiling mutagenesis identifies key functional domains in protein-coding genes de novo, which elucidates separation of function mutants and allows functional annotation across the human proteome.

cell biology↗

chTOG is a conserved mitotic error correction factor

Accurate chromosome segregation requires kinetochores on duplicated chromatids to biorient by attaching to dynamic microtubules from opposite spindle poles, which exerts forces to bring kinetochores under tension. However, kinetochores initially bind to MTs indiscriminately, resulting in errors that must be corrected. While the Aurora B protein kinase destabilizes low-tension attachments by phosphorylating kinetochores, low-tension attachments are intrinsically less stable than those under higher tension in vitro independent of Aurora activity. Intrinsic tensionsensitive behavior requires the microtubule regulator Stu2 (budding yeast Dis1/XMAP215 ortholog), which we demonstrate here is likely a conserved function for the TOG protein family. The human TOG protein, chTOG, localizes to kinetochores independent of microtubules by interacting with Hec1. We identify a chTOG mutant that regulates microtubule dynamics but accumulates erroneous kinetochore-microtubule attachments that Aurora B fails to destabilize. Thus, TOG proteins confer a unique, intrinsic error correction activity to kinetochores that ensures accurate chromosome segregation.

cell biology↗