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by claude@2026-07, 2026-07-04
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This study analyzed how septin-associated kinases Elm1, Gin4, Hsl1, and Kcc4 regulate septin organization at the bud neck during cytokinesis, using quantitative assays and GFP-GBP-based tethering in yeast strains including Δelm1 and Δgin4. The authors found major roles for Elm1 and Gin4 in septin stability, actomyosin ring (AMR) organization, and constriction, and reported that Gin4 directly interacts with the F-BAR protein Hof1 via its C-terminal membrane-binding domain, potentially anchoring Hof1 at the division site; they also observed that Gin4 can affect septin organization and AMR constriction in a kinase-independent manner. They further identified a key role for Hsl1 in maintaining septin organization and cell shape that coordinates with Elm1, Gin4, and Kcc4, with Hsl1 acting downstream of Elm1 and requiring its membrane-binding KA1 domain. This paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.
Abstract
ABSTRACT The septin scaffold recruits and organizes actomyosin ring (AMR) components, thus, ensuring faithful cytokinesis. The septin-associated kinases - Elm1, Gin4, Hsl1, and Kcc4 are thought to stabilize and regulate the septin architecture at the bud neck, but the underlying mechanisms remain largely unknown. Here, we present a comprehensive, quantitative analysis of these four septin-associated kinases and reveal major roles for Elm1 and Gin4 in septin stability and architectural transitions during the cell cycle. We find that Elm1 and Gin4 play a previously overlooked role in AMR organization and constriction during cytokinesis. We report that the Gin4 kinase interacts directly with the AMR component and F-BAR protein Hof1 via its C-terminal membrane-binding kinase associated-1 (KA1) domain, and is likely involved in the proper organization and anchoring of Hof1 at the bud neck, representing an unappreciated mode of regulation during cytokinesis. We further show that Gin4 controls septin organization and AMR constriction in a kinase-independent manner, similar to Elm1. Using an extensive GFP-GBP-based tethering assay in elm1 Δ and gin4 Δ cells, we identify an important role for Hsl1 in maintaining septin organization and cell shape in coordination with Elm1, Gin4, and Kcc4, independent of its role in the morphogenetic checkpoint. Furthermore, our data indicate that Hsl1 acts downstream of Elm1, with its membrane-binding KA1 domain being critical for its function. Together, these findings reveal new insights into the modes by which the kinases Gin4 and Elm1 regulate cytokinesis, highlight a redundant role for Hsl1 in controlling septin organization and cytokinesis, and uncover the inherent redundancy and adaptability of the septin kinase network in Saccharomyces cerevisiae .
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ABSTRACT
The septin scaffold recruits and organizes the actomyosin ring (AMR) components, thus ensuring faithful cytokinesis. The septin-associated kinases - Elm1, Gin4, Hsl1, and Kcc4 are believed to stabilize the septins at the bud neck, but the underlying mechanisms are largely unknown. Here, we present a comprehensive, quantitative analysis of these four septin regulatory kinases and reveal major roles for Elm1 and Gin4 in septin stability. We find that Elm1 and Gin4 play an overlooked role in actomyosin ring organization and constriction. We report that Gin4 kinase directly interacts with F-BAR protein Hof1 via its C-terminal membrane-binding domain and may be involved in proper organization and anchoring of AMR component Hof1 at the bud neck, representing an unappreciated mode of regulation of cytokinesis by the septin kinase network. We also show that Gin4 controls septin organisation and AMR constriction in a kinase-independent manner similar to Elm1. We have also performed an extensive GFP-GBP-based tethering screen in Δelm1 and Δgin4 cells and found an important role for Hsl1 in maintaining septin organisation and cell shape in coordination with Elm1, Gin4, and Kcc4. Furthermore, our data indicate that Hsl1 acts downstream of Elm1, with its membrane-binding KA1 domain being critical for its function. Together, these findings reveal new insights into modes of cytokinesis regulation by kinases Gin4 and Elm1 and highlight a redundant role for Hsl1 in controlling septin organization and cytokinesis, revealing the in-built adaptability of the septin kinase network in S. cerevisiae.
Competing Interest Statement
The authors have declared no competing interest.
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