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Sasamura, T.

Publications and source records attributed to Sasamura, T..

3 recordsLinked to original sources

Identification of loop regions as motifs determining cellular and organ chirality in Myosin 1C

Left-right (LR) asymmetry occurs throughout the animal kingdom, from microscopic to macroscopic scales; however, how microscale LR asymmetry (chirality) is integrated into higher-order structural LR asymmetry remains unclear. In Drosophila, the actin motor proteins Myosin1D and Myosin1C impose opposite chirality states on cell shape and intracellular F-actin flow, thereby directing dextral and sinistral morphogenesis, respectively. However, the protein motifs that confer their distinct activities in specifying chiral states have remained unknown. Here, we show that loop motifs within the myosin head domain that form actin-binding sites determine enantiomeric chirality. By swapping these loop motifs between Myosin1D and Myosin1C, we demonstrate that Myosin1D acquires sinistral activity when carrying Myosin1C loops. AlphaFold3 and molecular dynamics analyses reveal differences in loop structure and actin-binding energetics that may account for the contrasting chiral activities of Myosin1D and Myosin1C. Our findings identify specific protein motifs that dictate the handedness of actin flow and organ asymmetry, providing a mechanistic link between molecular interactions and macroscopic left-right patterning.

cell biology↗

Class I myosins direct circumferential F-actin flows to define cell chirality

Eukaryotic cells possess intrinsic chirality in their structure, motility, and intracellular dynamics, which are designated cell chirality. Cell chirality participates in the left-right asymmetric morphogenesis and tissue integrity. However, the mechanisms of cell chirality formation remain elusive. In Drosophila, two evolutionarily conserved myosin I genes, Myosin 1D (Myo1D) and Myosin 1C (Myo1C), respectively, dictate the dextral and sinistral chirality of the cells and body. Here, we reported that Myo1D and Myo1C respectively directed the clockwise and counterclockwise circumferential flow of F-actin in Drosophila macrophages. Both induced the corresponding circular cytoplasm flows and depended on Myosin2 (Myo2). In a modified in vitro motility assay using near-physiological actin concentrations, Myo1D triggered the self-organization of the F-actin ring (chiral F-actin ring) that rotated clockwise; conversely, Myo1C induced the random flow of F-actin. The chiral F-actin ring implied that the F-actin bundle was parallelly and annularly polarized concerning its barbed pointed end. Considering that Myo1D and Myo1C are localized to the dorsal plasma membrane of macrophages, Myo1D and Myo1C might organize the parallelly polarized F-actin in macrophages. Our results suggest that Myo2 might drive the clockwise circumferential flow of F-actin along its parallel and annular polarity induced by Myo1D, which may be a molecular basis of cell and organ chirality.

cell biology↗

The Drosophila AWP1 ortholog Doctor No regulates JAK/STAT signaling for left-right asymmetry in the gut by promoting receptor endocytosis

Many internal Drosophila organs show stereotypical left-right (LR) asymmetry, for which the underlying mechanisms remain elusive. Here, we identified an evolutionarily conserved ubiquitin-binding protein, AWP1/Doctor no (Drn), as a novel factor required for the LR asymmetry of the embryonic anterior gut in Drosophila. We showed that drn is essential in the circular visceral muscle cells of the midgut for JAK/STAT signaling, which contributes to the first known cue for anterior gut lateralization via LR-asymmetric nuclear rearrangement. Embryos homozygous for drn and lacking its maternal contribution showed phenotypes similar to that of depleted JAK/STAT signaling, suggesting that Drn is a general component of JAK/STAT signaling. The absence of Drn resulted in the specific accumulation of Domeless (Dome), the receptor of JAK/STAT signaling, in intracellular compartments. Thus, Drn is required for the endocytic trafficking of Dome, which is subsequently degraded in lysosomes. Our results suggest that the endocytosis of Dome is a critical step in activating JAK/STAT signaling. The roles of AWP1/Drn in activating JAK/STAT signaling and in LR-asymmetric development may be conserved in various organisms. Summary StatementDr. No, a Drosophila ortholog of AWP1, activates JAK/STAT signaling via Dome receptor endocytosis in a crucial step for left-right asymmetry in the developing gut.

developmental biology↗