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Biology subjects

Majhi, S.

Publications and source records attributed to Majhi, S..

2 recordsLinked to original sources

Heterogeneity of radial spokes structural components and associated enzymes in Tetrahymena cilia

Radial spokes, RS1-RS2-RS3, are T-shaped, multiprotein complexes that transmit regulatory signals from central apparatus to outer doublet dyneins. RSs, especially RS3, differ in morphology, protein composition, and RS base-docked IDAs. Spokes defects alter cilia beating frequency, waveform, and amplitude leading, in humans, to primary ciliary dyskinesia and infertility. In contrast to RS1 and RS2, the protein composition of RS3 is partly resolved. Moreover, the role of particular spokes is unclear. Ciliate Tetrahymena thermophila has three Rsp3 paralogs and two or three paralogs of some other RSPs. Using multiple complementary approaches, we showed that Tetrahymena forms RS1 and RS2 subtypes having core composed of various Rsp3 paralogs and one type of Rsp3-less RS3. We elucidated proteomes of RS subtypes and identified novel RS-associated proteins, including enzymatic proteins involved in local regulation of the ADP/ATP levels and protein phosphorylation, whose presence further diversifies RSs properties and likely functions. In briefRadial spokes differ in their protein composition and architecture. Studies in a ciliate Tetrahymena revealed Rsp3 paralogs-dependent RS1 and RS2 subtypes, Rsp3-less RS3, and diversity of the RSP3 mutants phenotype. Known RS components and newly identified structural and enzymatic proteins were assigned to particular RSs.

cell biology↗

Integrated modeling of the Nexin-dynein regulatory complex reveals its regulatory mechanism

Cilia are hairlike protrusions that project from the surface of eukaryotic cells and play key roles in cell signaling and motility. Ciliary motility is regulated by the conserved nexin-dynein regulatory complex (N-DRC), which links adjacent doublet microtubules and regulates and coordinates the activity of outer doublet complexes. Despite its critical role in cilia motility, the assembly and molecular basis of the regulatory mechanism are poorly understood. Here, utilizing cryo-electron microscopy in conjunction with biochemical cross-linking and integrative modeling, we localized 12 DRC subunits in the N-DRC structure of Tetrahymena thermophila. We also found that the CCDC96/113 complex is in close contact with the N-DRC. In addition, we revealed that the N-DRC is associated with a network of coiled-coil proteins that most likely mediates N-DRC regulatory activity.

cell biology↗