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Biology subjects

Arin, A.

Publications and source records attributed to Arin, A..

2 recordsLinked to original sources

CsMT: a robust and streamlined CryoSPARC workflow for cryo-EM reconstruction of microtubules

Microtubules are cytoskeletal filaments that are involved in intracellular transport, cell division, and motility. Despite their biological importance, determining their high-resolution structures via cryo-electron microscopy remains a significant technical challenge due to their polymorphisms and pseudo-helical assembly. Current processing workflows are complex, often requiring the integration of multiple software packages and custom scripts, which creates a steep learning curve for many research groups. To address these limitations, we introduce CsMT, a streamlined workflow implemented entirely within the CryoSPARC environment and using synthetic references. CsMT simplifies microtubule reconstruction by utilizing a novel protofilament-pair classification approach, which effectively handles the inherent pseudo-symmetry and structural heterogeneity of microtubules with minimal manual intervention. Our workflow is versatile, capable of processing both undecorated and decorated microtubules while accurately determining seams and performing high-resolution refinement. We demonstrate the efficacy of this workflow by achieving a 2.3 and 2.7 [A] resolution reconstruction of homotypic and heterotypic maps of undecorated microtubules, matching the best-resolved microtubule structures in the field. By unifying the pipeline into a single and portable workflow, CsMT enhances reproducibility and accessibility, empowering more laboratories to explore the structural biology of microtubules and associated proteins, yielding new insights into their function.

biophysics↗

The native structure of the Trichonympha centriole cartwheel reveals a zigzag stacking pattern

Centrioles are essential cellular organelles with complex architectures. Their earliest assembly intermediate--the cartwheel--has a 9-fold symmetry established by Spindle assembly abnormal protein 6 (SAS-6). We used cryo-electron tomography and sub-tomogram averaging to resolve the native structure of the SAS-6 rings within the cartwheel of the exceptionally long Trichonympha proximal centriole. A 16-nm axial periodicity was formed by stacked rings of V-shaped SAS-6 tetramers, which formed the fundamental unit of the cartwheels central hub. SAS-6 head domains adopted a zigzag stacking pattern. Furthermore, the improved resolution provides new insights into the function of the previously observed central inner domain, which forms nine asymmetric densities that bridge adjacent tetramers, thereby imparting polarity and enhancing structural stability. Molecular dynamics simulations indicate increased rigidity in inter-tetramer interactions, supporting efficient ring formation and revealing how cartwheel architecture and polarity are established and stabilized.

cell biology↗