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Biology subjects

Stedman, D.

Publications and source records attributed to Stedman, D..

2 recordsLinked to original sources

Extracting biological structure and heterogeneity from the nano to the macro scale

Fluorescence microscopy is an essential tool in biology. It has revealed great variability at multiple scales, in macromolecular complexes, cells, and organisms. Understanding this variability will reveal the mechanisms by which genetically or biochemically identical systems adopt different biological states. Achieving this requires the ability to extract both the underlying biological structure and how it varies across the population. Currently the field lacks general techniques to deal with arbitrary structures and different types of variability. Here we present SQUASSH, a new convolutional neural network-based approach to freely fit structural models to fluorescence microscopy data that simultaneously quantifies variability to reveal correlations, dynamics, and systematic distortions. SQUASSH is highly versatile: it accommodates diverse imaging modalities at length scales from nm to mm. This approach opens up applications such as imaging nanoscale macromolecular structures, revealing patterns in shape changes from organelle to tissue scale, and characterizing systems biology of dynamical processes.

cell biology↗

Force-transducing molecular ensembles at growing microtubule tips control mitotic spindle size

Mitotic spindle is a complex bipolar cellular structure that ensures chromosomes segregation between dividing cells. Correct spindle size is required for the accurate segregation and successful passing of genomes to the newly formed cells. The spindle size is believed to be controlled by mechanical forces generated by molecular motors and non-motor proteins acting in the spindle microtubule overlaps. However, how forces generated by individual proteins enable bipolar spindle organization is not well understood. Here, we developed tools to measure contributions of individual molecules to this force balance. We show that microtubule tip-trackers act synergetically at microtubule tips with minus-end directed motors to produce a system that can generate both pushing and pulling forces. We show that this system harnesses forces generated by growing tips of spindle microtubules and provides unique contribution to the force balance distinct from other force generators because it acts at microtubule tips rather than in microtubule overlaps. We show that this system alone can establish stable bipolar organization in vitro and in mitotic spindles in human cells. Our results pave the way for understanding how mechanical forces in spindles can be fine-tuned to control the fidelity of chromosome segregation.

biophysics↗