Related Experiment Video
Updated: Jan 19, 2026

Development of a Microfluidics-Based Approach for Investigating Microtubule Polymer Mechanics
Published on: May 30, 2025
Mechanism of microtubule plus-end tracking by the plant-specific SPR1 protein and its development as a versatile
Rachappa Balkunde1, Layla Foroughi1, Eric Ewan2
1Department of Biology and Center for Engineering Mechanobiology, Washington University, St. Louis, Missouri 63130.
Abstract:
Microtubules are cytoskeletal polymers that perform diverse cellular functions. The plus ends of microtubules promote polymer assembly and disassembly and connect the microtubule tips to other cellular structures. The dynamics and functions of microtubule plus ends are governed by microtubule plus end-tracking proteins (+TIPs). Here we report that the Arabidopsis thaliana SPIRAL1 (SPR1) protein, which regulates directional cell expansion, is an autonomous +TIP. Using in vitro reconstitution experiments and total internal reflection fluorescence microscopy, we demonstrate that the conserved N-terminal region of SPR1 and its GGG motif are necessary for +TIP activity whereas the conserved C-terminal region and its PGGG motif are not. We further show that the N- and C-terminal regions, either separated or when fused in tandem (NC), are sufficient for +TIP activity and do not significantly perturb microtubule plus-end dynamics compared with full-length SPR1. We also found that exogenously expressed SPR1-GFP and NC-GFP label microtubule plus ends in plant and animal cells. These results establish SPR1 as a new type of intrinsic +TIP and reveal the utility of NC-GFP as a versatile microtubule plus-end marker.
Related Concept Videos
06:03Development of a Microfluidics-Based Approach for Investigating Microtubule Polymer Mechanics
07:19Cell Tracking Using Photoconvertible Proteins During Zebrafish Development
Microtubules
08:02Extracting Modified Microtubules from Mammalian Cells to Study Microtubule-Protein Complexes by Cryo-Electron Microscopy
09:13Hydroponics: A Versatile System to Study Nutrient Allocation and Plant Responses to Nutrient Availability and Exposure to Toxic Elements
12:20Preparation of Segmented Microtubules to Study Motions Driven by the Disassembling Microtubule Ends

