Search bioRxivSearch

Biology subjects

Olieric, N.

Publications and source records attributed to Olieric, N..

2 recordsLinked to original sources

Photoswitchable microtubule inhibitors enabling robust, GFP-orthogonal optical control over the tubulin cytoskeleton

Here we present GFP-orthogonal optically controlled reagents for reliable and repetitive in cellulo modulation of microtubule dynamics and its dependent processes. Optically controlled reagents (\"photopharmaceuticals\") have developed into powerful tools for high-spatiotemporal-precision control of endogenous biology, with numerous applications in neuroscience, embryology, and cytoskeleton research. However, the restricted chemical domain of photopharmaceutical scaffolds has constrained their properties and range of applications. Styrylbenzothiazoles are an as-yet unexplored scaffold for photopharmaceuticals, which we now rationally design to feature potent photocontrol, switching microtubule cytoskeleton function off and on according to illumination conditions. We show more broadly that this scaffold is exceptionally chemically and biochemically robust as well as substituent-tolerant, and offers particular advantages for intracellular biology through a range of desirable photopharmaceutical and drug-like properties not accessible to the current classes of photoswitches. We expect that these reagents will find powerful applications enabling robust, high precision, optically controlled cell biological experimentation in cytoskeleton research and beyond.

cell biology

Mechanisms of motor-independent membrane remodeling driven by dynamic microtubules

Microtubule-dependent organization of membranous organelles, such as the endoplasmic reticulum, occurs through motor-based pulling and by coupling microtubule dynamics to membrane remodeling. How highly transient protein-protein interactions occurring at growing microtubule tips can induce load-bearing processive motion is currently unclear. Here, we reconstituted membrane tubulation in a minimal system with giant unilamellar vesicles, dynamic microtubules, End-Binding (EB) proteins and a membrane-targeted protein that interacts with EBs and microtubules. We showed that these components are sufficient to drive membrane remodeling by three mechanisms: membrane tubulation by growing microtubule ends, motor-independent membrane sliding along microtubule shafts and pulling by shrinking microtubules. Experiments and modeling demonstrated that the first two mechanisms can be explained by adhesion-driven biased membrane spreading on microtubules. Force spectroscopy revealed that attachments to growing and shrinking microtubule ends can sustain forces of [~]0.5 and [~]5 pN, respectively. Rapidly exchanging molecules that connect membranes to dynamic microtubules can thus bear sufficient load to induce membrane deformation and motility.

cell biology