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result(s) for
"Veprek, Nynke A"
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Identification of the growth cone as a probe and driver of neuronal migration in the injured brain
2024
Axonal growth cones mediate axonal guidance and growth regulation. We show that migrating neurons in mice possess a growth cone at the tip of their leading process, similar to that of axons, in terms of the cytoskeletal dynamics and functional responsivity through protein tyrosine phosphatase receptor type sigma (PTPσ). Migrating-neuron growth cones respond to chondroitin sulfate (CS) through PTPσ and collapse, which leads to inhibition of neuronal migration. In the presence of CS, the growth cones can revert to their extended morphology when their leading lopodia interact with heparan sulfate (HS), thus re-enabling neuronal migration. Implantation of an HS-containing bio- material in the CS-rich injured cortex promotes the extension of the growth cone and improve the migration and regeneration of neurons, thereby enabling functional recovery. Thus, the growth cone of migrating neurons is responsive to extracellular environments and acts as a primary regulator of neuronal migration.
Journal Article
Optical Control of Membrane Viscosity Modulates ER-to-Golgi Trafficking
2025
The lipid composition of cellular membranes is highly dynamic and undergoes continuous remodeling, affecting the biophysical properties critical to biological function. Here, we introduce an optical approach to manipulate membrane viscosity based on an exogenous synthetic fatty acid with an azobenzene photoswitch, termed FAAzo4. Cells rapidly incorporate FAAzo4 into phosphatidylcholine and phosphatidylethanolamine in a concentration- and cell type-dependent manner. This generates photoswitchable PC and PE analogs, which are predominantly located in the endoplasmic reticulum. Irradiation causes a rapid photoisomerization that decreases membrane viscosity with high spatiotemporal precision. We use the resulting “PhotoCells” to study the impact of membrane viscosity on ER-to-Golgi transport and demonstrate that this two-step process has distinct membrane viscosity requirements. Our approach provides an unprecedented way of manipulating membrane biophysical properties directly in living cells and opens novel avenues to probe the effects of viscosity in a wide variety of biological processes.
Journal Article
Optical Control of Membrane Fluidity Modulates Protein Secretion
by
Morstein, Johannes
,
Kanshin, Evgeny
,
Riezman, Howard
in
Cell Biology
,
Cell membranes
,
Endoplasmic reticulum
2022
The lipid composition of cellular membranes is dynamic and undergoes remodelling affecting biophysical properties, such as membrane fluidity, which are critical to biological function. Here, we introduce an optical approach to manipulate membrane fluidity based on exogenous synthetic fatty acid with an azobenzene photoswitch, termed FAAzo4. Cells rapidly incorporate FAAzo4 into phosphatidylcholine (PC), the major phospholipid in mammalian cells, in a concentration- and cell type-dependent manner. This generates photoswitchable PC analogs (AzoPC), which are predominantly located in the endoplasmic reticulum (ER). Irradiation causes a rapid photoisomerization that increases membrane fluidity with high spatiotemporal precision. We use these PhotoCells to study the impact of membrane mechanics on protein export from the ER and demonstrate that this two-step process has distinct membrane fluidity requirements. Our approach represents an unprecedented way of manipulating membrane fluidity in cellulo and opens novel avenues to probe roles of fluidity in a wide variety of biological processes. Competing Interest Statement The authors have declared no competing interest.
Optical Control of G-Actin with a Photoswitchable Latrunculin
Actin is one of the most abundant proteins in eukaryotic cells and a key component of the cytoskeleton. A range of small molecules have emerged that interfere with actin dynamics by either binding to polymeric F-actin or monomeric G-actin to stabilize or destabilize filaments or prevent their formation and growth, respectively. Amongst these, the latrunculins, which bind to G-actin and affect polymerization, are widely used as tools to investigate actin-dependent cellular processes. Here, we report a photoswitchable version of latrunculin, termed opto-latrunculin (
), which binds to G-actin in a light-dependent fashion and affords optical control over actin polymerization.
can be activated with 390 - 490 nm pulsed light and rapidly relaxes to the inactive form in the dark. Light activated
induced depolymerization of F-actin networks in oligodendrocytes and budding yeast, as shown by fluorescence microscopy. Subcellular control of actin dynamics in human cancer cell lines was demonstrated by live cell imaging. Light-activated
also reduced microglia surveillance in organotypic mouse brain slices while ramification was not affected. Incubation in the dark did not alter the structural and functional integrity of microglia. Together, our data demonstrate that
is a useful tool for the elucidation of G-actin dependent dynamic processes in cells and tissues.
Journal Article
Cellularly-Retained Fluorogenic Probes for Sensitive Cell-Resolved Bioactivity Imaging
2025
Here, we develop a general design for high-quality fluorogenic activity probes to quantify biological processes in live cells, by creating a scaffold that efficiently generates cell-retained bright fluorescent soluble products upon reaction with biochemical targets. Live cell probes must be designed to be membrane-permeable; but that often means that their fluorophore products are similarly permeable, resulting in rapid signal loss from the activating cell: which limits their cell-by-cell resolution as well as their sensitivity for quantifying low-turnover processes. Current strategies to retain fluorescent products within cells usually disrupt native biology: e.g. by non-specific alkylation or solid precipitation. Here, scanning charge- and polarity-based approaches to trigger cell retention, we developed a bright fluorogenic rhodol scaffold Trappable Green (TraG) that balances all key requirements for signal integration (rapid probe entry, but effective product retention, across a variety of cell lines) and is easily adaptable to quantify many target types (shown here with probes for GSH, TrxR, and H2O2). The simple and rugged TraG scaffold can now permit straightforward elaboration to a range of cell-retained enzyme activity probes, that enable more accurate cell-resolved imaging as well as higher-sensitivity integration of low-turnover processes, without the drawbacks of alkylation or precipitation-based strategies.
A Photocaged Microtubule-Stabilising Epothilone allows Spatiotemporal Control of Cytoskeletal Dynamics
by
Gierse, Carolin
,
Thorn-Seshold, Oliver
,
Mauker, Philipp
in
Biological and Medicinal Chemistry
,
Organic Chemistry
,
Working Paper
2024
The cytoskeleton is essential for spatial and temporal organization of a wide range of cellular and tissue-level processes, such as proliferation, signalling, cargo transport, migration, morphogenesis, and neuronal development. Cytoskeleton research aims to study these processes by imaging, or by locally manipulating, the dynamics and organisation of cytoskeletal proteins with high spatiotemporal resolution: which matches the capabilities of optical methods. To date, no photoresponsive microtubule-stabilising tool has united all the features needed for a practical high-precision reagent: i.e., a low potency and biochemically stable non-illuminated state; then efficient, rapid, and clean photoresponse that generates a high potency illuminated state; and good solubility at suitable working concentrations; and efficient synthetic access. We now present CouEpo, a photocaged epothilone microtubule-stabilizing reagent, that combines these needs. Its potency increases ~100-fold upon violet/blue irradiation to reach low-nanomolar values, allowing efficient photocontrol of microtubule dynamics in live cells, and even generation of cellular asymmetries in microtubule architecture and cell dynamics. CouEpo is thus a high-performance tool compound that can support high-precision research into many microtubule-associated processes, from biophysics to transport, cell motility, and neuronal physiology.
Logic-gating the HaloTag system with Conditional-Halo-ligator ‘CHalo’ reagents
HaloTag proteins spontaneously ligate onto any chemical reagent featuring a chloroalkane motif (CA). We introduce the conditional CHalo motif, which ligates to HaloTag only after uncaging by light or enzymes. (1) Photo-triggered CHalo fluorogenic reagents allow spatiotemporally-specific labeling; (2) photo-triggered CHalo heterodimerisers can photocontrol protein recruitment; and (3) enzyme-triggered CHalo reagents can durably record diverse enzyme activities, and multiplexing them should allow quantitative ratiometric recording of multiple activities in parallel. CHalo thus permits manifold extensions to the HaloTag technology.
Next Generation Opto-Jasplakinolides Enable Local Remodeling of Actin Networks
2022
The natural product jasplakinolide is a widely used tool compound to stabilize F-actin and influence actin dynamics. We have previously introduced photoswitchable jasplakinolides (optojasps) that are activated with violet light and deactivated with blue light. Based on insights from cryo-electron microscopy and structure-activity relationship (SAR) studies, we now developed a new generation of functionally superior optojasps that are better suited for biological investigations. These compounds are procured through chemical total synthesis and feature rationally designed red-shifted azobenzene photoswitches. Our new optojasps can be activated with longer wavelengths in the visible range (e.g. 440-477 nm) and rapidly return to their inactive state through thermal relaxation. This has enabled the reversible control of F-actin dynamics, as shown through live-cell imaging and cell migration, as well as cell proliferation assays. Brief sub-cellular activation with blue-green light resulted in highly localized F-actin clusters that gradually dissolved in the dark. Our light-responsive tools can be useful in diverse fields to study actin dynamics with outstanding spatiotemporal precision.