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Bruns, D.

Publications and source records attributed to Bruns, D..

3 recordsLinked to original sources

Ideal efficacy photoswitches for TRPC4/5 channels harness high potency for spatiotemporally-resolved control of TRPC function in live tissues

Directly probing the endogenous biological roles of target proteins with high spatial and temporal resolution, as non-invasively and reproducibly as possible, is a shared conceptual goal for research across many fields, as well as for targeted therapies. Here we describe the rational conceptual design and test-case practical implementation of a photopharmacological paradigm to empower high-performance photomodulation studies in vivo. TRPC4/5 ion channels are involved in many spatiotemporally resolved circuits, from pain and anxiety, to reproductive signaling, digestion, and obesity. To unpick their biology requires spatiotemporally precise tools, which were lacking. We developed "ideal efficacy photoswitch" ligands to control their diverse functions in situ. These E{leftrightarrows}Z-photoswitchable ligands bias TRPC[4]/5 channel activity with exquisite photocontrol, from strong agonism under 360 nm, to low agonism at 385 nm, to strong antagonism at 410-460 nm. Cryo-EM structures of both TRPC4 and TRPC5 with both Z-agonists and E-antagonists support the rationale for efficacy switching through competitive E/Z isomer binding. Crucially, since the E/Z ratio is exclusively determined by the light wavelength applied, their channel photocontrol is exclusively wavelength-dependent, yet drug-concentration-independent: so is reproducible from cell culture to >millimetre-depth tissues. Indeed, we were able to photocontrol both direct and downstream TRPC4/5 biology in cell lines or primary cells in culture, from calcium flux, to primary neuron excitability and adrenaline release; and even in tissues, photoswitching small intestine motility and peristalsis. The TRPC4/5 ligands we develop will thus unlock a range of high-precision investigations in TRP biology. More broadly, we propose that the success of this efficacy photoswitch program, from concept to tissue level translation, is mainly a consequence of how biology has evolved proteins for efficacy control. We therefore foresee that a variety of functionally responsive protein targets, not only sensory and signaling ion channels and receptors, will be amenable to similarly high-performance photocontrol even in vivo, if a new generation of reagent development adopts this paradigm of ideal efficacy photoswitching. Table of Contents Graphic O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=84 SRC="FIGDIR/small/602451v1_ufig1.gif" ALT="Figure 1"> View larger version (24K): org.highwire.dtl.DTLVardef@1f8e527org.highwire.dtl.DTLVardef@18c72d0org.highwire.dtl.DTLVardef@1c5d648org.highwire.dtl.DTLVardef@177203d_HPS_FORMAT_FIGEXP M_FIG C_FIG

cell biology↗

Multicore-fiber microendoscopy for functional cellular in-organ imaging

Microendoscopy enables minimally invasive investigations of organs even within small cavities. Conventional microendoscopy is limited by probe size and often restricted to a single excitation wavelength. We developed and characterized a multichannel microendoscope as thin as 360 {micro}m and recorded functional cellular signals in-situ using custom written software for image processing. The endoscope had an effective resolution of 4.64 {micro}m and resolved subcellular structures of neurons. The system enabled analysis of in-situ calcium responses in murine tracheal brush cells and kidney podocytes. Additionally, ratiometric redox responses were recorded in whole, explanted organs and pancreatic islet culture. The flexibility and simplicity of our approach for imaging a variety of tissues and organs paves the way for in-vivo, longitudinal studies with cellular resolution.

bioengineering↗

Key determinants of the dual clamp/activator function of Complexin

Complexin determines magnitude and kinetics of synchronized secretion, but the underlying molecular mechanisms remained unclear. Here, we show that the hydrophobic face of the amphipathic helix at the C-terminus of Complexin II (CpxII, amino acids 115- 134) binds to fusion-promoting SNARE proteins, prevents premature secretion and allows vesicles to accumulate in a release-ready state. Specifically, we demonstrate that an unrelated amphipathic helix functionally substitutes for the CTD of CpxII and that amino acid substitutions on the hydrophobic side compromise the arrest of the prefusion intermediate. To facilitate synchronous vesicle fusion, the N-terminal domain (NTD) of CpxII (amino acids 1-27) specifically cooperates with synaptotagmin I (SytI), but not with synaptotagmin VII. Expression of CpxII rescues the slow release kinetics of the Ca2+- binding mutant Syt I R233Q, whereas the N-terminally truncated variant of CpxII further delays it. These results indicate that the CpxII NTD regulates mechanisms which are governed by the forward rate of Ca2+ binding to Syt I. Overall, our results shed new light on key molecular properties of CpxII that hinder premature exocytosis and accelerate synchronous exocytosis.

neuroscience↗