bioRxiv Science⌕ Search

Biology subjects

Narducci, A.

Publications and source records attributed to Narducci, A..

3 recordsLinked to original sources

Long-term single-molecule Ca2+ flux recordings reveal mode-switching regulation of Ca2+-ATPases

Calcium (Ca{superscript 2}) is a universal second messenger that governs processes ranging from muscle contraction and secretion to gene expression and cell fate. Ca{superscript 2}-ATPases establish and maintain steep Ca{superscript 2} gradients across intracellular membranes, yet how regulatory inputs modulate the underlying single-pump Ca{superscript 2} currents has remained inaccessible. Here we develop a non-saturating, self-regenerating single-vesicle assay that monitors over hours the zeptoampere (10-{superscript 2}{superscript 1} A) currents produced by individual Ca{superscript 2}-ATPases. In parallel, we establish a workflow to record single-molecule currents from human sarco/endoplasmic reticulum Ca{superscript 2}-ATPases (hSERCA) in native endoplasmic reticulum vesicles. Using reconstituted LMCA1, a bacterial SERCA homologue, we observe stochastic switching between minute-long pumping and inactive modes, as well as uncoupled Ca{superscript 2} leakage events that are suppressed by vanadate. Extravesicular pH controls a previously unrecognized dormant pre-activation mode that delays the onset of pumping, without measurably altering pumping rates or active-mode lifetimes. Extending the assay to endogenous hSERCA reveals delayed activation and ultraslow pumping/inactive mode-switching without detectable transprotein Ca{superscript 2} leakage. ATP and Ca{superscript 2} regulate the probability of hSERCA activation by modulating dormant-mode occupancy. Together, these results extend ultraslow mode-switching, previously observed only for proton pumps, to Ca{superscript 2}-ATPases and identify probability-gated entry into productive cycling as a distinct regulatory axis of human Ca{superscript 2}-ATPase regulation that can modulate the timing and heterogeneity of Ca{superscript 2} store refilling without changing on-cycle kinetics.

biophysics↗

Determination of Absolute Intramolecular Distances in Proteins by Anomalous X-ray Scattering Interferometry

Biomolecular structures are typically determined using frozen or crystalline samples. Measurement of intramolecular distances in solution can provide additional insights into conformational heterogeneity and dynamics of biological macromolecules and their complexes. The established molecular ruler techniques used for this (NMR, FRET, and EPR) are, however, limited in their dynamic range and require model assumptions to determine absolute distance (distributions). Here, we introduce anomalous X-ray scattering interferometry (AXSI) for intramolecular distance measurements in proteins, which are labeled at two sites with small gold nanoparticles of 0.7 nm radius. We apply AXSI to two different cysteine-variants of maltose binding protein in the presence and absence of its ligand maltose and find distances in quantitative agreement with single-molecule FRET experiments. Our study shows that AXSI enables determination of absolute intramolecular distance distributions under virtually arbitrary solution conditions and we anticipate its broad use to characterize protein conformational ensembles and dynamics.

biophysics↗

Dissecting Mechanisms of Ligand Binding and Conformational Changes in the Glutamine-Binding Protein

The glutamin-binding protein GlnBP is part of an ATP-binding cassette transporter system in E. coli and uses two well-characterized conformational states, an open ligand-free and a closed-liganded state, to facilitate active amino-acid uptake. Existing literature on its ligand binding mechanism lacked sufficient evidence to univocally assign the kinetic type of binding mechanism for GlnBP: ligand binding prior to conformational change, i.e., an induced fit or the conformational selection, in which the ligand binds the matching conformation from a pre-existing ensemble. Since such mechanistic questions are relevant for our fundamental understanding of how this and other biomacromolecules regulate cellular processes, we here revisit the question for GlnBP. We present a biochemical and biophysical analysis using a combination of calorimetry, single-molecule and surface-plasmon resonance spectroscopy and molecular dynamics simulations. We found that both apo- and holo-GlnBP show no detectable exchange between open and (semi-)closed conformations on timescales between 100 ns and 10 ms and that ligand binding and conformational changes in GlnBP are correlated. A global analysis of our experimental results suggests that the conformational selection model is only compatible with GlnBP for the extreme scenario of very fast conformational exchange between the open and closed states on timescales <100 ns. In contrast all data remains compatible with an induced-fit mechanism, where the ligand binds GlnBP prior to conformational rearrangements. Importantly, our work demonstrates that it is an intricate task to identify the type of kinetic binding mechanism and that this requires not only a sufficient set of data, but also an integrative experimental and theoretical framework to address the question. Based on this concept, we propose that various protein systems, for which so far only insufficient kinetic data are available, should be revisited.

biophysics↗