bioRxiv Science⌕ Search

Biology subjects

Bettler, E.

Publications and source records attributed to Bettler, E..

3 recordsLinked to original sources

Structure of PCPE-2 in complex with the BMP-1 metalloprotease reveals the molecular basis of its mechanism of inhibition

PCPE-2 (procollagen C-proteinase enhancer-2) is an extracellular glycoprotein playing dual functions in the regulation of BMP-1/tolloid-like proteinases. Like its homologue PCPE-1, PCPE-2 can enhance the proteolytic maturation of fibrillar procollagens, but it also acts as a potent and specific inhibitor of BMP-1 through formation of a high-affinity complex with the protease. Here, we investigated the molecular basis of this inhibitory interaction using complementary biochemical, biophysical and structural approaches. We show that the two CUB domains of PCPE-2 must be covalently linked for efficient BMP-1 binding and inhibition, consistent with cooperative engagement of the protease. Cryo-electron microscopy combined with density-guided structural modelling and hydrogen/deuterium-exchange mass spectrometry supports a bipartite interaction complex in which the CUB1 domain of PCPE-2 engages the catalytic domain of BMP-1, while the CUB2 domains of both proteins interact together. The interaction involves the calcium-binding surfaces of the PCPE-2 CUB domains that also participate in procollagen recognition, providing a structural framework for understanding the mutually exclusive interactions of PCPE-2 with BMP-1 and procollagen. Allosteric inhibition is supported by the binding of PCPE-2 CUB1 opposite to the active site cleft, leading to the shielding of the residues surrounding the S1-prime pocket, as observed by HDX-MS. Together, these findings define the architecture of the inhibitory PCPE-2/BMP-1 complex and provide the molecular basis for understanding the distinct regulatory activities of the two procollagen C-proteinase enhancers.

biochemistry↗

CryoEM of ATP-driven dynamics and itraconazole binding in a fungal ABC pump

Azole resistance in Candida species is often caused by the overexpression of Cdr1. Despite its clinical relevance, the structural basis for its ATP-driven efflux pump function remains elusive. We present four high-resolution cryo-EM structures for Candida glabrata Cdr1 under active turnover conditions in the absence and presence of ATP-Mg{superscript 2}, itraconazole, and vanadate. Additional transient cryo-EM structures were unveiled by 3D variability analysis offering a detailed view of the step-by-step transitions triggered by ATP-hydrolysis. The motion cascade starts with a 4 [A] piston-like retraction of the C-helix from the {gamma}-phosphate/vanadate of the hydrolyzed ATP. This causes the nearby transmembrane helix-1 (TMH-1) to open the drug-binding site via lateral displacement and unwinding of the inner-leaflet region of TMH-2. A reverse squeeze-and-push motion of TMH-2 possibly drives substrate extrusion. High resolution structures also reveal how itraconazole adapts its shape to fit into the drug-binding site. Our findings provide a dynamic structural framework for Cdr1-mediated azole resistance and the conserved chemo-mechanical cycle of ABC proteins, including non-membranous members.

biochemistry↗

R6G narrows BmrA conformational spectrum for a more efficient use of ATP

Multidrug ABC transporters harness the energy of ATP binding and hydrolysis to change conformation and thereby translocate substrates out of the cell to detoxify them. While this general access mechanism scheme is well accepted, molecular details of this interplay is still elusive. Rhodamine6G binding on a catalytic mutant of the homodimeric multidrug ABC transporter BmrA triggers a cooperative binding of ATP on the two identical nucleotide-binding-sites, otherwise Michaelian. We investigated this asymmetric behavior via a structural-enzymology approach, solving cryoEM structure of BmrA at defined ATP ratio along the enzymatic transition, highlighting the plasticity of BmrA as it undergoes the transition from inward to outward facing conformations. Analysis of continuous heterogeneity within cryoEM data and structural dynamics, revealed that Rhodamine6G narrows the conformational spectrum explored by the nucleotide-binding-domains, describing the allosteric effect of drug binding that optimizes the ATP-dependent conversion of the transporter to the outward-facing state. Following on these findings, the effect of drug-binding showed an ATPase stimulation and a maximal transport activity of the wild-type protein at the concentration-range where the allosteric transition occurs. Drug diffusion rate is the likely rate-limiting step of the reaction, while drug transport and ATPase activities are in effect uncoupled.

biochemistry↗