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Rua, A. J.

Publications and source records attributed to Rua, A. J..

6 recordsLinked to original sources

High-pH NMR to Identify Macromolecular Hydrogen-Bonds and Foldons

Hydrogen bond (H-bond) restraints are critical for NMR structure determination, yet their experimental identification can be challenging for marginally stable structures that afford insufficient protection from (H/D) exchange in D2O. As an alternative, we explored the use of NMR between pH 10 and 11 conditions that promote rapid exchange, for identifying backbone amide protons involved in H-bonds. We analyzed [~]750 amide sites distributed across ten proteins with known structures. Persistence of amide protons at high pH in standard 2D 1H-15N HSQC spectra for 15N-labeled proteins in H2O, or TOCSY for unlabeled proteins, identifies H-bonds with [~]91% accuracy that exceeds the [~]80% accuracy of traditional H/D exchange experiments in D2O. For two -helical coiled coils and three globular proteins, we performed alkaline unfolding experiments taking advantage of amide NMR signal attenuation from unstructured polypeptides. Increasing the sample pH led to a progressive loss of native amide proton NMR signals, revealing an unfolding hierarchy where "foldons" remaining at the highest pH values had the most persistent H-bonds under EX1 exchange conditions. The foldons observed at high pH are consistent with partially folded structures previously characterized near neutral pH by native state hydrogen exchange, equilibrium unfolding, and protein fragment studies. For {beta}-sheet proteins, foldons correspond to regions with high inter-residue contact density, whereas in coiled coils they demarcate regions with high -helical propensity. High-pH NMR experiments provide a sensitive, fast, inexpensive, and broadly applicable approach to map H-bonding in marginally stable or partially folded proteins. Additionally, they offer the opportunity to explore uncharted protein dynamics and unfolding pathways under basic pH conditions.

biophysics↗

Solution Structure of the Novel CH-domain zinc finger from the puberty regulator Makorin-3

The makorin (MKRN) family of E3 ubiquitin ligases (MKRN1-4) regulates diverse biological processes, including reproduction, neurogenesis, and immune function. The first identified member, MKRN3, is an inhibitor of sexual development that is the site of inherited mutations linked to central precocious puberty (CPP). All makorin proteins share a distinctive cysteine/histidine-rich (CH) domain that has not been previously characterized experimentally. In MKRN3, the CH domain lies between the second C3H zinc finger and the RING domain. The C3H(2)-CH-RING segment appears particularly sensitive to CPP mutations suggesting it may constitute a structure-function unit. Using CD and NMR spectroscopy, we show that the CH domain folds upon coordination of a single Zn2+ ion with picomolar affinity. Spectroscopic and NMR pH-titration analyses identify a CCHC-type metal-binding site, typical of zinc fingers with protein-interaction functions. The NMR structure reveals the CH-domain adopts a canonical {beta}{beta} zinc finger fold, despite atypical ligand spacing and the absence of conserved hydrophobic residues that usually stabilize this type of motif. Thermal denaturation monitored by multiple spectroscopic probes indicates sequential unfolding, with side-chain packing disrupted near 33 {degrees}C but zinc-stabilized secondary structure persisting to [~]63 {degrees}C, consistent with a molten-globule intermediate at high temperature. The function of the CH-domain remains unknown, but it could play a role in allosterically transmitting information on the RNA-bound state of the preceding C3H(2) domain to the subsequent RING domain. Based on a similar metal ligand spacing to a zinc finger from the protein FAAP20 and AlphaFold modeling, the CH-domain may have a ubiquitin-binding function, but this will need to be verified experimentally as AlphaFold also confidently predicts complexes with unrelated random proteins.

biophysics↗

Zinc-induced folding and solution structure of the eponymous novel zinc finger from the ZC4H2 protein

The ZC4H2 gene is the site of congenital mutations linked to neurodevelopmental and musculoskeletal pathologies collectively termed ZARD (ZC4H2-Associated Rare Disorders). ZC4H2 consists of a coiled coil, and a single novel zinc finger with four cysteines and two histidines from which the protein gets its name. Alpha Fold 3 confidently predicts a structure for the zinc finger but also for similarly sized random sequences, providing equivocal information on its folding status. We show using a synthetic peptide fragment that the zinc finger of ZC4H2 is genuine, and folds around zinc ion with picomolar affinity. NMR pH titration of histidines and UV-Vis of a cobalt complex of the peptide indicate its four cysteines coordinate zinc while two histidines do not participate in binding. The experimental NMR structure of the zinc finger has a novel structural motif similar to RANBP2 zinc fingers, in which two orthogonal hairpins each contribute two cysteines to coordinate zinc. Most of the nine ZARD mutations that occur in the ZC4H2 zinc finger likely perturb this structure. While the ZC4H2 zinc finger shares the folding motif and cysteine-ligand spacing of the RANBP2 family, it is missing key substrate-binding residues. Unlike the NZF branch of the RANBP2 family, the ZC4H2 zinc finger does not bind ubiquitin. Since the ZC4H2 zinc finger occurs in a single copy it is also unlikely to bind DNA. Based on sequence homology to the VAB-23 protein, the ZC4H2 zinc finger may bind RNA of a currently undetermined sequence or have alternative unprecedented functions.

biophysics↗

Perturbations in mitochondrial metabolism associated with defective cardiolipin biosynthesis: An in-organello real-time NMR study

Mitochondria are central to cellular metabolism; hence, their dysfunction contributes to a wide array of human diseases including cancer, cardiopathy, neurodegeneration, and heritable pathologies such as Barth syndrome. Cardiolipin, the signature phospholipid of the mitochondrion promotes proper cristae morphology, bioenergetic functions, and directly affects metabolic reactions carried out in mitochondrial membranes. To match tissue-specific metabolic demands, cardiolipin typically undergoes an acyl tail remodeling process with the final step carried out by the phospholipid-lysophospholipid transacylase tafazzin. Mutations in the tafazzin gene are the primary cause of Barth syndrome. Here, we investigated how defects in cardiolipin biosynthesis and remodeling impact metabolic flux through the tricarboxylic acid cycle and associated pathways in yeast. Nuclear magnetic resonance was used to monitor in real-time the metabolic fate of 13C3-pyruvate in isolated mitochondria from three isogenic yeast strains. We compared mitochondria from a wild-type strain to mitochondria from a {Delta}taz1 strain that lacks tafazzin and contains lower amounts of unremodeled cardiolipin, and mitochondria from a {Delta}crd1 strain that lacks cardiolipin synthase and cannot synthesize cardiolipin. We found that the 13C-label from the pyruvate substrate was distributed through about twelve metabolites. Several of the identified metabolites were specific to yeast pathways, including branched chain amino acids and fusel alcohol synthesis. Most metabolites showed similar kinetics amongst the different strains but mevalonate and -ketoglutarate, as well as the NAD+/NADH couple measured in separate nuclear magnetic resonance experiments, showed pronounced differences. Taken together, the results show that cardiolipin remodeling influences pyruvate metabolism, tricarboxylic acid cycle flux, and the levels of mitochondrial nucleotides.

biophysics↗

Formerly degenerate seventh zinc finger domain from transcription factor ZNF711 rehabilitated by experimental NMR structure

Domain Z7 of nuclear transcription factor ZNF711 has the consensus last metal-ligand H23 found in odd-numbered zinc-fingers of this protein replaced by a phenylalanine. Ever since the discovery of ZNF711 it has been thought that Z7 is probably non-functional because of the H23F substitution. The presence of H26 three positions downstream prompted us to examine if this histidine could substitute as the last metal ligand. The Z7 domain adopts a stable tertiary structure upon metal binding. The NMR structure of Zn2+-bound Z7 shows the classical {beta}{beta}-fold of CCHH zinc fingers. Mutagenesis and pH titration experiments indicate that H26 is not involved in metal binding and that Z7 has a tridentate metal-binding site comprised of only residues C3, C6, and H19. By contrast, an F23H mutation that introduces a histidine in the consensus position forms a tetradentate ligand. The structure of the WT Z7 is stable causing restricted ring-flipping of phenyalanines 10 and 23. Dynamics are increased with either the H26A or F23H substitutions and aromatic ring rotation is no longer hindered in the two mutants. The mutations have only small effects on the Kd values for Zn2+ and Co2+ and retain the high thermal stability of the WT domain above 80 {degrees}C. Like two previously reported designed zinc fingers with the last ligand replaced by water, the WT Z7 domain is catalytically active, hydrolyzing 4-nitophenyl acetate. We discuss the implications of naturally occurring tridentate zinc fingers for cancer mutations and drug targeting of notoriously undruggable transcription factors. Our findings that Z7 can fold with only a subset of three metal ligands suggests the recent view that most everything about protein structure can be predicted through homology modeling might be premature for at least the resilient and versatile zinc-finger motif.

biophysics↗

NMR structure verifies the eponymous degenerate zinc finger domain of transcription factor ZNF750

ZNF750 is a nuclear transcription factor that activates skin differentiation and has tumor suppressor roles in several cancers. Unusually, ZNF750 has only a single zinc-finger (ZNF) domain, Z*, with an amino acid sequence that differs markedly from the CCHH family consensus. Because of its sequence differences Z* is classified as degenerate, presumed to have lost the ability to bind the zinc ion required for folding. AlphaFold predicts an irregular structure for Z* with low confidence. Low confidence predictions are often inferred to be intrinsically disordered regions of proteins, which would be the case if Z* did not bind Zn2+. We use NMR and CD spectroscopy to show that a 25-51 segment of ZNF750, corresponding to the Z* domain, folds into a well-defined antiparallel {beta}{beta} tertiary structure with a pM dissociation constant for Zn2+, and a thermal stability >80 {degrees}C. Of three alternative Zn2+ ligand sets, Z* uses a CCHC rather than the expected CCHH motif. The switch in the last ligand maintains the folding topology and hydrophobic core of the classical ZNF motif. CCHC ZNFs are associated with protein-protein interactions but Z* binds DNA. Since the metal chelating site is on the other side of the molecule, it suggests functional preferences are a result of divergent evolution rather than physical constraints on the structure. The structure of Z* provides a context for understanding the domains DNA-binding properties and mutations associated with cancers. We expect other ZNFs currently classified as degenerate, are CCHC-type structures like Z*.

molecular biology↗