PubMed Health⌕ Search

PubMed · 9799699

Gradient- and sensitivity-enhanced heteronuclear multiple-quantum correlation spectroscopy.

Abstract

A gradient- and sensitivity-enhanced HMQC experiment has been developed. The sensitivity of the experiment is increased by factors of the square root of 2 and 2 over the conventional and gradient-enhanced HMQC experiments, respectively. This improvement is achieved by retaining both the x and the y magnetization components in the indirectly detected dimension. This experiment will be particularly useful in NMR studies of large biomolecules as the relaxation time of the multiple-quantum coherence is much longer than that of the single-quantum coherence in the slow motion limit.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

G Zhu, X Kong, K Sze. 1998. Gradient- and sensitivity-enhanced heteronuclear multiple-quantum correlation spectroscopy.. https://doi.org/10.1006/jmre.1998.1558

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Cryo-EM structure of soluble VPS13C suggests its regulation by a conformational switch and by calmodulin.

Bridge-like lipid transfer proteins (BLTPs) play fundamental roles in cellular lipid redistribution between organellar membranes. They comprise bridge domains spanning organelles at contact sites that allow lipids to transit through the cytosol between adjacent membranes. The assembly of BLTPs into complexes with adaptor proteins enables lipid transfer. To address the mechanisms underlying the assembly and regulation of BLTP complexes, we used cryo-EM to resolve the structure of one such BLTP, the Parkinson's disease protein VPS13C, at near-atomic resolution. The structure identifies a lipid-transfer-nonpermissive conformation, in which the built-in C-terminal VAB adaptor module blocks the end of the lipid transfer bridge, interfering with lipid delivery. We also identify calmodulin (CaM), central to calcium signaling, as a constitutive VPS13C interactor. Calcium induces conformational changes in the VPS13C-CaM complex, suggesting calcium regulation of VPS13 function. Altogether, this structure of intact VPS13C serves as a starting point for understanding its regulation and that of other VPS13 proteins.

Calmodulin↗

Calmodulin D133H Disrupts Cav1.2 and Kv7.1 Regulation to Prolong Cardiac Action Potentials in Long QT Syndrome.

Calmodulin (CaM) plays a central role in cardiac excitation-contraction coupling by regulating ion channels, including the L-type calcium (Ca2+) channel Cav1.2 and the voltage-gated potassium (K+) channel Kv7.1. Mutations in CaM are linked to severe arrhythmogenic disorders such as Long QT syndrome (LQTS), yet the molecular mechanisms remain incompletely understood. Here, we investigate the structural and functional consequences of the arrhythmia-associated CaM variant D133H. Biophysical analysis revealed that D133H destabilises Ca2+ binding at the C-terminal lobe of CaM, altering its Ca2+-dependent conformational changes. Electrophysiological recordings demonstrated that CaM D133H impairs Ca2+-dependent inactivation (CDI) of Cav1.2, prolonging Ca2+ influx, while also reducing activation of Kv7.1, thereby limiting repolarising K+ currents. Together, these dual defects converge to prolong action potential duration, providing a mechanistic basis for arrhythmogenesis in LQTS. Our findings establish that CaM D133H perturbs both Ca2+ and K+ channel regulation, highlighting a shared pathway by which calmodulinopathy mutations disrupt cardiac excitability.

Calmodulin↗

Detection of breaking points in helices linking separate domains.

A novel method is proposed to predict whether two domains connected by a helical link can mutually reorient themselves, as well as where the helix can be distorted to allow the domain-domain movements. The method, based on analysis of the variation of the a.d.p. values along the helix link, is applied to three proteins--calmodulin, lysozyme, and hemagglutinin--for which both the domain-domain flexibility and the helix fragment responsible for it are well documented. The helix regions that are variously distorted to permit domain-domain reorientation are well predicted. The method is also applied to colicin Ia and shows that an inter-domain rearrangement can take place as previously postulated. The prediction of the helix breaking point should prove useful in interpreting structural data and in defining the domain borders automatically for proteins built by domains connected by helical links.

Calmodulin↗