4.6 Article

Measurement of Residual Dipolar Couplings Using Magnetically Aligned and Flipped Nanodiscs

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LANGMUIR
卷 38, 期 1, 页码 244-252

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AMER CHEMICAL SOC
DOI: 10.1021/acs.langmuir.1c02449

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  1. NIH [R35 GM139573]

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Recent advances in lipid nanodisc technology have addressed challenges in studying membrane proteins and drug delivery. Using synthetic amphiphilic polymers, researchers successfully aligned large-size polymer nanodiscs for high-resolution solid-state NMR studies. The use of polymer-based macro-nanodiscs as alignment media has further enabled structural studies on proteins by solution NMR spectroscopy.
Recent developments in lipid nanodisc technology have successfully overcome the major challenges in the structural and functional studies of membrane proteins and drug delivery. Among the different types of nanodiscs, the use of synthetic amphiphilic polymers created new directions including the applications of solution and solid-state NMR spectroscopy. The ability to magnetically align large-size (>20 nm diameter) polymer nanodiscs and flip them using paramagnetic lanthanide ions has enabled high-resolution studies on membrane proteins using solid-state NMR techniques. The use of polymer-based macro-nanodiscs (>20 nm diameter) as an alignment medium to measure residual dipolar couplings (RDCs) and residual quadrupole couplings by NMR experiments has also been demonstrated. In this study, we demonstrate the use of magnetically aligned and 90 degrees-flipped polymer nanodiscs as alignment media for structural studies on proteins by solution NMR spectroscopy. These macro-nanodiscs, composed of negatively charged SMA-EA polymers and 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC) lipids, were used to measure residual H-1-N-15 dipolar couplings (RDCs) from the water-soluble similar to 21 kDa uniformly N-15-labeled flavin mononucleotide binding domain (FBD) of cytochrome-P450 reductase. The experimentally measured H-1-N-15 RDC values are compared with the values calculated from the crystal structures of cytochrome-P450 reductase that lacks the transmembrane domain. The N-H RDCs measured using aligned and 90 degrees-flipped nanodiscs show a modulation by the function (3 cos(2)theta - 1), where. is the angle between the N-H bond vector and the applied magnetic field direction. This successful demonstration of the use of two orthogonally oriented alignment media should enable structural studies on a variety of systems including small molecules, DNA, and RNA.

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