Arnaud Comment
École Polytechnique Fédérale de Lausanne
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Featured researches published by Arnaud Comment.
Angewandte Chemie | 2015
Jan Henrik Ardenkjaer-Larsen; G. S. Boebinger; Arnaud Comment; Simon B. Duckett; Arthur S. Edison; Frank Engelke; Christian Griesinger; Robert G. Griffin; Christian Hilty; Hidaeki Maeda; Giacomo Parigi; Thomas F. Prisner; Enrico Ravera; Jan van Bentum; Shimon Vega; Andrew G. Webb; Claudio Luchinat; Harald Schwalbe; Lucio Frydman
In the Spring of 2013, NMR spectroscopists convened at the Weizmann Institute in Israel to brainstorm on approaches to improve the sensitivity of NMR experiments, particularly when applied in biomolecular settings. This multi-author interdisciplinary Review presents a state-of-the-art description of the primary approaches that were considered. Topics discussed included the future of ultrahigh-field NMR systems, emerging NMR detection technologies, new approaches to nuclear hyperpolarization, and progress in sample preparation. All of these are orthogonal efforts, whose gains could multiply and thereby enhance the sensitivity of solid- and liquid-state experiments. While substantial advances have been made in all these areas, numerous challenges remain in the quest of endowing NMR spectroscopy with the sensitivity that has characterized forms of spectroscopies based on electrical or optical measurements. These challenges, and the ways by which scientists and engineers are striving to solve them, are also addressed.
Journal of the American Chemical Society | 2009
Riddhiman Sarkar; Arnaud Comment; Paul R. Vasos; Sami Jannin; Rolf Gruetter; Geoffrey Bodenhausen; Hélène Hall; Deniz Kirik; Vladimir P. Denisov
Chemical shifts of protons can report on metabolic transformations such as the conversion of choline to phosphocholine. To follow such processes in vivo, magnetization can be enhanced by dynamic nuclear polarization (DNP). We have hyperpolarized in this manner nitrogen-15 spins in (15)N-labeled choline up to 3.3% by irradiating the 94 GHz electron spin resonance of admixed TEMPO nitroxide radicals in a magnetic field of 3.35 T during ca. 3 h at 1.2 K. The sample was subsequently transferred to a high-resolution magnet, and the enhanced polarization was converted from (15)N to methyl- and methylene protons, using the small (2,3)J((1)H,(15)N) couplings in choline. The room-temperature lifetime of nitrogen polarization in choline, T(1)((15)N) approximately 200 s, could be considerably increased by partial deuteration of the molecule. This procedure enables studies of choline metabolites in vitro and in vivo using DNP-enhanced proton NMR.
Biochemistry | 2014
Arnaud Comment; Matthew E. Merritt
Hyperpolarized magnetic resonance allows for noninvasive measurements of biochemical reactions in vivo. Although this technique provides a unique tool for assaying enzymatic activities in intact organs, the scope of its application is still elusive for the wider scientific community. The purpose of this review is to provide key principles and parameters to guide the researcher interested in adopting this technology to address a biochemical, biomedical, or medical issue. It is presented in the form of a compendium containing the underlying essential physical concepts as well as suggestions to help assess the potential of the technique within the framework of specific research environments. Explicit examples are used to illustrate the power as well as the limitations of hyperpolarized magnetic resonance.
Angewandte Chemie | 2010
Pascal Miéville; Puneet Ahuja; Riddhiman Sarkar; Sami Jannin; Paul R. Vasos; Sandrine Gerber-Lemaire; Mor Mishkovsky; Arnaud Comment; Rolf Gruetter; Olivier Ouari; Paul Tordo; Geoffrey Bodenhausen
This enhance-ment arises from thermal mixing, which is brought about bymicrowavesaturationoftheEPRtransitionsofstableradicalsthat are mixed with the sample under investigation beforefreezing. In dissolution DNP, the sample is usually polarizedat low temperatures and moderate magnetic fields (T=1.2 Kand B
Physical Chemistry Chemical Physics | 2010
Cristina Ramona Cudalbu; Arnaud Comment; F. Kurdzesau; Ruud van Heeswijk; Kai Uffmann; Sami Jannin; Vladimir P. Denisov; Deniz Kirik; Rolf Gruetter
The increase of total choline in tumors has become an important biomarker in cancer diagnosis. Choline and choline metabolites can be measured in vivo and in vitro using multinuclear MRS. Recent in vivo(13)C MRS studies using labeled substrates enhanced via dynamic nuclear polarization demonstrated the tremendous potential of hyperpolarization for real-time metabolic studies. The present study demonstrates the feasibility of detecting hyperpolarized (15)N labeled choline in vivo in a rat head at 9.4 T. We furthermore report the in vitro (172 +/- 16 s) and in vivo (126 +/- 15 s) longitudinal relaxation times. We conclude that with appropriate infusion protocols it is feasible to detect hyperpolarized (15)N labeled choline in live animals.
Chemistry: A European Journal | 2011
Lloyd Lumata; S. James Ratnakar; Ashish Jindal; Matthew E. Merritt; Arnaud Comment; Craig R. Malloy; A. Dean Sherry; Zoltan Kovacs
Keywords: dynamic nuclear polarization ; hyperpolarization ; NMR spectroscopy ; radicals ; relaxation ; Signal Reference EPFL-ARTICLE-169192doi:10.1002/chem.201102037View record in Web of Science Record created on 2011-10-03, modified on 2017-05-12
Journal of Cerebral Blood Flow and Metabolism | 2012
Mor Mishkovsky; Arnaud Comment; Rolf Gruetter
The Krebs (or tricarboxylic acid (TCA)) cycle has a central role in the regulation of brain energy regulation and metabolism, yet brain TCA cycle intermediates have never been directly detected in vivo. This study reports the first direct in vivo observation of a TCA cycle intermediate in intact brain, namely, 2-oxoglutarate, a key biomolecule connecting metabolism to neuronal activity. Our observation reveals important information about in vivo biochemical processes hitherto considered undetectable. In particular, it provides direct evidence that transport across the inner mitochondria membrane is rate limiting in the brain. The hyperpolarized magnetic resonance protocol designed for this study opens the way to direct and real-time studies of TCA cycle kinetics.
NMR in Biomedicine | 2013
Tian Cheng; Mor Mishkovsky; Jessica Bastiaansen; Olivier Ouari; Patrick Hautle; Paul Tordo; Ben van den Brandt; Arnaud Comment
Hyperpolarized magnetic resonance via dissolution dynamic nuclear polarization necessitates the transfer of the hyperpolarized molecules from the polarizer to the imager prior to in vivo measurements. This process leads to unavoidable losses in nuclear polarization, which are difficult to evaluate once the solution has been injected into an animal. We propose a method to measure the polarization of the hyperpolarized molecules inside the imager bore, 3 s following dissolution, at the time of the injection, using a precise quantification of the infusate concentration. This in situ quantification allows for distinguishing between signal modulations related to variations in the nuclear polarization at the time of the injection and signal modulations related to physiological processes such as tissue perfusion. In addition, our method includes a radical scavenging process that leads to a minor reduction in sample concentration and takes place within a couple of seconds following the dissolution in order to minimize the losses due to the presence of paramagnetic polarizing agent in the infusate. We showed that proton exchange between vitamin C, the scavenging molecule and the deuterated solvent shortens the long carboxyl 13C longitudinal relaxation time in [1‐13C]acetate. This additional source of dipolar relaxation can be avoided by using deuterated ascorbate. Overall, the method allows for a substantial gain in polarization and also leads to an extension of the time window available for in vivo measurements. Copyright
Biochimica et Biophysica Acta | 2013
Jessica Bastiaansen; Tian Cheng; Mor Mishkovsky; João M. N. Duarte; Arnaud Comment; Rolf Gruetter
BACKGROUND Acetate metabolism in skeletal muscle is regulated by acetylCoA synthetase (ACS). The main function of ACS is to provide cells with acetylCoA, a key molecule for numerous metabolic pathways including fatty acid and cholesterol synthesis and the Krebs cycle. METHODS Hyperpolarized [1-(13)C]acetate prepared via dissolution dynamic nuclear polarization was injected intravenously at different concentrations into rats. The (13)C magnetic resonance signals of [1-(13)C]acetate and [1-(13)C]acetylcarnitine were recorded in vivo for 1min. The kinetic rate constants related to the transformation of acetate into acetylcarnitine were deduced from the 3s time resolution measurements using two approaches, either mathematical modeling or relative metabolite ratios. RESULTS Although separated by two biochemical transformations, a kinetic analysis of the (13)C label flow from [1-(13)C]acetate to [1-(13)C]acetylcarnitine led to a unique determination of the activity of ACS. The in vivo Michaelis constants for ACS were KM=0.35±0.13mM and Vmax=0.199±0.031μmol/g/min. CONCLUSIONS The conversion rates from hyperpolarized acetate into acetylcarnitine were quantified in vivo and, although separated by two enzymatic reactions, these rates uniquely defined the activity of ACS. The conversion rates associated with ACS were obtained using two analytical approaches, both methods yielding similar results. GENERAL SIGNIFICANCE This study demonstrates the feasibility of directly measuring ACS activity in vivo and, since the activity of ACS can be affected by various pathological states such as cancer or diabetes, the proposed method could be used to non-invasively probe metabolic signatures of ACS in diseased tissue.
Magnetic Resonance in Medicine | 2009
Ruud van Heeswijk; Kai Uffmann; Arnaud Comment; F. Kurdzesau; Chiara Perazzolo; Cristina Ramona Cudalbu; Sami Jannin; Jacobus A. Konter; Patrick Hautle; Ben van den Brandt; Gil Navon; Jacques Van Der Klink; Rolf Gruetter
Lithium is widely used in psychotherapy. The 6Li isotope has a long intrinsic longitudinal relaxation time T1 on the order of minutes, making it an ideal candidate for hyperpolarization experiments. In the present study we demonstrated that lithium‐6 can be readily hyperpolarized within 30 min, while retaining a long polarization decay time on the order of a minute. We used the intrinsically long relaxation time for the detection of 500 nM contrast agent in vitro. Hyperpolarized lithium‐6 was administered to the rat and its signal retained a decay time on the order of 70 sec in vivo. Localization experiments imply that the lithium signal originated from within the brain and that it was detectable up to 5 min after administration. We conclude that the detection of submicromolar contrast agents using hyperpolarized NMR nuclei such as 6Li may provide a novel avenue for molecular imaging. Magn Reson Med, 2009.