Literature DB >> 19534516

Pushing the sensitivity envelope of lanthanide-based magnetic resonance imaging (MRI) contrast agents for molecular imaging applications.

Silvio Aime1, Daniela Delli Castelli, Simonetta Geninatti Crich, Eliana Gianolio, Enzo Terreno.   

Abstract

Contrast in magnetic resonance imaging (MRI) arises from changes in the intensity of the proton signal of water between voxels (essentially, the 3D counterpart of pixels). Differences in intervoxel intensity can be significantly enhanced with chemicals that alter the nuclear magnetic resonance (NMR) intensity of the imaged spins; this alteration can occur by various mechanisms. Paramagnetic lanthanide(III) complexes are used in two major classes of MRI contrast agent: the well-established class of Gd-based agents and the emerging class of chemical exchange saturation transfer (CEST) agents. A Gd-based complex increases water signal by enhancing the longitudinal relaxation rate of water protons, whereas CEST agents decrease water signal as a consequence of the transfer of saturated magnetization from the exchangeable protons of the agent. In this Account, we survey recent progress in both areas, focusing on how MRI is becoming a more competitive choice among the various molecular imaging methods. Compared with other imaging modalities, MRI is set apart by its superb anatomical resolution; however, its success in molecular imaging suffers because of its intrinsic insensitivity. A relatively high concentration of molecular agents (0.01-0.1 mM) is necessary to produce a local alteration in the water signal intensity. Unfortunately, the most desirable molecules for visualization in molecular imaging are present at much lower concentrations, in the nano- or picomolar range. Therefore, augmenting the sensitivity of MRI agents is key to the development of MR-based molecular imaging applications. In principle, this task can be tackled either by increasing the sensitivity of the reporting units, through the optimization of their structural and dynamic properties, or by setting up proper amplification strategies that allow the accumulation of a huge number of imaging reporters at the site of interest. For Gd-based agents, high sensitivities can be attained by exploiting a range of nanosized carriers (micelles, liposomes, microemulsions, and the like, as well as biological structures such as apoferritin and lipoproteins) properly loaded with Gd-based chelates. Furthermore, the sensitivity of Gd-based agents can be markedly affected either by their interactions with biological structures or by their cellular localization. For CEST agents, a huge sensitivity enhancement has been obtained by using the water molecules contained in the inner cavity of liposomes as the exchangeable source of protons for magnetization transfer. Several "tricks" (for example, the use of multimeric lanthanide(III) shift reagents, changes in the shape of the liposome container, and so forth) have been devised to improve the chemical shift separation between the intraliposomal water and the "bulk" water resonances. Overall, excellent sensitivity enhancements have been obtained for both classes of agents, enabling their use in MR molecular imaging applications.

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Year:  2009        PMID: 19534516     DOI: 10.1021/ar800192p

Source DB:  PubMed          Journal:  Acc Chem Res        ISSN: 0001-4842            Impact factor:   22.384


  74 in total

1.  Self-organized Mn2+-Block Copolymer Complexes and Their Use for In Vivo MR Imaging of Biological Processes.

Authors:  Nikorn Pothayee; Der-Yow Chen; Maria A Aronova; Chunqi Qian; Nadia Bouraoud; Stephen Dodd; Richard D Leapman; Alan P Koretsky
Journal:  J Mater Chem B       Date:  2014       Impact factor: 6.331

2.  MR-based molecular imaging of the brain: the next frontier.

Authors:  M E de Backer; R J A Nabuurs; M A van Buchem; L van der Weerd
Journal:  AJNR Am J Neuroradiol       Date:  2010-09-23       Impact factor: 3.825

3.  Activation of a PARACEST agent for MRI through selective outersphere interactions with phosphate diesters.

Authors:  Ching-Hui Huang; Jacob Hammell; S James Ratnakar; A Dean Sherry; Janet R Morrow
Journal:  Inorg Chem       Date:  2010-07-05       Impact factor: 5.165

4.  Free-base porphyrins as CEST MRI contrast agents with highly upfield shifted labile protons.

Authors:  Xiaoxiao Zhang; Yaping Yuan; Sha Li; Qingbin Zeng; Qianni Guo; Na Liu; Minghui Yang; Yunhuang Yang; Maili Liu; Michael T McMahon; Xin Zhou
Journal:  Magn Reson Med       Date:  2019-04-10       Impact factor: 4.668

5.  MRI stem cell tracking for therapy in experimental cerebral ischemia.

Authors:  Pedro Ramos-Cabrer; Mathias Hoehn
Journal:  Transl Stroke Res       Date:  2011-10-27       Impact factor: 6.829

6.  A modular system for the synthesis of multiplexed magnetic resonance probes.

Authors:  Daniel J Mastarone; Victoria S R Harrison; Amanda L Eckermann; Giacomo Parigi; Claudio Luchinat; Thomas J Meade
Journal:  J Am Chem Soc       Date:  2011-03-17       Impact factor: 15.419

7.  High-sensitivity CEST mapping using a spatiotemporal correlation-enhanced method.

Authors:  Lin Chen; Suyi Cao; Raymond C Koehler; Peter C M van Zijl; Jiadi Xu
Journal:  Magn Reson Med       Date:  2020-06-29       Impact factor: 4.668

8.  Renal pH Imaging Using Chemical Exchange Saturation Transfer (CEST) MRI: Basic Concept.

Authors:  Dario Livio Longo; Pietro Irrera; Lorena Consolino; Phillip Zhe Sun; Michael T McMahon
Journal:  Methods Mol Biol       Date:  2021

Review 9.  Magnetization Transfer Contrast and Chemical Exchange Saturation Transfer MRI. Features and analysis of the field-dependent saturation spectrum.

Authors:  Peter C M van Zijl; Wilfred W Lam; Jiadi Xu; Linda Knutsson; Greg J Stanisz
Journal:  Neuroimage       Date:  2017-04-21       Impact factor: 6.556

Review 10.  Chemistry of MRI Contrast Agents: Current Challenges and New Frontiers.

Authors:  Jessica Wahsner; Eric M Gale; Aurora Rodríguez-Rodríguez; Peter Caravan
Journal:  Chem Rev       Date:  2018-10-16       Impact factor: 60.622

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