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1.
Radiology ; 259(3): 875-84, 2011 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-21325035

RESUMO

UNLABELLED: Quantitative imaging biomarkers could speed the development of new treatments for unmet medical needs and improve routine clinical care. However, it is not clear how the various regulatory and nonregulatory (eg, reimbursement) processes (often referred to as pathways) relate, nor is it clear which data need to be collected to support these different pathways most efficiently, given the time- and cost-intensive nature of doing so. The purpose of this article is to describe current thinking regarding these pathways emerging from diverse stakeholders interested and active in the definition, validation, and qualification of quantitative imaging biomarkers and to propose processes to facilitate the development and use of quantitative imaging biomarkers. A flexible framework is described that may be adapted for each imaging application, providing mechanisms that can be used to develop, assess, and evaluate relevant biomarkers. From this framework, processes can be mapped that would be applicable to both imaging product development and to quantitative imaging biomarker development aimed at increasing the effectiveness and availability of quantitative imaging. SUPPLEMENTAL MATERIAL: http://radiology.rsna.org/lookup/suppl/doi:10.1148/radiol.10100800/-/DC1.


Assuntos
Biomarcadores , Diagnóstico por Imagem , Difusão de Inovações , Avaliação da Tecnologia Biomédica/normas , Pesquisa Biomédica/organização & administração , Conflito de Interesses , Aprovação de Equipamentos , Europa (Continente) , Humanos , Valor Preditivo dos Testes , Estados Unidos , United States Food and Drug Administration
2.
Contrast Media Mol Imaging ; 2020: 3262835, 2020.
Artigo em Inglês | MEDLINE | ID: mdl-32994754

RESUMO

The semistable chelate manganese (Mn) dipyridoxyl diphosphate (MnDPDP, mangafodipir), previously used as an intravenous (i.v.) contrast agent (Teslascan™, GE Healthcare) for Mn-ion-enhanced MRI (MEMRI), should be reappraised for clinical use but now as a diagnostic drug with cytoprotective properties. Approved for imaging of the liver and pancreas, MnDPDP enhances contrast also in other targets such as the heart, kidney, glandular tissue, and potentially retina and brain. Transmetallation releases paramagnetic Mn2+ for cellular uptake in competition with calcium (Ca2+), and intracellular (IC) macromolecular Mn2+ adducts lower myocardial T 1 to midway between native values and values obtained with gadolinium (Gd3+). What is essential is that T 1 mapping and, to a lesser degree, T 1 weighted imaging enable quantification of viability at a cellular or even molecular level. IC Mn2+ retention for hours provides delayed imaging as another advantage. Examples in humans include quantitative imaging of cardiomyocyte remodeling and of Ca2+ channel activity, capabilities beyond the scope of Gd3+ based or native MRI. In addition, MnDPDP and the metabolite Mn dipyridoxyl diethyl-diamine (MnPLED) act as catalytic antioxidants enabling prevention and treatment of oxidative stress caused by tissue injury and inflammation. Tested applications in humans include protection of normal cells during chemotherapy of cancer and, potentially, of ischemic tissues during reperfusion. Theragnostic use combining therapy with delayed imaging remains to be explored. This review updates MnDPDP and its clinical potential with emphasis on the working mode of an exquisite chelate in the diagnosis of heart disease and in the treatment of oxidative stress.


Assuntos
Encéfalo/diagnóstico por imagem , Meios de Contraste/metabolismo , Ácido Edético/análogos & derivados , Coração/fisiologia , Manganês/química , Fosfato de Piridoxal/análogos & derivados , Retina/diagnóstico por imagem , Encéfalo/metabolismo , Ácido Edético/metabolismo , Coração/diagnóstico por imagem , Humanos , Imageamento por Ressonância Magnética , Fosfato de Piridoxal/metabolismo , Retina/metabolismo
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