Literature DB >> 26945019

Comparison of cerebral blood flow measurement with [15O]-water positron emission tomography and arterial spin labeling magnetic resonance imaging: A systematic review.

Audrey P Fan1, Hesamoddin Jahanian2, Samantha J Holdsworth2, Greg Zaharchuk2.   

Abstract

Noninvasive imaging of cerebral blood flow provides critical information to understand normal brain physiology as well as to identify and manage patients with neurological disorders. To date, the reference standard for cerebral blood flow measurements is considered to be positron emission tomography using injection of the [(15)O]-water radiotracer. Although [(15)O]-water has been used to study brain perfusion under normal and pathological conditions, it is not widely used in clinical settings due to the need for an on-site cyclotron, the invasive nature of arterial blood sampling, and experimental complexity. As an alternative, arterial spin labeling is a promising magnetic resonance imaging technique that magnetically labels arterial blood as it flows into the brain to map cerebral blood flow. As arterial spin labeling becomes more widely adopted in research and clinical settings, efforts have sought to standardize the method and validate its cerebral blood flow values against positron emission tomography-based cerebral blood flow measurements. The purpose of this work is to critically review studies that performed both [(15)O]-water positron emission tomography and arterial spin labeling to measure brain perfusion, with the aim of better understanding the accuracy and reproducibility of arterial spin labeling relative to the positron emission tomography reference standard.
© The Author(s) 2016.

Entities:  

Keywords:  Cerebral blood flow; arterial spin labeling; magnetic resonance imaging; perfusion imaging; positron emission tomography

Mesh:

Substances:

Year:  2016        PMID: 26945019      PMCID: PMC4853843          DOI: 10.1177/0271678X16636393

Source DB:  PubMed          Journal:  J Cereb Blood Flow Metab        ISSN: 0271-678X            Impact factor:   6.200


  108 in total

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3.  A theoretical and experimental comparison of continuous and pulsed arterial spin labeling techniques for quantitative perfusion imaging.

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4.  B0 field inhomogeneity considerations in pseudo-continuous arterial spin labeling (pCASL): effects on tagging efficiency and correction strategy.

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7.  MR perfusion studies with T1-weighted echo planar imaging.

Authors:  K K Kwong; D A Chesler; R M Weisskoff; K M Donahue; T L Davis; L Ostergaard; T A Campbell; B R Rosen
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8.  Evidence of misery perfusion and risk for recurrent stroke in major cerebral arterial occlusive diseases from PET.

Authors:  H Yamauchi; H Fukuyama; Y Nagahama; H Nabatame; K Nakamura; Y Yamamoto; Y Yonekura; J Konishi; J Kimura
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9.  Database of normal human cerebral blood flow, cerebral blood volume, cerebral oxygen extraction fraction and cerebral metabolic rate of oxygen measured by positron emission tomography with 15O-labelled carbon dioxide or water, carbon monoxide and oxygen: a multicentre study in Japan.

Authors:  Hiroshi Ito; Iwao Kanno; Chietsugu Kato; Toshiaki Sasaki; Kenji Ishii; Yasuomi Ouchi; Akihiko Iida; Hidehiko Okazawa; Kohei Hayashida; Naohiro Tsuyuguchi; Kazunari Ishii; Yasuo Kuwabara; Michio Senda
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10.  Cerebral blood flow measurement using fMRI and PET: a cross-validation study.

Authors:  Jean J Chen; Marguerite Wieckowska; Ernst Meyer; G Bruce Pike
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2.  Perfusion alters stiffness of deep gray matter.

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3.  Image-derived input function estimation on a TOF-enabled PET/MR for cerebral blood flow mapping.

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Review 4.  Translating preclinical MRI methods to clinical oncology.

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Review 6.  Arterial spin labeling for the measurement of cerebral perfusion and angiography.

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Review 8.  Chemistry for Positron Emission Tomography: Recent Advances in 11 C-, 18 F-, 13 N-, and 15 O-Labeling Reactions.

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10.  Transcranial contrast-enhanced ultrasound in the rat brain reveals substantial hyperperfusion acutely post-stroke.

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