Dual-energy computed tomography with advanced postimage acquisition data processing: improved determination of urinary stone composition.

dc.contributor.author

Ferrandino, MN

dc.contributor.author

Pierre, SA

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Simmons, WN

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Paulson, EK

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Albala, DM

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Preminger, GM

dc.coverage.spatial

United States

dc.date.accessioned

2011-04-15T16:46:25Z

dc.date.issued

2010-03

dc.description.abstract

INTRODUCTION: The characterization of urinary calculi using noninvasive methods has the potential to affect clinical management. CT remains the gold standard for diagnosis of urinary calculi, but has not reliably differentiated varying stone compositions. Dual-energy CT (DECT) has emerged as a technology to improve CT characterization of anatomic structures. This study aims to assess the ability of DECT to accurately discriminate between different types of urinary calculi in an in vitro model using novel postimage acquisition data processing techniques. METHODS: Fifty urinary calculi were assessed, of which 44 had >or=60% composition of one component. DECT was performed utilizing 64-slice multidetector CT. The attenuation profiles of the lower-energy (DECT-Low) and higher-energy (DECT-High) datasets were used to investigate whether differences could be seen between different stone compositions. RESULTS: Postimage acquisition processing allowed for identification of the main different chemical compositions of urinary calculi: brushite, calcium oxalate-calcium phosphate, struvite, cystine, and uric acid. Statistical analysis demonstrated that this processing identified all stone compositions without obvious graphical overlap. CONCLUSION: Dual-energy multidetector CT with postprocessing techniques allows for accurate discrimination among the main different subtypes of urinary calculi in an in vitro model. The ability to better detect stone composition may have implications in determining the optimum clinical treatment modality for urinary calculi from noninvasive, preprocedure radiological assessment.

dc.description.version

Version of Record

dc.identifier

https://www.ncbi.nlm.nih.gov/pubmed/20105031

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1557-900X

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https://hdl.handle.net/10161/3382

dc.language

eng

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en_US

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Mary Ann Liebert Inc

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J Endourol

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10.1089/end.2009.0193

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Journal of Endourology

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Analysis of Variance

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Humans

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Nonlinear Dynamics

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Radiographic Image Interpretation, Computer-Assisted

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Tomography, X-Ray Computed

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Urinary Calculi

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Dual-energy computed tomography with advanced postimage acquisition data processing: improved determination of urinary stone composition.

dc.type

Journal article

duke.contributor.orcid

Ferrandino, MN|0000-0002-5097-0318

duke.contributor.orcid

Preminger, GM|0000-0003-4287-602X

duke.date.pubdate

2010-3-0

duke.description.issue

3

duke.description.volume

24

pubs.author-url

https://www.ncbi.nlm.nih.gov/pubmed/20105031

pubs.begin-page

347

pubs.end-page

354

pubs.issue

3

pubs.organisational-group

Clinical Science Departments

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Duke

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Mechanical Engineering and Materials Science

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Pratt School of Engineering

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Radiology

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Radiology, Abdominal Imaging

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School of Medicine

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Surgery

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Surgery, Urology

pubs.publication-status

Published

pubs.volume

24

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