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Estimating Local Cellular Density in Glioma Using MR Imaging Data.
Gates, E D H; Weinberg, J S; Prabhu, S S; Lin, J S; Hamilton, J; Hazle, J D; Fuller, G N; Baladandayuthapani, V; Fuentes, D T; Schellingerhout, D.
Afiliação
  • Gates EDH; From the Departments of Imaging Physics (E.D.H.G., J.S.L., J.D.H., D.T.F.).
  • Weinberg JS; The University of Texas MD Anderson Cancer Center UTHealth Graduate School of Biomedical Sciences (E.D.H.G.), Houston, Texas.
  • Prabhu SS; Neurosurgery (J.S.W., S.S.P.).
  • Lin JS; Neurosurgery (J.S.W., S.S.P.).
  • Hamilton J; From the Departments of Imaging Physics (E.D.H.G., J.S.L., J.D.H., D.T.F.).
  • Hazle JD; Baylor College of Medicine (J.S.L.), Houston, Texas.
  • Fuller GN; Department of Bioengineering (J.S.L.), Rice University, Houston, Texas.
  • Baladandayuthapani V; Neuroradiology (J.H., D.S.).
  • Fuentes DT; Radiology Partners (J.H.), Houston, Texas.
  • Schellingerhout D; From the Departments of Imaging Physics (E.D.H.G., J.S.L., J.D.H., D.T.F.).
AJNR Am J Neuroradiol ; 42(1): 102-108, 2021 01.
Article em En | MEDLINE | ID: mdl-33243897
ABSTRACT
BACKGROUND AND

PURPOSE:

Increased cellular density is a hallmark of gliomas, both in the bulk of the tumor and in areas of tumor infiltration into surrounding brain. Altered cellular density causes altered imaging findings, but the degree to which cellular density can be quantitatively estimated from imaging is unknown. The purpose of this study was to discover the best MR imaging and processing techniques to make quantitative and spatially specific estimates of cellular density. MATERIALS AND

METHODS:

We collected stereotactic biopsies in a prospective imaging clinical trial targeting untreated patients with gliomas at our institution undergoing their first resection. The data included preoperative MR imaging with conventional anatomic, diffusion, perfusion, and permeability sequences and quantitative histopathology on biopsy samples. We then used multiple machine learning methodologies to estimate cellular density using local intensity information from the MR images and quantitative cellular density measurements at the biopsy coordinates as the criterion standard.

RESULTS:

The random forest methodology estimated cellular density with R 2 = 0.59 between predicted and observed values using 4 input imaging sequences chosen from our full set of imaging data (T2, fractional anisotropy, CBF, and area under the curve from permeability imaging). Limiting input to conventional MR images (T1 pre- and postcontrast, T2, and FLAIR) yielded slightly degraded performance (R2 = 0.52). Outputs were also reported as graphic maps.

CONCLUSIONS:

Cellular density can be estimated with moderate-to-strong correlations using MR imaging inputs. The random forest machine learning model provided the best estimates. These spatially specific estimates of cellular density will likely be useful in guiding both diagnosis and treatment.
Assuntos

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Neoplasias Encefálicas / Interpretação de Imagem Assistida por Computador / Aprendizado de Máquina / Glioma Idioma: En Ano de publicação: 2021 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Neoplasias Encefálicas / Interpretação de Imagem Assistida por Computador / Aprendizado de Máquina / Glioma Idioma: En Ano de publicação: 2021 Tipo de documento: Article