Evaluation of an Integrated Spectroscopy and Classification Platform for Point-of-Care Core Needle Biopsy Assessment: Performance Characteristics from Ex Vivo Renal Mass Biopsies.


Journal

Journal of vascular and interventional radiology : JVIR
ISSN: 1535-7732
Titre abrégé: J Vasc Interv Radiol
Pays: United States
ID NLM: 9203369

Informations de publication

Date de publication:
11 2022
Historique:
received: 30 03 2022
revised: 21 07 2022
accepted: 29 07 2022
pubmed: 9 8 2022
medline: 15 12 2022
entrez: 8 8 2022
Statut: ppublish

Résumé

To evaluate a transmission optical spectroscopy instrument for rapid ex vivo assessment of core needle cancer biopsies (CNBs) at the point of care. CNBs from surgically resected renal tumors and nontumor regions were scanned on their sampling trays with a custom spectroscopy instrument. After extracting principal spectral components, machine learning was used to train logistic regression, support vector machines, and random decision forest (RF) classifiers on 80% of randomized and stratified data. The algorithms were evaluated on the remaining 20% of the data set held out during training. Binary classification (tumor/nontumor) was performed based on a decision threshold. Multinomial classification was also performed to differentiate between the subtypes of renal cell carcinoma (RCC) and account for potential confounding effects from fat, blood, and necrotic tissue. Classifiers were compared based on sensitivity, specificity, and positive predictive value (PPV) relative to a histopathologic standard. A total of 545 CNBs from 102 patients were analyzed, yielding 5,583 spectra after outlier exclusion. At the individual spectra level, the best performing algorithm was RF with sensitivities of 96% and 92% and specificities of 90% and 89%, for the binary and multiclass analyses, respectively. At the full CNB level, RF algorithm also showed the highest sensitivity and specificity (93% and 91%, respectively). For RCC subtypes, the highest sensitivity and PPV were attained for clear cell (93.5%) and chromophobe (98.2%) subtypes, respectively. Ex vivo spectroscopy imaging paired with machine learning can accurately characterize renal mass CNB at the time of tissue acquisition.

Identifiants

pubmed: 35940363
pii: S1051-0443(22)01118-6
doi: 10.1016/j.jvir.2022.07.027
pmc: PMC10204606
mid: NIHMS1894884
pii:
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

1408-1415.e3

Subventions

Organisme : NCI NIH HHS
ID : P30 CA008748
Pays : United States

Informations de copyright

Copyright © 2022 SIR. Published by Elsevier Inc. All rights reserved.

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Auteurs

Krishna Nand Keshavamurthy (KN)

Department of Radiology, Memorial Sloan Kettering Cancer Center, New York, New York.

Dmitry V Dylov (DV)

Skolkovo Institute of Science and Technology, Moscow, Russia.

Siavash Yazdanfar (S)

Corning Incorporated, Corning, New York.

Dharam Patel (D)

Novartis Pharmaceutical Corporation, East Hanover, New Jersey.

Tarik Silk (T)

New York University Langone Medical Center, New York, New York.

Mikhail Silk (M)

Department of Radiology, Memorial Sloan Kettering Cancer Center, New York, New York.

Frederick Jacques (F)

Montefiore Medical Center, New York, New York.

Elena N Petre (EN)

Department of Radiology, Memorial Sloan Kettering Cancer Center, New York, New York.

Mithat Gonen (M)

Department of Epidemiology and Biostatistics, Memorial Sloan Kettering Cancer Center, New York, New York.

Natasha Rekhtman (N)

Department of Pathology, Memorial Sloan Kettering Cancer Center, New York, New York.

Victor Ostroverkhov (V)

GE Global Research, Niskayuna, New York.

Howard I Scher (HI)

Department of Medicine, Memorial Sloan Kettering Cancer Center, New York, New York.

Stephen B Solomon (SB)

Department of Radiology, Memorial Sloan Kettering Cancer Center, New York, New York.

Jeremy C Durack (JC)

Department of Radiology, Memorial Sloan Kettering Cancer Center, New York, New York. Electronic address: jcdurack@gmail.com.

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