99mTc-Radiolabeled TPGS Nanomicelles Outperform 99mTc-Sestamibi as Breast Cancer Imaging Agent

المؤلفون المشاركون

Chiappetta, Diego A.
Tesan, Fiorella C.
Nicoud, Melisa B.
Nuñez, Mariel
Medina, Vanina A.
Salgueiro, María J.

المصدر

Contrast Media & Molecular Imaging

العدد

المجلد 2019، العدد 2019 (31 ديسمبر/كانون الأول 2019)، ص ص. 1-9، 9ص.

الناشر

Hindawi Publishing Corporation

تاريخ النشر

2019-04-23

دولة النشر

مصر

عدد الصفحات

9

التخصصات الرئيسية

الأمراض
الطب البشري

الملخص EN

D-α-Tocopheryl polyethylene glycol 1000 succinate (TPGS) is a Food and Drug Administration (FDA) approved biomaterial that can form nanosized micelles in aqueous solution.

TPGS micelles stand as an interesting system to perform drug delivery as they can carry lipophilic drugs and overcome P glycoprotein efflux as well.

Therefore, TPGS micelles combined with other copolymers have been reported in many cancer research studies as a carrier for therapeutic drugs.

Their ability to reach tumoral tissue can also be exploited to develop imaging agents with diagnostic application.

A radiolabeling method with 99mTc for TPGS nanosized micelles and their biodistribution in a healthy animal model as well as their pharmacokinetics and radiolabeling stability in vivo was previously reported.

The aim of this work was to evaluate the performance of this radioactive probe as a diagnostic imaging agent compared to routinely available SPECT radiopharmaceutical, 99mTc-sestamibi.

A small field of view gamma camera was used for scintigraphy studies using radiolabeled TPGS micelles in two animal models of breast cancer: syngeneic 4T1 murine cell line (injected in BALB/c mice) and chemically NMU-induced (Sprague-Dawley rats).

Ex vivo radioactivity accumulation in organs of interest was measured by a solid scintillation counter, and a semiquantitative analysis was performed over acquired images as well.

Results showed an absence of tumoral visualization in 4T1 model for both radioactive probes by gamma camera imaging.

On the contrary, NMU-induced tumors had a clear tumor visualization by scintigraphy.

A higher tumor/background ratio and more homogeneous uptake were found for radiolabeled TPGS micelles compared to 99mTc-sestamibi.

In conclusion, 99mTc-radiolabeled TPGS micelles might be a potential SPECT imaging probe for diagnostic purposes.

نمط استشهاد جمعية علماء النفس الأمريكية (APA)

Tesan, Fiorella C.& Nicoud, Melisa B.& Nuñez, Mariel& Medina, Vanina A.& Chiappetta, Diego A.& Salgueiro, María J.. 2019. 99mTc-Radiolabeled TPGS Nanomicelles Outperform 99mTc-Sestamibi as Breast Cancer Imaging Agent. Contrast Media & Molecular Imaging،Vol. 2019, no. 2019, pp.1-9.
https://search.emarefa.net/detail/BIM-1130242

نمط استشهاد الجمعية الأمريكية للغات الحديثة (MLA)

Tesan, Fiorella C.…[et al.]. 99mTc-Radiolabeled TPGS Nanomicelles Outperform 99mTc-Sestamibi as Breast Cancer Imaging Agent. Contrast Media & Molecular Imaging No. 2019 (2019), pp.1-9.
https://search.emarefa.net/detail/BIM-1130242

نمط استشهاد الجمعية الطبية الأمريكية (AMA)

Tesan, Fiorella C.& Nicoud, Melisa B.& Nuñez, Mariel& Medina, Vanina A.& Chiappetta, Diego A.& Salgueiro, María J.. 99mTc-Radiolabeled TPGS Nanomicelles Outperform 99mTc-Sestamibi as Breast Cancer Imaging Agent. Contrast Media & Molecular Imaging. 2019. Vol. 2019, no. 2019, pp.1-9.
https://search.emarefa.net/detail/BIM-1130242

نوع البيانات

مقالات

لغة النص

الإنجليزية

الملاحظات

Includes bibliographical references

رقم السجل

BIM-1130242