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High-performance Sonographical Multimodal Imaging of Non Cystic Thyroid Lesions: Chances of the Preoperative Diagnostics in Relation to Histopathology

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Publisher Sage Publications
Date 2021 Aug 2
PMID 34334387
Citations 1
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Abstract

Aim: To improve preoperative diagnostics of solid non-cystic thyroid lesions by using new high-performance ultrasound techniques: optimized B-mode morphology, elastography, Color-Coded Doppler-Sonography (CCDS) and contrast enhanced ultrasound (CEUS)MATERIALS AND METHODS:In 33 cases solid, non-cystic thyroid lesions were rated as TIRADS 3 and up from conventional B-mode examinations. Additional high resolution Power Doppler including HR- and Glazing-Flow as optimized macrovascularization techniques, shear wave elastography and CEUS were performed on these patients by one experienced examiner. For CEUS a bolus of 1-2.4 ml Sulfurhexafluorid microbubbles (SonoVue®, Bracco, Milan, Italy) was injected into a cubital vein and then the distribution kinetics of the contrast agent were documented from the early arterial phase (10 to 15 seconds after injection) to the late venous phase (5 minutes after injection). Postoperative histopathology was the diagnostic gold standard as it provides the most reliable proof.

Results: 33 patients (13 males, 20 females; age 29 -77 years; mean 55 years; SD 13 years) were included in this study. 28 of them had benign regressive thyroid nodules, 3 had adenomas and 4 were diagnosed with carcinomas (3 were histologically identified as papillary thyroid carcinomas, one as a medullary thyroid carcinoma). The volume of the thyroid gland ranged from 6.6 to 401.3 cm2 (mean 72.6±92.0 cm2).The adenoma diameters ranged from 9 to 40 mm (mean 22±16 mm) and the carcinoma diameters ranged from 19 to 33 mm (mean 26±6 mm). The 3 adenomas had different echogenicities: One was completely echofree, one was hypoechoic and one isoechoic. The 4 carcinomas however were equally characterized as hypoechoic and echofree. Two of three adenomas and all of the carcinomas showed an incomplete or diffuse margin. Micro-calcifications were found in one adenoma and in every carcinoma. However, no micro-calcifications were observed in cases of benign regressive nodules.Performing shear-wave elastography the adenomas showed lower values than the carcinomas: The tissue velocity of the adenomas ranged from 2.86 m/s to 3.85 m/s (mean 3.32±0.5 m/s) and in carcinomas from 3.89 m/s to 5.66 m/s (mean 4.18±0.3 m/s).Marginal hypervascularization was detected in two adenomas after applying CCDS. One adenoma was hypovascularized. The four carcinomas showed an irregular extreme hypervascularization along their margins as well as an irregular central normo- or hypervascularization in CCDS. The additional HR-Flow helped reducing artefacts.In CEUS the dynamic capillary microvascularization of all carcinomas was very irregular with early enhancement and followed by partial or complete wash-out. In CEUS two adenomas had no wash-out and the other one showed a partial wash-out.

Conclusion: Using modern multimodal imaging offers new possibilities for the differentiation between benign and malignant thyroid lesions. It is a very important diagnostic tool in addition to the B-Mode TIRADS classification and eases the decision between TIRADS 3, 4 and 5. However, additional multicenter studies are required for more detailed evaluations.

Citing Articles

Multiparametric Sonographic Imaging of Thyroid Lesions: Chances of B-Mode, Elastography and CEUS in Relation to Preoperative Histopathology.

Brandenstein M, Wiesinger I, Kunzel J, Hornung M, Stroszczynski C, Jung E Cancers (Basel). 2022; 14(19).

PMID: 36230668 PMC: 9564296. DOI: 10.3390/cancers14194745.

References
1.
Bojunga J, Herrmann E, Meyer G, Weber S, Zeuzem S, Friedrich-Rust M . Real-time elastography for the differentiation of benign and malignant thyroid nodules: a meta-analysis. Thyroid. 2010; 20(10):1145-50. DOI: 10.1089/thy.2010.0079. View

2.
Wu Q, Li Y, Wang Y . Diagnostic value of "absent" pattern in contrast-enhanced ultrasound for the differentiation of thyroid nodules. Clin Hemorheol Microcirc. 2015; 63(4):325-334. DOI: 10.3233/CH-152020. View

3.
Dong F, Li M, Jiao Y, Xu J, Xiong Y, Zhang L . Acoustic Radiation Force Impulse imaging for detecting thyroid nodules: a systematic review and pooled meta-analysis. Med Ultrason. 2015; 17(2):192-9. DOI: 10.11152/mu.2013.2066.172.hyr. View

4.
Zhao H, Liu X, Lei B, Cheng P, Li J, Wu Y . Diagnostic performance of thyroid imaging reporting and data system (TI-RADS) alone and in combination with contrast-enhanced ultrasonography for the characterization of thyroid nodules. Clin Hemorheol Microcirc. 2018; 72(1):95-106. DOI: 10.3233/CH-180457. View

5.
Lim H, Devesa S, Sosa J, Check D, Kitahara C . Trends in Thyroid Cancer Incidence and Mortality in the United States, 1974-2013. JAMA. 2017; 317(13):1338-1348. PMC: 8216772. DOI: 10.1001/jama.2017.2719. View