Literature DB >> 20823751

Pearls and pitfalls of thyroid nodule sonography and fine-needle aspiration.

Daniel T Ginat1, Devang Butani, Ellen J Giampoli, Nikhil Patel, Vikram Dogra.   

Abstract

PURPOSE: To review the ultrasound appearances of thyroid nodules with an emphasis on morphological features and to illustrate pearls and pitfalls related to ultrasound interpretation and fine-needle aspiration.
METHODS: The ultrasound features of 156 consecutive thyroid nodules with available cytological diagnoses were retrospectively reviewed. The presence of "honeycomb" morphology, aspect ratio, taller-than-wide shape, presence of colloid, consistency, echogenicity, presence of halo, margin definition, multiplicity of the nodules, largest nodule dimension, and lesion vascularity were compared between benign and malignant nodules.
RESULTS: Sonographic features that are significantly more common among malignant lesions include the presence of microcalcifications, coarse internal calcifications, markedly hypoechoic components, mostly solid-to-solid contents, infiltrative or microlobulated margins, taller-than-wide shape, and a high aspect ratio (0.85 vs 0.71). Characteristics that are statistically significantly associated with benignity include peripheral calcification and purely cystic composition. The honeycomb morphology was 100% specific for nodular hyperplasia. Benign and malignant follicular and Hürthle cell neoplasms can have identical sonographic and cytological features. Colloid on both ultrasound and cytology may be found in malignant lesions, whereas microcalcifications can sometimes be found in benign lesions. Cystic components in malignant nodules are not uncommon and should not be dismissed as benign on this basis alone. Fine-needle aspiration may alter the appearance of thyroid nodules.
CONCLUSIONS: Certain morphological sonographic features are helpful for differentiating between benign and malignant thyroid nodules and guided subsequent management. However, thyroid nodule ultrasound and fine-needle aspiration must be interpreted with awareness of potential pitfalls.

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Year:  2010        PMID: 20823751     DOI: 10.1097/RUQ.0b013e3181efa710

Source DB:  PubMed          Journal:  Ultrasound Q        ISSN: 0894-8771            Impact factor:   1.657


  10 in total

1.  Review of atypical cytology of thyroid nodule according to the Bethesda system and its beneficial effect in the surgical treatment of papillary carcinoma.

Authors:  Yoo Seung Chung; Changyoung Yoo; Ji Han Jung; Hyun Joo Choi; Young-Jin Suh
Journal:  J Korean Surg Soc       Date:  2011-08-03

Review 2.  The role of elastography in evaluating thyroid nodules: a literature review and meta-analysis.

Authors:  Vik Veer; Srikanth Puttagunta
Journal:  Eur Arch Otorhinolaryngol       Date:  2014-07-06       Impact factor: 2.503

Review 3.  A systematic review of ultrasound-guided FNA of lesions in the head and neck--focusing on operator, sample inadequacy and presence of on-spot cytology service.

Authors:  A Ganguly; G Burnside; P Nixon
Journal:  Br J Radiol       Date:  2014-09-23       Impact factor: 3.039

4.  Summary of Meta-analyses of Studies Involving TIRADS Classifications (EU-TIRADS, ACR-TIRADS, and K-TIRADS) in Evaluating the Malignant Potential of Focal Lesions of The Thyroid Gland.

Authors:  Katarzyna Dobruch-Sobczak; Zbigniew Adamczewski; Marek Dedecjus; Andrzej Lewiński; Bartosz Migda; Marek Ruchała; Anna Skowrońska-Szcześniak; Ewelina Szczepanek-Parulska; Klaudia Zajkowska; Agnieszka Żyłka
Journal:  J Ultrason       Date:  2022-04-27

5.  Assessment of diagnostic capacity and decision-making based on the 2015 American Thyroid Association ultrasound classification system.

Authors:  Luis-Mauricio Hurtado-Lopez; Alfredo Carrillo-Muñoz; Felipe-Rafael Zaldivar-Ramirez; Erich Otto Paul Basurto-Kuba; Blanca-Estela Monroy-Lozano
Journal:  World J Methodol       Date:  2022-05-20

6.  2020 Chinese guidelines for ultrasound malignancy risk stratification of thyroid nodules: the C-TIRADS.

Authors:  JianQiao Zhou; LiXue Yin; Xi Wei; Sheng Zhang; YanYan Song; BaoMing Luo; JianChu Li; LinXue Qian; LiGang Cui; Wen Chen; ChaoYang Wen; YuLan Peng; Qin Chen; Man Lu; Min Chen; Rong Wu; Wei Zhou; EnSheng Xue; YingJia Li; LiChun Yang; ChengRong Mi; RuiFang Zhang; Gang Wu; GuoQing Du; DaoZhong Huang; WeiWei Zhan
Journal:  Endocrine       Date:  2020-08-21       Impact factor: 3.633

7.  Gray-scale vs. color doppler ultrasound in cold thyroid nodules.

Authors:  Mohammadgharib Salehi; Farhad Nalaini; Babak Izadi; Khosro Setayeshi; Mansour Rezaei; Seyyed Nooredin Naseri
Journal:  Glob J Health Sci       Date:  2014-11-26

8.  Echogenic foci with comet-tail artifact in resected thyroid nodules: Not an absolute predictor of benign disease.

Authors:  Hongxun Wu; Bingjie Zhang; Jie Li; Qianyun Liu; Tingting Zhao
Journal:  PLoS One       Date:  2018-01-19       Impact factor: 3.240

Review 9.  2021 Korean Thyroid Imaging Reporting and Data System and Imaging-Based Management of Thyroid Nodules: Korean Society of Thyroid Radiology Consensus Statement and Recommendations.

Authors:  Eun Ju Ha; Sae Rom Chung; Dong Gyu Na; Hye Shin Ahn; Jin Chung; Ji Ye Lee; Jeong Seon Park; Roh-Eul Yoo; Jung Hwan Baek; Sun Mi Baek; Seong Whi Cho; Yoon Jung Choi; Soo Yeon Hahn; So Lyung Jung; Ji-Hoon Kim; Seul Kee Kim; Soo Jin Kim; Chang Yoon Lee; Ho Kyu Lee; Jeong Hyun Lee; Young Hen Lee; Hyun Kyung Lim; Jung Hee Shin; Jung Suk Sim; Jin Young Sung; Jung Hyun Yoon; Miyoung Choi
Journal:  Korean J Radiol       Date:  2021-10-26       Impact factor: 3.500

10.  Sonographic scoring of solid thyroid nodules: effects of nodule size and suspicious cervical lymph node.

Authors:  Ozlem Unsal; Meltem Akpinar; Bilge Turk; Irmak Ucak; Alper Ozel; Semra Kayaoglu; Berna Uslu Coskun
Journal:  Braz J Otorhinolaryngol       Date:  2016-04-19
  10 in total

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