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Journal articles on the topic 'Thyroid imaging'

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1

Díaz Soto, Gonzalo, Irene Halperin, Mattia Squarcia, Francisco Lomeña, and Manuel Puig Domingo. "Update in thyroid imaging. The expanding world of thyroid imaging and its translation to clinical practice." HORMONES 9, no. 4 (2010): 287–98. http://dx.doi.org/10.14310/horm.2002.1279.

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2

Reading, Carl C., and Colum A. Gorman. "Thyroid Imaging Techniques." Clinics in Laboratory Medicine 13, no. 3 (1993): 711–24. http://dx.doi.org/10.1016/s0272-2712(18)30435-9.

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3

Naik, K. S., and R. F. Bury. "Imaging the thyroid." Clinical Radiology 53, no. 9 (1998): 630–38. http://dx.doi.org/10.1016/s0009-9260(98)80289-4.

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4

Hoang, Jenny K., Julie A. Sosa, Xuan V. Nguyen, P. Leo Galvin, and Jorge D. Oldan. "Imaging Thyroid Disease." Radiologic Clinics of North America 53, no. 1 (2015): 145–61. http://dx.doi.org/10.1016/j.rcl.2014.09.002.

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5

Iakovou, Ioannis, Evanthia Giannoula, and Christos Sachpekidis. "Imaging and Imaging-Based Management of Pediatric Thyroid Nodules." Journal of Clinical Medicine 9, no. 2 (2020): 384. http://dx.doi.org/10.3390/jcm9020384.

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Thyroid nodules are less frequent in children than adults. Childhood thyroid nodules carry specific features, including a higher risk of malignancy than nodules in adults, rendering them unique in terms of management. Subsequently, they should be considered a distinct clinical entity with specific imaging recommendations. Initial evaluation requires a thorough workup, including clinical examination, and a detailed personal and familial history to determine the presence of possible risk factors. Laboratory and radiologic evaluation play an integral part in the diagnostic algorithm, with ultraso
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6

Dr., Zeenath Begum, Zoya Riyaz Syeda Dr., Rohit Anil Khare Dr., Sumaiyya Firdous Dr., and Asra Fatima Dr. "Cytomorphological Correlational Study Of Thyroid Disorders With Imaging And Biochemical Serum Markers." INTERNATIONAL JOURNAL OF HEALTH & MEDICAL RESEARCH 03, no. 07 (2024): 479–83. https://doi.org/10.5281/zenodo.12787642.

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The thyroid disorders are diagnosed through ultrasonography and USG guided fine-needle aspiration cytology (FNAC)worldwide with implementation of the Bethesda system of reporting Thyroid cytology as an excellent less invasive primary line ofinvestigation.1 The thyroid is an important and prime endocrine organ. The swelling of the thyroid gland is the commonestmanifestation of various disorders affecting the thyroid, including non-neoplastic lesions and neoplastic both benign and malignantdisorders.2 Bethesda categorization in FNAC aids in the decision for the management along with thyroid prof
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7

Ohnishi, Hisashi, Hirokazu Sato, Hiromasa Noda, Hiroaki Inomata, and Nozomu Sasaki. "Color Doppler Ultrasonography: Diagnosis of Ectopic Thyroid Gland in Patients with Congenital Hypothyroidism Caused by Thyroid Dysgenesis." Journal of Clinical Endocrinology & Metabolism 88, no. 11 (2003): 5145–49. http://dx.doi.org/10.1210/jc.2003-030743.

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Abstract The etiology of congenital hypothyroidism (CH) may play an important role in determining disease severity, outcome, and, therefore, its treatment schedule. Radionuclide imaging (RI) is currently the most precise diagnostic technique to establish the etiology of CH. Conventional ultrasound can identify an athyrotic condition at the normal neck position and has gained acceptance for the initial evaluation of CH; however, its ability in delineating ectopic thyroid is limited. We used color Doppler ultrasonography (CDU) to assess blood flow and morphology in the detection of ectopic thyro
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8

Nezzar, Adlen. "Importance of MIBI scintigraphy in the detection of thyroidal cancers : a case report." Batna Journal of Medical Sciences (BJMS) 1, no. 1 (2014): 38–40. http://dx.doi.org/10.48087/bjmscr.2014.1110.

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The investigation of thyroidal nodules is intended to select patients who are candidates for surgery, based on a cytological study with a good positive predictive value. Here we report the case of a 30-year-old woman presenting with a thyroid mixed nodule on the whole right lobule, cold on scintigraphy, and with no criteria of malignancy on cervical ultrasound and which cytological study did not reveal any suspicious cells. The 99mTc - methoxyisobutylisonitrile (MIBI) thyroid imaging showed a clear retention of MIBI in the cold nodule as described with technetium scan, motivating the realizati
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9

Kew, J., A. Ahuja, and P. Scott. "Ectopic lingual thyroid: The role of imaging." South African Journal of Radiology 1, no. 4 (1996): 26–27. http://dx.doi.org/10.4102/sajr.v1i4.1596.

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Ectopic thyroid tissue may be found throughout the migration course of the thyroid gland. Thyroid ectopy may be partial or total. The most common location of ectopic thyroid tissue is in the tongue base (lingual thyroid). We discuss the computed tomography (CT) and radioisotope findings of a patient with ectopic lingual thyroid.
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10

Ahmed, Salmaan, and James Matthew Debnam. "Thyroid and Parathyroid Imaging." Neuroimaging Clinics of North America 31, no. 3 (2021): i. http://dx.doi.org/10.1016/s1052-5149(21)00047-2.

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11

Ahmed, Salmaan, and James Matthew Debnam. "Thyroid and Parathyroid Imaging." Neuroimaging Clinics of North America 31, no. 3 (2021): xiii—xiv. http://dx.doi.org/10.1016/j.nic.2021.05.001.

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12

Calle, Susana, Jeanie Choi, Salmaan Ahmed, Diana Bell, and Kim O. Learned. "Imaging of the Thyroid." Neuroimaging Clinics of North America 31, no. 3 (2021): 265–84. http://dx.doi.org/10.1016/j.nic.2021.04.008.

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13

Mukherji, Suresh K. "Thyroid and Parathyroid Imaging." Neuroimaging Clinics of North America 31, no. 3 (2021): xi. http://dx.doi.org/10.1016/j.nic.2021.05.002.

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14

Aiken, Ashley H. "Imaging of Thyroid Cancer." Seminars in Ultrasound, CT and MRI 33, no. 2 (2012): 138–49. http://dx.doi.org/10.1053/j.sult.2011.12.006.

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15

Galloway, Richard J., and Robert C. Smallridge. "IMAGING IN THYROID CANCER." Endocrinology and Metabolism Clinics of North America 25, no. 1 (1996): 93–113. http://dx.doi.org/10.1016/s0889-8529(05)70314-5.

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16

Freitas, John E., and Anne E. Freitas. "Thyroid and parathyroid imaging." Seminars in Nuclear Medicine 24, no. 3 (1994): 234–45. http://dx.doi.org/10.1016/s0001-2998(05)80013-3.

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17

Goldis, Marina, Lindsey Waldman, Otilia Marginean, Henrietta Kotlus Rosenberg, and Robert Rapaport. "Thyroid Imaging in Infants." Endocrinology and Metabolism Clinics of North America 45, no. 2 (2016): 255–66. http://dx.doi.org/10.1016/j.ecl.2016.02.005.

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18

Bewsher, Peter D. "Thyroid and parathyroid imaging." Magnetic Resonance Imaging 4, no. 6 (1986): 540. http://dx.doi.org/10.1016/0730-725x(86)90039-1.

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19

SAKURAI, Kazuo, Shigenobu IWATA, Akihiko TAKASU, Tamami NIWA, Nobuo TAKEDA, and Masaki SAKAI. "Imaging of Thyroid Tumors." Japanese jornal of Head and Neck Cancer 15, no. 2 (1989): 151–55. http://dx.doi.org/10.5981/jjhnc1974.15.2_151.

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20

Okuda, Minoru, and Tatsumasa Haneda. "Imaging of thyroid tumors." Journal of Nippon Medical School 53, no. 5 (1986): 521–23. http://dx.doi.org/10.1272/jnms1923.53.521.

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21

Beckers, Christian. "Trends in Thyroid Imaging." Hormone Research 26, no. 1-4 (1987): 28–32. http://dx.doi.org/10.1159/000180682.

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22

Martin, David S. "Thyroid and Parathyroid Imaging." Radiology 160, no. 2 (1986): 368. http://dx.doi.org/10.1148/radiology.160.2.368.

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23

Noma, S., K. Nishimura, K. Togashi, et al. "Thyroid gland: MR imaging." Radiology 164, no. 2 (1987): 495–99. http://dx.doi.org/10.1148/radiology.164.2.3602392.

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24

Sundell, J. A., A. Ramos-Gabatin, F. D. Smith, and L. A. Richardson. "THYROID IMAGING FOR THYROTOXICOSIS." CLINICAL NUCLEAR MEDICINE 22, no. 3 (1997): 199. http://dx.doi.org/10.1097/00003072-199703000-00023.

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25

Hopkins, C. Richard, and Carl C. Reading. "Thyroid and parathyroid imaging." Seminars in Ultrasound, CT and MRI 16, no. 4 (1995): 279–95. http://dx.doi.org/10.1016/0887-2171(95)90033-0.

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26

Yousem, David M. "PARATHYROID AND THYROID IMAGING." Neuroimaging Clinics of North America 6, no. 2 (1996): 435–59. https://doi.org/10.1016/s1052-5149(25)00371-5.

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27

Jones, R., R. Spendiff, S. Fareedi, and P. S. Richards. "The role of ultrasound in the management of nodular thyroid disease." Imaging 19, no. 1 (2007): 28–38. http://dx.doi.org/10.1259/imaging/49938227.

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28

Kempers, Marlies J. E., A. S. Paul van Trotsenburg, Rick R. van Rijn, et al. "Loss of Integrity of Thyroid Morphology and Function in Children Born to Mothers with Inadequately Treated Graves’ Disease." Journal of Clinical Endocrinology & Metabolism 92, no. 8 (2007): 2984–91. http://dx.doi.org/10.1210/jc.2006-2042.

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Abstract Context: Central congenital hypothyroidism (CH-C) in neonates born to mothers with inadequately treated Graves’ disease usually needs T4 supplementation. The thyroid and its regulatory system have not yet been extensively studied after T4 withdrawal, until we observed disintegrated thyroid glands in some patients. Objective: The aim was to study the occurrence and pathogenesis of disintegrated thyroid glands in CH-C patients. Design, Setting, Patients, Participants: Thyroid function was measured and thyroid ultrasound imaging was performed in 13 children with CH-C due to inadequately
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29

Prabhakar, Nidhi, Vivek Gupta, and Naresh Panda. "Dual Ectopic Thyroid: An Uncommon Imaging Diagnosis." Journal of Postgraduate Medicine, Education and Research 49, no. 2 (2015): 83–84. http://dx.doi.org/10.5005/jp-journals-10028-1151.

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ABSTRACT Ectopic thyroid means presence of thyroid gland tissue in abnormal position. Dual ectopic thyroid is the presence of thyroid gland tissue in two different abnormal locations. It is a rare entity. We report a case of 17-year-old girl who presented with a gradually increasing swelling in the upper neck. Her thyroid tests were abnormal, with mildly reduced T3 and T4 levels and increased TSH levels. Ultrasound revealed an isoechoic homogenous lesion in the intermuscular planes, in the infrahyoid neck. Contrast-enhanced computed tomography (CECT) of neck was performed which showed two simi
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30

Yurdaışık, Işıl, and Süleyman Aksoy. "The academic influence of thyroid imaging: a bibliometric perspective in radiology." Anatolian Current Medical Journal 7, no. 2 (2025): 246–52. https://doi.org/10.38053/acmj.1642101.

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Aims: Thyroid imaging is an essential component of diagnosing and managing thyroid diseases, including thyroid nodules and thyroid cancer. Various imaging modalities such as ultrasonography (US), Doppler US, computed tomography (CT), magnetic resonance imaging (MRI), and positron emission tomography (PET/CT) are widely utilized for accurate evaluation and risk stratification. Despite the increasing research activity in thyroid imaging, a comprehensive bibliometric analysis focusing solely on radiology publications has not been conducted. This study aims to perform a bibliometric analysis of th
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31

Abdullah, S. Althiabi, A. Alhussini Abdulelah, S. Alharbi Faisal, et al. "The Role of Imaging and Laboratory Tests in the Diagnosis of Thyroid Disorders." International Journal of Innovative Research in Engineering & Multidisciplinary Physical Sciences 12, no. 5 (2024): 1–10. https://doi.org/10.5281/zenodo.14275170.

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Background: The diagnosis of thyroid disorders requires an integrated approach using both laboratory tests and imaging techniques to assess thyroid function and morphology comprehensively. This study aimed to evaluate the combined diagnostic utility of laboratory markers and imaging modalities in diagnosing thyroid disorders in a tertiary hospital setting. Methods: This cross-sectional study involved 150 patients with suspected or confirmed thyroid dysfunction. Laboratory tests included serum TSH, free T4, free T3, and thyroid antibodies, while imaging involved high-resolution ultrasound and,
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32

Gambardella, Claudio, Ludovico Docimo, Giancarlo Candela, et al. "Thyroid-Bed Schwannoma Mimicking a Thyroid Neoplasm: A Challenging Diagnosis: Report of a Case and Literature Review." Medicina 58, no. 10 (2022): 1345. http://dx.doi.org/10.3390/medicina58101345.

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Background: Schwannomas, also called neurinomas, are rare benign tumors of the neural cells that can develop from the sheaths of nervous structures of several districts, although the most frequent sites are the cranial nerves (25%–45%). Rarely, cases show neck schwannomas in the thyroid parenchyma, while the cases of thyroid-bed schwannomas mimicking a thyroid-gland lesions are anecdotal. Methods: We report the case of a 70-year-old man with a preoperative-imaging diagnosis of a thyroid neoplasm, confirmed as Thyr 4 by fine-needle cytology. Results: During surgery, an extra-thyroidal lesion wa
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33

Sudaryatmi, Nanik, Siti Masrochah, and Rasyid Rasyid. "TEKNIK PEMERIKSAAN KEDOKTERAN NUKLIR SIDIK TIROID DI INSTALASI RADIOLOGI RSUP DR. KARIADI SEMARANG." Jurnal Imejing Diagnostik (JImeD) 6, no. 1 (2020): 44–46. http://dx.doi.org/10.31983/jimed.v6i1.5567.

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Background: Examination of thyroid scintigraphy or thyroid gland scintigraphy is a nuclear medicine examination using radioactive substances or radiopharmaceuticals that are inserted into the body through intravenous injections which aim to obtain functional morphological imaging of the thyroid and to assess the ability of the thyroid gland to capture radioactive substances or radiopharma-ceuticals.Methods: This imaging prosedure using Tc-99m (Technisium-99m) radiopharmaceuticals as much as 2-5 mCi. To get maximum results, patients are asked to stop taking drugs that can interfere with iodine
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34

Hassan, Bardes B., Lucas A. Altstadt, Wessel P. Dirksen, Said M. Elshafae, and Thomas J. Rosol. "Canine Thyroid Cancer: Molecular Characterization and Cell Line Growth in Nude Mice." Veterinary Pathology 57, no. 2 (2020): 227–40. http://dx.doi.org/10.1177/0300985819901120.

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Thyroid cancer is the most common endocrine malignancy in dogs. Dogs and humans are similar in the spontaneous development of thyroid cancer and metastasis to lungs; however, thyroid cancer has a higher incidence of metastasis in dogs. This study developed a preclinical nude mouse model of canine thyroid cancer using a canine thyroid adenocarcinoma cell line (CTAC) and measured the expression of important invasion and metastasis genes in spontaneous canine thyroid carcinomas and CTAC cells. CTAC cells were examined by electron microscopy. Short tandem repeat analysis was performed for both the
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35

ADAMS, A., A. A. ROY, R. JONES, and P. S. RICHARDS. "The role of ultrasound in the management of nodular thyroid disease and hyperparathyroidism." Imaging 22, no. 1 (2013): 20120028. http://dx.doi.org/10.1259/imaging.20120028.

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36

Haymart, Megan R., Mousumi Banerjee, David Reyes-Gastelum, Elaine Caoili, and Edward C. Norton. "Thyroid Ultrasound and the Increase in Diagnosis of Low-Risk Thyroid Cancer." Journal of Clinical Endocrinology & Metabolism 104, no. 3 (2018): 785–92. http://dx.doi.org/10.1210/jc.2018-01933.

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Abstract Context Thyroid cancer incidence increased with the greatest change in adults aged ≥65 years. Objective To determine the relationship between area-level use of imaging and thyroid cancer incidence over time. Design, Setting and Participants Longitudinal imaging patterns in Medicare patients aged ≥65 years residing in Surveillance, Epidemiology, and End Results (SEER) regions were assessed in relationship to differentiated thyroid cancer diagnosis in patients aged ≥65 years included in SEER-Medicare. Linear mixed-effects modeling was used to determine factors associated with thyroid ca
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37

Oki, Tatsuya, Akitoshi Inoue, Yukihiro Nagatani, Maya Oki, and Yoshiyuki Watanabe. "Computed tomography imaging findings of nivolumab-induced thyroid dysfunction." Journal of Clinical Imaging Science 12 (May 2, 2022): 22. http://dx.doi.org/10.25259/jcis_194_2021.

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The thyroid gland is most frequently involved in immune-related adverse events (irAEs) by nivolumab. We reviewed the thyroid function and thyroid gland volume and volume change ratio between baseline and follow-up CT (volume follow-up/volume baseline) in 24 patients treated with nivolumab for lung cancer and renal cell carcinoma. Among them, four (16.7%) demonstrated nivolumab-induced thyroid dysfunction that shows either hypothyroidism or hyperthyroidism. Three and one cases were treated with nivolumab for lung cancer and renal cell carcinoma, respectively. Two patients with hypothyroidism (c
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38

Cordes, Michael, Stephan Coerper, Torsten Kuwert, and Christian Schmidkonz. "Ultrasound Imaging of Cervical Anatomic Variants." Current Medical Imaging Formerly Current Medical Imaging Reviews 17, no. 8 (2021): 966–72. http://dx.doi.org/10.2174/1573405617666210127162328.

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Embryologic developmental variants of the thyroid and parathyroid glands may cause cervical anomalies that are detectable in ultrasound examinations of the neck. For some of these developmental variants, molecular genetic factors have been identified. Ultrasound, as the first-line imaging procedure, has proven useful in detecting clinically relevant anatomic variants. The aim of this article was to systematically summarize the ultrasound characteristics of developmental variants of the thyroid and parathyroid glands as well as ectopic thymus and neck cysts. Quantitative measures were developed
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39

Chun, Sangwoo, Young Seok Lee, and Jeesuk Yu. "Thyroid imaging study in children with suspected thyroid dysgenesis." Annals of Pediatric Endocrinology & Metabolism 26, no. 1 (2021): 53–59. http://dx.doi.org/10.6065/apem.2040120.060.

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40

Ito, Shigeki, Takuya Saze, Eiji Ariga, Shizuhiko Deji, Masahiro Hirota, and Kunihide Nishizawa. "99mTc thyroid imaging system using multiple imaging plates." Physica Medica 25, no. 2 (2009): 73–81. http://dx.doi.org/10.1016/j.ejmp.2008.05.003.

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41

Sharbidre, Kedar G., Mark E. Lockhart, and Franklin N. Tessler. "Incidental Thyroid Nodules on Imaging." Radiologic Clinics of North America 59, no. 4 (2021): 525–33. http://dx.doi.org/10.1016/j.rcl.2021.03.004.

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42

Higgins, CB, MT McNamara, MR Fisher, and OH Clark. "MR imaging of the thyroid." American Journal of Roentgenology 147, no. 6 (1986): 1255–61. http://dx.doi.org/10.2214/ajr.147.6.1255.

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43

Kamble, Rajesh C., Alpana N. Joshi, Pravin Mestry, and Mohit Shah. "Ultrasound Imaging of Thyroid Gland." An International Journal of Otorhinolaryngology Clinics 6, no. 1 (2014): 35–46. http://dx.doi.org/10.5005/jp-journals-10003-1148.

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44

Ahmed, S., M. P. Ghazarian, M. E. Cabanillas, et al. "Imaging of Anaplastic Thyroid Carcinoma." American Journal of Neuroradiology 39, no. 3 (2017): 547–51. http://dx.doi.org/10.3174/ajnr.a5487.

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45

Chen, L. M., and A. H. Sherman. "MR imaging of thyroid hemiagenesis." American Journal of Roentgenology 169, no. 4 (1997): 1200–1201. http://dx.doi.org/10.2214/ajr.169.4.9308500.

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46

Giovanella, Luca, Anca M. Avram, Petra Petranović Ovčariček, and Jerome Clerc. "Thyroid functional and molecular imaging." La Presse Médicale 51, no. 2 (2022): 104116. http://dx.doi.org/10.1016/j.lpm.2022.104116.

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47

Brauckhoff, Katrin, and Martin Biermann. "Multimodal imaging of thyroid cancer." Current Opinion in Endocrinology, Diabetes & Obesity 27, no. 5 (2020): 335–44. http://dx.doi.org/10.1097/med.0000000000000574.

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48

KONISHI, Junji. "Diagnostic Imaging of the Thyroid." Folia Endocrinologica Japonica 68, no. 7 (1992): 665–75. http://dx.doi.org/10.1507/endocrine1927.68.7_665.

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49

Dam, Hung Q., and Charles M. Intenzo. "Nuclear Imaging of Thyroid Diseases." Contemporary Diagnostic Radiology 26, no. 10 (2003): 1–6. http://dx.doi.org/10.1097/00219246-200305150-00001.

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50

Mountz, James M., Gary M. Glazer, Carl Dmuchowski, and James C. Sisson. "MR Imaging of the Thyroid." Journal of Computer Assisted Tomography 11, no. 4 (1987): 612–19. http://dx.doi.org/10.1097/00004728-198707000-00012.

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