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Biomedical subjects

P Mirk

Publications and source records attributed to P Mirk.

44 records · Page 3Linked to original sources

Diagnostic imaging of the thyroid: methodology and normal patterns.

The diagnostic imaging of the thyroid is based on sonography and scintigraphy, which to-date play a unique role in the morphofunctional study of the thyroid gland. The high spatial resolution of sonography allows an accurate evaluation of the thyroid morphology, size and parenchymal structure. Color Doppler sonography allows a qualitative assessment associated with quantitative parameters of glandular vascularization. Furthermore, sonography is the simplest procedure to achieve an accurate, reproducible measurement of thyroid volume. Scintigraphy provides information unavailable by other methods on the regional thyroid function. The most common tracer for thyroid scintigraphy is 99mTc pertechnetate. 123I and 131I are essential for radioiodine uptake test. CT and MRI, while invaluable for other organs and apparatus, play a limited role in the diagnosis of thyroid disease.

Diagnostic Imaging↗

Diagnostic imaging of euthyroid goiter.

In diffuse or nodular euthyroid goiter, diagnostic imaging is indicated to define, by sonography, the morphology, size and structure of the goiter and to evaluate, by scintigraphy, the regional thyroid function. The instrumental diagnosis of thyroid nodule is essentially based on sonography, scintigraphy and (US-guided) needle aspiration cytology. The evaluation of some sonographic findings (echogenicity, calcification, lesion margins and presence of peripheral ring) may direct to the differentiation of a benign or malignant lesion. The role of color Doppler in the characterization of thyroid nodules is still controversial. Scintigraphy provides information on nodular function, being also the only exam able to show the presence of autonomously functioning thyroid tissue ("hot" nodule), whose diagnosis allows to rule out the presence of thyroid carcinoma with a very strong probability. In intrathoracic goiter, CT and MRI and indicated to show the continuity with the cervical thyroid and to define the relationships with adjacent structures. Radioiodine scintigraphy shows with high (> 90%) diagnostic accuracy the thyroid nature of a mediastinal mass (plunging goiter).

Diagnostic Imaging↗

Diagnostic imaging in thyrotoxicosis.

In thyrotoxicosis, imaging mainly scintigraphy, color Doppler sonography and radioiodine uptake test are used in the differential diagnosis as well as in the morphofunctional evaluation of the thyroid before and after therapy (mainly pharmacological or with radioiodine). Radioiodine uptake test differentiates high uptake thyrotoxicosis (Graves'disease, toxic nodular goiter) and low uptake thyrotoxycosis (subacute or silent thyroiditis, ectopic thyrotoxicosis, iodine-induced hyperthyroidism). In Graves'disease scintigraphy shows thyroid enlargement with intense homogeneous tracer uptake; rarely nodules with no uptake are present. On color Doppler sonography, a part from enlargement, typical findings are: diffuse structural hypoechogenicity (at times with echoic nodules), parenchymal hypervascularization ("thyroid inferno"), high systolic velocities (PSV > 70-100 cm/sec) in inferior thyroid arteries. Scintigraphy is the only method able to evidence an autonomously functioning thyroid nodule and stage it (in association to clinical findings and TSH, FT3, FT4 determination) as: toxic, non toxic (or pretoxic) and compensated, depending on whether there is inhibition of extranodular tissue. A scintigraphically "hot" nodule appears hypervascularized on color Doppler sonography (especially in the toxic or pre-toxic phase) with high PSV (> 50-70 cm/sec) in the ipsilateral inferior thyroid artery. The most reliable parameters in the evaluation of the therapeutic efficacy are: decreases in thyroid (Graves'disease) or nodular (autonomously functioning nodule) volume; decreased radioiodine uptake (Graves'disease); functional recovery of suppressed parenchyma (autonomously functioning nodule); decreased PSV in the inferior thyroid arteries.

Diagnosis, Differential↗

Diagnostic imaging of differentiated thyroid carcinoma.

The role of diagnostic imaging in differentiated thyroid carcinoma is analyzed. 99mTc-pertechnetate 123I and 131I scintigraphy allows the evaluation of nodules with their differentiation in cold (hypofunctioning) and hot (functionally autonomous) nodules; thyroid carcinomas are cold nodules even if most of them are benign. On sonography thyroid nodules are well visualized with the definition of their site, number, size (not very useful parameters for the diagnosis of malignancy), echoic structure, and vascularization on color Doppler. The sonographic findings suggestive of differentiated thyroid carcinoma are: solid and hypoechoic structure, irregular ill-defined margins, absent or discontinuous peripheral ring, microcalcification, intranodular vascularization, local lymphadenopathies. These findings are characteristic but not pathognomonic, mostly for papillary carcinoma, while in the frequently isoechoic follicular carcinoma microcalcification and lymph node metastases are rare. Only the finding, although rather infrequent, of the dissemination to adjacent structures (muscles and vessels) is a definite indication for malignancy of a thyroid nodule. Color Doppler sonography plays a major role in the postoperative staging and follow-up, in combination with thyroglobulin determination and 131I whole body scintigraphy and it allows the detection of local and/or laterocervical lymph node recurrence. The most typical sonographic findings of metastatic lymphadenopathy are the roundish shape (length/anteroposterior diameter ratio-L/A < 1.5), not visible or displaced nodal hilum, thickened cortical layer with echoic structure similar to that of thyroid parenchyma, at times with microcalcification, cortical vascularization and dismantled angioarchitecture. CT and MRI are occasionally more useful to evaluate the substernal or retrosternal extension of voluminous thyroid masses and to identify local or distant metastases.

Carcinoma↗

[Role of Doppler color ultrasonography in the diagnosis of thyroid carcinoma].

The aim of this study is to assess the efficacy and accuracy of color flow-Doppler sonography (CFDS) in predicting the malignancy of thyroid nodules. Seventy eight consecutive patients (52 females and 26 males), with 78 thyroid nodules (29 single nodules and 49 in a nodular goiter) have been examined by CFDS, before surgery, evaluating the hypoechogenicity of the nodule, the presence of microcalcifications and the halo sign absent and the vascular pattern, which has been classified as follows: absence of blood flow (type I), perinodular blood flow (type II), intranodular, with or without perinodular blood flow (type III), which is considered the most typical pattern of malignancy. On histology 22 nodules as carcinoma (CA) and 56 as benign nodules (BN) have been diagnosed. The most predictive for malignancy, sonographic pattern, "microcalcifications", has been found in 13/22 CA and in 4/56 BN (P < 0.0001, specificity 93%, sensitivity 59%); "hypoechogenicity" in 16/22 CA and in 8/56 BN (P < 0.0001, specificity 86%, sensitivity 73%), "absent halo sign" in 18/22 CA and in 16/56 BN (P < 0.0001, specificity 71%, sensitivity 82%.) have been found. On CFD type III pattern has been detected in 17/22 CA and in 24/56 BN (P < 0.15, specificity 57%, sensitivity 77%); type IIIa pattern (intranodular without perinodular blood flow) has been the most predictive for malignancy (P < 0.0001, specificity 100%, sensitivity 36%). The combination of type III pattern with "hypoechogenicity" in 13/22 CA and in 2/56 BN (p < 0.0001, specificity 93%, sensitivity 59%) has been found, with "absent halo sign" in 15/22 CA and in 3/56 BN (P < 0.0001, specificity 94.6%, sensitivity 68%), has been found, with "microcalcification" in 10/22 CA and in 0/56 BN (P < 0.0001, specificity 100%, sensitivity 45%) has been found. The combination of "microcalcifications" and absent halo sign" with type III pattern has been the most specific for malignancy, being detected in 11/22 Ca and 2/56 BN (P < 0.0001, specificity 96%, sensitivity 50%). In conclusion our results suggest that CFDS has an useful role in the assessment of thyroid nodules and it may provide information highly predictive for malignancy, above all when multiple, sonographic and vascular patterns are contemporaneously present in a thyroid nodule.

Adolescent↗

[Ultrasonography in the monitoring of internal biliary drainage using an endoscopically inserted prosthesis].

Endoscopic retrograde biliary drainage by means of transtumoral endoprostheses is an effective technique for palliative decompression of malignant biliary obstruction. However, serial follow-up is required for an early detection of eventual long-term complications. In the present study 37 patients with malignant biliary obstruction, treated by endoscopic insertion of one or more biliary stents, were prospectively evaluated by sonography, with serial clinical and US examinations up to 10 months. In our experience, sonography could correctly identify both the endoprostheses and their location in the biliary tract. Most important, sonography has proved to be a sensitive method to detect possible stent dysfunctions, besides providing with information about the progression of the underlying malignancy.

Adenoma, Bile Duct↗

[Echography in the study of renal pathology in childhood].

Results of US study in 30 children with various renal lesions are reported, and compared with clinical and surgical features. Different ultrasonographic aspects are discussed with special interest on cogenital abnormalities. US is proposed as first choice investigation in newborns with antenatal ultrasonographic demonstration of renal lesions and in all patients where a mass of renal origin is suspected. Renal function, nevertheless, must be investigated with radiologic and/or radioisotopic techniques. US have still a large indication in short term follow-up of renal lesions where surgical treatment is not indicated.

Adolescent↗