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7 - Nuclear medicine

Published online by Cambridge University Press:  05 March 2012

Kiat Tsong Tan
Affiliation:
Queen Elizabeth Hospital, Charlottetown
John Curtis
Affiliation:
University Hospital Aintree
Jessie Aw
Affiliation:
University of Chicago
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Summary

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Chapter
Information
Final FRCR 2B Viva
A Survival Guide
, pp. 552 - 590
Publisher: Cambridge University Press
Print publication year: 2011

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References

Naddaf, SY, Collier, BD, Elgazzar, AH, Khalil, MM. Technical errors in planar bone scanning. J Nucl Med Technol 2004; 32: 148–53.Google Scholar
O'Connor, MK, Brown, ML, Hung, JC, Hayostek, RJ. The art of bone scintigraphy: technical aspects. J Nucl Med 1991; 32: 2332–41.Google ScholarPubMed
Schaberg, J, Gainor, BJ. A profile of metastatic carcinoma of the spine. Spine 1985; 10: 19–20.CrossRefGoogle Scholar
Jajic, Z, Jajic, I, Nemcic, T. Primary hypertrophic osteoarthropathy: clinical, radiologic, and scintigraphic characteristics. Arch Med Res 2001; 32: 136–42.CrossRefGoogle Scholar
Pineda, C. Diagnostic imaging in hypertrophic osteoarthropathy. Clin Exp Rheumatol 1992; 10 (Suppl 7): 27–33.Google ScholarPubMed
Burch, HB, Shakir, F, Fitzsimmons, TR, Jaques, DP, Shriver, CD. Diagnosis and management of the autonomously functioning thyroid nodule: the Walter Reed Army Medical Center experience, 1975–1996. Thyroid 1998; 8: 871–80.CrossRefGoogle ScholarPubMed
Pacini, F, Burroni, L, Ciuoli, C, Di Cairano, G, Guarino, E. Management of thyroid nodules: a clinicopathological, evidence based approach. Eur J Nucl Med Mol Imaging 2004; 31: 1443–9.CrossRefGoogle Scholar
Sans, M, Fuster, D, Llach, J, et al. Optimization of technetium-99m-HMPAO leukocyte scintigraphy in evaluation of active inflammation bowel disease. Dig Dis Sci 2000; 45: 1828–35.CrossRefGoogle Scholar
Malcolm, PN, Bearcroft, CP, Pratt, PG, Rampton, DS, Garvie, NW. Technetium-99m hexamethylpropyleneamineoxime labelled leucocyte scanning in the initial diagnosis of Crohn's disease. Br J Radiol 1994; 67: 964–8.CrossRefGoogle ScholarPubMed
O'Doherty, MJ, Kettle, AG, Wells, P, Collins, RE, Coakley, AJ. Parathyroid imaging with technetium 99m sestamibi: preoperative localization and tissue uptake studies. J Nucl Med 1992; 33: 313–18.Google ScholarPubMed
Scarsbrook, AF, Thakker, RV, Wass, JA, Gleeson, FV, Phillips, RR. Multiple endocrine neoplasia: spectrum of radiologic appearances and discussion of a multitechnique imaging approach. Radiographics 2006; 26: 433–51.CrossRefGoogle ScholarPubMed
Bruzzi, JF, Munden, RF. PET/CT imaging of lung cancer. J Thorac Imaging 2006; 21: 123–36.CrossRefGoogle ScholarPubMed
Metintas, M, Ak, G, Akcayir, IA, et al. Detecting extrathoracic metastases in patients with non-small cell lung cancer: is routine scanning necessary?Lung Cancer 2007; 58: 59–67.CrossRefGoogle ScholarPubMed
Fogelman, I, Carr, D, Boyle, IT. The role of bone scanning in Paget's disease. Metab Bone Dis Relat Res 1981; 3: 243–54.CrossRefGoogle ScholarPubMed
Smith, SE, Murphey, MD, Motamedi, K, et al. From the archives of the AFIP. Radiologic spectrum of Paget disease of bone and its complications with pathologic correlation. Radiographics 2002; 22: 1191–216.CrossRefGoogle ScholarPubMed
Hashizume, H, Asahara, H, Nishida, K, Inoue, H, Konishiike, T. Histopathology of Kienbock's disease: correlation with magnetic resonance and other imaging techniques. J Hand Surg Br 1996; 21: 89–93.CrossRefGoogle ScholarPubMed
Mohammed, A, Ryan, P, Lewis, M, et al. Registration bone scan in the evaluation of wrist pain. J Hand Surg Br 1997; 22: 161–6.Google Scholar
Brent, GA. Graves' disease. N Engl J Med 2008; 358: 2594–605.CrossRefGoogle ScholarPubMed
Cappelli, C, Pirola, I, Martino, E, et al. The role of imaging in Graves' disease: a cost-effectiveness analysis. Eur J Radiol 2008; 65: 99–103.CrossRefGoogle ScholarPubMed
Buckley, O, O'Keeffe, S, Geoghegan, T, et al. 99mTc bone scintigraphy superscans: a review. Nucl Med Commun 2007; 28: 521–7.CrossRefGoogle ScholarPubMed
Love, C, Din, AS, Tomas, MB, Kalapparambath, TP, Palestro, CJ. Radionuclide bone imaging: an illustrative review. Radiographics 2003; 23: 341–58.CrossRefGoogle Scholar
Cohade, C, Osman, M, Pannu, HK, Wahl, RL.Uptake in the supraclavicular area fat (‘USA-fat’): description on 18F-FDG PET/CT. J Nucl Med 2003; 44: 170–6.Google Scholar
Yeung, HW, Grewal, RK, Gonen, M, Schoder, H, Larson, SM. Patterns of (18)F-FDG uptake in adipose tissue and muscle: a potential source of false-positives for PET. J Nucl Med 2003; 44: 1789–96.Google ScholarPubMed
Cooper, JC, Nakielny, R, Talbot, CH. The use of computed tomography in the evaluation of large multinodular goitres. Ann R Coll Surg Engl 1991; 73: 32–5.Google ScholarPubMed
Smith, JR, Oates, E. Radionuclide imaging of the thyroid gland: patterns, pearls and pitfalls. Clin Nucl Med 2004; 29: 181–93.CrossRefGoogle ScholarPubMed
Glodny, B, Petersen, J, Hofmann, KJ, et al. Kidney fusion anomalies revisited: clinical and radiological analysis of 209 cases of crossed fused ectopia and horseshoe kidney. BJU Int 2009; 103: 224–35.CrossRefGoogle ScholarPubMed
LaManna, MM, Coll, ME, Karafin, LJ, Parker, JA. The radionuclide diagnosis of horseshoe kidney. Clin Nucl Med 1985; 10: 799–803.CrossRefGoogle ScholarPubMed
Lyders, EM, Whitlow, CT, Baker, MD, Morris, PP. Imaging and treatment of sacral insufficiency fractures. AJNR Am J Neuroradiol 2010; 31: 201–10.CrossRefGoogle ScholarPubMed
Wat, SY, Seshadri, N, Markose, G, Balan, K. Clinical and scintigraphic evaluation of insufficiency fractures in the elderly. Nucl Med Commun 2007; 28: 179–85.CrossRefGoogle Scholar
Boubaker, A, Prior, JO, Meuwly, JY, Bischof-Delaloye, A. Radionuclide investigations of the urinary tract in the era of multimodality imaging. J Nucl Med 2006; 47: 1819–36.Google ScholarPubMed
Pollet, JE, Sharpe, PF, Smith, RW. Radionuclide imaging for vesico-renal reflux using intravenous 99mTc-D.T.P.A. Pediatr Radiol 1979; 8: 165–7.CrossRefGoogle ScholarPubMed
Palestro, CJ, Tomas, MB, Tronco, GG. Radionuclide imaging of the parathyroid glands. Semin Nucl Med 2005; 35: 266–76.CrossRefGoogle ScholarPubMed
Smith, JR, Oates, MA. Radionuclide imaging of the parathyroid glands: patterns, pearls and pitfalls. Radiographics 2004; 24: 1101–15.CrossRefGoogle ScholarPubMed
Herholz, K, Schopphoff, H, Schmidt, M, et al. Direct comparison of spatially normalized PET and SPECT scans in Alzheimer's disease. J Nucl Med 2002; 43: 21–6.Google ScholarPubMed
Heertum, RL, Greenstein, EA, Tikofsky, RS. 2-deoxy-fluoroglucose-positron emission tomography imaging of the brain: current clinical applications with emphasis on dementias. Semin Nucl Med 2004; 34: 300–12.CrossRefGoogle Scholar
Mirra, JM, Brien, EW, Tehranzadeh, J. Paget's disease of bone: review with emphasis on radiologic features, part II. Skeletal Radiol 1995; 24: 173–84.Google ScholarPubMed
Smith, SE, Murphey, MD, Motamedi, K, et al. From the archives of the AFIP: radiologic spectrum of Paget disease of bone and its complications with pathologic correlation. Radiographics 2002; 22: 1191–216.CrossRefGoogle Scholar
Rossleigh, MA. Scintigraphic imaging in renal infections. Q J Nucl Med Mol Imaging 2009; 53: 72–7.Google ScholarPubMed
Stokland, E, Hellström, M, Jakobsson, B, Sixt, R. Imaging of renal scarring. Acta Paediatr Suppl 1999; 88: 13–21.CrossRef
Isasi, CR, Lu, P, Blaufox, MD. A metaanalysis of 18F-2-deoxy-2-fluoro-D-glucose positron emission tomography in the staging and restaging of patients with lymphomaCancer 2005; 104: 1066–74.CrossRefGoogle ScholarPubMed
Seam, P, Juweid, ME, Cheson, BD. The role of FDG-PET scans in patients with lymphoma. Blood 2007; 110: 3507–16.CrossRefGoogle ScholarPubMed

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