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Published in: Annals of Nuclear Medicine 4/2009

01-06-2009 | Original Article

A recovery coefficient method for partial volume correction of PET images

Authors: Shyam M. Srinivas, Thiruvenkatasamy Dhurairaj, Sandip Basu, Gonca Bural, Suleman Surti, Abass Alavi

Published in: Annals of Nuclear Medicine | Issue 4/2009

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Abstract

Objectives

Correction of the “partial volume effect” has been an area of great interest in the recent times in quantitative PET imaging and has been mainly studied with count recovery models based upon phantoms that incorporate hot spheres in a cold background. The goal of this research study was to establish a similar model that is closer to a biological imaging environment, namely hot spheres/lesions in a warm background and to apply this model in a small cohort of patients.

Methods

A NEMA phantom with six spheres (diameters 1–3.7 cm) was filled with 18FDG to give sphere:background activity ratios of 8:1, 6:1, and 4:1 for three different acquisitions on a Philips Allegro scanner. The hot sphere SUVmax and the background average SUV were measured for calculation of recovery coefficients (RCs). Using the RCs, the lesion diameters, and the lesion:background ratio, the SUVmax of 64 lesions from 17 patients with biopsy proven lung cancer were corrected.

Results

The RCs versus sphere diameters produced characteristic logarithmic curves for each phantom (RCs ranged from 80% to 11%). From a cohort of 17 patients with biopsy proven lung cancer, 64 lesions combined had a mean SUVmax of 7.0 and size of 2.5 cm. After partial volume correction of the SUVmax of each lesion, the average SUVmax increased to 15.5.

Conclusions

Hot spheres in a warm background more closely resemble the actual imaging situation in a living subject when compared to hot spheres in a cold background. This method could facilitate generation of equipment specific recovery coefficients for partial volume correction. The clinical implications for the increased accuracy in SUV determination are certainly of potential value in oncologic imaging.
Literature
1.
go back to reference Soret M, Bacharach SL, Buvat I. Partial-volume effect in PET tumor imaging. J Nucl Med. 2007;48:932–45.PubMedCrossRef Soret M, Bacharach SL, Buvat I. Partial-volume effect in PET tumor imaging. J Nucl Med. 2007;48:932–45.PubMedCrossRef
2.
go back to reference Hoffman EJ, Huang SC, Phelps ME. Quantitation in positron emission computed tomography: effect of object size. J Comput Assist Tomogr. 1979;3:299–3082.PubMed Hoffman EJ, Huang SC, Phelps ME. Quantitation in positron emission computed tomography: effect of object size. J Comput Assist Tomogr. 1979;3:299–3082.PubMed
3.
go back to reference Kessler RM, Ellis JR Jr, Eden M. Analysis of emission tomographic scan data: limitations imposed by resolution and background. J Comput Assist Tomogr. 1984;8:514–22.PubMedCrossRef Kessler RM, Ellis JR Jr, Eden M. Analysis of emission tomographic scan data: limitations imposed by resolution and background. J Comput Assist Tomogr. 1984;8:514–22.PubMedCrossRef
4.
go back to reference Chawluk JB, Alavi A, Dann R, Hurtig HI, Bais S, Kushner MJ, et al. Positron emission tomography in aging and dementia: effect of cerebral atrophy. J Nucl Med. 1987;28:431–7.PubMed Chawluk JB, Alavi A, Dann R, Hurtig HI, Bais S, Kushner MJ, et al. Positron emission tomography in aging and dementia: effect of cerebral atrophy. J Nucl Med. 1987;28:431–7.PubMed
5.
go back to reference Meltzer CC, Leal JP, Mayberg HS, Wagner HN Jr, Frost JJ. Correction of PET data for partial volume effects in human cerebral cortex by MR imaging. J Comput Assist Tomogr. 1990;14:561–70.PubMedCrossRef Meltzer CC, Leal JP, Mayberg HS, Wagner HN Jr, Frost JJ. Correction of PET data for partial volume effects in human cerebral cortex by MR imaging. J Comput Assist Tomogr. 1990;14:561–70.PubMedCrossRef
6.
go back to reference Müller-Gärtner HW, Links JM, Prince JL, Bryan RN, McVeigh E, Leal JP, et al. Measurement of radiotracer concentration in brain gray matter using positron emission tomography: MRI-based correction for partial volume effects. J Cereb Blood Flow Metab. 1992;12:571–83.PubMed Müller-Gärtner HW, Links JM, Prince JL, Bryan RN, McVeigh E, Leal JP, et al. Measurement of radiotracer concentration in brain gray matter using positron emission tomography: MRI-based correction for partial volume effects. J Cereb Blood Flow Metab. 1992;12:571–83.PubMed
7.
go back to reference Rousset OG, Ma Y, Evans AC. Correction for partial volume effects in PET: principle and validation. J Nucl Med. 1998;39:904–11.PubMed Rousset OG, Ma Y, Evans AC. Correction for partial volume effects in PET: principle and validation. J Nucl Med. 1998;39:904–11.PubMed
8.
go back to reference Weber W, Schad D, Römer W, Ziegler S, Kruschke C, Herz M, et al. Fluorine-18 FDG-PET in solitary pulmonary nodules: determination of tumor size and correction of partial volume effect. J Nucl Med. 1995;36:95P. Weber W, Schad D, Römer W, Ziegler S, Kruschke C, Herz M, et al. Fluorine-18 FDG-PET in solitary pulmonary nodules: determination of tumor size and correction of partial volume effect. J Nucl Med. 1995;36:95P.
9.
go back to reference Vesselle H, Schmidt RA, Pugsley JM, Li M, Kohlmyer SG, Vallires E, et al. Lung cancer proliferation correlates with [F-18] fluorodeoxyglucose uptake by positron emission tomography. Clin Cancer Res. 2000;6:3837–44.PubMed Vesselle H, Schmidt RA, Pugsley JM, Li M, Kohlmyer SG, Vallires E, et al. Lung cancer proliferation correlates with [F-18] fluorodeoxyglucose uptake by positron emission tomography. Clin Cancer Res. 2000;6:3837–44.PubMed
10.
go back to reference Hickeson M, Yun M, Matthies A, Zhuang H, Adam LE, Lacorte L, et al. Use of a corrected standardized uptake value based on the lesion size on CT permits accurate characterization of lung nodules on FDG-PET. Eur J Nucl Med. 2002;29:1639–47.CrossRef Hickeson M, Yun M, Matthies A, Zhuang H, Adam LE, Lacorte L, et al. Use of a corrected standardized uptake value based on the lesion size on CT permits accurate characterization of lung nodules on FDG-PET. Eur J Nucl Med. 2002;29:1639–47.CrossRef
11.
go back to reference Daube-Witherspoon ME, Karp JS, Casey ME, DiFilippo FP, Hines H, Muehllehner G, et al. PET performance measurements using the NEMA NU 2-2001 standard. J Nucl Med. 2002;43:1398–409.PubMed Daube-Witherspoon ME, Karp JS, Casey ME, DiFilippo FP, Hines H, Muehllehner G, et al. PET performance measurements using the NEMA NU 2-2001 standard. J Nucl Med. 2002;43:1398–409.PubMed
12.
go back to reference Surti S, Karp JS. Imaging characteristics of a 3-dimensional GSO whole-body PET camera. J Nucl Med. 2004;45:1040–9.PubMed Surti S, Karp JS. Imaging characteristics of a 3-dimensional GSO whole-body PET camera. J Nucl Med. 2004;45:1040–9.PubMed
13.
go back to reference National Electrical Manufacturers Association. NEMA Standards Publication NU 22001: performance measurements of positron emission tomographs. Rosslyn, VA: National Electrical Manufacturers Association; 2001. National Electrical Manufacturers Association. NEMA Standards Publication NU 22001: performance measurements of positron emission tomographs. Rosslyn, VA: National Electrical Manufacturers Association; 2001.
14.
go back to reference Adler LP, Crowe JP, Al-Kaisi NK, Sunshine JL. Evaluation of breast masses and axillary lymph nodes with [F-18] 2-deoxy-2-fluoro-D-glucose PET. Radiology. 1993;187:743–50.PubMed Adler LP, Crowe JP, Al-Kaisi NK, Sunshine JL. Evaluation of breast masses and axillary lymph nodes with [F-18] 2-deoxy-2-fluoro-D-glucose PET. Radiology. 1993;187:743–50.PubMed
15.
go back to reference Chen CH, Muzic RF Jr, Nelson AD, Adler LP. Simultaneous recovery of size and radioactivity concentration of small spheroids with PET data. J Nucl Med. 1999;40:118–30.PubMed Chen CH, Muzic RF Jr, Nelson AD, Adler LP. Simultaneous recovery of size and radioactivity concentration of small spheroids with PET data. J Nucl Med. 1999;40:118–30.PubMed
16.
go back to reference Patz EF Jr, Lowe VJ, Hoffman JM, Paine SS, Burrowes P, Coleman RE, et al. Focal pulmonary abnormalities: evaluation with F-18 fluorodeoxyglucose PET scanning. Radiology. 1993;188:487–90.PubMed Patz EF Jr, Lowe VJ, Hoffman JM, Paine SS, Burrowes P, Coleman RE, et al. Focal pulmonary abnormalities: evaluation with F-18 fluorodeoxyglucose PET scanning. Radiology. 1993;188:487–90.PubMed
17.
go back to reference Alavi A, Gupta N, Alberini JL, Hickeson M, Adam LE, Bhargava P, et al. PET imaging in nonmalignant thoracic disorders. Semin Nucl Med. 2002;32:293–321.PubMedCrossRef Alavi A, Gupta N, Alberini JL, Hickeson M, Adam LE, Bhargava P, et al. PET imaging in nonmalignant thoracic disorders. Semin Nucl Med. 2002;32:293–321.PubMedCrossRef
18.
go back to reference Nehmeh SA, Erdi YE, Ling CC, Rosenzweig KE, Schoder H, Larson SM, et al. Effect of respiratory gating on quantifying PET images of lung cancer. J Nucl Med. 2002;43:876–81.PubMed Nehmeh SA, Erdi YE, Ling CC, Rosenzweig KE, Schoder H, Larson SM, et al. Effect of respiratory gating on quantifying PET images of lung cancer. J Nucl Med. 2002;43:876–81.PubMed
19.
go back to reference Boucher L, Rodrigue S, Lecomte R, Benard F. Respiratory gating for 3-dimensional PET of the thorax: feasibility and initial results. J Nucl Med. 2004;45:214–9.PubMed Boucher L, Rodrigue S, Lecomte R, Benard F. Respiratory gating for 3-dimensional PET of the thorax: feasibility and initial results. J Nucl Med. 2004;45:214–9.PubMed
Metadata
Title
A recovery coefficient method for partial volume correction of PET images
Authors
Shyam M. Srinivas
Thiruvenkatasamy Dhurairaj
Sandip Basu
Gonca Bural
Suleman Surti
Abass Alavi
Publication date
01-06-2009
Publisher
Springer Japan
Published in
Annals of Nuclear Medicine / Issue 4/2009
Print ISSN: 0914-7187
Electronic ISSN: 1864-6433
DOI
https://doi.org/10.1007/s12149-009-0241-9

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