Skip to main content

Main menu

  • Home
  • Content
    • Current
    • Ahead of print
    • Past Issues
    • JNM Supplement
    • SNMMI Annual Meeting Abstracts
    • Continuing Education
    • JNM Podcasts
  • Subscriptions
    • Subscribers
    • Institutional and Non-member
    • Rates
    • Journal Claims
    • Corporate & Special Sales
  • Authors
    • Submit to JNM
    • Information for Authors
    • Assignment of Copyright
    • AQARA requirements
  • Info
    • Reviewers
    • Permissions
    • Advertisers
  • About
    • About Us
    • Editorial Board
    • Contact Information
  • More
    • Alerts
    • Feedback
    • Help
    • SNMMI Journals
  • SNMMI
    • JNM
    • JNMT
    • SNMMI Journals
    • SNMMI

User menu

  • Subscribe
  • My alerts
  • Log in
  • My Cart

Search

  • Advanced search
Journal of Nuclear Medicine
  • SNMMI
    • JNM
    • JNMT
    • SNMMI Journals
    • SNMMI
  • Subscribe
  • My alerts
  • Log in
  • My Cart
Journal of Nuclear Medicine

Advanced Search

  • Home
  • Content
    • Current
    • Ahead of print
    • Past Issues
    • JNM Supplement
    • SNMMI Annual Meeting Abstracts
    • Continuing Education
    • JNM Podcasts
  • Subscriptions
    • Subscribers
    • Institutional and Non-member
    • Rates
    • Journal Claims
    • Corporate & Special Sales
  • Authors
    • Submit to JNM
    • Information for Authors
    • Assignment of Copyright
    • AQARA requirements
  • Info
    • Reviewers
    • Permissions
    • Advertisers
  • About
    • About Us
    • Editorial Board
    • Contact Information
  • More
    • Alerts
    • Feedback
    • Help
    • SNMMI Journals
  • View or Listen to JNM Podcast
  • Visit JNM on Facebook
  • Join JNM on LinkedIn
  • Follow JNM on Twitter
  • Subscribe to our RSS feeds
OtherLetters to the Editor

Methods to Outline the Patient During Lymphoscintigraphy

Borys R. Krynyckyi, Chun K. Kim, Martin Goyenechea and Josef Machac
Journal of Nuclear Medicine June 2003, 44 (6) 992-993;
Borys R. Krynyckyi
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Chun K. Kim
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Martin Goyenechea
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Josef Machac
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
  • Article
  • Info & Metrics
  • PDF
Loading

TO THE EDITOR:

It was with great interest that we read the article about outlining methods for lymphoscintigraphy, and we applaud the additional described method that uses a 153Gd-line source (1). It provides an option for those centers that have this capability installed on their SPECT cameras. However, we disagree with the statements in the article concerning the inability of the 57Co-flood source method to obtain lateral images. This is simply not so. In fact, we have been using the 57Co-flood source method to obtain excellent outlined lateral images for several years (2,3). Simply placing the sheet source on a chair with the patient between the flood source and camera head clearly provides the necessary geometry to produce the desired results.

Although it is conceivable that certain camera configurations (multihead and ring gantry based) could create geometry issues for the sheet source method, geometry issues have not prevented lateral views in our own triple- and dual-head camera systems, which are similar in physical configuration to other systems available. To outline the body of the patient in the lateral view, the sheet can be placed on any suitable surface (adjustable chair or stool below the opposing head[s]) or even hung from suitable attachment points (gantry, swing arm, etc.). One system we use has long hook-and-loop strips to hang the sheet source from the opposing camera head or arm. Outlined images can also be obtained with oblique (45°, etc.) camera angles.

In addition, the lateral images obtained with the 57Co-flood source method are superior to the anterior images obtained with this same method. This superiority is due to the greater effective patient cross-sectional distance/mass involved and the resultant increase in attenuation compared with the effective cross-sectional distance with anterior views. With increased attenuation, the patient outline is better defined and the sentinel node is easier to detect against a background of activity that is less than that obtained with anterior views.

Given the lower-energy 122-keV photons of 57Co, separate energy windows in the 122-keV range, in addition to conventional 140-keV windows (or upwardly offset windows to reduce scatter for better sentinel node delineation), could be used and printed separately and/or combined to optimize outlining when the 57Co-flood source is weak, and to minimize exposure if deliberately using a weak 57Co-flood source.

Finally, although the image quality obtained with a 153Gd-line source is of very high quality, this method is possible only with select new camera systems and is not as readily available as is a 57Co-flood source, which is already present in most nuclear medicine departments.

In discussing outlining methods, the authors did not mention 2 other methods that can be used to outline the patient.

The first is a simple “activity background painting” method in which activity in a 10-mL syringe is waved behind the patient in a pattern that sweeps across a plane parallel to the entire collimator surface, in effect simulating a 57Co-flood source. This method uses the same principles of differential attenuation as do other methods. The method can be used when no 57Co-flood source is available or when the source has decayed. The method is inexpensive, readily available, and quick. Issues of exposure can be controlled by limiting the activity in the syringe. The main drawback of the method is in the need for a certain level of skill to evenly sweep the activity behind the patient to achieve a uniform outline. Nevertheless, minor irregularities are not a significant distraction, and this method is superior to the method of manually moving a point source around the patient edge while acquiring an image.

The second method uses internal patient scatter from the injection site to generate an outlined image. An additional very-low-scatter energy window is programmed into the camera system (approximately 85–115 keV) to create a body-contour outline using scatter from the injection site (2,4). This image can be combined with the standard 99mTc energy window images to obtain a composite image delineating the position of the sentinel node in relation to the patient’s body. Drawbacks to this method include poor image quality in many patients, additional complex image-processing steps, and the need to often normalize the image set to obtain usable results (2).

No matter which method is ultimately used for outlining, we strongly believe that the surgeons should be presented with 4 images at a minimum. A set of 2 anterior images should be obtained—an image obtained with no outlining method, and a subsequent same-view image obtained immediately afterward with outlining. A second set of images with and without outlining should be obtained for the lateral views. This allows for a better delineation of the sentinel nodes and will alert the surgeon to any rare artifacts that might be generated by the outlining process and occasional decreases in contrast from activity that shines through from the outlining sources themselves that could hide faint nodes.

REFERENCES

  1. ↵
    Clarke E, Notghi A, Harding K. Improved body-outline imaging technique for localization of sentinel lymph nodes in breast surgery. J Nucl Med. 2002;43:1181–1183.
    OpenUrlAbstract/FREE Full Text
  2. ↵
    Krynyckyi BR, Miner M, Ragonese JM, Firestone M, Kim CK, Machac J. Technical aspects of performing lymphoscintigraphy: optimization of methods used to obtain images. Clin Nucl Med. 2000;25:978–985.
    OpenUrlCrossRefPubMed
  3. ↵
    Krynyckyi BR, Zhang ZY, Kim CK, Lipszyc H, Mosci K, Machac J. Effect of high specific-activity sulfur colloid preparations on sentinel node count rates. Clin Nucl Med. 2002;27:92–95.
    OpenUrlCrossRefPubMed
  4. ↵
    Fujii H, Yamashita H, Nakahara T, et al. Outlining the body contours with scattered photons in lymphoscintigraphy for sentinel nodes. Ann Nucl Med. 2000;14:401–404.
    OpenUrlPubMed

REPLY:

Thank you for the comments regarding lateral views obtained using a 57Co-flood source. It was interesting to read about obtaining lateral outline images using sheet sources suspended from the ceiling. This may be the only alternative for obtaining body-outline images with a camera that has no attenuation correction facility. However, we would be concerned with the health and safety issues raised by placing a sheet source on a chair or suspending a sheet source from a suitable point. The reason for finding an alternative was to reduce radiation exposure to the patient and the technologist as well as obtain better-quality images. As stated in the article (1), the dose from a 57Co-flood source is 70 μSv, a 25% increase in total patient study if only anteroposterior images are acquired and a 75% increase if anterior, lateral, and oblique images are obtained. Exposure to the technologist would also be considerably increased from positioning the flood source for all views.

We acknowledge that there are also other outline methods; their existence reflects the fact that none is 100% satisfactory. We quoted only those that we had tried. The final method using the 153Gd-line source gave superior images, and if the camera has the capability then this is the safest and easiest outline to achieve from any angle.

We strongly agree that all views should be available to the surgeon to aid in speedier localization of the lymph nodes during surgery.

REFERENCES

  1. ↵
    Clarke E, Notghi A, Harding K. Improved body-outline imaging technique for localization of sentinel lymph nodes in breast surgery. J Nucl Med. 2002;43:1181–1183.
PreviousNext
Back to top

In this issue

Journal of Nuclear Medicine
Vol. 44, Issue 6
June 1, 2003
  • Table of Contents
  • Index by author
Print
Download PDF
Article Alerts
Sign In to Email Alerts with your Email Address
Email Article

Thank you for your interest in spreading the word on Journal of Nuclear Medicine.

NOTE: We only request your email address so that the person you are recommending the page to knows that you wanted them to see it, and that it is not junk mail. We do not capture any email address.

Enter multiple addresses on separate lines or separate them with commas.
Methods to Outline the Patient During Lymphoscintigraphy
(Your Name) has sent you a message from Journal of Nuclear Medicine
(Your Name) thought you would like to see the Journal of Nuclear Medicine web site.
Citation Tools
Methods to Outline the Patient During Lymphoscintigraphy
Borys R. Krynyckyi, Chun K. Kim, Martin Goyenechea, Josef Machac
Journal of Nuclear Medicine Jun 2003, 44 (6) 992-993;

Citation Manager Formats

  • BibTeX
  • Bookends
  • EasyBib
  • EndNote (tagged)
  • EndNote 8 (xml)
  • Medlars
  • Mendeley
  • Papers
  • RefWorks Tagged
  • Ref Manager
  • RIS
  • Zotero
Share
Methods to Outline the Patient During Lymphoscintigraphy
Borys R. Krynyckyi, Chun K. Kim, Martin Goyenechea, Josef Machac
Journal of Nuclear Medicine Jun 2003, 44 (6) 992-993;
Twitter logo Facebook logo LinkedIn logo Mendeley logo
  • Tweet Widget
  • Facebook Like
  • Google Plus One
Bookmark this article

Jump to section

  • Article
    • REFERENCES
    • REFERENCES
  • Info & Metrics
  • PDF

Related Articles

  • No related articles found.
  • PubMed
  • Google Scholar

Cited By...

  • Optimal 57Co Flood Source Activity and Acquisition Time for Lymphoscintigraphy Localization Images
  • Reducing Exposure from 57Co Sources During Breast Lymphoscintigraphy by Optimizing Energy Windows and Other Suggested Enhancements of Acquisition and the Display of Images
  • Google Scholar

More in this TOC Section

  • Business Model Beats Science and Logic: Dosimetry and Paucity of Its Use
  • Determining PSMA-617 Mass and Molar Activity in Pluvicto Doses
  • The Value of Functional PET in Quantifying Neurotransmitter Dynamics
Show more Authors of the Letter and the Reply

Similar Articles

SNMMI

© 2025 SNMMI

Powered by HighWire