FES PET/CT imaging for invasive lobular cancer
According to the National Comprehensive Cancer Network (NCCN) 2018 guidelines 18F-2-fluoro-2-deoxy-D-glucose (FDG)-Positron Emission Tomography/Computed Tomography (PET/CT) may be performed as an alternative to a contrast-enhanced CT of the chest, abdomen and pelvis and Tc-99m methylene diphosphonate (MDP) bone scan for evaluation of distant metastatic disease in newly diagnosed stage III breast cancer patients. FDG-PET/CT is usually not obtained for stage I or stage II breast cancer patients as change in patient management is rare. Prior studies have demonstrated FDG-PET/CT can identify sites of unsuspected metastatic disease in newly diagnosed breast cancer patients thereby altering treatment decisions given that palliative management is typical for stage IV disease, whereas neoadjuvant therapy followed by surgery and postoperative radiation may be considered for stage II and operable stage III disease. These guidelines consider invasive breast cancer as a single entity and do not consider whether tailoring imaging techniques for subtypes of breast cancer may be beneficial. However, prior research suggests that FDG-PET/CT may be more appropriate as an alternative to CT and bone scan for patients with invasive ductal carcinoma (IDC) rather than invasive lobular carcinoma (ILC) as FDG demonstrates comparatively reduced sensitivity for ILC metastases. Compared to IDC, ILC is more often occult on mammography, ultrasound, and FDG-PET/CT; which is of importance for clinical management as ILC is more often multifocal and bilateral compared to IDC. Clinical breast examination also has lower sensitivity for detection of ILC compared to IDC, even for large tumors, as ILC may be indistinguishable from normal breast tissue on palpation. A prior study evaluating systemic staging of newly diagnosed patients with stage I-III invasive breast cancer found that FDG-PET/CT is 1.98 times less likely to reveal unsuspected distant metastatic disease for women with ILC compared to IDC. In this study, all IDC metastases demonstrated FDG avidity whereas 25% of ILC metastases (3 of 12) were not FDG avid. Detection of local axillary metastatic disease on FDG-PET/CT was also lower for ILC (0 of 146 patients) compared to IDC (7 of 89 patients) despite data from the Surveillance, Epidemiology and End Results (SEER) database demonstrating similar rates for lymph node metastases between IDC and ILC. Another study evaluating FDG-PET/CT for the diagnosis of primary breast cancer found that the false negative rate for detection of ILC by FDG was 65% (15 of 23 cases) compared to 23% for IDC (23 of 97 cases) when matching for tumors of the same size. A final study reported a false negative rate of FDG for ILC detection of 13% (2 of 15 patients). Mechanistically, ILC may not take up FDG as avidly as IDC due to lower tumor microvascularity, cellular density, proliferation rate, and number of glucose transporters (GLUT). ILC osseous metastatic disease is also more frequently occult on FDG-PET/CT compared to IDC as ILC osseous metastases are more frequently sclerotic, whereas FDG-PET/CT is more sensitive for lytic osseous metastases. Sclerotic ILC osseous metastases also may be indistinguishable from benign bone islands on CT at initial staging, thereby necessitating biopsy or imaging follow-up for confirmation of osseous metastatic disease. Improved imaging strategies for primary and metastatic ILC are therefore warranted. Multiple studies have proven the efficacy of FES-PET/CT for imaging evaluation of ER+ invasive breast malignancy (evaluating both IDC and ILC together, with the large majority of cases comprising IDC) but, to our knowledge, no prior study has focused FES-PET/CT evaluation only to cases of ILC, nor have prior studies compared FES-PET/CT directly with FDG-PET/CT for evaluation of newly diagnosed ILC. Given that all prior studies on FES-PET/CT have grouped a small number of ILC cases with a larger number of IDC cases, the imaging performance of FES-PET/CT specifically for ILC is unknown. ILC demonstrates higher rates of ER positivity than IDC with prior studies showing greater than 90% positivity for cases of ILC. Data from the SEER database also shows ILC demonstrates higher overall expression of ER than IDC (ILC 95% positive for ER, n=17,503 vs IDC 74% positive for ER, n=172,379). FES-PET/CT may therefore be suitable for imaging evaluation of a high proportion of patients with ILC.
Study Type
INTERVENTIONAL
Allocation
NON_RANDOMIZED
Purpose
DIAGNOSTIC
Masking
NONE
Enrollment
44
\[18F\]Fluoroestradiol (FES) PET/CT for invasive lobular carcinoma (ILC)
Huntsman Cancer Institute
Salt Lake City, Utah, United States
Positive Detection Rate of Invasive Lobular Carcinoma (ILC)
The number of known ILC sites that demonstrate abnormal FES uptake by FES-PET/CT, defined as focal uptake above background with standardized uptake value (SUV) max of 1.5 or greater, relative to the total number of known ILC sites.
Time frame: At time of baseline FES-PET/CT imaging
Change in Staging of Patients With Newly Diagnosed ILC
Blinded analysis was performed to determine staging fore each patient using FES-PET/CT imaging only and compared to the clinical stage assigned to each patient using a standard-of-care evaluation.
Time frame: At time of baseline FES-PET/CT imaging
Rate of Estrogen Receptor Positive (ER+) ILC That Does Not Demonstrate Positive FES Uptake
The number of known ER+ ILC sites that do not demonstrate abnormal FES uptake by FES-PET/CT, defined as focal uptake above background with SUV max of 1.5 or greater, relative to the total number of known ER+ ILC sites.
Time frame: At time of baseline FES-PET/CT imaging
Rate of Estrogen Receptor Negative (ER-) ILC That Does Demonstrate Positive FES Uptake
The number of known ER- ILC sites that demonstrate abnormal FES uptake by FES-PET/CT, defined as focal uptake above background with SUV max of 1.5 or greater, relative to the total number of known ER- ILC sites.
Time frame: This secondary endpoint was evaluated using data collected during Pilot Phase only.
Rate of Same-patient (Inter-tumoral) Heterogeneous FES Uptake
Number of patients demonstrating a presence of FES uptake with SUV max of 1.5 or greater in some but not all biopsy proven or suspected metastatic lesions.
Time frame: At time of baseline FES-PET/CT imaging
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Rate of Discordant Uptake (FES Positive/FDG Negative or FES Negative/FDG Positive)
Differences between FDG- and FES uptake. Discordant uptake will be evaluated for any histologically confirmed site of ILC before or after enrollment. Only lesions in patients who underwent both FES- and FDG-PET/CT scans will be included in this assessment. Discordant uptake is defined as individual lesions that show either positive FES uptake and negative FDG uptake, or negative FES uptake and positive FDG uptake.
Time frame: At time of baseline FES-PET/CT imaging and FDG-PET/CT (done within four weeks of FES-PET/CT imaging)
Correlation of Lesion Uptake Between FES and FDG.
SUVmax values are compared for FES- and FDG-PET/CT within sites of abnormal uptake.
Time frame: At time of baseline FES-PET/CT imaging and FDG-PET/CT (done within four weeks of FES-PET/CT imaging)
Ability to Predict Patient Stage at Presentation by Quantity of Methylated ctDNA at Baseline
This outcome measure will assess whether the quantity of methylated ctDNA at baseline predicts patient stage at presentation per the American Joint Committee on Cancer (AJCC) TNM system. Spearman correlation would be used to assess the correlation between circulating tumor DNA (ctDNA) and stage. This outcome measure can not be reported as technical issues prevented the ctDNA analysis.
Time frame: At time of baseline FES-PET/CT imaging
Assess Correlation Between Methylated ctDNA and Overall Survival
To assess whether quantity of methylated ctDNA at baseline predicts survival at each follow-up interval starting at 6 months (follow-up performed at 6, 12, 18, 24, 36, 48 and 60 months). A proportional hazards model will be used to assess the relationship between methylated ctDNA and overall survival. To determine the relationship at various time points, the analysis will be performed with censoring at 6, 12, 18, 24, 36, 48 and 60 months. This outcome measure can not be reported as technical issues prevented the ctDNA analysis.
Time frame: ctDNA samples collected for all patients at baseline and collected at 6, 12, 18, 24, 36, 48, and 60 months after baseline for patients who consented to additional collection
Relationship Between Presence of Heterogeneous FES-PET/CT Uptake at Baseline and Overall Survival
To assess whether heterogeneous FES-PET/CT uptake at baseline (yes/no), defined as abnormal FES uptake in some but not all proven or suspected ILC lesions, predicts survival at each follow-up interval starting at 6 months (follow-up performed at 6, 12, 18 months). Due to early termination of the study, subject are censored at the end of study date. No participants had heterogeneous FES-PET/CT uptake at baseline. No participants died on study.
Time frame: Survival is assessed from baseline to study closure (up to 27 months from baseline FES-PET/CT)