Columbia University Irving Medical Center/NYP
New York, 10032, United States
Location status: Recruiting
Location contact
Elisa Konofagou, PhD
CONTACT
Elisa Konofagou, PhD
PRINCIPAL_INVESTIGATOR
Xiaoyue Li
CONTACT
NCT Number: NCT05219695
The objective of this study is to demonstrate the initial clinical feasibility of using Harmonic Motion Imaging (HMI) for Focused Ultrasound Surgery (FUS) guidance and monitoring in patients with benign and stage 1 non-metastatic breast cancers. The investigators hypothesize that changes in HMI parameters will inform progression of FUS ablation.
Interested in participating?
Request Info18 year and older
Female
Interventional
Not applicable
New York, 10032, United States
Location status: Recruiting
Elisa Konofagou, PhD
CONTACT
Elisa Konofagou, PhD
PRINCIPAL_INVESTIGATOR
Xiaoyue Li
CONTACT
Patients with small solid tumors without positive lymph nodes have the highest survival rate. However, especially for patients with benign tumors (most common in younger women) and older patients (>65 years old) who fit these criteria, an alternative treatment technique that is less invasive than the current surgical or invasive ablative intervention may be more beneficial. FUS is a noninvasive, non-ionizing treatment procedure that precisely focuses and delivers a large amount of ultrasound energy to the target area, causing localized temperature rise and cell necrosis at the target. The main advantage of focused ultrasound ablation (FUS) is that it avoids surgery. Without surgery, recovery from the procedure is much faster, patients may experience less pain, and cosmetological results may be improved.
The efficacy and safety of FUS rely heavily on treatment monitoring. Treatment imaging techniques currently used include MRI and ultrasound Bmode imaging. Magnetic resonance imaging (MRI) thermometry is used to detect the temperature rise across the FUS treatment area. However, MRI guidance can be expensive and time-consuming compared to ultrasound-based HIFU guidance methods. Conventional B-mode based 'hyperecho' tracking can be challenging for HIFU monitoring, as it is sensitive to cavitation, which occurs at high temperatures.
HMI is an ultrasound elasticity method that can provide measurements of the locally generated mechanical response and inherent mechanical properties of tissues . The result is a new image that contains unique localized information on the relative stiffness in and around the tumor. The investigators have shown in pre-clinical data that HMI has the ability to monitor mechanical changes in tissue that occur with ablation. The combination of FUS with HMI monitoring is termed HMI guided FUS, or HMIgFUS.
This study aims to evaluate the HMI technique for monitoring FUS ablation in a clinical setting. Eligible and consenting patients will be imaged using HMI, and then will undergo HMIgFUS at a central position inside the tumor. The tumor will be imaged using HMI again following ablation. Following our study, the patients will undergo their scheduled surgery. The purpose of this study is to evaluate HMIgFUS in a lower risk setting, as the tumor will be excised following our study, to better inform future studies, in which surgery may not be needed.
Healthy volunteers accepted: No
Only the study team can determine whether someone qualifies for participation.
Inclusion criteria
Exclusion criteria
Harmonic motion imaging guided focused ultrasound (HMIgFUS) is a combined treatment and imaging method, in which focused ultrasound (FUS) is used to thermally ablate tissue and harmonic motion imaging (HMI) is used for FUS guidance and monitoring. FUS applies high intensity focused ultrasound waves at its specified target to heat the tissue over a specified duration, causing cell death at the target area. HMI is an elasticity imaging technique which induces dynamic tissue vibrations at the target for tissue elasticity characterization.
One of the inclusion criteria for this study is that participants must be scheduled for surgical excision of their breast tumor. In this study, HMIgFUS will be applied to anesthetized participants immediately prior to their scheduled surgery. HMI imaging will also be performed immediately prior to and after HMIgFUS application.
Time frame: From the date of ablation and imaging to the date of pathological results (approximately 1 week)
To identify markers of ablation progression using HMIgFUS images, thereby predicting whether ablation occurred or not. The investigators will also use differences in HMI imaging performed before and after ablation to assess the presence of ablation. The results from both of these methods will be validated with pathological findings, to determine whether ablation was achieved.
Time frame: From the date of ablation and imaging to the date of pathological results (approximately 1 week)
The depth of the lesion (in mm away from the surface of the skin) as shown on HMIgFUS images will be compared and validated with pathological findings.
Time frame: From the date of ablation and imaging to the date of pathological results (approximately 1 week)
The width of the lesion (in mm laterally across the lesion) as shown on HMIgFUS images will be compared and validated with pathological findings.
Time frame: From the date of ablation and imaging to the date of pathological results (approximately 1 week)
The area of the lesion (in mm^2) as shown on HMIgFUS images will be compared and validated with pathological findings.
Contact information is provided by the study sponsor or research team.
Elisa Konofagou, PhD
CONTACT
Xiaoyue J Li, MSc
CONTACT
Columbia University
Other
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View the official ClinicalTrials.gov record (opens in a new tab)This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.
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