This study is a randomized trial of hypofractionation (short-course) radiation therapy versus conventional radiation therapy in women who have undergone mastectomy and immediate breast reconstruction. The investigators will assess cosmetic and reconstruction outcomes, lymphedema, cancer status, side effects, and oncologic outcomes.
Over 180,000 diagnoses of invasive breast cancer are made in the US each year. Over one-third of women with early stage and over half with late-stage breast cancer are treated with mastectomy (removal of the entire breast) due to tumor size, multiple cancers within the breast, genetic cancer predisposition, and/or patient preference. Following treatment with mastectomy, women who receive breast reconstructive surgery may experience better quality of life as they do not have to leave surgery with a bare chest wall. However, large randomized trials of post-mastectomy radiation therapy reveal a survival benefit with the addition of radiation after mastectomy in women who have cancer present in the axillary lymph nodes (6). The delivery of radiation therapy in the presence of a breast reconstruction is challenging and often leads to undesirable consequences including reconstruction loss, need for major surgical revision, or poor cosmetic outcomes. Therefore, oncologists and patients are forced to decide between the potential for improved oncologic outcomes with radiation therapy versus increased likelihood of complications and suboptimal cosmetic results. Because of this, some patients may be foregoing reconstruction if radiation therapy after mastectomy is needed; or foregoing radiation therapy if they have had breast reconstructive surgery (28). Hypofractionation enhances patient convenience and decreases treatment burden. This regimen has been shown in randomized trials largely in the breast-conservation setting to reduce acute radiation therapy side-effects, decrease fatigue at six months and improve cosmetic results (21, 22). Despite these results, adoption of hypofractionation has been slow among women with breast cancer treated with breast-conserving surgery (24, 25) likely due to familiarity and experience of conventional long-course radiation therapy. While hypofractionation is used commonly in the UK for patients with mastectomy, there are no randomized studies particularly studying outcomes following shorter course radiation therapy in women who undergo mastectomy with breast reconstruction. Therefore, there is an even greater barrier to the use of hypofractionation in this setting in the US. With improved cosmetic results found with hypofractionation, this shorter regimen may have the potential to improve reconstruction success rates which are unfortunately modest overall, for patients who require post-mastectomy radiation. Especially in contrast to financial disincentives to reduce number of radiation treatments, Level I randomized evidence is needed in this population to change practice patterns regarding radiation regimen. Our study of radiation fractionation regimens has the potential to increase use of hypofractionation among women treated with mastectomy, thereby decreasing treatment burden. Our team of patient stakeholders ensures that our outcomes measures encompass all domains of survivorship after breast cancer (physical and mental health as well as satisfaction with the decision-making process). Despite the large numbers of breast cancer survivors who undergo mastectomy, reconstruction and radiation therapy, little is known about which domains of quality of life are affected and their importance to these patients. This study uses previously validated tools for measuring patient outcomes, and have added questions for areas which are important to patients that may not have been captured adequately by previous tools. In concert with the increasing awareness of the importance of survivorship care to cancer care, identifying a comprehensive set of outcomes measurement tools following treatment with radiation therapy, mastectomy, and reconstruction is an important asset for future treatment evaluation in these women.
Study Type
INTERVENTIONAL
Allocation
RANDOMIZED
Purpose
OTHER
Masking
NONE
Enrollment
400
For the conventional fractionation arm: Each fraction will consist of 200 cGy per day. Total dose = 5000 cGy to the chest wall and 4600-5000 cGy to the lymph nodes. For the hypofractionation arm: Each fraction consists of 266 cGy per day. Total dose = 4256 cGy to the chest wall and 3990 cGy to the lymph nodes.
University of California, San Francisco
San Francisco, California, United States
Stanford University Medical Center
Stanford, California, United States
Patient Reported Outcomes Using the FACT-B
The primary outcome is the change at 6 months from baseline in patient-reported outcomes on the Physical Well Being (PWB) sub-domain of the Functional Assessment of Cancer Therapy-Breast (FACT-B) instrument. The FACT-B is a 37-item instrument designed to measure five domains of health-related quality of life in breast cancer patients. The higher the score, the better the quality of life. Score ranges: * The score range for the FACT-B total score is 0-148. * The score range for the PWB, social/family well-being (SWB), and functional well-being (FWB) subscales is 0-28. * The score range for the emotional well-being (EWB) subscale is 0-24. * The score range for the breast cancer subscale (BCS) is 0-40.
Time frame: 6 months
Oncologic and Clinical Outcomes Assessed Using Medical Record Abstractions.
Clinical and oncologic outcomes (rare radiation side effects, recurrence, infections, additional surgeries) will be assessed over a period of 10 years through annual medical record abstractions.
Time frame: 10 years
Cosmetic Outcomes Assessed Using Photographic Evaluations.
Cosmetic outcomes (quality of reconstructive surgery throughout and after radiation therapy) will be assessed from baseline to 18 months by trained physicians using a standardized rating scale.
Time frame: 18 months
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