OncologyDr. Garima SinghRadiation Oncology

Principal Consultant, Radiation Oncology, BLK-Max Super Speciality Hospital, New Delhi

Part 6 of 10 in Radiation Oncology - Advances & Latest Trends

Cardiac Sparing and Motion Management in Radiotherapy

August 28, 2026

Two very different tumor sites share the same underlying planning problem: the target does not hold still, and neither does the healthy tissue next to it. Dr. Garima Singh, Principal Consultant in Radiation Oncology at BLK-Max Super Speciality Hospital, addressed both in her masterclass on radiation oncology's technological advances, using left-sided breast cancer and early-stage lung cancer as the two clearest examples.

Left-Sided Breast Cancer and the Heart

In left-sided breast cancer, the heart sits close to the chest wall, and the clinical objective is to keep the mean heart dose below 5 Gy. In thin patients especially, achieving that target through the chest wall's coverage alone can be difficult, which is where the deep inspiration breath-hold (DIBH) technique comes in. During deep inspiration, the heart moves toward the center of the mediastinum and away from the chest wall, physically increasing the distance between the heart and the radiation field. Holding that breath during treatment delivery meaningfully reduces cardiac dose and, with it, long-term cardiac toxicity. This is used alongside conformal planning approaches such as helical tomotherapy, which, as covered elsewhere in this series, can achieve strong chest wall coverage while sparing the heart even before breath-hold is factored in.

Lung Tumors and Respiratory Motion

Lung tumors present the same problem from a different angle: the target itself moves, in sync with the breathing cycle, rather than sitting still while a fixed dose is delivered around it. This matters most in SBRT for small, early-stage lung lesions, frequently used in patients who are not surgical candidates, and in SBRT for lung metastases from other primary sites. If respiratory motion is not accounted for, a treatment beam calibrated to a static target can miss the tumor as it shifts with each breath. The solution is motion management: respiratory gating, which synchronizes beam delivery with a specific phase of the breathing cycle, or tumor tracking, which follows the target's movement in real time and adjusts delivery accordingly. Both techniques exist to solve the same problem as DIBH in breast cancer: making sure the dose intended for the tumor actually lands on the tumor, and nowhere else.

Real-Time Imaging as the Common Thread

The MRI-guided linear accelerator, discussed in more detail elsewhere in this series, extends this same logic further by embedding dynamic MRI imaging directly into the treatment suite, allowing clinicians to assess patient and tumor movement continuously and adapt the plan in near real time. Across breast, lung and other moving targets, the throughline in modern radiotherapy planning is the same: precision at the level of the treatment plan is only as good as the system's ability to track where the anatomy actually is at the moment the beam is on.

This guide is based on a live Jivo Masterclass — Dr. Garima Singh taught doctors across Africa on February 22, 2026.

FROM THE LIVE Q&A

PR

Prof. Dr. Philip Njemanze

Is there a role for radioactive bead implants (brachytherapy) in this therapy?

GS

Dr. Garima Singh

Yes, that is brachytherapy. Historically, cervical cancer brachytherapy used preloaded sources, meaning the source had to be implanted directly. Technology has evolved to after-loading systems: the applicator, such as the Fletcher-Suit system, is placed first, and the radioactive source is then transferred into the tandem remotely through the treatment machine. That shift from preloading to after-loading has improved safety for patients and staff.

See all 8 questions from this masterclass →

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Frequently Asked Questions

What are the current dose constraints for organs at risk in head and neck cancer?

It depends on the treatment area. For oral cavity cancers such as carcinoma of the tongue, the parotid and submandibular glands, buccal mucosa and dysphagia-related structures are the relevant organs at risk. We keep parotid gland mean dose below 26 Gy, and esophagus and trachea mean dose below 45 Gy. Buccal mucosa constraints are not as robustly established in the literature, but our institute's practice is to keep dose there within about 32 to 35 Gy without compromising target coverage, and to keep overall oral cavity dose below 45 Gy. We follow RTOG, QUANTEC, Timmerman, and more recently HyTEC and PENTEC guidelines for these constraints.

What is the role of SBRT in early-stage lung and prostate cancer?

For lung cancer, if the patient is operable, surgery is the treatment of choice. If a patient is medically inoperable due to comorbidity, we give SBRT, whether it is a primary early-stage lung cancer or a lung metastasis from elsewhere, such as breast cancer. Dose depends on tumour location: ultracentral tumours, close to the heart or mediastinum, get a more cautious regimen of around 60 to 70 Gy in 7 to 10 fractions; peripheral tumours can get 50 Gy in 5 fractions, or sometimes 55 Gy in 5 fractions. We follow established SBRT dose-constraint guidelines for all of this.

What are the complications of stereotactic radiotherapy (SRT/SRS), and what is the prognosis?

It depends heavily on where the tumour sits. In fractionated radiosurgery for brain tumours, the incidence of radiation necrosis runs below 10 percent, and brain edema is another recognised complication. Risk rises when the target is near a critical structure such as the motor cortex or brainstem; robust dosing data for the motor cortex are limited, but the working figure for a single SRS session is around 15 Gy to that structure. With fractionated SRT or SRS, clinicians have to be especially vigilant about the proximity of organs at risk during planning. Done with that vigilance, SRS can be delivered safely to metastatic brain lesions with minimal complications, though it demands real expertise and careful dose painting.

What has been your experience treating pediatric cancer patients?

I have treated around ten pediatric patients from Ethiopia specifically, as part of a broader pediatric caseload. Pediatric malignancy needs to be treated very carefully. In medulloblastoma, for example, craniospinal irradiation planning has to be extremely precise to prevent radiation-related toxicity. Because survival in cancers like ependymoma and medulloblastoma is often good, the most important concern becomes preventing secondary malignancy later in life, which means paying close attention to low-dose spillage, or integral dose, across the whole treatment field. For pediatric cases needing long treatment fields, we generally use tomotherapy, and we get very good outcomes.

When is radiotherapy a viable treatment option for a patient, and when is it not?

It depends on the site and the stage. In early-stage head and neck cancer, surgery alone can be sufficient, but high-risk features on post-surgical pathology can still require adjuvant radiotherapy. In locally advanced disease, radiotherapy is generally needed as part of definitive treatment. In stage IV disease, radiotherapy is mostly palliative: relieving pain, bleeding, cord compression or hemoptysis. More than 50 to 60 percent of patients need radiotherapy at some point, whether as radical treatment, adjuvant therapy or palliation, and we rely on a multidisciplinary tumour board to decide the exact timing for each patient.

What is deep inspiration breath-hold and why is it used in left-sided breast cancer?

During deep inspiration, the heart moves toward the center of the mediastinum and away from the chest wall. Holding that breath during treatment delivery increases the distance between the heart and the radiation field, meaningfully reducing cardiac dose and long-term cardiac toxicity.

What is the target mean heart dose in left-sided breast cancer radiotherapy?

The clinical objective is to keep the mean heart dose below 5 Gy, which can be difficult to achieve through chest wall coverage alone in thin patients, making breath-hold technique valuable.

How is respiratory motion managed during lung SBRT?

Two approaches are used: respiratory gating, which synchronizes beam delivery with a specific phase of the breathing cycle, and tumor tracking, which follows the target's movement in real time and adjusts delivery accordingly.

What does the MRI-guided linear accelerator add to motion management?

It embeds dynamic MRI imaging directly into the treatment suite, allowing clinicians to assess patient and tumor movement continuously and adapt the treatment plan in near real time.

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