Summary of “An Overview of Real-World Data Infrastructure for Cancer Research”

Although clinical randomized trials (RCTs) are considered the gold standard for clinical evidence, they are not always feasible for certain medical interventions due to high cost, long timelines, and extended follow-up periods. Under these circumstances, real-world data (RWD) becomes increasingly important, as it can provide evidence that is not captured in randomized controlled trials. The authors analyzed current data sources in England and how to access them, addressing an area that has not been reviewed in detail in previous research.

Real-world data have two main advantages. First, researchers can use existing past data to study how often people get a disease, how easily they can get medical care, and how well treatments work. Second, they can use these data over time in the future to compare different treatments or evaluate whether changes in clinical practice improve patient outcomes.

The authors categorized data sources across England into three main types: Trusted Research Environments (TREs), national data repositories (such as the English Cancer Registry), and international collaborative platforms (such as federated learning systems).

Trusted Research Environments are secure systems that store health data from the UK National Health Service (NHS). Approved researchers can use this data for research, but they cannot download or take it out of the secure system. These systems include different types of health information, such as patient records, medical imaging, and other clinical data.

National data repositories are databases that focus on specific types of data, such as oncology or other disease areas, usually at a national level. These repositories organize and curate data to support research within specific medical fields.

International collaborative platforms are large-scale systems that enable data analysis across multiple countries, often using approaches such as federated learning. These platforms allow researchers to collaborate internationally while maintaining data privacy, and in some cases, they can link or coordinate analyses across different national datasets.

The study also compared local databases and international/national data infrastructures, focusing on how data are collected, categorized into specific groups (e.g., oncology patients), and securely transferred between systems while maintaining patient privacy. Structured categorization improves research efficiency. For example, in the English Cancer Registry, researchers can directly apply for access to cancer-specific datasets rather than searching through general administrative databases.

International databases are particularly useful for large-scale or comparative studies that require diverse datasets across populations. However, the authors note that effective use of these systems requires clearly defined research questions in order to easily find the right data.

Regardless of whether the database is local or national, these infrastructures are rapidly developing and increasingly important for cancer research. However, several challenges remain in building and maintaining them. First, protecting patient privacy is a top priority. Second, data access is often easier for researchers who are closely connected to the data providers, compared to those working remotely or externally. Third, maintaining these databases requires significant financial investment, robust security systems, and skilled personnel to manage and curate the data. Fourth, governance and compliance requirements for access can also pose challenges for some time-sensitive end users.

Reference

Price G, Peek N, Eleftheriou I, et al. An overview of real-world data infrastructure for cancer research. Clin Oncol (R Coll Radiol). 2025;38:103545. doi:10.1016/j.clon.2024.03.011

Summary of “Quality of Decision Making in Radiation Oncology”

Radiation plays an important role in cancer treatment, but deciding when to use radiation, what type to use, and what dose to give requires careful clinical judgment. Many factors can influence a physician’s decision-making. The authors’ research particularly focuses on curative radiation therapy, including dose schedules and newer technologies.

Some radiation therapies have strong clinical trial evidence, but they may not always apply well to real-world patients. This is because patient characteristics are an important factor in radiation treatment outcomes. Different patients have different backgrounds, such as age, sex, frailty, and comorbidities. In addition, patients’ sociodemographic factors are also very important in radiotherapy decision-making. For example, insurance coverage, financial situation, and distance from the treatment center can all influence whether a patient receives radiotherapy or a specific dose schedule.

As for dose and schedule in radiotherapy, the authors mainly reviewed breast cancer and prostate cancer studies, comparing hypofractionation (higher doses over fewer treatment sessions) and standard fractionation (lower doses given once a day over several weeks). The authors reviewed clinical data from multiple countries, including India, Canada, Denmark, China, Australia, and England, and concluded that higher-dose schedules can achieve similar outcomes to standard schedules, while also saving patients time and money and reducing healthcare system resource use.

Finally, the authors reviewed new technologies in radiotherapy, such as intensity-modulated radiotherapy (IMRT), magnetic resonance imaging (MRI)-guided radiotherapy, stereotactic ablative body radiotherapy (SABR), and proton/charged-particle therapy. Older radiation therapy uses CT scans to locate the tumor and delivers high-energy X-rays from a few fixed directions. Although effective, it exposes more nearby healthy tissue to radiation compared with newer techniques. Unlike older radiation therapy, MRI uses live MRI imaging to help target a tumor more accurately while treatment is happening, IMRT uses computer-guided radiation beams from multiple directions to target the tumor more precisely and better protect nearby healthy tissue. SABR uses highly precise imaging and delivers a few high-dose treatments instead of many smaller ones. Proton and charged-particle therapy use tiny, charged particles instead of X-rays. These particles stop more precisely at the tumor, reducing radiation exposure to surrounding healthy tissues.

Understanding different types of radiotherapy, clinical trial evidence on dose schedules, and new technologies can help doctors, patients, and healthcare systems make more appropriate treatment decisions. It can help avoid both over-treatment (therapeutic enthusiasm) and under-treatment (therapeutic nihilism) and improve both survival and quality of life.

Although newer technologies are more precise and better at protecting healthy tissues, the equipment is expensive, and many low-income countries or regions cannot afford them. For patients in those areas, traditional radiotherapy may still be the only available option.

References

Vinod SK, Merie R, Harden S. Quality of decision making in radiation oncology. Clin Oncol (R Coll Radiol). 2025;38:103523. doi:10.1016/j.clon.2024.02.001