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NCT Number: NCT07139990

Personalized Radiotherapy for Individualized Treatment Strategies and Monitoring (PRISM)

To characterize feasibility, safety, and/or preliminary efficacy of personalized strategies to adapt standard radiotherapy treatments to individual patient responses.

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Key information

Age range

18 year and older

Sex eligibility

All sexes

Study type

Interventional

Phase

Phase 1

Primary location

About this study

Cohort-Specific Rationale

COHORT A (ES-SCLC Personalized ultrahypofractionated stereotactic ablative radiotherapy (PULSAR) Thoracic Tumor):

Chemoimmunotherapy with 4-6 cycles of platinum/etoposide and PD-L1 (Programmed Death-Ligand 1 protein) inhibition has become the standard systemic therapy for extensive stage small cell lung cancer (ES-SCLC), based on modest but significant OS (overall survival) benefits seen with the addition of either atezolizumab or durvalumab to chemotherapy in the IMpower133 and CASPIAN trials, respectively. However, outcomes remain poor with median OS of only 12.3 months. Notably, consolidative thoracic RT (radiotherapy) was not allowed either trial. This contrasts with prior signal for potential benefit for addition of thoracic RT to standard chemotherapy in ES-SCLC in the CREST trial, though this was not duplicated the RTOG 0937. Encouraging preliminary safety data has been published for addition of hypofractionated thoracic RT to single agent PD-1 inhibition after response to induction chemotherapy (6% grade 3 toxicity), but toxicities with doublet immune checkpoint blockade (ipilimumab/nivolumab) and RT showed a nearly 20% rate of high grade AEs (adverse events). This has led to an ongoing cooperative study (NRG LU007) seeking to define the impact of consolidative thoracic RT given with atezolizumab following induction chemotherapy. In the interim, while use of thoracic RT consolidation in ES-SCLC remains supported as a standard of care by guidelines, its implementation is variable. Particularly important open question involve timing for synergy/additivity with immune checkpoint blockade and cytotoxic therapy, minimization of target size for safety, and tailoring of dose according to patient need given significant competing risks for extra-thoracic progression and tolerance. In seeking to address this, this study notes that small cell lung cancer generally shrinks rapidly with each cycle of chemoimmunotherapy. Delivering a "pulse" of RT to the thoracic disease immediately prior to cycles 2-6 of chemoimmunotherapy may result in faster tumor response and reduction of overall treatment target size. Moreover, prolongation of time between doses enables observation of response, which would allow investigators to withhold further RT dose in those unlikely to benefit due to extra-thoracic progression or exceptional early response of thoracic disease.

COHORT B (Brain metastasis PULSAR):

Brain metastases from solid tumors affect nearly 30% of patients who die of cancer and present an increasing challenge for management as patients live longer with improved systemic therapies. Treatment often includes radiotherapy, increasingly delivered as stereotactic radiosurgery (SRS) to spare normal brain. For larger lesions or those near sensitive areas, fractionated stereotactic radiation therapy (FSRT) delivered in up to 5 treatments is used to reduce swelling and late injury. Prolongation of the duration between fSRT treatments from days to weeks further has enabled adjustments of the treatment target to tumor size changes over treatment, further reducing healthy brain exposure without sacrifice in tumor control (7). UT Southwestern has expanded upon this modified fSRT approach with PULSAR. Based upon observed kinetics of response, the predominant PULSAR approach has been to deliver treatments in two "pulses" given as 3 fractions every other day, 3-4 week break, and then 2 final fractions every other day. In the initial experience (n=109 treated lesions), PULSAR demonstrated favorable efficacy and tolerability in treating brain metastases (2-year 90% local control and <10% grade 3 toxicity), when compared to historical fSRT reports especially for larger >=2cm lesions. PULSAR for brain metastases thus shows high potential to address larger tumors and to individualize RT dose/intensity, especially in the setting of increasing numbers of central nervous system (CNS)-active systemic agents.

In particular, with longer patient survivals, there remains a critical need to reduce the risk of toxicity and edema by de-escalating dose in addition to target size. The best 'biomarker' for such de-escalation appears to be early radiographic response, with published work strongly correlating a >=20% lesion volume reduction by 3-months to improved local control. Notably, such reductions are commonly seen in time for decision making in the PULSAR approach, with the collected data previously showing a median 38% reduction in larger tumors (>=2cm) during treatment. Specifically, ~50% of patients achieve a 25% reduction by pulse 2. In this cohort, the study will assess whether a more conservative >=25% tumor volume at interim imaging of PULSAR can be used to omit the second "pulse" for "responders," while retaining high control rates.

COHORT C (Pre-op Sarcoma PULSAR):

Pre-operative radiotherapy is an integral component of treatment for large (>5cm), high grade, extremity and trunk soft tissue sarcomas. Recent developments in this disease include the use of preoperative stereotactic body radiotherapy (SBRT) and the addition of concurrent immunotherapy (IO) to standard long course RT. The SARC032 trial demonstrated that pembrolizumab together with preoperative conventionally fractionated RT improved disease-free survival (DFS) in patients with STS. There was a statistically significant improvement in disease-free survival, with a hazard ratio of 0.61 (90% CI 0.39-0.96), and a 2-year disease-free survival rate of 67% versus 52% in the control group. This is the first trial in decades to improve outcomes for patients with STS and has established a new standard of care. With respect to SBRT, multiple single institution phase II clinical trials have evaluated dose and fractionation schemes of 30-40 Gy in 5 fractions with excellent local control but concern for increases in late toxicities, including wound complications and long bone fractures.

In general, SBRT is an attractive approach to the treatment of STS due to its relative "radioresistance" and low alpha-beta ratio. However, its optimization remains a need in regard to reducing complication risk and refining the target size, leading to its use primarily at high-volume sarcoma centers. Notably, though the sarcoma field has moved towards hypofractionated RT, no study has combined SBRT with IO. This is the natural next step in the evolution of the preoperative paradigm and a ripe opportunity to introduce PULSAR for patients with extremity and truncal STS. PULSAR allows for better synergy with IO compared to conventional RT as it doesn't impede the immune response with daily fraction delivery. In addition, PULSAR may improve the late toxicities seen with recent SBRT regimens by allowing for normal tissue repair in between pulses. Lastly, by delivering this treatment in a spaced-out fashion, real time information regarding tumor response can be obtained via multi-parametric MRI (mpMRI) prior to each pulse, and final tumor imaging responses can be further validated by pathologic assessment of the resected specimen.

COHORT D (Resectable HNSCC PULSAR/SAbR):

Despite recent technological advances, outcomes for HPV-negative locally advanced head and neck squamous cell carcinoma (HNSCC) remain suboptimal, with high rates of recurrence and significant treatment-related morbidity. Neoadjuvant immunotherapy represents a promising strategy to improve oncologic and functional outcomes by addressing micrometastatic disease earlier, increasing pathologic response rates, and potentially de-escalating subsequent treatment. KEYNOTE-689 recently demonstrated that perioperative immunotherapy improves event-free survival in resectable HNSCC, underscoring a potential role for neoadjuvant therapy. However, more than 10% of patients treated with neoadjuvant immunotherapy did not receive curative-intent surgery, and of those who went to resection, fewer than 10% had a major pathologic response.

Building on this foundation, integration of novel radiotherapy paradigms with immunotherapy may further increase response and ultimately long-term outcomes. There have already been several phase I trials combining neoadjuvant stereotactic ablative radiotherapy (SAbR) with immunotherapy, which have shown the paradigm's safety and feasibility along with a major pathologic response rate around 75%. In this context, PULSAR is a tantalizing concept as it allows time for repair of normal tissue and tumor response, enabling adaptation of radiation plans to ongoing anatomic and biologic changes in the tumor. In this study, we will assess the feasibility of neoadjuvant adaptive radiotherapy (either PULSAR or standard SAbR) paired with immunotherapy.

Who can participate

Healthy volunteers accepted: No

Only the study team can determine whether someone qualifies for participation.

Inclusion criteria

Cohort A:

  • >=18 years old
  • Performance status ECOG 0-2
  • Extensive stage small cell lung cancer diagnosed by tissue biopsy within 180 days of registration.
  • Patient must be planned for or receiving standard of care chemoimmunotherapy.
  • Patient must have received no more than 3 cycles by time of study enrollment.
  • Able and indicated according to investigator to receive thoracic radiotherapy

Cohort B:

  • 18 years old
  • Diagnosis of solid tumor malignancy with MRI-defined brain metastasis lesions within 60 days of registration
  • Each brain metastasis lesion enrolled must be 2 - 5 cm, except brainstem lesions which may be 1.5 - 5cm in size.

Cohort C:

  • >=18 years old
  • Performance status ECOG 0-2
  • Histologically confirmed surgically resectable, high grade (FNCLCC grade 2 or 3), localized soft tissue sarcoma of the trunk or extremities that measures >5 cm in any direction as assessed by imaging
  • Eligible to receive immunotherapy

Cohort D:

  • >=18 years old
  • Performance status ECOG 0-2
  • Pathologically proven diagnosis of squamous cell carcinoma of the oral cavity, oropharynx, larynx, or hypopharynx
  • Clinical stage III/IVA (AJCC 8th edition)
  • Disease must be deemed resectable by head and neck surgeon
  • Eligible to receive immunotherapy

Exclusion criteria

Cohort A:

⨀ Prior thoracic Radiotherapy

Cohort B:

  • Prior whole brain Radiotherapy
  • Prior surgical resection or focal radiotherapy of a target brain metastasis
  • Leptomeningeal disease

Cohort C:

  • Unresectable or metastatic (nodal or distant) disease
  • Synchronous malignancy requiring chemotherapy or other intensive treatment
  • Locally recurrent soft tissue sarcoma
  • Prior immunotherapy
  • Pregnancy or breastfeeding

Cohort D:

  • Distant metastasis
  • Inability to undergo PET-CT for baseline staging
  • HPV-positive or p16-positive oropharyngeal cancer
  • Prior systemic chemotherapy for the study cancer; prior chemotherapy for a remote cancer is allowable
  • Prior immunotherapy for the study cancer or for a remote cancer
  • Prior head and neck radiotherapy

Treatment and study plan

Cohort A: Extensive Stage Small Cell Lung Cancer (ES-SCLC) Thoracic Tumor PULSAR (Personalized ultrahypofractionated stereotactic ablative radiotherapy)

Radiation

Radiographic response-adapted thoracic tumor radiotherapy given as single doses ('pulses') before standard of care chemoimmunotherapy cycles. Adaptive Changes Allowed: Tumor target (size/shape), # of doses (reduction) Adaptive Changes Allowed: Tumor target (size/shape), # of doses (reduction)

Cohort B: Brain metastasis PULSAR (Personalized ultrahypofractionated stereotactic ablative radiotherapy)

Radiation

Fractionated stereotactic radiosurgery (SRS, 5 doses total) for brain metastasis given in two "pulses" (3 fractions + 2 fractions) with second pulse adapted to interim radiographic response Adaptive Changes Allowed: Omission of 2nd "pulse" in >=25% responders or tumor target size/shape change in remainder

Cohort C: Sarcoma Pre-Operative PULSAR

Radiation

Pre-operative PULSAR with immunotherapy for localized soft tissue sarcoma Adaptive Changes Allowed: Tumor target (size/shape)

Cohort D: Resectable Head & Neck Squamous Cell Carcinoma (HNSCC) PULSAR/SAbR

Radiation

Neoadjuvant immunotherapy & radiation given as either PULSAR (3 "pulses") or SAbR (3 fractions) prior to resection for HNSCC Adaptive Changes Allowed: Tumor and nodal target (size/shape)

Primary outcomes

  1. COHORT A-assess safety of addition of PULSAR radiotherapy to thoracic tumor in ES-SCLC alongside chemoimmunotherapy, while making preliminary/exploratory assessments of disease response and dosimetric benefit to PULSAR

    Time frame: 5 years

    Primary objective will be to report safety of PULSAR with chemoimmunotherapy for extensive stage small cell lung cancer. Accrual goal will be 15 patients.Study is interested in precise estimates of safety as well as outcome variability that will aid in the planning of larger, sufficiently powered efficacy trial. Sample size of 15 patients will allow for relative precision in conclusions regarding safety outcome.Namely,if 4 out of 15 patients enrolled are observed as having grade 3+ cardiopulmonary acute toxicity,the 95% CI for that rate would be (7.95%-55.10%) using an Exact (Clopper-Pearson) binomial confidence interval.

    Descriptive statistics according to variable type (continuous, categorical) will be used for reporting the cohort characteristics. Primary endpoint of pre-defined high grade toxicities will be reported as a categorical percentage.Disease control(time to event variables) will be reported by Kaplan-Meier estimates.

  2. COHORT B-assesses ability to de-escalate dose in good responders by imaging using rule-based imaging-response guided omission of 2nd "pulse" of PULSAR fractionated SRS (fSRS) for brain metastases

    Time frame: 5 years

    Sample size comparing local control & toxicity with prior PULSAR data(which didn't dose de-escalate based on response)to ensure high control rate is preserved.Using two-tailed test with alpha of 0.05 & power of 0.8,estimated sample size to detect difference in 1-yr local failure rates between pSRT & fSRT.Stats according to variable type(continuous,categorical)used for reporting primary endpoint of proportion of patients de-escalated & endpoints.To evaluate local control & toxicity(late CNS),competing risk regression & calculated cumulative incidence,with death as competing risk will be performed.Gray's test will be used to assess statistical significance.OS analyzed using Kaplan-Meier method using survival,log-rank test employed to compare survival distributions.To account for clustered data,where patients may have multiple brain metastases treated,repeated analyses for CRR using crrSC(R package)will be performed.

  3. COHORT C- assess the rate of MWC in a novel approach of immunotherapy with concurrent PULSAR.

    Time frame: 5 years

    Descriptive analyses will summarize the number and proportion of patients with MWCs, exact 95% confidence intervals, timing of MWCs relative to surgery, severity, management required, attribution to treatment, and whether each event occurred within the irradiated field. Given the small sample size and feasibility-oriented objective, analyses will be primarily descriptive rather than powered for formal hypothesis testing. Exploratory outcomes, including progression-free survival, pathologic response, immune correlates, and other clinical endpoints, will be summarized descriptively to inform future study design.

  4. COHORT D-assess the proportion of patients who proceed to curative intent resection following neoadjuvant therapy.

    Time frame: 5 years

    The primary endpoint is feasibility of the neoadjuvant radiotherapy and immunotherapy paradigm, defined as the proportion of patients who proceed to curative-intent surgical resection. Feasibility will be evaluated separately for each treatment arm, with particular focus on the PULSAR-IO arm. For each arm, the observed proportion proceeding to surgery will be summarized along with Exact (Clopper-Pearson) binomial confidence intervals. Feasibility will be declared if at least 90% of patients in the treatment arm proceed to curative-intent surgery. No formal hypothesis testing or between-arm comparisons are planned for the primary feasibility endpoint.

Study contacts

Contact information is provided by the study sponsor or research team.

NEIL DESAI, MD, MHS

CONTACT

[email protected]

214 648 1836

SARAH NEUFELD

CONTACT

[email protected]

214 648 1836

Sponsors and collaborators

Lead sponsor

University of Texas Southwestern Medical Center

Other

Registry information

Official study title

Personalized Radiotherapy for Individualized Treatment Strategies and Monitoring (PRISM): A Multi-cohort Platform Trial of Adaptive Radiotherapy Approaches in Multiple Cancer Types

Acronym: PRISM

Important dates

Study start
2025
Primary completion
2030
Study completion
2032
First posted
Aug 24, 2025
Registry last updated
Aug 17, 2026

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

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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