Back

Concurrent Stereotactic Body Radiation Therapy and KRAS Inhibition Synergistically Improve Pre-clinical Pancreatic Cancer Treatment

Wang, T.; Wang, L.; Xu, J.; Guo, Y.; Xia, L.; Li, Y.; Guan, F.; Gan, B.; Hong, D. S.; Bernard, V.; Jiang, D.; Koong, A. C.

2026-07-13 cancer biology
10.64898/2026.07.10.737883 bioRxiv
Show abstract

Pancreatic ductal adenocarcinoma (PDAC) is one of the most challenging cancers to treat due to the dismal survival rate, poor post-treatment outcome and profound resistance to a wide range of therapies. With mutant KRAS being a key driver, small molecule inhibitors targeting KRAS or pan-RAS (KRASi) have demonstrated exciting preclinical and early clinical anti-tumor efficacy, and the pan-RAS(ON) inhibitor daraxonrasib (RMC-6236) recently achieved Phase 3 clinically meaningful improvements in patient survival compared to chemotherapy. But resistance to RAS/KRAS inhibitor inevitably develops, which limits and compromises the treatment outcome. In this study, we investigated the combination of stereotactic body radiation therapy (SBRT) and KRAS inhibition (MRTX1133 and daraxonrasib) in the treatment of preclinical PDAC models. We found that this combination strategy synergistically suppresses PDAC cell growth in vitro and enhances tumor control while minimizing local recurrence in orthotopically implanted KPC (LSL-KrasG12D/+;Trp53R172H/+;Pdx1-Cre) murine PDAC tumors in vivo. As radiation therapy (RT) induces ferroptosis in multiple cancer types and mutant KRAS promotes various anti-ferroptotic mechanisms, we tested the role of ferroptosis in promoting tumor-control efficacy. Intriguingly, the addition of a ferroptosis inhibitor, liproxstatin-1, to the combination therapy significantly abrogated the in vivo synergism between SBRT and KRAS inhibition, suggesting that treatment-induced ferroptosis at least partially drives the synergistic efficacy of this combination strategy. Our study indicates that this SBRT-KRASi combination has the potential to overcome treatment resistance and improve outcomes in PDAC patients. These data directly support the design of a planned multi-center Phase 2 clinical trial with this combination strategy in locally advanced PDAC.

Matching journals

The top 4 journals account for 50% of the predicted probability mass.

1
Molecular Cancer Therapeutics
40 papers in training set
Top 0.1%
33.8%
2
Cancer Research
130 papers in training set
Top 0.3%
7.8%
3
eLife
5828 papers in training set
Top 25%
4.8%
4
Cancer Letters
35 papers in training set
Top 0.1%
4.3%
50% of probability mass above
5
Nature Communications
5641 papers in training set
Top 31%
4.3%
6
Cancer Research Communications
51 papers in training set
Top 0.2%
4.0%
7
BMC Cancer
67 papers in training set
Top 0.5%
4.0%
8
Journal for ImmunoTherapy of Cancer
75 papers in training set
Top 0.7%
3.2%
9
Clinical Cancer Research
64 papers in training set
Top 0.7%
3.2%
10
Scientific Reports
3612 papers in training set
Top 35%
3.2%
11
International Journal of Radiation Oncology*Biology*Physics
25 papers in training set
Top 0.3%
1.9%
12
JCI Insight
277 papers in training set
Top 4%
1.7%
13
Science Advances
1243 papers in training set
Top 20%
1.7%
14
Molecular Cancer Research
49 papers in training set
Top 0.7%
1.7%
15
Cancer Discovery
66 papers in training set
Top 1%
1.7%
16
Oncogene
85 papers in training set
Top 1%
1.5%
17
Theranostics
37 papers in training set
Top 0.6%
1.3%
18
Gastroenterology
42 papers in training set
Top 0.8%
1.1%
19
Cancer Cell
42 papers in training set
Top 1%
1.1%
20
British Journal of Cancer
49 papers in training set
Top 1%
1.1%
21
Cancers
213 papers in training set
Top 4%
1.0%
22
Proceedings of the National Academy of Sciences
2444 papers in training set
Top 39%
1.0%
23
Cell Reports Medicine
153 papers in training set
Top 5%
0.8%
24
Molecular Therapy Oncology
10 papers in training set
Top 0.3%
0.6%
25
Neuro-Oncology
36 papers in training set
Top 0.7%
0.6%
26
Journal of Clinical Investigation
179 papers in training set
Top 7%
0.6%