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Maximizing the potential of aggressive mouse tumor models in preclinical drug testing
M Tarek Elghetany1,2, Jia-Min Ho3,4, Lois Hew Shi-Qi3,4
1Baylor College of Medicine, Houston, TX, USA.
Abstract:
Atypical teratoid rhabdoid tumor (ATRT) is an aggressive embryonal brain tumor among infants and young children. Two challenges exist for preclinical testing in ATRT. First, genetically quiet, ATRT is a difficult tumor to target molecularly. Tumor cells need to divide to propagate tumor growth-intercepting the common crossroads in cell cycle progression is a feasible strategy. KIF11 is needed for bipolar spindle formation in metaphase. We identified KIF11 as a universal target of all ATRT-molecular-subtypes. Ispinesib, a KIF11-inhibitor, effectively inhibited tumor proliferation in all seven cell lines. A second challenge-a major challenge in preclinical drug testing in-vivo among aggressive tumor models, is the narrow therapeutic window to administer drugs within the limited murine lifespan. Our most aggressive ATRT tumor model was lethal in all mice within ~ 1 month of tumor implantation. Such short-surviving mouse models are difficult to employ for preclinical drug testing due to the narrow time window to administer drugs. To overcome this time restriction, we developed a clinical staging system which allowed physically-fit mice to continue treatment, in contrast to the conventional method of fixed drug-dose-duration regimen in preclinical testing which will not be feasible in such short-surviving mouse models. We validated this approach in a second embryonal brain tumor, medulloblastoma. This is a clinically relevant, cost-efficient approach in preclinical testing for cancer and non-cancer disease phenotypes. Widely used preclinical mouse models are not the most accurate and lack the aggressive tumor spectrum found within a single tumor type. Mice bearing the most aggressive tumor spectrum progress rapidly in the limited murine life-span, resulting in a narrow therapeutic window to administer drugs, and are thus difficult to employ in preclinical testing. Our approach overcomes this challenge. We discovered ispinesib is efficacious against two embryonal brain tumor types.
Insights
Atypical teratoid rhabdoid tumors (ATRT) and medulloblastoma can be targeted by ispinesib, a KIF11 inhibitor. A new staging system improves preclinical drug testing in aggressive pediatric brain tumors.
Area of Science:
- Pediatric neuro-oncology
- Molecular oncology
- Preclinical drug development
Background:
- Atypical teratoid rhabdoid tumor (ATRT) is an aggressive embryonal brain tumor in children.
- Molecularly targeting ATRT is challenging due to its genetically quiet nature.
- Preclinical drug testing in aggressive tumor models is hindered by short murine lifespans and narrow therapeutic windows.
Purpose of the Study:
- To identify a universal molecular target for ATRT across all subtypes.
- To evaluate the efficacy of a KIF11 inhibitor, ispinesib, against ATRT.
- To develop an improved preclinical drug testing methodology for aggressive embryonal brain tumors.
Main Methods:
- Identified KIF11 as a universal target in ATRT by analyzing cell lines.
- Tested ispinesib, a KIF11 inhibitor, for its effect on ATRT cell proliferation.
- Developed and validated a clinical staging system for preclinical drug administration in short-surviving mouse models.
- Validated the staging system in a medulloblastoma model.
Main Results:
- KIF11 was identified as a universal target in all tested ATRT molecular subtypes.
- Ispinesib effectively inhibited tumor cell proliferation in all seven ATRT cell lines.
- The developed clinical staging system enabled effective preclinical drug testing in aggressive tumor models with limited lifespans.
- Ispinesib demonstrated efficacy against both ATRT and medulloblastoma.
Conclusions:
- KIF11 is a viable therapeutic target for ATRT.
- Ispinesib shows efficacy against multiple embryonal brain tumor types.
- The novel clinical staging system enhances the feasibility and relevance of preclinical drug testing for aggressive cancers.
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