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Houghton, P.

Publications and source records attributed to Houghton, P..

2 recordsLinked to original sources

Defining function of wild-type and patient specific TP53 mutations in a zebrafish model of embryonal rhabdomyosarcoma

In embryonal rhabdomyosarcoma (ERMS) and generally in sarcomas, the role of wild-type and loss or gain of function TP53 mutations remains largely undefined. Eliminating mutant or restoring wild-type p53 is challenging; nevertheless, understanding TP53 effects on tumorigenesis remains central to realizing better treatment outcomes. In ERMS, >70% of patients retain wild-type TP53, yet TP53 mutations when present in tumors are associated with poor prognosis. Employing a kRASG12D-driven ERMS tumor model and newly generated tp53 null (tp53-/-) zebrafish, we define both wild-type and patient-specific TP53 mutant effects on tumorigenesis. We demonstrate that tp53 is a major suppressor of tumor initiation, where tp53 loss expands tumors initiation from <35% to >97% of animals. Next, characterizing three patient-specific mutants finds that TP53C176F partially retains wild-type p53 apoptotic activity that can be exploited, while the TP53P153{Delta} and TP53Y220C mutants define two structural mutations that predispose to head musculature ERMS.

cancer biology

Splice-switching of the insulin receptor in rhabdomyosarcoma: Rescuing the IR-B isoform for better treatment options.

Rhabdomyosarcoma (RMS) is an aggressive pediatric tumor with poor prognosis for metastasis and recurrent disease. Large scale sequencing endeavors demonstrate that RMS tumors have limited mutations and a dearth of driver mutations that are precisely targetable. However, IGF2 signaling is known to be grossly altered in RMS. The IGF2 signalling molecule binds both its innate IGF1 receptor as well as the insulin-receptor-variant-A (IR-A) with high affinity. Mitogenic and proliferative signalling via the canonical IGF2 pathway is therefore augmented by IR-A. The insulin receptor (IR) which is a transmembrane tyrosine-kinase receptor exists in two alternatively spliced isoforms, IR-A and IR-B. In this study, we show that RMS patients express increased IR-A compared to control tissues that express predominantly the IR-B isoform. We also found that Hif1a is significantly increased in RMS tumors, portraying their hypoxic phenotype. Furthermore, the alternative-splicing of IR adapts to produce more IR-A in response to hypoxic stress. Upon examining the pre-mRNA structure of the gene, we identified a hypoxia-responsive-element, which is also the binding site for the RNA-binding protein CUG-BP1. We designed Splice-Switching-Oligonucleotides (SSO) against this binding site to decrease the levels of IR-A in RMS cell-lines and consequently rescue the IR-B expression levels. SSO treatment resulted in significant reductions in proliferation, migration and angiogenesis. Our data show promising insight into how impeding the IGF-2 pathway by reducing IR-A expression mitigates tumor growth. Our data reveal that RMS tumors use IR alternative-splicing as yet another survival strategy which can be exploited as therapeutic intervention in conjunction with already established anti-IGF-1 receptor therapies.

cancer biology