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Consequences of Zmat3 loss in c-MYC- and mutant KRAS-driven tumorigenesis
Sarah A Best1,2, Cassandra J Vandenberg1,2, Etna Abad3
1The Walter and Eliza Hall Institute of Medical Research, 1G Royal Parade, Parkville, Melbourne, VIC, 3052, Australia.
Abstract:
TP53 is a critical tumor suppressor that is mutated in approximately 50% of human cancers. Unveiling the downstream target genes of TP53 that fulfill its tumor suppressor function is an area of intense investigation. Zmat3 (also known as Wig-1 or PAG608) is one such downstream target of p53, whose loss in hemopoietic stem cells lacking the apoptosis and cell cycle regulators, Puma and p21, respectively, promotes the development of leukemia. The function of Zmat3 in tumorigenesis however remains unclear. Here, to investigate which oncogenic drivers co-operate with Zmat3 loss to promote neoplastic transformation, we utilized Zmat3 knockout mice in models of c-MYC-driven lymphomagenesis and KrasG12D-driven lung adenocarcinoma development. Interestingly, unlike loss of p53, Zmat3 germline loss had little impact on the rate of tumor development or severity of malignant disease upon either the c-MYC or KrasG12D oncogenic activation. Furthermore, loss of Zmat3 failed to rescue KrasG12D primary lung tumor cells from oncogene-induced senescence. Taken together, we conclude that in the context of c-MYC-driven lymphomagenesis or mutant KrasG12D-driven lung adenocarcinoma development, additional co-occurring mutations are required to resolve Zmat3 tumor suppressive activity.
Insights
The tumor suppressor Zmat3
Area of Science:
- Oncology
- Cancer Biology
- Tumor Suppression
Background:
- TP53 is a key tumor suppressor gene mutated in ~50% of human cancers.
- Zmat3 is a downstream target of p53, implicated in preventing leukemia when functional.
- The precise role of Zmat3 in tumorigenesis is not fully understood.
Purpose of the Study:
- To investigate how Zmat3 loss cooperates with oncogenic drivers in cancer development.
- To determine the role of Zmat3 in c-MYC-driven lymphomagenesis and KrasG12D-driven lung adenocarcinoma.
Main Methods:
- Utilized Zmat3 knockout mice.
- Employed models of c-MYC-driven lymphomagenesis.
- Studied KrasG12D-driven lung adenocarcinoma development.
Main Results:
- Germline Zmat3 loss showed minimal impact on tumor development rates or severity in c-MYC or KrasG12D models.
- Loss of Zmat3 did not prevent KrasG12D lung tumor cells from undergoing oncogene-induced senescence.
- Zmat3's tumor suppressive activity appears to require additional cooperating mutations.
Conclusions:
- Zmat3 loss alone is insufficient to drive neoplastic transformation in these specific cancer models.
- Additional genetic alterations are necessary to overcome Zmat3's tumor suppressive functions in c-MYC-driven lymphoma and KrasG12D-driven lung adenocarcinoma.
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