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CRISPR/Cas9 Technology in Restoring Dystrophin Expression in iPSC-Derived Muscle Progenitors
Published on: September 14, 2019
The Duchenne muscular dystrophy gene and cancer
Leanne Jones1, Michael Naidoo1, Lee R Machado1,2
1Centre for Physical Activity and Life Sciences, University of Northampton, University Drive, Northampton, NN1 5PH, UK.
Background:
Mutation of the Duchenne muscular dystrophy (DMD) gene causes Duchenne and Becker muscular dystrophy, degenerative neuromuscular disorders that primarily affect voluntary muscles. However, increasing evidence implicates DMD in the development of all major cancer types. DMD is a large gene with 79 exons that codes for the essential muscle protein dystrophin. Alternative promotor usage drives the production of several additional dystrophin protein products with roles that extend beyond skeletal muscle. The importance and function(s) of these gene products outside of muscle are not well understood.
Conclusions:
We highlight a clear role for DMD in the pathogenesis of several cancers, including sarcomas, leukaemia's, lymphomas, nervous system tumours, melanomas and various carcinomas. We note that the normal balance of DMD gene products is often disrupted in cancer. The short dystrophin protein Dp71 is, for example, typically maintained in cancer whilst the full-length Dp427 gene product, a likely tumour suppressor, is frequently inactivated in cancer due to a recurrent loss of 5' exons. Therefore, the ratio of short and long gene products may be important in tumorigenesis. In this review, we summarise the tumours in which DMD is implicated and provide a hypothesis for possible mechanisms of tumorigenesis, although the question of cause or effect may remain. We hope to stimulate further study into the potential role of DMD gene products in cancer and the development of novel therapeutics that target DMD.
Insights
The Duchenne muscular dystrophy (DMD) gene plays a role in various cancers. Disruptions in DMD gene products, like the tumor suppressor Dp427, are implicated in tumorigenesis.
Area of Science:
- Genetics
- Oncology
- Molecular Biology
Background:
- Mutation of the Duchenne muscular dystrophy (DMD) gene causes Duchenne and Becker muscular dystrophy.
- Increasing evidence implicates the DMD gene in the development of major cancer types.
- The DMD gene produces multiple dystrophin protein products with poorly understood extra-muscular functions.
Purpose of the Study:
- To review the role of the DMD gene in cancer pathogenesis.
- To hypothesize potential mechanisms of DMD-related tumorigenesis.
- To stimulate further research into DMD gene products in cancer therapy.
Main Methods:
- Literature review of studies implicating DMD in various cancers.
- Analysis of the balance of DMD gene products in cancerous tissues.
- Hypothesis generation for DMD's role in tumorigenesis.
Main Results:
- The DMD gene is implicated in sarcomas, leukaemias, lymphomas, nervous system tumors, melanomas, and carcinomas.
- The balance of DMD gene products is frequently disrupted in cancer.
- Short dystrophin Dp71 is maintained, while full-length tumor suppressor Dp427 is often inactivated in cancer.
Conclusions:
- A clear role for the DMD gene in the pathogenesis of several cancers is highlighted.
- The ratio of short to long dystrophin gene products may be crucial in tumorigenesis.
- Further study of DMD gene products could lead to novel cancer therapeutics.
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