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Published on: February 2, 2024
Genetic reprogramming of tumor cells by zinc finger transcription factors
Pilar Blancafort1, Emily I Chen, Beatriz Gonzalez
1Department of Molecular Biology and The Skaggs Institute for Chemical Biology, La Jolla, CA 92037, USA.
Abstract:
Cancer arises by the accumulation of genetic alterations in DNA leading to aberrant gene transcription. Expression-profiling studies have correlated genomewide expression signatures with malignancy. However, functional analysis elucidating the contribution and synergy of genes in specific cancer cell phenotypes remains a formidable obstacle. Herein, we describe an alternative genetic approach for identification of genes involved in tumor progression by using a library of zinc finger artificial transcription factors (ATFs) and functional screening of tumor cells as a source of genetic plasticity and clonal selection. We isolated a six-zinc finger transcriptional activator (TF 20-VP, TF 20 containing the VP64 activator domain) that acts to reprogram a drug-sensitive, poorly invasive, and nonmetastatic cell line into a cell line with a drug-resistant, highly invasive, and metastatic phenotype. Differential expression profiles of cells expressing TF 20-VP followed by functional studies, both in vitro and in animal models, revealed that invasion and metastasis requires co-regulation of multiple target genes. Significantly, the E48 antigen, associated with poor metastasis-free survival in head and neck cancer, was identified as one specific target of TF 20-VP. We have shown phenotypic modulation of tumor cell behavior by E48 expression, including enhanced cell migration in vitro and tumor cell dissemination in vivo. This study demonstrates the use of ATFs to identify the group of genes that cooperate during tumor progression. By co-regulating multiple targets, ATFs can be used as master genetic switches to reprogram and modulate complex neoplastic phenotypes.
Insights
Artificial transcription factors (ATFs) reprogram cancer cells, revealing genes like E48 that drive tumor invasion and metastasis. This approach identifies master genetic switches for complex cancer phenotypes.
Area of Science:
- Cancer biology
- Molecular genetics
- Epigenetics
Background:
- Cancer progression involves genetic alterations and aberrant gene transcription.
- Genome-wide expression signatures correlate with malignancy.
- Functional analysis of gene synergy in cancer phenotypes remains challenging.
Purpose of the Study:
- To develop an alternative genetic approach for identifying genes involved in tumor progression.
- To utilize artificial transcription factors (ATFs) and functional screening for gene discovery.
- To investigate the role of specific genes in reprogramming cancer cell phenotypes.
Main Methods:
- A library of zinc finger artificial transcription factors (ATFs) was employed.
- Functional screening of tumor cells identified genes involved in genetic plasticity.
- A six-zinc finger transcriptional activator (TF 20-VP) was isolated to reprogram cell lines.
- Differential expression profiling and functional studies (in vitro and animal models) were conducted.
Main Results:
- TF 20-VP reprogrammed drug-sensitive cells into a drug-resistant, highly invasive, and metastatic phenotype.
- Invasion and metastasis require co-regulation of multiple target genes.
- The E48 antigen was identified as a specific target of TF 20-VP, linked to poor survival in head and neck cancer.
- E48 expression enhanced tumor cell migration and dissemination.
Conclusions:
- ATFs can identify cooperating gene groups essential for tumor progression.
- ATFs act as master genetic switches to reprogram complex neoplastic phenotypes.
- Targeting co-regulated genes offers a novel strategy for modulating cancer behavior.
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