A transcriptional feedback loop for tissue-specific expression of highly cytotoxic genes which incorporates an

L Emiliusen1, M Gough, A Bateman

  • 1Molecular Medicine Program, Guggenheim 18, Mayo Clinic, Rochester, MN 55905, USA.

Gene Therapy
|July 5, 2001
PubMed

Insights

Researchers developed a transcriptional feedback loop to precisely control cytotoxic gene expression in melanoma cells, enhancing anti-tumor effects without leakage into healthy tissues.

Area of Science:

  • Molecular Biology
  • Gene Therapy
  • Cancer Research

Background:

  • Tissue-specific promoters are crucial for controlling gene expression in targeted therapies but often suffer from low activity or unintended "leakiness."
  • This leakiness is exacerbated by potent cytotoxic genes, posing a significant challenge for safe and effective gene transfer therapies.

Purpose of the Study:

  • To engineer a transcriptional feedback loop for precise control of potent gene expression in melanoma cells.
  • To overcome the limitations of weak and leaky tissue-specific promoters in gene therapy applications.

Main Methods:

  • Screened human tyrosinase promoter elements to identify a melanoma-specific, non-leaky element (Tyr-300).
  • Constructed a transcriptional amplification feedback loop using the Tyr-300 element, a consensus heat shock element (HSE), and a mutated heat shock factor-1 (HSF-1).
  • Integrated the feedback loop into a retroviral vector for in vivo application.

Main Results:

  • The Tyr-300 element showed high specificity for melanoma cells with no detectable expression in non-melanoma cells.
  • The feedback loop successfully amplified gene expression in melanoma cells to therapeutic levels, comparable to a CMV promoter.
  • No promoter leakiness was observed in various non-melanoma cell lines, ensuring safety.
  • The system also activated endogenous stress-related genes, creating an immunostimulatory environment that enhances anti-tumor effects.

Conclusions:

  • The developed transcriptional feedback loop effectively restricts potent gene expression to target melanoma cells, overcoming promoter limitations.
  • This system offers a robust strategy for enhancing the safety and efficacy of gene transfer therapies.
  • The approach is adaptable for other tissue types where specific promoter elements can be identified.

Related Concept Videos

Transcription Factors02:16

Transcription Factors

Tissue-specific transcription factors contribute to diverse cellular functions in mammals. For example, the gene for beta globin, a major component of hemoglobin, is present in all cells of the body. However, it is only expressed in red blood cells because the transcription factors that can bind to the promoter sequences of the beta globin gene are only expressed in these cells. Tissue-specific transcription factors also ensure that mutations in these factors may impair only the function of...
NF-κB-dependent Signaling Pathway02:26

NF-κB-dependent Signaling Pathway

The transcription factor NF-κB was discovered in 1986 in the lab of Nobel laureate Professor David Baltimore, for its interaction with the immunoglobulin light chain enhancer in B-cells. After more than three decades of study, it is now evident that NF-κB regulates the expression of over 100 genes. Most of these genes play an essential role in the innate and adaptive immune responses as well as the inflammatory responses of animals.
NF-κB-dependent Signaling Mechanism
The heterodimer of NF-κB...
General Transcription Factors01:30

General Transcription Factors

Tissue-specific transcription factors contribute to diverse cellular functions in mammals. For example, the gene for beta globin, a major component of hemoglobin, is present in all cells of the body. However, it is only expressed in red blood cells because the transcription factors that can bind to the promoter sequences of the beta globin gene are only expressed in these cells. Tissue-specific transcription factors also ensure that mutations in these factors may impair only the function of...
The JAK-STAT Signaling Pathway01:20

The JAK-STAT Signaling Pathway

Several cytokine receptors have tightly bound Janus kinase or JAK proteins attached at their cytosolic tail. Small signaling molecules such as cytokines, growth hormones, or prolactins bind to the cytokine receptors and initiate their dimerization. The dimerization brings the cytosolic JAKs together that trans-phosphorylate and activates each other. The activated JAKs now phosphorylate cytosolic tails of the cytokine receptors, which serve as binding sites for adaptor proteins such as  SH2...
TGF - β Signaling Pathway01:16

TGF - β Signaling Pathway

The TGF-β signaling pathway regulates cell growth, differentiation, adhesion, motility, and development. TGF-β ligands that induce TGF-β signaling are synthesized in their latent form. Several proteases or cell surface receptors such as integrins act upon the latent form, releasing the active ligand. There are three types of mammalian TGF-βs: (TGF-β1, TGF-β2, and TGF-β3) that bind as homodimers or heterodimers to TGF-β receptors. The TGF-β receptors are of three kinds RI, RII, and RIII. The RI...
Cytotoxic T Cells-mediated Immune Response01:27

Cytotoxic T Cells-mediated Immune Response

Cytotoxic T cells are a vital component of the immune system. They have the remarkable ability to identify and target antigens on infected or abnormal cells. These antigens often originate from intracellular pathogens such as viruses or abnormal proteins cancer cells produce.
Immunological surveillance is the ability of immune cells to monitor and eliminate infected cells with intracellular pathogens, neoplastically transformed cells, and cells with non-self antigens. Cytotoxic T cells and NK...