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The protein acetyltransferase ARD1: a novel cancer drug target?
Thomas Arnesen1, Paul R Thompson, Jan Erik Varhaug
1Department of Molecular Biology, University of Bergen, N-5020 Bergen, Norway. Thomas.Arnesen@mbi.uib.no
Abstract:
Evasion of apoptosis and active cell proliferation are among the characteristics of cancer cells. Triggering the induction of apoptosis or reducing the proliferative rate will potentially be helpful for cancer treatment. Recently, several reports demonstrated that knockdown of the protein acetyltransferase hARD1 significantly reduced the growth rate of human cancer cell lines. Furthermore, hARD1 knockdown induced apoptosis or sensitized cells to drug induced apoptosis. hARD1 acts in complex with the NATH protein and catalyzes cotranslational acetylation of protein N-termini. Thus, it was suggested that the effects on cell proliferation and apoptosis induction are due to a reduced level of N-terminal acetylation of certain substrate proteins. NATH was originally identified as upregulated in thyroid papillary carcinomas and has lately also been found to correlate with aggressiveness and differentiation status of neuroblastic tumours. On the other hand, researchers recently reported that hARD1 acetylates Beta-catenin. Knockdown of hARD1 reduced the transcriptional activity of the Beta-Catenin/TCF4 complex, downregulating cyclin D1 and thereby promoting G1-arrest and inhibition of cell proliferation of lung cancer cells. Although the underlying molecular mechanisms need further clarification, several reports suggest that reduction of hARD1 negatively affects cell growth. Thus, hARD1 or the hARD1-NATH complex stands out as attractive drug targets in cancer treatment. One challenge will be to develop specific inhibitors that discriminate between hARD1 and the many other enzymes, including the histone acetyltransferases, using acetyl-coenzyme A as acetyl donor. This review focuses on the enzymatic and biological activities of hARD1, and potential mechanisms of functional inhibition.
Insights
Reducing the protein acetyltransferase hARD1 inhibits cancer cell growth and proliferation. hARD1 knockdown also induces apoptosis, making it a potential drug target for cancer therapy.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Cancer cells evade apoptosis and proliferate actively, making apoptosis induction or proliferation reduction key treatment strategies.
- The protein acetyltransferase hARD1 (human arylacetamide deacetylase 1) has been implicated in regulating cell growth and apoptosis.
- hARD1 functions in a complex with NATH (N-acyltransferase homolog), catalyzing cotranslational N-terminal acetylation of proteins.
Purpose of the Study:
- To review the enzymatic and biological activities of hARD1.
- To explore potential mechanisms for inhibiting hARD1's function in cancer treatment.
- To highlight hARD1 and the hARD1-NATH complex as potential drug targets.
Main Methods:
- Review of existing scientific literature on hARD1's role in cancer.
- Analysis of studies reporting the effects of hARD1 knockdown on cancer cell lines.
- Examination of proposed molecular mechanisms, including N-terminal acetylation and Beta-catenin regulation.
Main Results:
- Knockdown of hARD1 significantly reduces the growth rate of human cancer cell lines.
- hARD1 knockdown induces apoptosis or sensitizes cells to drug-induced apoptosis.
- hARD1 knockdown reduces Beta-catenin/TCF4 transcriptional activity, downregulating cyclin D1 and inhibiting lung cancer cell proliferation.
Conclusions:
- Reduction of hARD1 negatively affects cancer cell growth and proliferation.
- The hARD1-NATH complex represents an attractive target for cancer drug development.
- Developing specific hARD1 inhibitors presents a challenge due to its homology with other acetyltransferases.
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