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Assays for Validating Histone Acetyltransferase Inhibitors
Published on: August 6, 2020
Selective Inhibitors of Histone Deacetylase 10 (HDAC-10)
Eftiola Pojani1, Daniela Barlocco2
1Department of the Chemical-Toxicological and Pharmacological Evaluation of Drugs, Faculty of Pharmacy, Catholic University "Our Lady of Good Counsel", Tirana, Albania.
Abstract:
Histone acetylation balance is one epigenetic mechanism controlling gene expression associated with disease progression. It has been observed that histone deacetylase 10 (HDAC-10) isozyme contributes to the chemotherapy resistance; in addition, the poor clinical outcome observed in patients with aggressive solid tumors, such as neuroblastoma, has been associated with its overexpression. Moreover, HDAC-10 selective inhibition suppresses the autophagic response, thus providing an improved risk-benefit profile compared to cytotoxic cancer chemotherapy drugs. On these bases, HDAC-10 is becoming an emerging target for drug design. Due to the rapid progress in the development of next-generation HDAC inhibitors, this review article aims to provide an overview on novel selective or dual HDAC-8/10 inhibitors, as new leads for cancer chemotherapy, able to avoid the severe side-effects of several actual approved "pan" HDAC inhibitors. A literature search was conducted in MedLine, PubMed, Caplus, SciFinder Scholar databases from 2015 to the present. Since the disclosure that the HDAC-6 inhibitor Tubastatin A was able to bind HDAC-10 efficiently, several related analogues were synthesized and tested. Both tricyclic (25-30) and bicyclic (31-42) derivatives were considered. The best pharmacological profile was shown by 36 (HDAC-10 pIC50 = 8.4 and pIC50 towards Class I HDACs from 5.2-6.4). In parallel, based on the evidence that high levels of HDAC-8 are a marker of poor prognosis in neuroblastoma treatment, dual HDAC-8/10 inhibitors were designed. The hydroxamic acid TH34 (HDAC-8 and 10 IC50 = 1.9 μM and 7.7 μM, respectively) and the hybrid derivatives 46d, 46e and 46g were the most promising both in terms of potency and selectivity. Literature surveys indicate several structural requirements for inhibitory potency and selectivity towards HDAC-10, e.g., electrostatic and/or hydrogen bond interactions with E274 and complementarity to the P(E,A) CE motif helix.
Insights
Histone deacetylase 10 (HDAC-10) is a target for cancer chemotherapy due to its role in drug resistance. Novel selective or dual HDAC-8/10 inhibitors offer new leads for cancer treatment with improved side-effect profiles.
Area of Science:
- Epigenetics and molecular biology
- Medicinal chemistry and drug discovery
- Oncology
Background:
- Histone acetylation balance is a key epigenetic regulator of gene expression implicated in disease progression.
- Histone deacetylase 10 (HDAC-10) overexpression is linked to chemotherapy resistance and poor outcomes in aggressive solid tumors, notably neuroblastoma.
- Selective HDAC-10 inhibition shows potential for improved therapeutic profiles by suppressing autophagic response.
Purpose of the Study:
- To review novel selective or dual HDAC-8/10 inhibitors as potential next-generation cancer chemotherapy agents.
- To identify new drug leads that avoid the severe side effects associated with current broad-spectrum HDAC inhibitors.
- To explore structural requirements for potent and selective HDAC-10 inhibition.
Main Methods:
- Literature search of MedLine, PubMed, Caplus, and SciFinder Scholar databases (2015-present).
- Analysis of synthesized tricyclic and bicyclic HDAC inhibitor analogues based on Tubastatin A.
- Evaluation of dual HDAC-8/10 inhibitors, including hydroxamic acid TH34 and hybrid derivatives.
Main Results:
- Compound 36 demonstrated a strong pharmacological profile with high potency against HDAC-10 (pIC50 = 8.4) and selectivity over Class I HDACs.
- Dual inhibitors TH34, 46d, 46e, and 46g showed promising potency and selectivity for HDAC-8 and HDAC-10.
- Key structural interactions for HDAC-10 inhibition include electrostatic and hydrogen bond interactions with E274 and complementarity to the P(E,A) CE motif helix.
Conclusions:
- HDAC-10 is a promising therapeutic target for cancer chemotherapy, particularly in overcoming drug resistance.
- Selective or dual HDAC-8/10 inhibitors represent a new class of anticancer agents with potential for reduced toxicity.
- Understanding structural requirements is crucial for designing effective and selective HDAC inhibitors for neuroblastoma and other aggressive solid tumors.
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