Epigenetics


Epigenetics research delves into the molecular mechanisms that control gene expression and cellular traits without altering the underlying DNA sequence. One crucial aspect of this field is the role of small molecules, which act as powerful regulators of epigenetic modifications. These small compounds, typically comprising a few dozen to a few hundred atoms, have emerged as essential tools in understanding and manipulating the epigenome.
- DNA Methylation Inhibitors: Small molecules like 5-azacytidine and 5-aza-2'-deoxycytidine are DNA methyltransferase inhibitors. They block the addition of methyl groups to DNA, leading to DNA demethylation. This can reactivate silenced genes, potentially offering therapeutic avenues for conditions like cancer.
- HDAC inhibitors: HDACs remove acetyl groups from histone proteins, contributing to gene repression. Small molecule HDAC inhibitors, such as Vorinostat and Romidepsin, can reverse this process by increasing histone acetylation, allowing genes to be more accessible for transcription. These inhibitors are being explored for cancer therapy and other conditions.
- Histone Methyltransferase Inhibitors: Small molecules like GSK126 inhibit specific histone methyltransferases, affecting histone methylation patterns. This can alter gene expression, making them promising candidates for cancer and other diseases with epigenetic dysregulation.
- RNA Modulators: Small molecules can also target non-coding RNAs involved in epigenetic regulation. For instance, small molecules called small interfering RNAs (siRNAs) can be designed to target and degrade specific long non-coding RNAs, influencing gene expression.
- Epigenetic Reader Domain Inhibitors: These small molecules target proteins that recognize and bind to specific epigenetic marks. Examples include inhibitors of bromodomain-containing proteins (BET inhibitors), which can disrupt gene regulation by interfering with protein-DNA interactions.
Small molecules in epigenetics research not only provide insights into the fundamental biology of gene regulation but also hold immense promise for developing novel therapeutics. Their ability to selectively modulate specific epigenetic marks and pathways has led to ongoing clinical trials and drug development efforts for various diseases, including cancer, neurological disorders, and inflammatory conditions. Understanding and harnessing the power of these small molecules is at the forefront of modern epigenetics research, offering new hope for precision medicine and targeted therapies.
3 key components involved in the regulation of epigenetic modifications
Epigenetics Writer
Epigenetics writers are enzymes responsible for adding chemical marks or modifications to DNA or histone proteins. These marks include DNA methylation (addition of methyl groups to DNA) and histone modifications (such as acetylation, methylation, phosphorylation, etc.).
Epigenetics Reader
Function: Epigenetics readers are proteins that can recognize and bind to specific epigenetic marks on DNA or histones. These reader proteins interpret the epigenetic code and facilitate downstream cellular processes, such as gene activation or repression.
Epigenetics Eraser
Function: Epigenetics erasers are enzymes responsible for removing or reversing epigenetic marks on DNA or histones. This process allows for the dynamic regulation of gene expression and the resetting of epigenetic states during various stages of development and in response to environmental changes.
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Pdia3/ERp57 activator, STAT3 inhibitor
Diosgenin palmitate, also known as Diosgenin hexadecanoate, is the hexadecanoic ester of Diosgenin. Diosgenin, a phytosteroid sapogenin, is the product of hydrolysis by acids, strong bases, or enzymes of saponins, extracted from the tubers of Dioscorea wild yam, such as the Kokoro. -
Menin-MLL inhibitor
SNDX-5613 is a potent and specific Menin-MLL inhibitor. -
HDAC1 and HDAC3 inhibitor
Suberoyl bis-hydroxamic acid (Suberohydroxamic acid; SBHA) is a competitive and cell-permeable HDAC1 and HDAC3 inhibitor with ID50 values of 0.25 μM and 0.30 μM, respectively. -
SIRT1/SIRT3 inhibitor
4'-bromo-Resveratrol is a potent inhibitor of the deacetylases sirtuin 1 (SIRT1) and 3 (SIRT3).
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HuR-ARE Interaction Inhibitor
CMLD-2 is an inhibitor of the HuR-ARE interaction that competitively binds to the HuR protein, disrupting its binding to adenine-uridine rich elements (ARE) within mRNAs (Ki=350 nM). This compound induces apoptosis and exhibits notable antitumor activity across various cancer cell lines, including colon, pancreatic, thyroid, and lung cancers. HuR (Hu antigen R) is a critical RNA-binding protein involved in the regulation of mRNA stability and translation, making CMLD-2 a valuable tool for studying post-transcriptional regulation in cancer research. -
METTL3 Inhibitor
METTL3-IN-9 is an inhibitor of the methyltransferase-like protein METTL3, which functions as an RNA methyltransferase to catalyze the N6-methyladenosine (m6A) modification of mRNA in eukaryotic cells. This compound demonstrates significant biological activity in regulating gene expression through m6A modification. METTL3-IN-9 is essential for research applications focused on RNA biology, epitranscriptomics, and the study of mRNA modifications. -
METTL3-METTL14 Inhibitor
STM2120 is a selective inhibitor of the METTL3-METTL14 complex, exhibiting an IC50 of 64.5 μM. This compound disrupts the methyltransferase activity of METTL3, impacting RNA methylation processes. STM2120 is valuable for investigating the roles of RNA modifications in cellular functions and disease mechanisms, particularly in cancer research. -
METTL3 Inhibitor
UZH2 is a potent and selective inhibitor of the METTL3 enzyme, demonstrating an IC50 value of 5 nM. This compound is crucial for research focusing on mRNA methylation and epitranscriptomics, providing insights into gene regulation and potential therapeutic targets in various diseases. UZH2 is ideal for studies investigating the role of METTL3 in cellular processes and its implications in cancer biology. -
METTL3 Inhibitor
STC-15 is a selective inhibitor of the RNA methyltransferase METTL3, known for its potential in modulating anti-tumor immunity and altering the tumor microenvironment. By inhibiting METTL3, STC-15 enhances anti-cancer immune responses through increased interferon signaling and shows synergy with T-cell checkpoint blockade. This compound is relevant for research in proliferative diseases, including various forms of cancer and autoimmune disorders. -
METTL3 Inhibitor
STM3006 is a highly potent and selective inhibitor of METTL3, exhibiting an IC50 of 5 nM. This compound reduces m6A methylation levels, promotes double-stranded RNA formation, and triggers a cell-intrinsic interferon response, thereby enhancing T cell-mediated tumor cell elimination. STM3006 demonstrates significant anti-tumor activity and shows improved efficacy when combined with anti-PD-1 immunotherapy, making it a valuable tool for cancer research and therapeutic development. -
METTL3 Inhibitor
EP652 is a potent METTL3 inhibitor, demonstrating an IC50 of 2 nM in the SPA assay, with additional IC50 values of less than 10 nM and 37 nM in intracellular and ATPlite assays, respectively. This compound is essential for research related to liquid and solid tumors, providing a valuable tool for investigating the role of METTL3 in cancer biology and therapeutic development. -
METTL3 Inhibitor
METTL3-IN-8 is a potent inhibitor of the methyltransferase METTL3. This compound significantly alleviates colitis induced by Dextran sulfate sodium salt (DSS), highlighting its potential application in the study of inflammatory bowel disease (IBD). METTL3-IN-8 serves as a valuable tool for research aimed at understanding the mechanistic role of METTL3 in IBD and related inflammatory conditions. -
Hu Antigen R Inhibitor
KH-3 is an effective inhibitor of the RNA-binding protein Hu antigen R (HuR), exhibiting an IC50 value of 0.35 μM. This compound demonstrates notable anti-proliferative activity and is capable of suppressing breast cancer cell invasion. Additionally, KH-3 delays the initiation of lung colonies by disrupting the interaction between HuR and FOXQ1 mRNA, making it a valuable tool for research in cancer biology. -
SIRT2 Inhibitor
SIRT2-IN-8 is a selective inhibitor of SIRT2 (Sirtuin 2), a member of the sirtuin family of proteins implicated in various cellular processes. This compound exhibits strong inhibition of SIRT2 activity, making it a valuable tool for investigating the role of SIRT2 in neurodegenerative diseases, particularly Huntington's and Parkinson's diseases. Its use in research can contribute to a better understanding of the molecular mechanisms underlying these conditions and aid in the development of therapeutic strategies. -
HDAC Inhibitor
HC-Toxin is a potent histone deacetylase (HDAC) inhibitor with an IC50 of 30 nM. This cyclic tetrapeptide effectively induces apoptosis in tumor cells, demonstrating significant anticancer activity. Its mechanism of action makes it valuable for research in cancer therapy and the modulation of gene expression. -
SIRT Inhibitor
Nicotinamide is a form of vitamin B3 or niacin. Nicotinamide Hydrochloride inhibits SIRT2 activity (IC50: 2 μM). Nicotinamide also inhibits SIRT1. Nicotinamide increases cellular NAD+, ATP, ROS levels. Nicotinamide inhibits tumor growth and improves survival. Nicotinamide also has anti-HBV activity. -
PTPN1/PTPN2 Inhibitor
Osunprotafib (ABBV-CLS-484) is an orally active and selective active site PTPN1 (IC50: 2.5 nM) and PTPN2(IC50: 1.8 nM) inhibitor. Osunprotafib has 6-8-fold weaker activity on PTPN9 and no detectable activity on SHP-1 or SHP-2. Osunprotafib increases the sensitivity of human cancer cell lines to IFNγ. Osunprotafib generates robust anti-tumor immunity by enhancing JAK-STAT signalling and reducing T cell dysfunction. -
PDE Inhibitor
Theophylline, a potent phosphodiesterase (PDE) inhibitor, primarily targets PDE3, leading to relaxation of airway smooth muscle and enhanced bronchodilation. This compound also functions as an adenosine receptor antagonist and exhibits anti-inflammatory properties by elevating IL-10 levels and inhibiting NF-κB translocation into the nucleus. Additionally, Theophylline has been shown to induce apoptosis in certain cell types. Its applications are particularly relevant in the research of asthma and chronic obstructive pulmonary disease (COPD). -
DNA Methyltransferase Inhibitor
γ-Oryzanol is an effective inhibitor of DNA methyltransferases (DNMTs) with a primary focus on DNMT1 and DNMT3a. It demonstrates significant inhibitory activity, with an IC50 of 3.2 μM for DNMT1 and 22.3 μM for DNMT3a. This compound has important implications for epigenetic research and may be useful in studies exploring gene expression regulation and potential therapeutic applications in cancer and other diseases associated with aberrant DNA methylation. -
PIM2 Inhibitor
JP-11646 is a potent pan-PIM inhibitor specifically targeting PIM2 with an IC50 of 0.5 nM. This reversible, ATP non-competitive inhibitor significantly reduces the mRNA levels of PIM1, PIM2, and PIM3. JP-11646 has demonstrated efficacy in inhibiting cell viability in small cell lung cancer (SCLC) and large cell neuroendocrine carcinomas of the lung (LCNEC), leading to apoptosis or necroptosis through decreased p-4EBP-1 and altered caspase activity. This reagent is valuable for research applications in SCLC, LCNEC, acute myeloid leukemia (AML), multiple myeloma (MM), and triple-negative breast cancer (TNBC). -
PIM-1/2 Inhibitor
Pim-1 kinase inhibitor 10 is a selective inhibitor of PIM-1 and PIM-2 kinases, functioning through both competitive and non-competitive mechanisms. This compound effectively induces apoptosis in cancer cells, demonstrating significant anticancer activity. Additionally, Pim-1 kinase inhibitor 10 activates caspase 3 and 7, further contributing to its potential as a therapeutic agent in cancer research. -
HDAC3 Inhibitor
HDAC3-IN-2 is a potent inhibitor of histone deacetylase 3 (HDAC3), with an IC50 value of 14 nM. This pyrazinyl hydrazide compound exhibits cytotoxicity against triple-negative breast cancer cell lines, demonstrating an IC50 of 0.55 μM for 4T1 cells and 0.74 μM for MDA-MB-231 cells. In in vivo studies using tumor-bearing mouse models, HDAC3-IN-2 effectively enhances histone acetylation levels at H3K9, H3K27, and H4K12 while promoting apoptosis through increased caspase-3, caspase-7, and cytochrome c levels, alongside a decrease in proliferation markers such as Bcl-2, CD44, EGFR, and Ki-67. -
PARP1 Inhibitor
PARP-1-IN-2 is a potent inhibitor of PARP1, exhibiting an IC50 value of 149 nM. This compound demonstrates significant anti-proliferative effects on the A549 human lung adenocarcinoma epithelial cell line and induces apoptosis in these cells. Its favorable ADME profile suggests high permeability across the blood-brain barrier, making it a valuable tool for research in cancer biology and therapeutic applications targeting PARP1-related pathways. -
JAK-STAT Inhibitor
WP-1034 is a selective JAK-STAT inhibitor that exhibits pro-apoptotic and antileukemic properties, particularly in acute myeloid leukemia (AML) models. By blocking the activation of Stat 3 and Stat 5, WP-1034 effectively induces cell cycle arrest and triggers apoptosis in affected cells. This reagent is valuable for research focused on understanding the mechanisms and therapeutic avenues in AML. -
KDM1/CDK1 Inhibitor
KDM1/CDK1-IN-1 is a potent inhibitor of both KDM1 and CDK1, exhibiting IC50 values of 0.096 μM and 0.078 μM, respectively. This compound effectively induces cell cycle arrest at the G2/M phase and promotes apoptosis in HOP-92 cancer cells. Additionally, KDM1/CDK1-IN-1 demonstrates significant cytotoxic effects against a range of cell lines, including CCRF-CEM, HOP-92, and Hep-G2, with IC50 values of 16.34 μM, 3.45 μM, and 7.79 μM, respectively. Its ability to target critical regulators of the cell cycle makes KDM1/CDK1-IN-1 valuable for cancer research applications. -
PARP1 Inhibitor
4,4′-Secalonic acid D is a potent inhibitor of PARP1, a key enzyme in the DNA repair pathway. This compound promotes the accumulation of reactive oxygen species (ROS) and DNA damage, leading to the activation of the caspase-3/GSDME pathway, which triggers apoptosis and pyroptosis in tumor cells. 4,4′-Secalonic acid D exhibits significant anti-tumor activity, making it a valuable tool for cancer research and therapeutic investigations. -
HDAC1/6 Inhibitor
HDAC1/6-IN-3 is a potent inhibitor of histone deacetylases 1 and 6 (HDAC1 and HDAC6). It demonstrates strong inhibitory activity, with IC50 values of 1.1 nM for HDAC1 and 2.7 nM for HDAC6. This compound effectively induces cell cycle arrest in the G0/G1 phase and promotes both apoptosis and pyroptosis in HepG2 cells. Additionally, HDAC1/6-IN-3 exhibits significant antitumor effects in the HepG2 xenograft model and is valuable for research focused on various types of cancer, including liver, lung, colon, and breast cancers. -
PARP-1 Inhibitor
PARP-1-IN-3 is a potent inhibitor of PARP-1, with IC50 values of 0.25 nM for PARP-1 and 2.34 nM for PARP-2. This benzamide derivative effectively induces apoptosis and leads to G2/M phase cell cycle arrest. PARP-1-IN-3 is valuable for research applications focused on cancer mechanisms and therapeutic strategies. -
LSD1/ DCN1-UBC12 Protein-Protein Interaction Inhibitor
WS-384 is a dual inhibitor targeting LSD1 and the DCN1-UBC12 protein-protein interaction, demonstrating IC50 values of 338.79 nM and 14.81 nM, respectively. This compound exhibits significant anticancer activity, facilitating cell cycle arrest, DNA damage, and apoptosis in cancer cells. WS-384 serves as a valuable tool for research into non-small cell lung cancer (NSCLC) and other related malignancies. -
LSD1 Inhibitor
S2116 is a potent inhibitor of lysine-specific demethylase 1 (LSD1), derived from N-alkylated tranylcypromine (TCP). This compound enhances H3K9 methylation while concurrently promoting H3K27 deacetylation at super-enhancer regions. S2116 effectively induces apoptosis in TCP-resistant T-cell acute lymphoblastic leukemia (T-ALL) cells by downregulating the transcription of NOTCH3 and TAL1 genes, and it has demonstrated significant growth inhibition of T-ALL cells in xenotransplanted mouse models. This reagent holds potential for research applications in cancer biology and epigenetic regulation. -
JAK Inhibitor
Dehydrocrenatidine is a natural alkaloid that functions as a selective inhibitor of Janus kinases (JAK). This compound exhibits significant biological activity by inhibiting voltage-gated sodium channels, which may alleviate mechanical allodynia in neuropathic pain models. Dehydrocrenatidine serves as a valuable tool for research in pain mechanisms and the therapeutic targeting of JAK pathways. -
PARP10/PARP15 Inhibitor
PARP10/15-IN-2 is a potent dual inhibitor of PARP10 and PARP15, exhibiting IC50 values of 0.15 µM and 0.37 µM, respectively. This compound has demonstrated the ability to penetrate cellular membranes and effectively rescue cells from apoptosis. PARP10/15-IN-2 serves as a valuable tool for research into cell survival mechanisms and the modulation of PARP-related signaling pathways. -
HDAC/JAK/BRD4 Inhibitor
HDAC/JAK/BRD4-IN-1 is a potent inhibitor targeting histone deacetylases (HDAC), Janus kinases (JAK), and bromodomain-containing protein 4 (BRD4). This compound demonstrates significant anti-proliferative effects and promotes apoptosis in MDA-MB-231 breast cancer cells. Additionally, HDAC/JAK/BRD4-IN-1 exhibits promising anticancer activity in vivo, making it a valuable tool for research in cancer therapeutics and the study of epigenetic and signaling pathways. -
PARP/PI3K Inhibitor
PARP/PI3K-IN-1 is a potent inhibitor of both PARP and PI3K, exhibiting pIC50 values of 8.22 for PARP-1, 8.44 for PARP-2, and varying activity against PI3K isoforms with values of 8.25 for PI3Kα, 6.54 for PI3Kβ, 8.13 for PI3Kδ, and 6.08 for PI3Kγ. This compound demonstrates significant anticancer activity and is suitable for research applications targeting a variety of oncological disorders. Its dual inhibition may provide insights into therapeutic strategies for cancer treatment. -
LSD1 Inhibitor
S2157 is a potent inhibitor of lysine-specific demethylase 1 (LSD1), derived from N-alkylated tranylcypromine (TCP). It enhances H3K9 methylation while concurrently promoting H3K27 deacetylation at super-enhancer regions, contributing to its apoptotic effects in TCP-resistant T-cell acute lymphoblastic leukemia (T-ALL) cells through the repression of NOTCH3 and TAL1 gene transcription. Additionally, S2157 demonstrates efficient penetration of the blood-brain barrier, effectively eliminating CNS leukemia in mouse models transplanted with T-ALL cells, making it a valuable tool for cancer research. -
Sirtuin Inhibitor
Sirt1/2-IN-2 is a dual inhibitor targeting SIRT1 and SIRT2, exhibiting IC50 values of 1.8 μM and 2.4 μM, respectively. This compound effectively prevents the deacetylation of p53 while promoting acetylation of p53 and α-tubulin. Sirt1/2-IN-2 demonstrates pro-apoptotic properties and exhibits anti-proliferative effects on human leukemia cell lines, making it a valuable tool in cancer research and therapeutic studies targeting the sirtuin family. -
Aurora kinase Inhibitor
Aurora kinase-IN-8 is an orally active inhibitor of Aurora kinases, specifically targeting Aurora A and B kinases with IC50 values of 2.8 nM and 28.1 nM, respectively. This compound effectively disrupts spindle formation, induces G2/M phase arrest, and promotes apoptosis in cancer cells. It is particularly relevant for research applications focused on malignancies, including triple-negative breast cancer. -
Pim-1 Inhibitor
Pim-1 kinase inhibitor 8 is a selective inhibitor of the PIM-1 kinase, exhibiting an IC50 value of 14.3 nM. This compound effectively disrupts cellular proliferation and migration by inhibiting PIM-1, leading to the induction of apoptosis and autophagy. In vivo studies demonstrate its capability to inhibit solid tumor growth in Solid Ehrlich Carcinoma (SEC)-bearing mice. Pim-1 kinase inhibitor 8 is valuable for research focused on breast and liver cancer. -
LSD1 Inhibitor
Geranylgeranoic acid is a Lysine-specific demethylase 1 (LSD1) inhibitor, exhibiting an IC50 value of 46.97 µM. This isoprenoid compound has demonstrated significant apoptosis-inducing properties through the disruption of mitochondrial membrane potential and the activation of caspase pathways, specifically interleukin-1β-converting enzyme (ICE) and cysteine protease precursor 32 (CPP32). Geranylgeranoic acid is applicable in cancer research and is derived from S. chinensis, highlighting its potential as an anticancer agent in studies involving human hepatoma cells and mouse hepatocytes. -
HDAC1-3 Inhibitor
HDAC-IN-53 is a selective inhibitor of histone deacetylases 1-3, demonstrating IC50 values of 47 nM, 125 nM, and 450 nM for HDAC1, HDAC2, and HDAC3, respectively. This compound exhibits minimal off-target effects, as it does not inhibit class II HDACs (IC50 > 10 μM). HDAC-IN-53 promotes caspase-dependent apoptosis and has been shown to inhibit the growth of human tumor xenografts in nude mice, as well as murine tumors in immune-competent mice bearing MC38 colon cancer. It serves as a valuable tool for studying cancer biology and potential therapeutic strategies targeting HDAC pathways. -
CDK6/PIM1 Inhibitor
CDK6/PIM1-IN-1 is a potent dual inhibitor targeting CDK6 and PIM1, with IC50 values of 39 nM and 88 nM, respectively, and an additional inhibition of CDK4 at an IC50 of 3.6 nM. This reagent significantly inhibits the proliferation of acute myeloid leukemia (AML) cells, induces G1 phase cell cycle arrest, and promotes apoptosis. CDK6/PIM1-IN-1 demonstrates strong anti-AML activity, making it a valuable tool for research in cancer biology and therapeutic development. -
HDAC6 Inhibitor
QTX125 TFA is a potent and highly selective inhibitor of Histone Deacetylase 6 (HDAC6). This compound demonstrates exceptional selectivity for HDAC6 over other isoforms, making it a valuable tool for studying the role of HDAC6 in various biological processes. QTX125 TFA has shown promising antitumor effects, indicating its potential for use in cancer research and therapeutic applications targeting HDAC6-related pathways. -
CBP Inhibitor
DC-CPin711 is a potent and selective inhibitor of the CREB-binding protein (CBP) bromodomain, demonstrating an IC50 of 0.0626 μM. This compound effectively induces apoptosis and arrests the cell cycle at the G1 phase, making it a valuable tool for research into cellular proliferation and death pathways. Its specificity for CBP enhances its utility in investigating the role of bromodomain-containing proteins in various biological processes and diseases. -
HDAC Inhibitor
CRA-026440 hydrochloride is a potent, broad-spectrum histone deacetylase (HDAC) inhibitor, exhibiting Ki values against recombinant HDAC isoenzymes of 4 nM for HDAC1, 14 nM for HDAC2, 11 nM for HDAC3, 15 nM for HDAC6, 7 nM for HDAC8, and 20 nM for HDAC10. This compound demonstrates significant antitumor and antiangiogenic activities, making it relevant for studies in cancer biology. Additionally, CRA-026440 hydrochloride possesses an alkyne functional group, enabling it to participate in copper-catalyzed azide-alkyne cycloaddition (CuAAc), facilitating its use in click chemistry applications for bioconjugation studies. -
PARP1 Inhibitor
KU-0058948 is a potent inhibitor of PARP1, exhibiting an IC50 value of 3.4 nM. This compound induces cell cycle arrest and apoptosis in primary myeloid leukemic cells as well as established myeloid leukemic cell lines. It is suitable for research applications focused on cancer biology and the exploration of PARP1's role in cellular processes. -
Aurora A Kinase Inhibitor
Alisertib sodium is a selective inhibitor of Aurora A kinase, exhibiting an IC50 of 1.2 nM. This compound disrupts mitotic spindle formation and leads to mitotic accumulation, thereby inducing apoptosis and autophagy in leukemic cells via the AKT/mTOR/AMPK/p38 signaling pathway. Alisertib sodium demonstrates significant antitumor activity, making it a valuable reagent for cancer research and therapeutic applications. -
JAK2/FLT3 Inhibitor
Flonoltinib sulfate is a potent, orally active dual inhibitor targeting JAK2 and FLT3. It demonstrates significant biological activity with IC50 values of 0.7 nM for JAK2 and 4 nM for FLT3, along with activity against JAK1 and JAK3 at 26 nM and 39 nM, respectively. This compound is primarily utilized in cancer research, particularly in the study of hematological malignancies influenced by aberrant JAK2 and FLT3 signaling pathways.

