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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  1. Aurora A PROTAC Degrader

    AurAP14 is a PROTAC degrader specifically targeting Aurora A, with a DC50 of 120 nM. This compound exhibits potent inhibitory effects on various tumor cell lines, showing IC50 values of 0.294 μM in A549 cells and 0.534 μM in MCF-7 cells. AurAP14 induces apoptosis while effectively arresting A549 cells in the S and G2/M phases of the cell cycle. Additionally, AurAP14 demonstrates significant anti-tumor efficacy in nude mouse xenograft models of A549 and A549/PTR, making it a valuable tool for research focused on treating Aurora A-overexpressing non-small cell lung cancer (NSCLC).
  2. CDK4/6/9-AURKA/B Inhibitor

    LCI133 is a selective multikinase inhibitor targeting CDK4, CDK6, CDK9, and AURKA/B, exhibiting nanomolar potency (IC50 values of 4.7 nM, 10.2 nM, 4.1 nM, 2.8 nM, and 10.6 nM, respectively). It effectively induces S/G2 cell-cycle arrest and promotes significant apoptosis in MYCN-amplified neuroblastoma BE(2)-C cells. Additionally, LCI133 demonstrates notable antitumor efficacy in preclinical models, particularly in BE(2)-C neuroblastoma xenograft studies, making it a valuable tool for cancer research and therapeutic development.
  3. Aurora kinase A/B Inhibitor

    IBPR002 is a potent inhibitor of Aurora kinase A and B, exhibiting IC50 values of 41 nM and 17 nM, respectively. This compound disrupts the nucleation and bundling of kinetochore microtubules, impairs the bipolarity of mitotic spindles, and enhances the binding of non-phosphorylated hepatoma up-regulated protein (HURP) to mother centrosome-derived microtubules. IBPR002 demonstrates significant anti-tumor activity in a colorectal cancer xenograft model, making it valuable for research focused on colorectal cancer mechanisms and therapeutics.
  4. Aurora Kinase Inhibitor

    AKI-001 is a potent inhibitor of Aurora kinases, specifically targeting Aurora A and Aurora B with an IC50 of less than 100 nM. This pentacyclic compound demonstrates significant cellular efficacy, making it a valuable tool for investigating cell cycle regulation and mitotic progression. Its selective inhibitory action positions AKI-001 as an essential reagent for research in cancer biology and therapeutic development.
  5. Aurora A/PKC Inhibitor

    (Rac)-Aurora A/PKC-IN-1 is a potent inhibitor of Aurora A and protein kinase C (PKC) isoforms α, β1, β2, and θ. This compound demonstrates significant antiproliferative effects in breast cancer cell lines in vitro and exhibits antimetastatic properties in vivo. It serves as a valuable tool for researchers investigating the role of these kinases in cancer biology and therapeutic strategies.
  6. BET/Aurora kinase Inhibitor

    BET/Aurora kinase-IN-1 is a dual inhibitor targeting both BET and Aurora kinases. This compound demonstrates significant antiproliferative activity across various cancer cell lines and exhibits notable antitumor efficacy in xenograft models of renal cell cancer and colon cancer, achieving tumor growth inhibition rates of 45.99% and 53.06%, respectively. BET/Aurora kinase-IN-1 is a valuable tool for researchers investigating cancer biology and therapeutic strategies targeting these kinases.
  7. Aurora Kinase Inhibitor

    SNS-314 is a potent and selective inhibitor of aurora kinases, demonstrating IC50 values of 9 nM for Aurora A, 31 nM for Aurora B, and 6 nM for Aurora C. This compound effectively disrupts mitotic processes and is valuable in cancer research for studying cell cycle regulation and tumor growth inhibition. SNS-314 is particularly useful for investigations into therapies targeting aurora kinases in various malignancies.
  8. Aurora A Inhibitor

    MLN8054 sodium is a selective inhibitor of Aurora A kinase, which plays a critical role in cell cycle regulation. This compound enhances radiosensitivity and can activate DNA double-strand break responses in prostate cancer cells during in vitro assays. Its mechanism induces accumulation of cells in the G2/M phase and promotes polyploidy. In vivo studies demonstrate that MLN8054 sodium significantly delays tumor growth and enhances apoptosis in cancer cells when administered alongside radiotherapy, making it a valuable tool for cancer research and treatment strategies.
  9. Aurora B Inhibitor

    Aurora kinase inhibitor-10 is a potent inhibitor of Aurora B with an IC50 of 8 nM. This small molecule demonstrates significant antitumor activity, making it a valuable tool for cancer research. Its ability to selectively target Aurora B kinase supports investigations into mitotic regulation and offers potential therapeutic insights for tumor treatments.
  10. Aurora-A Ligand

    Aurora-A ligand 2 is a selective ligand for the Aurora-A kinase, functioning as a crucial component in PROTAC technology. It plays a significant role in the targeted degradation of Aurora-A, facilitating the investigation of its biological implications in cancer research. This compound is valuable for studying Aurora-A kinases and exploring therapeutic strategies in oncology.
  11. Aurora Kinase Inhibitor

    Aurora kinase inhibitor-11 is a potent inhibitor of Aurora Kinase, exhibiting an IC50 of 0.14 μM. This compound demonstrates significant anticancer activity, making it a valuable tool for research applications focused on cancer biology and therapeutic strategies targeting mitotic processes. Its efficacy in modulating kinase activity positions it as a relevant candidate for studies aimed at understanding tumorigenesis and developing novel cancer treatments.
  12. Aurora Kinase Inhibitor

    Tripolin A is a selective non-ATP competitive inhibitor of Aurora A kinase, exhibiting IC50 values of 1.5 μM for Aurora A and 7 μM for Aurora B. This compound plays a crucial role in modulating cell cycle progression by targeting Aurora kinases, making it valuable in cancer research. Tripolin A is used to investigate the mechanisms of mitotic regulation and potential therapeutic strategies in tumor cells.
  13. Aurora Kinase Inhibitor

    XMD-12 is a selective Aurora kinase inhibitor that demonstrates significant anti-tumor activity. It effectively enhances paclitaxel-induced cell death and exhibits high potency against Aurora A, B, and C kinases, with IC50 values of 5.6, 18.4, and 24.6 nM, respectively. This compound is valuable for research applications in cancer biology and therapy development.
  14. Aurora Kinases Inhibitor

    Aurora kinase-IN-2 is a potent inhibitor of Aurora kinases, demonstrating IC50 values of 90 nM for Aurora A and 152 nM for Aurora B. This compound effectively induces cell cycle arrest at the G2/M phase by modulating cyclin B1 and cdc2. It is primarily utilized in cancer research to explore the role of Aurora kinases in tumorigenesis and therapeutic response.
  15. Aurora A Inhibitor

    Aurora A Inhibitor 1 is a potent and selective inhibitor of the Aurora A kinase, which plays a crucial role in regulating cell division and has been implicated in various cancers. Overexpression of Aurora A is associated with oncogenic properties, making it an important target for cancer research. This compound is suitable for studies focusing on the therapeutic modulation of Aurora A in diverse cancer types.
  16. Aurora Kinase Inhibitor

    Aurora kinase inhibitor-9 is a potent dual inhibitor of Aurora A and Aurora B kinases, exhibiting IC50 values of 0.093 µM and 0.09 µM, respectively. This compound demonstrates significant anti-proliferative activity across various cancer cell lines, making it a valuable tool in cancer research. Its ability to target key regulators of cell division positions it as a candidate for studies investigating mitotic disruption and the development of novel cancer therapies.
  17. Aurora Inhibitor

    TAK-901 hydrochloride is a potent inhibitor of aurora kinases A and B, exhibiting IC50 values of 21 nM and 15 nM, respectively. This compound disrupts cell cycle progression, making it a valuable tool in cancer research and therapeutic development. Its ability to inhibit aurora kinases positions TAK-901 hydrochloride as an important reagent for studying mitotic regulation and exploring targeted cancer therapies.
  18. Aurora A PROTAC Degrader

    PROTAC Aurora A Degrader-1 is a selective degrader that targets Aurora A, effectively forming a ternary complex with AURKA and CRBN. This compound demonstrates potent biological activity, inducing degradation of AURKA, lowering MYCN levels, and promoting DNA damage and apoptosis in cancer cells. With DC50 values of 1 nM and 2 nM in LAN5 and SMS-SAN cells, respectively, it exhibits significant antiproliferative effects and is valuable for research on neuroblastoma and small cell lung cancer.
  19. Aurora Kinase Inhibitor

    Tripolin B is an ATP-competitive inhibitor targeting Aurora kinases, exhibiting IC50 values of 2.5 µM and 6 µM for Aurora A and Aurora B kinases, respectively. This compound has demonstrated selectivity in its inhibition profile and is primarily utilized in cellular studies to explore the roles of Aurora kinases in cell cycle regulation and cancer progression. Tripolin B can be a valuable tool in research focused on cell division and oncogenic signaling pathways.
  20. Aurora Kinase Inhibitor

    BI 831266 is a potent and selective inhibitor of Aurora kinase B, a critical regulator of mitosis. This compound exhibits significant antitumor activity, making it valuable for cancer research. Its inhibition of Aurora B can lead to disruptions in cell division, providing insights into potential therapeutic applications for various malignancies.
  21. Aurora A/B Kinases Inhibitor

    TY-011 is a selective inhibitor of Aurora A and B kinases, disrupting normal microtubule-kinetochore attachment. This interference results in DNA damage and apoptosis, effectively inhibiting the proliferation of human gastric cancer cells, with observed IC50 values between 0.11 and 4.49 μM across various gastric cancer cell lines. TY-011 serves as a valuable tool in the study of gastric cancer and the mechanisms underlying mitotic regulation.
  22. Aurora Kinase Inhibitor

    OM137 is a potent Aurora Kinase inhibitor, demonstrating IC50 values of 21.7 μM for Aurora A kinase and 2.4 μM for Aurora B kinase. Additionally, OM137 affects cell cycle regulation by inhibiting Cdk1/cyclinB and Cdk5/p25, also with an approximate IC50 of 20 μM. This compound is notable for its ability to reduce spindle checkpoint-signaling proteins, such as Mad2 and BubR1, at the kinetochores of chromosomes, making it a valuable tool in cancer research and studies on mitotic regulation.
  23. Aurora Kinase Inhibitor

    AT9283 hydrochloride is a multi-targeted kinase inhibitor that primarily targets Aurora A and Aurora B kinases, which play critical roles in cell proliferation and survival. Its inhibitory effects extend to additional kinases such as JAK2 and Abl (T315I), enhancing its potential utility in cancer research. AT9283 hydrochloride has demonstrated significant anti-tumor activity, making it a valuable tool for investigating therapeutic strategies in various malignancies.
  24. Aurora Kinase Inhibitor

    VE-465 is a potent Aurora kinase inhibitor that promotes apoptosis in cancer cells. Its anticancer activities have been demonstrated across various tumor models, making it a valuable tool for cancer research. This compound's ability to selectively target Aurora kinases positions it as a significant candidate for investigations into tumor progression and treatment strategies.
  25. Aurora Kinase Inhibitor

    Binucleine 2 is an ATP-competitive inhibitor targeting Drosophila Aurora B kinase, displaying an inhibition constant (Ki) of 0.36 μM. This compound exhibits isoform specificity, effectively inhibiting Drosophila Aurora B in a dose-dependent manner while exhibiting minimal activity against human and Xenopus laevis Aurora B kinases at concentrations up to 100 μM. Binucleine 2 is valuable for studying mitotic processes, as it induces defects in mitosis and cytokinesis in Drosophila Kc167 cells and disrupts contractile ring assembly in Drosophila S2 cells at a concentration of 40 μM, highlighting the critical role of Aurora B kinase in cell division.
  26. Aurora A Inhibitor

    Aurora A inhibitor 4 (compound C9) is a selective inhibitor of Aurora A kinase, demonstrating a GI50 of 4.26 μM in DU 145 cells and 7.08 μM in HT-29 cells. This compound exhibits significant anti-proliferative effects, making it valuable for research focused on cell cycle regulation and cancer therapeutics. Its ability to inhibit Aurora A activity can be applied in studies investigating mitotic dysregulation in various tumor types.
  27. Aurora Kinase Control

    Win 47338 is a control compound targeting Aurora kinases (AurA/AurB) and the mitotic kinase monopolar spindle 1 (MPS1). It serves as a crucial reference for studies involving mitotic regulation and cellular division processes. With a Ki value greater than 100 μM, it provides a baseline for evaluating the potency of other kinase inhibitors in research applications focused on cell cycle dynamics and cancer therapeutics.
  28. Aurora Kinase Inhibitor

    Aurora B inhibitor 1 is a selective inhibitor of the Aurora B kinase, exhibiting a Ki value of <0.010 µM. This compound plays a crucial role in manipulating cell division and is instrumental in research surrounding cancer biology and therapeutic development. Its ability to inhibit Aurora B activity makes it a valuable tool for studies focused on mitotic regulation and chromosomal instability.
  29. BRD4 PROTAC Degrader

    PROTAC BRD4 Degrader-21 is a targeted PROTAC that degrades the BRD4 protein through the induction of ubiquitination, achieving an IC50 of 59 nM. This compound effectively leads to BRD4 degradation via the proteasome pathway, and demonstrates moderate affinity for recombinant HSP90α with an IC50 range of 100-1000 nM. In preclinical studies, PROTAC BRD4 Degrader-21 has been shown to induce apoptosis in cancer cells and inhibit tumor growth in xenograft mouse models, making it a valuable tool for research into acute myeloid leukemia and diffuse large B-cell lymphoma.
  30. p300 inhibitor

    Histone Acetyltransferase Inhibitor II is a potent and cell permeable p300 inhibitor, with an IC50 of 5μM; Histone Acetyltransferase Inhibitor II can be used in cancer research.
  31. SIRT1/SIRT2 inhibitor

    Cambinol is a SIRT1 and SIRT2 inhibitor with IC50 values of 56 and 59 μM, respectively.
  32. PKC inhibitor

    Go6976 is a potent PKC inhibitor with IC50 of 7.9 nM, 2.3 nM, and 6.2 nM for PKC (Rat brain), PKCα, and PKCβ1, respectively. Also a potent inhibitor of JAK2 and Flt3.
  33. inhibitor of the BRPF bromodomain

    GSK9311 is a potent inhibitor of the BRPF bromodomain with pIC50 values of 6.0 and 4.3 for BRPF1 and BRPF2, respectively.
  34. CBP/EP300 Inhibitor

    GNE-272 is a potent and selective in vivo probe for the bromodomains of CBP/EP300 with IC50 values of 0.02, 0.03 and 13 μM for CBP, EP300 and BRD4, respectively.
  35. GSK 4027 is a chemical probe for the PCAF/GCN5 bromodomain with an pIC50 of 7.4??0.11 for PCAF in a time-resolved fluorescence resonance energy transfer (TR-FRET) assay.
  36. Dot1L inhibitor

    Dot1L-IN-1 is a highly potent, selective and structurally novel Dot1L inhibitor with a Ki of 2 pM.
  37. pan-JAK inhibitor

    PF-06263276 (PF 6263276) is a potent and selective pan-JAK inhibitor, with IC50s of 2.2 nM, 23.1 nM, 59.9 nM and 29.7 nM for JAK1, JAK2, JAK3 and TYK2, respectively.
  38. CBP/P300 benzoxazepine bromodomain inhibitor

    TPOP146 is a selective CBP/P300 benzoxazepine bromodomain inhibitor with Kd values of 134 nM and 5.02 μM for CBP and BRD4.
  39. Pan PI3K inhibitor

    SF1126 is a water soluble, small-molecule prodrug containing the pan-PI3K/mTOR inhibitor LY294002/SF1101 conjugated to the RGD-containing tetra-peptide SF1174 with potential antineoplastic and antiangiogenic activities.
  40. LSD1 inhibitor

    CBB1003 is a novel histone demethylase LSD1 inhibitor with IC50 of 10.54 uM.
  41. HDAC inhibitor

    Apicidin is a a potent histone deacetylases (HDAC) inhibitor with potential anticancer activity.
  42. BET inhibitor

    PNZ5 is a potent and isoxazole-based pan-BET inhibitor with high selectivity and potency similar to the well-established (+)-JQ1, with a KD of 5.43 nM for BRD4(1).
  43. HAT inhibitor

    Garcinol is a polyisoprenylated benzophenone derivative isolated from Garcinia indica. It is a potent inhibitor of histone acetyltransferases (HATs) p300 (IC50=7μM) and PCAF (IC50=5μM) both in vitro and in vivo.
  44. SIRT2 inhibitor

    AK-7 is a cell- and brain-permeable inhibitor of SIRT2 (IC50 = 15.5 μM).
  45. HDAC6 inhibitor

    BRD9757 is a highly potent and selective HDAC6 inhibitor with an IC50 of 30 nM toward HDAC6.
  46. LSD1 Inhibitor

    LSD1-C76 is a potent and selective Lysine Specific Demethylase-1 (LSD1) inhibitor.
  47. DOT1L inhibitor

    EPZ004777 is a potent, selective inhibitor of DOT1L. EPZ004777 selectively inhibits cellular H3K79 methylation and inhibits expression of key MLL fusion target genes.
  48. PRC2 antagonist

    A-395 is an antagonist of polycomb repressive complex 2 (PRC2) protein-protein interactions that potently inhibits the trimeric PRC2 complex (EZH2-EED-SUZ12) with an IC50 of 18 nM.
  49. Lin28-let-7a antagonist

    Lin28-let-7a antagonist 1 shows a clear antagonistic effect against the Lin28-let-7a interaction with an IC50 of 4.03 μM for Lin28A-let-7a-1 interaction.
  50. SMYD2 inhibitor

    AZ505 ditrifluoroacetate is a potent and highly selective inhibitor of the oncogenic protein SMYD2(IC50=0.12 uM) with potential anticancer activity, >600 fold than SMYD3(IC50>83.3 uM); DOT1L(IC50>83.3 uM);EZH2(IC50>83.3 uM).

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