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. HDAC Inhibitor

    MPT0G211 mesylate is a selective inhibitor of histone deacetylase 6 (HDAC6) with a potency characterized by an IC50 of 0.291 nM. It exhibits over 1000-fold selectivity for HDAC6 compared to other HDAC isoforms and is capable of penetrating the blood-brain barrier. MPT0G211 mesylate has demonstrated significant effects in ameliorating tau phosphorylation and cognitive deficits in models of Alzheimer’s disease, along with possessing anti-metastatic and neuroprotective properties. Its potential applications extend to various cancer research settings, highlighting its utility in both neurodegenerative and oncological studies.
  2. HDAC6 Inhibitor

    HDAC6-IN-5 is a potent inhibitor of histone deacetylase 6 (HDAC6), demonstrating an IC50 of 0.025 μM. This compound effectively inhibits the self-aggregation of amyloid-beta 1-42 and acetylcholinesterase (AChE), with IC50 values of 3.0 μM and 0.72 μM, respectively. HDAC6-IN-5 has been shown to promote neurite outgrowth while exhibiting minimal neurotoxicity, making it a valuable tool for research in neurodegenerative disease and neuronal regeneration studies.
  3. SHP2/HDAC Inhibitor

    SHP2/HDAC-IN-1 is a dual allosteric inhibitor targeting SHP2 and HDAC with IC50 values of 20.4 nM and 25.3 nM, respectively. This compound enhances antitumor immunity through the activation of T cells, improving antigen presentation and cytokine secretion. SHP2/HDAC-IN-1 is valuable for investigations in cancer immunotherapy and associated research applications.
  4. HDAC6 Inhibitor

    KA2507 monohydrochloride is a potent and highly selective inhibitor of the histone deacetylase enzyme HDAC6, exhibiting an IC50 value of 2.5 nM. This compound demonstrates significant antitumor efficacy and has been found to modulate immune responses, making it valuable for research into cancer therapies and immunological studies. Researchers may utilize KA2507 monohydrochloride to explore novel treatment strategies in oncology and immune regulation.
  5. LSD1/HDAC6 Inhibitor

    LSD1/HDAC6-IN-1 is a dual inhibitor targeting lysine-specific demethylase 1 (LSD1) and histone deacetylase 6 (HDAC6), demonstrating significant anti-tumor activity. This compound is particularly relevant for research into multiple myeloma (MM), providing insights into epigenetic regulation and potential therapeutic strategies. Its oral bioavailability makes it suitable for in vivo studies in cancer research.
  6. Anti-malarial HDAC Inhibitor

    FNDR-20123 free base is a potent, orally active anti-malarial agent that functions as a histone deacetylase (HDAC) inhibitor. It demonstrates significant inhibitory activity against Plasmodium falciparum, achieving IC50 values of 41 nM during the asexual stage and 190 nM for male gametocytes. In addition, FNDR-20123 free base selectively inhibits various HDAC isoforms, including HDAC1, HDAC2, HDAC3, HDAC6, and HDAC8, with respective IC50 values of 25 nM, 29 nM, 2 nM, 11 nM, and 282 nM. This compound is a valuable tool for research into the treatment of malaria and the role of HDACs in cellular regulation.
  7. MAO A/HDAC Inhibitor

    MAO A/HDAC-IN-1 is a dual inhibitor targeting monoamine oxidase A (MAO A) and histone deacetylases (HDAC). This compound exhibits significant biological activity in glioma research, facilitating studies on tumor biology and epigenetic modifications. Additionally, MAO A/HDAC-IN-1 features an alkyne group that enables copper-catalyzed azide-alkyne cycloaddition (CuAAc), making it a valuable tool for click chemistry applications in investigating cellular processes.
  8. HDAC Inhibitor

    OKI-006 is a potent, orally active inhibitor of histone deacetylase (HDAC). As a unique congener of the natural product HDAC inhibitor largazole, it modulates epigenomic regulation by targeting HDACs, enzymes integral to histone acetylation, which is often dysregulated in various cancers. This compound demonstrates significant potential for research applications in cancer biology and the study of epigenetic alterations in tumorigenesis.
  9. HDAC6 Inhibitor

    HDAC6-IN-6 is a potent inhibitor of histone deacetylase 6 (HDAC6), exhibiting an IC50 of 0.025 μM. This compound is capable of crossing the blood-brain barrier and demonstrates strong inhibitory activity against amyloid-beta peptide (Aβ1-42) self-aggregation and acetylcholinesterase (AChE) with IC50 values of 3.0 μM and 0.72 μM, respectively. Additionally, HDAC6-IN-6 enhances neurite outgrowth while maintaining a favorable safety profile, making it a valuable tool for research in neurodegenerative diseases and related fields.
  10. HDAC6 Inhibitor

    SP-2-225 is a selective inhibitor of Histone Deacetylase 6 (HDAC6). This compound enhances the production of cancer-associated antigens and promotes macrophage antigen cross-presentation to T cells, thereby facilitating immune response. Additionally, SP-2-225 has demonstrated efficacy in reducing tumor volume in a syngeneic SM1 melanoma model, making it a valuable tool for cancer immunotherapy research.
  11. HDAC Inhibitor

    Bocodepsin hydrochloride is a selective histone deacetylase (HDAC) inhibitor that demonstrates notable antitumor activity. It is effective in the suppression of solid tumors as well as hematologic malignancies, making it a valuable tool for cancer research. Bocodepsin hydrochloride is suitable for studies aimed at elucidating the role of HDAC in tumor biology and therapeutic response.
  12. HDAC6 Inhibitor

    (S)-Trichostatin A is a selective inhibitor of HDAC6, demonstrating IC50 values of 9.88 nM and 11.1 nM for Zebrafish and Human HDAC6, respectively. It exhibits weak inhibition of other human HDACs, making it a valuable tool for studying HDAC6's role in cellular processes. This compound is useful in research applications related to cancer, neurodegenerative diseases, and epigenetic regulation.
  13. HDAC Inhibitor

    HDAC-IN-72 is a potent inhibitor of histone deacetylases 1 (HDAC1), 2 (HDAC2), and 3 (IC50 values of 0.65 μM, 0.78 μM, and 1.70 μM, respectively). This compound exhibits significant antiproliferative activity, making it a valuable tool for studying epigenetic regulation in cancer. HDAC-IN-72 is particularly relevant for breast cancer research, facilitating investigations into the role of histone deacetylation in tumor biology and potential therapeutic strategies.
  14. HDAC6/8/BRPF1 Inhibitor

    HDAC6/8/BRPF1-IN-1 is a selective dual inhibitor targeting HDAC6, HDAC8, and the bromodomain and PHD finger-containing protein 1 (BRPF1). It demonstrates inhibitory activity against HDAC1, HDAC6, and HDAC8 with IC50 values of 797 nM, 344 nM, and 908 nM, respectively, while also inhibiting BRPF1 with a Kd value of 175.2 nM. This compound is valuable for research in cancer biology, providing insights into the role of histone deacetylases and bromodomain proteins in tumorigenesis and cellular processes.
  15. LSD1 Inhibitor

    GSK-LSD1 is a selective inhibitor of lysine-specific demethylase 1 (LSD1). This compound demonstrates significant biological activity by reducing food intake and body weight, while also enhancing insulin sensitivity and glycemic control in mouse models of obesity. Additionally, GSK-LSD1 shows promise in alleviating non-alcoholic fatty liver disease (NAFLD) and inhibiting cytokine release triggered by SARS-CoV-2 in peripheral blood mononuclear cells from COVID-19 patients. Furthermore, GSK-LSD1 has been identified as a potential therapeutic agent for suppressing cancer growth and metastasis.
  16. JAK3 Inhibitor

    DPPY is a potent JAK3 inhibitor with an IC50 of less than 10 nM, demonstrating high selectivity for protein tyrosine kinases including EGFR and BTK. It exhibits significant anti-proliferative activity against B-cell lymphoma cells. DPPY holds potential for research applications related to idiopathic pulmonary fibrosis (IPF) and other conditions involving aberrant JAK3 signaling.
  17. JAK Inhibitor

    MJ04 is a selective inhibitor targeting Janus Kinase 3 (JAK 3) with an IC50 of 2.03 nM. This compound effectively inhibits T cell differentiation and reduces pro-inflammatory cytokine production in lipopolysaccharide-induced macrophages. Additionally, MJ04 exhibits favorable pharmacokinetic properties in mice and has demonstrated the ability to promote hair growth in a dihydrotestosterone-induced model of androgenetic alopecia (AGA), showing minimal toxicity (LD50 > 2 g/kg).
  18. PARP-1 Inhibitor

    CEP-6800 is a potent inhibitor of PARP-1, known for its ability to enhance the efficacy of chemotherapeutic agents. It effectively reduces poly(ADP-ribose) accumulation induced by irinotecan and temozolomide in LoVo and HT29 xenograft models. Additionally, CEP-6800 demonstrates potential in suppressing tumor growth in Calu-6. This compound is valuable for research in cancer biology and therapy development.
  19. PARP-1/-2 inhibitor

    CEP-9722 is a selective, orally active inhibitor of PARP-1 and PARP-2, exhibiting IC50 values of 20 nM and 6 nM, respectively. This compound demonstrates significant anticancer activity, making it a valuable tool for research in cancer therapy and DNA repair mechanisms. Its ability to inhibit these critical enzymes positions CEP-9722 as an important reagent for studying cellular responses to DNA damage and tumor susceptibility to therapeutic agents.
  20. PARP7 Inhibitor

    PARP7-IN-21 is a potent inhibitor of PARP7, demonstrating an IC50 of less than 10 nM. This compound effectively interferes with the activity of PARP7, which is involved in the regulation of cellular processes such as DNA repair and signaling pathways related to stress response. PARP7-IN-21 is valuable for research applications focused on cancer biology, neurodegenerative diseases, and other conditions associated with PARP7 dysregulation.
  21. CDK9/PARP Inhibitor

    CDK9/PARP-IN-1 is a potent inhibitor of CDK9 and PARP1, demonstrating IC50 values of 118 nM and 107 nM, respectively. This dual inhibition results in significant antiproliferative effects across various cancer cell lines, making it a valuable tool for cancer research. CDK9/PARP-IN-1 is particularly relevant for studies investigating the therapeutic potential of targeting these pathways in oncology.
  22. PARP1/CDK12 Inhibitor

    Antitumor agent-104 is a potent inhibitor of PARP1 and CDK12, targeting critical pathways in DNA damage repair in tumors. By inhibiting PARP1 enzymatic activity, it effectively reduces PAR protein levels, thus impairing the cellular mechanisms that protect tumor cells. This compound serves as a valuable tool in cancer research, especially in studies focused on understanding tumor biology and exploring novel therapeutic strategies.
  23. PARP1 Inhibitor

    PARP1-IN-53 is a potent PARP1 inhibitor with an IC50 of 0.1 nM, demonstrating high selectivity over PARP2, which has an IC50 of 23 nM. This quinazolinone derivative effectively interferes with the poly(ADP-ribose) polymerase 1 enzyme, making it a valuable compound for cancer research. Its specific action on PARP1 enables detailed studies into the mechanisms of DNA repair and cell survival in oncology.
  24. PARP Inhibitor

    INO-1001 mesylate is a selective inhibitor of poly (ADP-ribose) polymerase (PARP), a critical enzyme involved in DNA repair processes. It enhances the sensitivity of cancer cells to radiation therapy by disrupting DNA repair mechanisms, leading to increased necrotic cell death. This compound is of interest in cancer research, particularly in studies aimed at overcoming resistance to radiation and improving therapeutic outcomes in tumorigenesis.
  25. PARP-1/2 Inhibitor

    CEP-8983 is a potent inhibitor of PARP-1 and PARP-2, with IC50 values of 20 nM and 6 nM, respectively. This compound effectively enhances the sensitivity of chemotherapy-resistant cell lines and subcutaneous xenograft models to the anticancer agents Temozolomide and Camptothecin. Its ability to disrupt DNA repair mechanisms makes CEP-8983 a valuable tool for cancer research, particularly in studies focusing on therapeutic resistance and combination therapies.
  26. PARP-1 Inhibitor

    ST7710AA1 is a potent inhibitor of PARP-1, exhibiting an IC50 value of 0.07 µM. This compound demonstrates significant antiproliferative and anticancer activity, making it a valuable tool for research in oncology and cellular biology. Its ability to inhibit PARP-1 can be leveraged to explore mechanisms of cancer cell survival and the effects of DNA damage repair pathways.
  27. PARP-1 Inhibitor

    8-Chloroquinazolin-4-ol is a potent inhibitor of the PARP-1 enzyme, exhibiting an IC50 value of 5.65 μM. This compound serves as a nicotinamide mimic and plays a significant role in research focused on DNA repair mechanisms and cancer therapies. Its ability to modulate PARP-1 activity makes it a valuable tool for exploring therapeutic strategies in various disease models.
  28. PARP-1 Inhibitor

    Benzo[c][1,8]naphthyridin-6(5H)-one is a potent inhibitor of poly(ADP-ribose) polymerase-1 (PARP-1) and aurora kinase A, exhibiting IC50 values of 0.311 μM and 5.5 μM, respectively. This compound demonstrates low micromolar affinity for human adenosine receptors AR A1 and hA2A, with Ki values of 4.6 and 4.8 μM. Due to its mechanistic action, Benzo[c][1,8]naphthyridin-6(5H)-one is valuable for research applications targeting DNA repair pathways and cancer therapies.
  29. PARP-1 Inhibitor

    BSI-401 is an orally active inhibitor of PARP-1, a key enzyme involved in DNA repair processes. This compound demonstrates significant anti-cancer activity, particularly in pancreatic cancer, both as a monotherapy and in combination with Oxaliplatin. BSI-401 is valuable for research into therapeutic strategies targeting DNA damage response pathways in cancer treatment.
  30. PARP-2 Inhibitor

    UPF-1035 is a selective inhibitor of PARP-2, exhibiting an IC50 value of 0.15 μM. This compound has been shown to increase CA1 pyramidal cell loss in the hippocampus, indicating its role in neuroprotection. UPF-1035 can be utilized in research focused on neurodegenerative diseases and the mechanisms of neuronal cell survival.
  31. PARP1 Inhibitor

    PARP1-IN-19 is a potent inhibitor of poly (ADP-ribose) polymerase 1 (PARP1), a key enzyme involved in DNA repair mechanisms. This compound exhibits significant antitumor activity, making it a valuable tool in cancer research and therapeutic development. It is primarily utilized in studies focusing on the modulation of DNA damage response pathways and the exploration of combination therapies in oncology.
  32. PARP Inhibitor

    NU1064 dihydrochloride is a selective inhibitor of poly(ADP-ribose) polymerase (PARP), an enzyme involved in DNA repair mechanisms. This compound enhances the cytotoxic effects of DNA-methylating agents, such as MTIC, in a concentration-dependent manner. It is valuable for research in cancer biology, particularly in studies focusing on enhancing the efficacy of chemotherapeutic agents and understanding mechanisms of DNA repair inhibition.
  33. PARP Inhibitor

    KU-0058684 is a selective PARP inhibitor, exhibiting an IC50 of 3.2 nM for PARP-1. This reagent effectively impairs DNA double strand break repair, making it a valuable tool for investigating DNA damage response mechanisms. Its application extends to studying the therapeutic potential of PARP inhibition in various cancer models.
  34. PARP Inhibitor

    WD2000-012547 is a selective inhibitor of poly(ADP-ribose) polymerase-1 (PARP-1), demonstrating a pKi value of 8.221. This compound effectively interferes with PARP-1 activity, which plays a crucial role in DNA repair and cellular response to DNA damage. WD2000-012547 is instrumental in research applications involving cancer therapeutics, where modulation of DNA repair pathways is of significant interest.
  35. PARP2 Inhibitor

    OUL245 is a selective inhibitor of PARP2, exhibiting an IC50 of 44 nM. It also demonstrates inhibitory activity against other PARP family members and TNKS enzymes, with IC50 values ranging from 2.9 to 8.8 μM. This compound is valuable for research into DNA repair mechanisms and the therapeutic potential of targeting PARP enzymes in various cancer models.
  36. PARP-1 Inhibitor

    5-AIQ hydrochloride is a selective inhibitor of PARP-1, an important enzyme involved in DNA repair. This compound exhibits protective effects against ischemia-reperfusion injury in liver tissue, making it a valuable tool for studying conditions related to hepatic ischemia-reperfusion. Its applications extend to research focused on oxidative stress and cell survival mechanisms, providing insights into potential therapeutic strategies for liver protection.
  37. PARP1 Inhibitor

    PARP1-IN-22 is a highly potent inhibitor of poly (ADP-ribose) polymerase 1 (PARP1) with an IC50 of less than 10 nM. This compound is utilized in research focused on DNA damage repair pathways and cellular responses to oxidative stress. Its ability to inhibit PARP1 makes it valuable for studies in cancer therapy and neurodegenerative diseases, where modulation of DNA repair mechanisms is crucial.
  38. PARP Inhibitor

    A-620223 succinate is a potent inhibitor of poly(ADP-ribose) polymerase (PARP), targeting the PARP-1 enzyme with a Ki value of 8 nM and an EC50 value of 3 nM in cellular assays. Its excellent selectivity and bioavailability make it an invaluable tool for cancer research, enabling investigations into DNA repair mechanisms and potential therapeutic strategies. This compound is particularly useful in studies focused on the efficacy of PARP inhibition in various cancer models.
  39. PARP14 Inhibitor

    PARP14 Inhibitor 2 is a highly selective inhibitor targeting PARP14 with an IC50 value of less than 30 nM. This compound effectively inhibits the mono-ADP-ribosyltransferase activity of PARP14, thereby modulating signaling pathways associated with IFN-γ and IL-4. By reversing protumor macrophage polarization and inhibiting pro-inflammatory responses, PARP14 Inhibitor 2 holds promise for the investigation of diseases related to PARP14, including tumors, atopic dermatitis, and autoimmune disorders.
  40. PARP1 Inhibitor

    PARP1-IN-36 is a selective inhibitor of PARP-1, characterized as a 4-carboxamido-isoindolinone derivative with a Kd value of less than 0.01 μM. This compound exhibits significant biological activity in the modulation of cellular processes associated with DNA repair, making it a valuable tool in research focused on cancer, cardiovascular diseases, nervous system injury, and inflammation. Its potent inhibition of PARP-1 serves to elucidate the role of this enzyme in various pathological contexts.
  41. PARP-1 Inhibitor

    6(5H)-Phenanthridinone is a potent inhibitor of PARP-1, a key enzyme involved in DNA repair processes. This compound exhibits significant immunomodulatory effects and has been shown to inhibit cell proliferation. It is employed in cancer research to explore therapeutic strategies targeting DNA repair pathways and to enhance the efficacy of chemotherapeutic agents.
  42. PARP1/2 Inhibitor

    PARP1/2-IN-3 is a potent inhibitor of PARP1 and PARP2, exhibiting IC50 values of 0.2235 nM and <0.001 nM, respectively. This compound effectively inhibits the proliferation of Capan-1 wildtype and AZD2281 or BMN673-resistant cells, with IC50 values ranging from 1.82 to 9.98 nM. Additionally, PARP1/2-IN-3 demonstrates significant antitumor efficacy in murine models, making it a valuable tool for cancer research and therapeutic development targeting PARP pathways.
  43. CDK-1/PARP-1 Inhibitor

    UNPD139734 is a potent inhibitor of Cyclin-Dependent Kinase 1 (CDK-1) and Poly (ADP-ribose) polymerase 1 (PARP-1), forming stable complexes with both target proteins. This compound serves as a valuable lead for the structural optimization of dual-target anticancer agents, particularly in the context of breast cancer research. Its dual inhibition mechanism offers a promising avenue for investigating novel therapeutic strategies in oncology.
  44. PARP1/2/7 Inhibitor

    PARP-1/2/7-IN-1 is a highly potent inhibitor of poly (ADP-ribose) polymerases PARP-1, PARP-2, and PARP-7, demonstrating an IC50 of less than 10 nM. This compound is valuable for research applications focused on cancer biology, DNA repair mechanisms, and cellular stress responses. Its multifunctional inhibition can aid in the exploration of therapeutic strategies targeting PARP-mediated pathways in various diseases.
  45. PARP1 Inhibitor

    PARP1-IN-48 is a potent and selective inhibitor of poly(ADP-ribose) polymerase 1 (PARP1), exhibiting an IC50 of 3 nM against PARP1 and 170 nM against PARP2. This compound is valuable for research in oncology, virology, and metabolic disorders, facilitating investigations into the role of PARP1 in DNA repair and cellular stress responses. Its selective action makes it an essential tool for studying therapeutic pathways in cancer treatment and other disease models.
  46. PARP1 Inhibitor

    PARP1-IN-30 is a potent, selective inhibitor of PARP1 that exhibits cytotoxic effects in tumor cells. It effectively targets cancer cells with deficiencies in the breast cancer 1 protein (BRCA1) or BRCA2, offering a valuable tool for elucidating the role of PARP1 in DNA repair and cancer biology. This compound is particularly relevant for research applications focused on targeted cancer therapies and synthetic lethality in oncology.
  47. PARP Inhibitor

    ARTD10/PARP10-IN-2 is a potent and non-selective inhibitor of the poly(ADP-ribose) polymerases, specifically targeting ARTD10/PARP10 and ARTD1/PARP1. With IC50 values of 2.0 μM and 9.7 μM, respectively, this compound effectively modulates mono-ADP-ribosyltransferase and poly(ADP-ribose) polymerase activities. Its ability to inhibit these pathways makes ARTD10/PARP10-IN-2 valuable for research on DNA repair mechanisms and therapeutic approaches in cancer treatment.
  48. PARP1 Inhibitor

    ZINC000081009201 is a potent inhibitor of poly(ADP-ribose) polymerase 1 (PARP1) with an IC50 value of 1.4767 μM. This compound demonstrates significant potential for the study of triple-negative breast cancer (TNBC) by targeting PARP1-mediated repair pathways. Its inhibition may aid in elucidating the mechanisms of resistance and sensitivity in cancer treatment, making it a valuable tool for cancer research applications.
  49. PARP7 Inhibitor

    PARP7-IN-18 is a potent selective inhibitor of PARP7, exhibiting an IC50 value of 0.11 nM. This compound demonstrates significant anticancer activity, making it a valuable tool for research applications focused on cancer biology and the therapeutic potential of targeting PARP7. Its favorable pharmacokinetic properties further enhance its utility in in vivo studies and drug development.
  50. PARP Inhibitor

    NU 1085 is a potent poly(ADP-ribose) polymerase (PARP) inhibitor with an impressive Ki of 6 nM. This compound exhibits significant cytotoxicity towards cancer cells, with an LC50 between 83-94 μM. Additionally, NU 1085 has the potential to enhance the anticancer effects of Temozolomide, making it a valuable tool for cancer research, particularly in the study of lung cancer and other malignancies.

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