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PARP10/PARP15 Inhibitor
PARP10/15-IN-3 is a dual inhibitor targeting PARP10 and PARP15, exhibiting IC50 values of 0.14 µM and 0.40 µM, respectively. This compound effectively penetrates cellular membranes and has demonstrated the ability to rescue cells from apoptosis. PARP10/15-IN-3 serves as a valuable tool for investigating the roles of PARP10 and PARP15 in cellular processes and offers potential applications in studies related to cancer therapy and cell survival mechanisms. -
PARP-1/2/TNKS1/2 Inhibitor
PARP1/2/TNKS1/2-IN-1 is an inhibitor targeting PARP-1, PARP-2, TNKS1, and TNKS2, with IC50 values of 0.25 nM, 1.2 nM, 13.5 nM, and 4.15 nM, respectively. This compound demonstrates significant antitumor activity and promotes apoptosis, making it a valuable tool for research focused on cancer biology and therapeutic strategies. Its dual inhibitory action can facilitate the exploration of cellular repair mechanisms and enhance the understanding of poly(ADP-ribose) polymerases in cancer treatment. -
VEGFR/PARP Inhibitor
VEGFR/PARP-IN-1 is a dual inhibitor targeting Vascular Endothelial Growth Factor Receptor (VEGFR) and Poly(ADP-ribose) Polymerase (PARP), with IC50 values of 191 nM and 60.9 nM, respectively. This compound inhibits DNA damage repair mechanisms, induces apoptosis, and causes G2/M phase cell cycle arrest. It demonstrates significant antiproliferative activity against BRCA wild-type breast cancer cell lines, specifically MDA-MB-231 and MCF-7, with IC50 values of 4.1 μM and 3.5 μM, respectively. VEGFR/PARP-IN-1 is an effective antitumor and anti-metastatic agent, making it valuable for cancer research applications. -
TOPOI/PARP Dual Inhibitor
TOPOI/PARP-1-IN-1 is a dual inhibitor targeting topoisomerase I and PARP-1, demonstrating an IC50 value of 0.09 μM for PARP-1. This compound exhibits significant anti-proliferative and anti-migratory effects on cancer cells, leading to G0/G1 phase cell cycle arrest and apoptosis. In preclinical studies, TOPOI/PARP-1-IN-1 achieved a tumor growth inhibition rate of 75.4% in mice, highlighting its potential for cancer therapy research applications. -
PARP/NAMPT Inhibitor
PARP1/NAMPT-IN-2 is a potent dual inhibitor of PARP1 and NAMPT, exhibiting IC50 values of 0.8 nM and 18 nM, respectively. This compound effectively inhibits cell proliferation and migration, while inducing apoptosis in breast cancer cells. PARP1/NAMPT-IN-2 is particularly relevant for investigating therapeutic strategies in triple-negative breast cancer research. -
PARP1/2/CDK12 Inhibitor
PARP-1/2-IN-2 is a potent inhibitor of PARP1, PARP2, and CDK12, exhibiting IC50 values of 34 nM, 30 nM, and 285 nM, respectively. This compound disrupts DNA damage repair mechanisms, leading to induced cell cycle arrest and apoptosis. Notable for its efficacy in targeted therapy, PARP-1/2-IN-2 effectively inhibits the growth of triple-negative breast cancer (TNBC) cells and demonstrates significant antitumor activity in TNBC xenograft models. This makes it a valuable tool for research in cancer biology and therapeutic development. -
Dual TOP1/PARP1 Inhibitor
DiPT-4 is a dual inhibitor of topoisomerase I (TOP1) and poly (ADP-ribose) polymerase 1 (PARP1). This compound induces substantial DNA double-strand breaks, leading to cell cycle arrest and apoptosis in various cancer cell lines. DiPT-4 is particularly valuable for research focused on overcoming mechanisms of cancer drug resistance. -
PARP Inhibitor
Schisandronic acid is a potent PARP inhibitor derived from the triterpenoid compound found in Schisandra chinensis. This compound exhibits significant cytotoxicity against human breast cancer cells, particularly MCF-7, with an IC50 value of 8.06 μM. Schisandronic acid effectively induces apoptosis through the upregulation of active caspase-3 and cleavage of PARP, while also reducing reactive oxygen species generation, thereby demonstrating notable antioxidant properties. Its mechanisms of action make Schisandronic acid a valuable tool for cancer research and therapeutic investigations. -
PARP1/BRD4 Inhibitor
PARP1/BRD4-IN-1 is a selective inhibitor targeting both PARP1 and BRD4, demonstrating IC50 values of 49 nM and 202 nM, respectively. This compound effectively represses the expression and activity of these proteins, leading to synergistic inhibition of malignant pancreatic cancer cell growth. PARP1/BRD4-IN-1 is a valuable tool for exploring therapeutic strategies in cancer research, particularly in the context of PARP and BRD4 signaling pathways. -
PARP1/BRD4 Inhibitor
PARP1/BRD4-IN-2 is a selective inhibitor of PARP1 and BRD4, demonstrating IC50 values of 197 nM and 238 nM, respectively. This compound effectively impedes DNA damage repair mechanisms, inhibits the G0/G1 cell cycle transition, and induces apoptotic cell death. PARP1/BRD4-IN-2 has shown significant anti-tumor efficacy in the MDA-MB-468 xenograft mouse model, making it a valuable tool for research in triple-negative breast cancer (TNBC). -
PARP1 Inhibitor
PARP1-IN-14 is a potent inhibitor of PARP1, displaying an IC50 of 0.6 ± 0.1 nM. It demonstrates significant antiproliferative effects on MDA-MB-436 (BRCA1−/−) and Capan-1 (BRCA2−/−) cell lines, with IC50 values below 0.3 nM. This compound is valuable for cancer research, particularly in studies focused on DNA repair mechanisms and therapeutic strategies for BRCA-deficient tumors. -
PARP-1 Inhibitor
PARP1-IN-46 is a potent PARP-1 inhibitor with an IC50 of 2.4 nM, targeting the PARP-1 enzyme to modulate DNA damage response pathways. It exhibits significant anti-proliferative effects in both rat (C6) and human (U87MG) glioma cell lines by promoting PARP cleavage and inducing reactive oxygen species (ROS), ultimately leading to increased cell apoptosis. Additionally, PARP1-IN-46 effectively inhibits glioma cell migration, invasion, and colony formation, making it a valuable tool for research on glioma biology and potential therapeutic strategies. -
PARP 2 Inhibitor
PARP-2-IN-2 is a potent inhibitor of PARP-2, exhibiting an IC50 value of 0.057 μM. This compound effectively induces cell cycle arrest and apoptosis in MCF-7 breast cancer cells, highlighting its potential as a therapeutic agent in cancer research. PARP-2-IN-2 is valuable for investigations into cancer biology and therapeutic strategies targeting DNA repair mechanisms. -
PARP1 Inhibitor
KU-0058948 hydrochloride is a highly selective inhibitor of PARP1, exhibiting an IC50 of 3.4 nM. It is demonstrated to induce cell cycle arrest and apoptosis in primary myeloid leukemic cells and various myeloid leukemic cell lines. This reagent is valuable for research into the mechanisms of leukemia and the therapeutic potential of PARP inhibition in hematological malignancies. -
PARP1/NAMPT Inhibitor
PARP1/NAMPT-IN-1 is a potent dual inhibitor of PARP1 and NAMPT, exhibiting IC50 values of 1.2 nM and 6.7 nM, respectively. This compound disrupts the homologous recombination repair pathway, leading to the accumulation of DNA double-strand breaks, which induces cell cycle arrest and apoptosis. Additionally, PARP1/NAMPT-IN-1 demonstrates antimigratory effects and has shown significant antitumor activity in a breast cancer xenograft model. It is a valuable tool for research on triple-negative breast cancer (TNBC). -
PARP1/c-Met Inhibitor
PARP1/c-Met-IN-1 is a selective dual inhibitor targeting PARP1 and c-Met, demonstrating IC50 values of 3.3 nM and 32.2 nM, respectively. This compound effectively induces apoptosis and causes cell cycle arrest in the G2/M phase in MDA-MB-231 cells. Additionally, PARP1/c-Met-IN-1 has shown significant antitumor activity in murine models, making it a valuable tool for cancer research and therapeutic development. -
PARP1 Inhibitor
PARP1-IN-10 is a potent inhibitor of PARP1, exhibiting an IC50 value of 50.62 nM in vitro without inducing cytotoxic effects. This compound induces cell cycle arrest at the G2/M phase and promotes apoptosis, thereby enhancing the cytotoxic efficacy of temozolomide (TMZ). PARP1-IN-10 is valuable for research in cancer biology and therapeutics, particularly in understanding the interplay between DNA repair mechanisms and chemotherapeutic sensitivity. -
PARP1 Inhibitor
PARP1-IN-55 is a selective inhibitor of PARP1, demonstrating potent activity with an IC50 of 0.019 μM. It exhibits considerable anti-proliferative effects on MCF-7 breast cancer cells, with an IC50 of 3.6 μM. By inhibiting the PARP1-mediated DNA damage repair pathway, PARP1-IN-55 induces reactive oxygen species accumulation, disrupts mitochondrial membrane potential, and promotes apoptosis while inhibiting cancer cell migration, invasion, and colony formation. This compound serves as a valuable tool for investigating breast cancer biology and therapeutic strategies. - Trifloxystrobin (CGA 279202) is a fungicide, with EC50s of 23.0 μg/L and 1.7 μg/L for Daphnia magna neonate and embryos, respectively, after treatment for 48 h.
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PARP1/PARP2 inhibitor
E7449 is a potent PARP1 and PARP2 inhibitor and also inhibits TNKS1 and TNKS2, with IC50s of 2.0, 1.0, ?50 and ?50 nM for PARP1, PARP2, TNKS1 and TNKS2, respectively, using 32P-NAD+ as substrate. -
PARP1 inhibitor
Niraparib R-enantiomer (MK-4827 R-enantiomer) is an excellent PARP1 inhibitor with IC50 of 2.4 nM. -
NAD+ competitive inhibitor of PARP7
RBN-2397 is a potent, accross species and orally active NAD+ competitive inhibitor of PARP7 (IC50<3 nM). -
anticancer agent
5,7,4'-Trimethoxyflavone is isolated from Kaempferia parviflora (KP) that is a famous medicinal plant from Thailand. 5,7,4'-Trimethoxyflavone induces apoptosis, as evidenced by increments of sub-G1 phase, DNA fragmentation, annexin-V/PI staining, the Bax/Bcl-xL ratio, proteolytic activation of caspase-3, and degradation of poly (ADP-ribose) polymerase (PARP) protein.5,7,4'-Trimethoxyflavone is significantly effective at inhibiting proliferation of SNU-16 human gastric cancer cells in a concentration dependent manner. -
PARP inhibitor
Veliparib dihydrochloride is a potent PARP inhibitor, inhibiting PARP1 and PARP2 with Kis of 5.2 and 2.9 nM, respectively. -
PARP1 Degrader
iRucaparib-AP6 is a potent PROTAC compound that selectively targets PARP1 for degradation. This non-trapping degrader inhibits both the catalytic activity and scaffolding functions of PARP1, effectively disrupting its role in DNA repair pathways. iRucaparib-AP6 is useful in studying the biology of PARP1 and its implications in cancer research, particularly in understanding resistance mechanisms to PARP inhibitors. -
PROTAC PARP1 Degrader
PROTAC PARP1 Degrader functions as a targeted protein degradation agent that specifically targets PARP1 through the MDM2 E3 ligase. This compound effectively induces PARP1 cleavage and promotes apoptosis in cancer cells, making it valuable for research in cancer therapies. The structure includes the MDM2 ligand, the PARP1 ligand, and a PEG-based linker, facilitating efficient delivery and degradation of the target protein. -
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. -
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. -
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. -
PARP-1/HDAC Inhibitor
PARP-1/HDAC-IN-1 is a dual inhibitor targeting PARP-1 and HDAC6, exhibiting IC50 values of 68.90 nM and 510 nM, respectively. This compound demonstrates significant anticancer properties, as well as anti-migration and anti-angiogenesis activities. Its applications are relevant in cancer research, particularly in studies exploring the modulation of DNA repair mechanisms and cellular signaling pathways. -
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. -
PARP
PARP-1/2-IN-1 is a highly effective inhibitor of the poly(ADP-ribose) polymerases PARP-1 and PARP-2, exhibiting IC50 values of 0.51 nM and 23.11 nM, respectively. This compound plays a critical role in cancer research by targeting DNA repair mechanisms, enhancing the efficacy of chemotherapeutic agents, and potentially improving cancer treatment outcomes. It is a valuable tool for studying PARP-related cellular processes and investigating therapeutic strategies in oncology. -
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. -
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. -
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. -
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. -
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. -
PARP PROTAC Degrader
PROTAC PARP1 degrader-2 is a targeted protein degradation compound designed to specifically degrade PARP1. With a DC50 of less than 10 nM in MDA-MB-231 cells, it demonstrates potent efficacy in inducing degradation. Additionally, this compound inhibits cell viability in MDA-MB-436 cells with an IC50 of less than 100 nM, making it a valuable tool for research in cancer therapeutics and the mechanistic study of PARP1 function. -
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. -
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. -
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. -
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. -
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.

