PI3K
Phosphoinositide 3-kinase
PI3K (Phosphoinositide 3-kinase), via phosphorylation of the inositol lipid phosphatidylinositol 4,5-bisphosphate (PI(4,5)P2), forms the second messenger molecule phosphatidylinositol (3,4,5)-trisphosphate (PI(3,4,5)P3) which recruits and activates pleckstrin homology domain containing proteins, leading to downstream signalling events crucial for proliferation, survival and migration. Class I PI3K enzymes consist of four distinct catalytic isoforms, PI3Kα, PI3Kβ, PI3Kδ and PI3Kγ.
There are three major classes of PI3K enzymes, being class IA widely associated to cancer. Class IA PI3K are heterodimeric lipid kinases composed of a catalytic subunit (p110α, p110β, or p110δ; encoded by PIK3CA, PIK3CB, and PIK3CD genes, respectively) and a regulatory subunit (p85).
The PI3K pathway plays an important role in many biological processes, including cell cycle progression, cell growth, survival, actin rearrangement and migration, and intracellular vesicular transport.
PI3K Isoform Specific Products
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PI3Kα
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PI3Kβ
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PI3Kγ
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PI3Kδ
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PI3KC2α
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PI3KC2β
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PI3KC2γ
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Vps34
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PI3K
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PI3KC3
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p120γ
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PI3K Inhibitors
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PI3K Agonists
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PI3K Antagonist
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PI3K Activators
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PI3K Modulators
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PI3K Inducers
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PI3K Degraders
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PI3K Controls
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PI3K Substrate
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PI3K Ligands
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PI3K Related Products (1133)
Related Products (1133)
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Antibodies (16)
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PI3K Signaling Pathway
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PI3K Isoform Comparison
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FASN-IN-8
0 ImagesCat. No.: HY-181801FASN-IN-8 is a fatty acid synthase (FASN) inhibitor. FASN-IN-8 inhibits FASN-mediated de novo lipogenesis. FASN-IN-8 blocks PI3K/AKT pathway activation, inhibits cancer cells proliferation, migration and invasion. FASN-IN-8 induces apoptosis and ROS production. FASN-IN-8 can be used for the research of hepatocellular carcinoma. -
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Astringin (Standard)
0 ImagesCat. No.: HY-N4093RCAS No.: 29884-49-9Synonyms: trans-Astringin (Standard)Astringin (trans-Astringin) (Standard) is the analytical standard of Astringin (HY-N4093). This product is intended for research and analytical applications. Astringin (trans-Astringin) is an orally active natural flavonoid compound. Astringin can inhibit the production of oxidative stress, inflammatory factors, etc. Astringin has multiple activities such as anti-oxidation, anti-inflammation, and anti-apoptosis. Astringin is also an inhibitor of ferroptosis. Astringin can be used in the research of diseases such as acute lung injury. -
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ROCK2-IN-13
0 ImagesCat. No.: HY-179498ROCK2-IN-13 is a selective ROCK2 inhibitor. ROCK2-IN-13 reduces nuclear expression by disrupting the interaction of ROCK2 with transcriptional co activators p300> and PGC 1α, repressing oncogenic transcription. ROCK2-IN-13 activates FOXO1 driven PTEN expression, leading to suppression of the PI3K/Akt pathway, induction of G2/M cell cycle arrest, and promotion of apoptosis. ROCK2-IN-13 ablates the nuclear transcriptional function of ROCK2 that sustains oncogenic signaling and restores the tumor suppressive PTEN/FOXO1 axis. ROCK2-IN-13 can be used for prostate cancer reseach. -
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KRAS-IN-55
0 ImagesCat. No.: HY-181883KRAS-IN-55 is a pan-KRAS inhibitor with IC50 values of 4.3, 9.6 and 1.6 nM against KRASG12C, KRASG12D and KRASG12V, respectively. KRAS-IN-55 induces the formation of a new binding pocket on KRAS, thereby forming a high-affinity ternary complex with cyclophilin A (CYPA), inhibiting the interactions of KRAS with downstream effectors RAF and PI3K, and blocking oncogenic MAPK and PI3K signaling pathways. KRAS-IN-55 is applicable to cancer research such as colorectal cancer and non-small cell lung cancer. -
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- PI3K/mTOR Inhibitor-8
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Acetyl-Exenatide
0 ImagesCat. No.: HY-P4790CAS No.: 305815-28-5Acetyl-Exenatideyes is an acetylated derivative of Exenatide. Exenatide has the function similar to insulin, which can be used for research of type 2 diabetes. Exenatide can promote Th17 differentiation, inhibits Tregs differentiation, downregulates PI3K/Akt/FoxO1 phosphorylation. -
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Norflurazon-13C,d3
0 ImagesCat. No.: HY-W778236CAS No.: 1346603-47-1Synonyms: SAN 9789-13C,d3Norflurazon-13C,d3 (SAN 9789-13C,d3) is the d3, 13C-labeled Norflurazon (HY-114849). Norflurazon (SAN 9789) is a pre-emergence Herbicide. Norflurazon non-competitively inhibits phytoene desaturase by competing with the enzyme cofactor and disrupts carotenoid biosynthesis, thereby leading to chlorophyll photodegradation and chlorosis. Norflurazon inhibits MGDG synthase, CDP-choline phosphotransferase, Omega-3 FAD7 desaturase, and PG delta-3-trans desaturase, and activates LysoPC-acyltransferase and Omega-3 FAD3 desaturase. Norflurazon inhibits photosynthetic membrane organization, mitochondrial respiration, ATP production, PI3K signaling, and ERK1/2 phosphorylation. Norflurazon activates MAPK P38 phosphorylation and ER stress signaling. Norflurazon induces morphological malformations and cardiovascular effects in zebrafish embryos. -
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PI3Kβ-IN-1
0 ImagesCat. No.: HY-145338CAS No.: 2215098-77-2PI3Kβ-IN-1 (compound (P)-14) is a selective and orally active PI3Kβ inhibitor, with an IC50 of 2 nM. -
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EGFR-IN-182
0 ImagesCat. No.: HY-178955EGFR-IN-182 (Compound 4) is an EGFR inhibitor with an IC50 value of 199 nM. EGFR-IN-182 inhibits HSP90 and PI3K, with IC50 values of 5.007 and 13.596 μM respectively. EGFR-IN-182 exhibits strong anti-proliferative activity against MCF-7 and MDA-MB-231 cells. EGFR-IN-182 downregulates Cyclin D1, inducing cell cycle arrest; it enhances the activity of caspase-9, inducing cell apoptosis. EGFR-IN-182 downregulates the expressions of ERK and AKT. EGFR-IN-182 can be used for research on breast cancer. -
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XJTU-L453
0 ImagesCat. No.: HY-169019CAS No.: 3008290-92-1XJTU-L453 is a PI3Kα inhibitor with an IC50 value of 0.4 nM. XJTU-L453 can inhibit the proliferation of breast cancer cell lines T47D and MCF7, with IC50 values of 0.2 μM and 0.5 μM, respectively. XJTU-L453 can inhibit the PI3K pathway, induce cell cycle arrest, and trigger cell apoptosis (apoptosis). XJTU-L453 also has antitumor activity in MCF7 xenograft mice. -
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Panulisib
0 ImagesCat. No.: HY-16769CAS No.: 1356033-60-7Synonyms: P7170; AK151761Panulisib (P7170; AK151761) is an orally active inhibitor of PI3K (IC50 = 2.2 nM) and mTOR (IC50 = 4.4 nM). Panulisib inhibits ALK1 and DNA-PK, two enzymes that respectively participate in angiogenesis and DNA repair, with IC50 values of 47 nM and 1.5 nM respectively. Panulisib inhibits cell proliferation and apoptosis. Panulisib can be used for research on breast cancer and non-small cell lung cancer. -
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PROTAC HIF-1α degrader-2
0 ImagesCat. No.: HY-179424CAS No.: 3095636-64-6PROTAC HIF-1α degrader-2 is a highly efficient and selective PROTAC degrader targeting HIF-1α. PROTAC HIF-1α degrader-2 promotes HIF-1α degradation via the ubiquitin-proteasome pathway by facilitating the formation of a HIF-1α/VHL ternary complex. PROTAC HIF-1α degrader-2 inhibits HeLa cell proliferation, migration, and colony formation, and induces apoptosis. PROTAC HIF-1α degrader-2 reduces p-MEK and p-AKT expression in the MAPK and PI3K/AKT pathways. PROTAC HIF-1α degrader-2 can be used for the study of cervical cancer. -
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Flupentixol
0 ImagesFlupentixol is an orally active D1/D2 dopamine receptor antagonist and new PI3K inhibitor (PI3Kα IC50=127 nM). Flupentixol shows anti-proliferative activity to cancer cells and induces apoptosis. Flupentixol can also be used in schizophrenia, anxiolytic and depressive research. -
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EGFR-IN-213
0 ImagesCat. No.: HY-183754CAS No.: 3115216-45-7EGFR-IN-213 is a selective inhibitor of EGFRL858R/T790M/C797S with a human IC50 of 0.48 nM. EGFR-IN-213 acts as an antiproliferative agent, inducing apoptosis and cell cycle arrest, and inhibiting colony formation, cell migration, and tube formation. EGFR-IN-213 can be used for the research of non-small cell lung cancer, chronic myeloid leukemia, gastric cancer, prostate cancer. -
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Cajanol
0 ImagesCat. No.: HY-N10342CAS No.: 61020-70-0Cajanol is an isoflavanone that can be isolated from the roots of Cajanus cajan (L.) Millsp.. Cajanol inhibits cancer cell proliferation and induces cancer cell apoptosis. Cajanol promotes the expression of Bax, inhibits the expression of Bcl-2, activates caspase-9 and caspase-3, induces PARP cleavage, arrests the cell cycle at the G2/M phase, generates ROS, disrupts mitochondrial membrane potential and triggers cytochrome c release. Cajanol induces bacterial DNA damage, disrupts bacterial cell membranes, and exerts antibacterial activity in vitro. Cajanol reduces the expression of PI3K, inhibits the phosphorylation of Akt and NF-κB, downregulates the expression and transport function of P-gp, restores the sensitivity of drug-resistant cancer cells to Paclitaxel, and inhibits the growth of Paclitaxel-resistant metastatic ovarian tumors. Cajanol is applicable to research related to breast cancer, ovarian cancer and bacterial infections. -
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PI3Kγ inhibitor 5
0 ImagesCat. No.: HY-139880CAS No.: 2566569-31-9PI3Kγ inhibitor 5 is an inhibitor of phosphoinositide 3-kinase γ (PI3Kγ) with an IC50 value of 34 nM. -
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Solenopsin
0 ImagesCat. No.: HY-16461CAS No.: 137038-57-4Synonyms: (-)-Solenopsin ASolenopsin ((-)-Solenopsin A) is an ATP-competitive and selective Akt-1 inhibitor with an IC50 of 5-10 μM, and also acts as an RSK1 inhibitor. Solenopsin inhibits the activities of PDK1 in lipid rafts, downregulates PI3K, blocks PI3K-dependent generation of 3-phosphoinositides, and suppresses the phosphorylation of FOXO1a. Solenopsin induces Mitophagy and ROS production, reduces mitochondrial oxygen consumption, and exhibits antiproliferative and antiangiogenic activities. Solenopsin can be used in research related to hyperproliferative skin diseases and malignant diseases. -
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PI3Kα-IN-33
0 ImagesCat. No.: HY-183787PI3Kα-IN-33 is an orally active and selective PI3Kα inhibitor with an IC50 of 9.9 nM. PI3Kα-IN-33 blocks the PI3K/Akt/mTOR signaling pathway. PI3Kα-IN-33 induces apoptosis and triggers G2/M-phase arrest via Cyclin B1 and CDK1 downregulation. PI3Kα-IN-33 can be used for the research of colorectal cancer. -
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Oxypeucedanin (Standard)
0 ImagesOxypeucedanin (Standard) is a furanocoumarin derivative found in Angelica dahurica. Oxypeucedanin (Standard) is an orally active PI3K/AKT/NF-κB, MAPK, and ROS inhibitor. Oxypeucedanin (Standard) induces cell cycle arrest and apoptosis. Oxypeucedanin (Standard) inhibits hKv1.5 channel currents (IC50: 76 nM). Oxypeucedanin (Standard) exhibits anticancer, anti-inflammatory, antioxidant and antiarrhythmic activities. -
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SH-273
0 ImagesCat. No.: HY-177908CAS No.: 3084159-97-4SH-273 is a dual targeting compound. SH-273 has dual function to stimulate STING function (EC50: 100 nM) and inhibits PI3Kγ (IC50: 7 nM). SH-273 can be used in the research of pancreatic cancer. -
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Phosphatidylinositol 3 kinases (PI3Ks) are a family of lipid kinases that integrate signals from growth factors, cytokines and other environmental cues, translating them into intracellular signals that regulate multiple signaling pathways. These pathways control many physiological functions and cellular processes, which include cell proliferation, growth, survival, motility and metabolism[1].
In the absence of activating signals, p85 interacts with p110 and inhibits p110 kinase activity. Following receptor tyrosine kinase (RTK) or G protein-coupled receptor (GPCR) activation, class I PI3Ks are recruited to the plasma membrane, where p85 inhibition of p110 is relieved and p110 phosphorylates PIP2 to generate PIP3. The activated insulin receptor recruits intracellular adaptor protein IRS1. Phosphorylation of IRS proteins on tyrosine residues by the insulin receptor initiates the recruitment and activation of PI3K. PIP3 acts as a second messenger which promotes the phosphorylation of Akt at Thr308 by PDK-1. RTK activation can also trigger Ras-Raf-MEK-ERK pathway. Activated Akt, ERK and RSK phosphorylate TSC2 at multiple sites to inhibit TSC1-TSC2-TBC1D7, which is the TSC complex that acts as a GTPase-activating protein (GAP) for the small GTPase RHEB. During inhibition of the TSC complex, GTP-loaded RHEB binds the mTOR catalytic domain to activate mTORC1. Glycogen synthase kinase 3β (GSK-3β) activates the TSC complex by phosphorylating TSC2 at Ser1379 and Ser1383. Phosphorylation of these two residues requires priming by AMPK-dependent phosphorylation of Ser1387. Wnt signaling inhibits GSK-3β and the TSC complex, and thus activates mTORC1. mTORC2 is activated by Wnt in a manner dependent on the small GTPase RAC1. Akt activation contributes to diverse cellular activities which include cell survival, growth, proliferation, angiogenesis, metabolism, and migration. Important downstream targets of Akt are GSK-3, FOXOs, BAD, AS160, eNOS, and mTOR. mTORC1 negatively regulates autophagy through multiple inputs, including inhibitory phosphorylation of ULK1, and promotes protein synthesis through activation of the translation initiation promoter S6K and through inhibition of the inhibitory mRNA cap binding 4E-BP1[1][2][3].
PI3Kδ is a heterodimeric enzyme, typically composed of a p85α regulatory subunit and a p110δ catalytic subunit. In T cells, the TCR, the costimulatory receptor ICOS and the IL-2R can activate PI3Kδ. In B cells, PI3Kδ is activated upon crosslinking of the B cell receptor (BCR). The BCR co-opts the co-receptor CD19 or the adaptor B cell associated protein (BCAP), both of which have YXXM motifs to which the p85α SH2 domains can bind. In lumphocytes, BTK and ITK contribute to the activation of PLCγ and promotes the generation of DAG and the influx of Ca2+, which in turn activate PKC and the CARMA1-, BCL 10- and MALT1 containing (CBM) complex. The resulting NF-κB inhibitor kinase (IKK) activation leads to the phosphorylation and the degradation of IκB, and to the nuclear accumulation of the p50-p65 NF-κB heterodimer. MyD88 is an adapter protein that mediates signal transduction for most TLRs and leads to activation of PI3K[4].
Reference:
[1]. Thorpe LM, et al. PI3K in cancer: divergent roles of isoforms, modes of activation and therapeutic targeting.Nat Rev Cancer. 2015 Jan;15(1):7-24.
[2]. Vanhaesebroeck B, et al. PI3K signalling: the path to discovery and understanding.Nat Rev Mol Cell Biol. 2012 Feb 23;13(3):195-203.
[3]. Fruman DA, et al. The PI3K Pathway in Human Disease.Cell. 2017 Aug 10;170(4):605-635.
[4]. Lucas CL, et al. PI3Kδ and primary immunodeficiencies.Nat Rev Immunol. 2016 Nov;16(11):702-714.
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