MedKoo Cat#: 406473 | Name: SU5402
Featured New

Description:

WARNING: This product is for research use only, not for human or veterinary use.

SU5402 is a potent and selective vascular endothelial growth factor receptor (VEGFR) and fibroblast growth factor receptor (FGFR) inhibitor (IC50 values are 0.02, 0.03, 0.51 and > 100 μ M at VEGFR2, FGFR1, PDGFR β and EGFR respectively).

Chemical Structure

SU5402
SU5402
CAS#215543-92-3

Theoretical Analysis

MedKoo Cat#: 406473

Name: SU5402

CAS#: 215543-92-3

Chemical Formula: C17H16N2O3

Exact Mass: 296.1161

Molecular Weight: 296.32

Elemental Analysis: C, 68.91; H, 5.44; N, 9.45; O, 16.20

Price and Availability

Size Price Availability Quantity
10mg USD 110.00 Ready to ship
25mg USD 220.00 Ready to ship
50mg USD 385.00 Ready to ship
100mg USD 685.00 Ready to ship
200mg USD 1,250.00 Ready to ship
500mg USD 2,650.00 Ready to ship
1g USD 3,650.00 Ready to ship
Show More
Bulk Inquiry
Buy Now
Add to Cart
Related CAS #
No Data
Synonym
SU5402; SU-5402; SU 5402.
IUPAC/Chemical Name
(Z)-3-(4-methyl-2-((2-oxoindolin-3-ylidene)methyl)-1H-pyrrol-3-yl)propanoic acid.
InChi Key
JNDVEAXZWJIOKB-JYRVWZFOSA-N
InChi Code
InChI=1S/C17H16N2O3/c1-10-9-18-15(11(10)6-7-16(20)21)8-13-12-4-2-3-5-14(12)19-17(13)22/h2-5,8-9,18H,6-7H2,1H3,(H,19,22)(H,20,21)/b13-8-
SMILES Code
O=C(O)CCC1=C(/C=C2C(NC3=C\2C=CC=C3)=O)NC=C1C
Appearance
Orange solid powder
Purity
>98% (or refer to the Certificate of Analysis)
Shipping Condition
Shipped under ambient temperature as non-hazardous chemical. This product is stable enough for a few weeks during ordinary shipping and time spent in Customs.
Storage Condition
Dry, dark and at 0 - 4 C for short term (days to weeks) or -20 C for long term (months to years).
Solubility
Soluble in DMSO, not in water
Shelf Life
>2 years if stored properly
Drug Formulation
This drug may be formulated in DMSO
Stock Solution Storage
0 - 4 C for short term (days to weeks), or -20 C for long term (months).
HS Tariff Code
2934.99.9001
More Info
        
Biological target:
SU5402 is a tyrosine kinase inhibitor with IC50s of 20 nM, 30 nM, and 510 nM for VEGFR2, FGFR1, and PDGFRβ, respectively.
In vitro activity:
To be determined
In vivo activity:
To be determined
Solvent mg/mL mM
Solubility
DMSO 29.6 100.00
Note: There can be variations in solubility for the same chemical from different vendors or different batches from the same vendor. The following factors can affect the solubility of the same chemical: solvent used for crystallization, residual solvent content, polymorphism, salt versus free form, degree of hydration, solvent temperature. Please use the solubility data as a reference only. Warming and sonication will facilitate dissolving. Still have questions? Please contact our Technical Support scientists.

Preparing Stock Solutions

The following data is based on the product molecular weight 296.32 Batch specific molecular weights may vary from batch to batch due to the degree of hydration, which will affect the solvent volumes required to prepare stock solutions.

Recalculate based on batch purity %
Concentration / Solvent Volume / Mass 1 mg 5 mg 10 mg
1 mM 1.15 mL 5.76 mL 11.51 mL
5 mM 0.23 mL 1.15 mL 2.3 mL
10 mM 0.12 mL 0.58 mL 1.15 mL
50 mM 0.02 mL 0.12 mL 0.23 mL
Formulation protocol:
To be determined
In vitro protocol:
To be determined
In vivo protocol:
To be determined
1: Schneider A, Mijalski T, Schlange T, Dai W, Overbeek P, Arnold HH, Brand T. The homeobox gene NKX3.2 is a target of left-right signalling and is expressed on opposite sides in chick and mouse embryos. Curr Biol. 1999 Aug 26;9(16):911-4. doi: 10.1016/s0960-9822(99)80397-2. PMID: 10469600. 2: Klein RD, Maliner-Jongewaard MS, Udayakumar TS, Boyd JL, Nagle RB, Bowden GT. Promatrilysin expression is induced by fibroblast growth factors in the prostatic carcinoma cell line LNCaP but not in normal primary prostate epithelial cells. Prostate. 1999 Dec 1;41(4):215-23. doi: 10.1002/(sici)1097-0045(19991201)41:4<215::aid-pros1>3.0.co;2-v. PMID: 10544294. 3: Suzuki A, Palmer G, Bonjour JP, Caverzasio J. Stimulation of sodium-dependent phosphate transport and signaling mechanisms induced by basic fibroblast growth factor in MC3T3-E1 osteoblast-like cells. J Bone Miner Res. 2000 Jan;15(1):95-102. doi: 10.1359/jbmr.2000.15.1.95. PMID: 10646118. 4: Poss KD, Shen J, Keating MT. Induction of lef1 during zebrafish fin regeneration. Dev Dyn. 2000 Oct;219(2):282-6. doi: 10.1002/1097-0177(2000)9999:9999<::aid-dvdy1045>3.3.co;2-3. PMID: 11002347. 5: Udayakumar TS, Klein RD, Maliner MS, Nagle RB, Bowden GT. Aberrant expression of fibroblast growth factor receptor-1 in prostate epithelial cells allows induction of promatrilysin expression by fibroblast growth factors. Int J Cancer. 2001 Jan 15;91(2):187-92. doi: 10.1002/1097-0215(200002)9999:9999<::aid- ijc1023>3.3.co;2-n. PMID: 11146443. 6: Hayashi H, Ishisaki A, Suzuki M, Imamura T. BMP-2 augments FGF-induced differentiation of PC12 cells through upregulation of FGF receptor-1 expression. J Cell Sci. 2001 Apr;114(Pt 7):1387-95. doi: 10.1242/jcs.114.7.1387. PMID: 11257004. 7: Rosenthal R, Thieme H, Strauss O. Fibroblast growth factor receptor 2 (FGFR2) in brain neurons and retinal pigment epithelial cells act via stimulation of neuroendocrine L-type channels (Ca(v)1.3). FASEB J. 2001 Apr;15(6):970-7. doi: 10.1096/fj.00-0188com. PMID: 11292657. 8: Wormstone IM, Del Rio-Tsonis K, McMahon G, Tamiya S, Davies PD, Marcantonio JM, Duncan G. FGF: an autocrine regulator of human lens cell growth independent of added stimuli. Invest Ophthalmol Vis Sci. 2001 May;42(6):1305-11. Erratum in: Invest Ophthalmol Vis Sci 2001 Jul;42(8):1690. PMID: 11328744. 9: Montero JA, Gañan Y, Macias D, Rodriguez-Leon J, Sanz-Ezquerro JJ, Merino R, Chimal-Monroy J, Nieto MA, Hurle JM. Role of FGFs in the control of programmed cell death during limb development. Development. 2001 Jun;128(11):2075-84. doi: 10.1242/dev.128.11.2075. PMID: 11493529. 10: Raible F, Brand M. Tight transcriptional control of the ETS domain factors Erm and Pea3 by Fgf signaling during early zebrafish development. Mech Dev. 2001 Sep;107(1-2):105-17. doi: 10.1016/s0925-4773(01)00456-7. PMID: 11520667. 11: Kim GJ, Nishida H. Role of the FGF and MEK signaling pathway in the ascidian embryo. Dev Growth Differ. 2001 Oct;43(5):521-33. doi: 10.1046/j.1440-169x.2001.00594.x. PMID: 11576169. 12: Shinya M, Koshida S, Sawada A, Kuroiwa A, Takeda H. Fgf signalling through MAPK cascade is required for development of the subpallial telencephalon in zebrafish embryos. Development. 2001 Nov;128(21):4153-64. doi: 10.1242/dev.128.21.4153. PMID: 11684653. 13: Demiroglu A, Steer EJ, Heath C, Taylor K, Bentley M, Allen SL, Koduru P, Brody JP, Hawson G, Rodwell R, Doody ML, Carnicero F, Reiter A, Goldman JM, Melo JV, Cross NC. The t(8;22) in chronic myeloid leukemia fuses BCR to FGFR1: transforming activity and specific inhibition of FGFR1 fusion proteins. Blood. 2001 Dec 15;98(13):3778-83. doi: 10.1182/blood.v98.13.3778. PMID: 11739186. 14: Mandler M, Neubüser A. FGF signaling is necessary for the specification of the odontogenic mesenchyme. Dev Biol. 2001 Dec 15;240(2):548-59. doi: 10.1006/dbio.2001.0490. PMID: 11784082. 15: Maroon H, Walshe J, Mahmood R, Kiefer P, Dickson C, Mason I. Fgf3 and Fgf8 are required together for formation of the otic placode and vesicle. Development. 2002 May;129(9):2099-108. doi: 10.1242/dev.129.9.2099. PMID: 11959820. 16: Hayashi T, Mizuno N, Owaribe K, Kuroiwa A, Okamoto M. Regulated lens regeneration from isolated pigmented epithelial cells of newt iris in culture in response to FGF2/4. Differentiation. 2002 May;70(2-3):101-8. doi: 10.1046/j.1432-0436.2002.700205.x. PMID: 12076337. 17: Moftah MZ, Downie SA, Bronstein NB, Mezentseva N, Pu J, Maher PA, Newman SA. Ectodermal FGFs induce perinodular inhibition of limb chondrogenesis in vitro and in vivo via FGF receptor 2. Dev Biol. 2002 Sep 15;249(2):270-82. doi: 10.1006/dbio.2002.0766. PMID: 12221006. 18: Hoffman MP, Kidder BL, Steinberg ZL, Lakhani S, Ho S, Kleinman HK, Larsen M. Gene expression profiles of mouse submandibular gland development: FGFR1 regulates branching morphogenesis in vitro through BMP- and FGF-dependent mechanisms. Development. 2002 Dec;129(24):5767-78. doi: 10.1242/dev.00172. PMID: 12421715. 19: Noble PJ, Wilde G, White MR, Pennington SR, Dockray GJ, Varro A. Stimulation of gastrin-CCKB receptor promotes migration of gastric AGS cells via multiple paracrine pathways. Am J Physiol Gastrointest Liver Physiol. 2003 Jan;284(1):G75-84. doi: 10.1152/ajpgi.00300.2002. PMID: 12488236. 20: Huang JX, Feldmeier M, Shui YB, Beebe DC. Evaluation of fibroblast growth factor signaling during lens fiber cell differentiation. Invest Ophthalmol Vis Sci. 2003 Feb;44(2):680-90. doi: 10.1167/iovs.01-1177. PMID: 12556399.