Welcome to LookChem.com Sign In|Join Free
  • or
6-Methoxy-1H-indole-2-carboxylic acid ethyl ester is a synthetic chemical compound that falls under the category of esters. It is characterized by a molecular formula of C13H13NO3 and a molar mass of 231.247 g/mol. 6-Methoxy-1H-indole-2-carboxylic acid ethyl ester is built upon the indole skeleton, which is a bicyclic structure consisting of a benzene ring fused to a pyrrole ring. A distinctive feature of 6-Methoxy-1H-indole-2-carboxylic acid ethyl ester is the presence of an ethoxy carboxylate functional group, which is why it is referred to as an "ethyl ester." Additionally, it has a methoxy group attached to the indole ring, hence the "methoxy" in its name. 6-Methoxy-1H-indole-2-carboxylic acid ethyl ester is not found naturally and is typically synthesized in laboratory settings, with its properties and applications varying across different scientific fields.

15050-04-1

Post Buying Request

15050-04-1 Suppliers

Recommended suppliers

  • Product
  • FOB Price
  • Min.Order
  • Supply Ability
  • Supplier
  • Contact Supplier

15050-04-1 Usage

Uses

Used in Pharmaceutical Industry:
6-Methoxy-1H-indole-2-carboxylic acid ethyl ester is used as a pharmaceutical intermediate for the synthesis of various drugs. Its unique structure and functional groups make it a valuable building block in the development of new therapeutic agents.
Used in Chemical Research:
In the field of chemical research, 6-Methoxy-1H-indole-2-carboxylic acid ethyl ester is used as a reagent or a starting material for the synthesis of more complex organic compounds. Its indole-based structure allows for further functionalization and modification, making it a versatile compound for exploring new chemical reactions and pathways.
Used in Material Science:
6-Methoxy-1H-indole-2-carboxylic acid ethyl ester is employed as a component in the development of new materials, such as polymers and coatings. Its chemical properties can be exploited to create materials with specific characteristics, such as improved stability, solubility, or reactivity.
Used in Analytical Chemistry:
6-Methoxy-1H-indole-2-carboxylic acid ethyl ester is used as a reference material or a standard in analytical chemistry for the calibration of instruments and the development of new analytical methods. Its well-defined structure and properties make it suitable for such applications, ensuring accurate and reliable measurements.

Check Digit Verification of cas no

The CAS Registry Mumber 15050-04-1 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 1,5,0,5 and 0 respectively; the second part has 2 digits, 0 and 4 respectively.
Calculate Digit Verification of CAS Registry Number 15050-04:
(7*1)+(6*5)+(5*0)+(4*5)+(3*0)+(2*0)+(1*4)=61
61 % 10 = 1
So 15050-04-1 is a valid CAS Registry Number.
InChI:InChI=1/C12H13NO3/c1-3-16-12(14)11-6-8-4-5-9(15-2)7-10(8)13-11/h4-7,13H,3H2,1-2H3

15050-04-1SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 18, 2017

Revision Date: Aug 18, 2017

1.Identification

1.1 GHS Product identifier

Product name Ethyl 6-methoxy-1H-indole-2-carboxylate

1.2 Other means of identification

Product number -
Other names Indole-2-carboxylic acid,6-methoxy-,ethyl ester

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:15050-04-1 SDS

15050-04-1Relevant academic research and scientific papers

Development of a series of (1-benzyl-3-(6-methoxypyrimidin-3-yl)-5-(trifluoromethoxy)-1h-indol-2-yl)methanols as selective protease activated receptor 4 (PAR4) antagonists with in vivo utility and activity against γ-thrombin

Temple, Kayla J.,Duvernay, Matthew T.,Young, Summer E.,Wen, Wandong,Wu, Wenjun,Maeng, Jae G.,Blobaum, Anna L.,Stauffer, Shaun R.,Hamm, Heidi E.,Lindsley, Craig W.

, p. 7690 - 7695 (2016)

Here, we describe the development of a series of highly selective PAR4 antagonists with nanomolar potency and selectivity versus PARI, derived from the indole-based 3. Of these, 9j (PAR4 IC50 = 445 nM, PARI response IC50 > 30 μM) and lOh (PAR4 IC50 = 179 nM, PARI response IC50 > 30 μM) maintained an overall favorable in vitro DMPK profile, encouraging rat/mouse in vivo pharmacokinetics (PK) and activity against γ-thrombin.

AROMATIC RING DERIVATIVE AS IMMUNOREGULATION AND PREPARATION METHOD AND APPLICATION OF AROMATIC RING DERIVATIVE

-

Paragraph 0235-0236, (2021/10/15)

Relating to a compound represented by formula (I) and a pharmaceutically acceptable salt of the compound, and an application of the compound as an S1P1 agonist.

Synthesis method for preparing 2-substituted indole derivative

-

Paragraph 0143-0146, (2019/05/28)

The invention relates to a synthesis method for preparing a 2-substituted indole derivative. The method includes the following steps: mixing aromatic amine compounds (I), ketone compounds (II) and a drying agent in an organic solvent; adding a palladium catalyst; and reacting in an aerobic weak acid environment to prepare the indole compounds (III). (I), (II) and (III) are as shown in the specification, wherein R1 is selected from hydrogen, C1-C6 alkyl, C1-C6 alkoxy, C1-C6 alkanoyl, C2-C6 alkenyl, C2-C6 alkynyl, halogen, hydroxyl, substituted or unsubstituted amino, substituted or unsubstituted phenyl, pyridyl and heterocyclic aryl; (I) can be pyridylamine, pyrimidylamine, pyridazinam or pyrazinamide which may further be substituted or unsubstituted; and the substituents are selected fromone or more C1-C6 alkyl, C1-C6 alkoxy, C1-C6 alkanoyl, C2-C6 alkenyl, C2-C6 alkynyl, halogen, hydroxyl, amino; and R2 is selected from C1-C6 alkyl, formate groups or C1-C6 alkylamide groups.

Design, synthesis, in vitro antiproliferative activity and apoptosis-inducing studies of 1-(3′,4′,5′-trimethoxyphenyl)-3-(2′-alkoxycarbonylindolyl)-2-propen-1-one derivatives obtained by a molecular hybridisation approach

Preti, Delia,Romagnoli, Romeo,Rondanin, Riccardo,Cacciari, Barbara,Hamel, Ernest,Balzarini, Jan,Liekens, Sandra,Schols, Dominique,Estévez-Sarmiento, Francisco,Quintana, José,Estévez, Francisco

, p. 1225 - 1238 (2018/09/04)

Inhibition of microtubule function using tubulin targeting agents has received growing attention in the last several decades. The indole scaffold has been recognized as an important scaffold in the design of novel compounds acting as antimitotic agents. Indole-based chalcones, in which one of the aryl rings was replaced by an indole, have been explored in the last few years for their anticancer potential in different cancer cell lines. Eighteen novel (3′,4′,5′-trimethoxyphenyl)-indolyl-propenone derivatives with general structure 9 were synthesized and evaluated for their antiproliferative activity against a panel of four different human cancer cell lines. The highest IC50 values were obtained against the human promyelocytic leukemia HL-60 cell line. This series of chalcone derivatives was characterized by the presence of a 2-alkoxycarbonyl indole ring as the second aryl system attached at the carbonyl of the 3-position of the 1-(3′,4′,5′-trimethoxyphenyl)-2-propen-1-one framework. The structure–activity relationship (SAR) of the indole-based chalcone derivatives was investigated by varying the position of the methoxy group, by the introduction of different substituents (hydrogen, methyl, ethyl or benzyl) at the N-1 position and by the activity differences between methoxycarbonyl and ethoxycarbonyl moieties at the 2-position of the indole nucleus. The antiproliferative activity data of the novel synthesized compounds revealed that generally N-substituted indole analogues exhibited considerably reduced potency as compared with their parent N-unsubstituted counterparts, demonstrating that the presence of a hydrogen on the indole nitrogen plays a decisive role in increasing antiproliferative activity. The results also revealed that the position of the methoxy group on the indole ring is a critical determinant of biological activity. Among the synthesized derivatives, compound 9e, containing the 2-methoxycarbonyl-6-methoxy-N-1H-indole moiety exhibited the highest antiproliferative activity, with IC50 values of 0.37, 0.16 and 0.17 μM against HeLa, HT29 and MCF-7 cancer cell lines, respectively, and with considerably lower activity against HL-60 cells (IC50: 18 μM). This derivative also displayed cytotoxic properties (IC50 values ~1 μM) in the human myeloid leukemia U-937 cell line overexpressing human Bcl-2 (U-937/Bcl-2) via cell cycle progression arrest at the G2-M phase and induction of apoptosis. The results obtained also demonstrated that the antiproliferative activity of this molecule is related to inhibition of tubulin polymerisation. The presence of a methoxy group at the C5- or C6-position of the indole nucleus, as well as the absence of substituents at the N-1-indole position, contributed to the optimal activity of the indole-propenone-3′,4′,5′-trimethoxyphenyl scaffold.

Carboxylic Acid-Promoted Single-Step Indole Construction from Simple Anilines and Ketones via Aerobic Cross-Dehydrogenative Coupling

Ren, Long,Nan, Guanglei,Wang, Yongcheng,Xiao, Zhiyan

, p. 14472 - 14488 (2018/11/23)

The cross-dehydrogenative coupling (CDC) reaction is an efficient strategy for indole synthesis. However, most CDC methods require special substrates, and the presence of inherent groups limits the versatility for further transformation. A carboxylic acid-promoted aerobic catalytic system is developed herein for a single-step synthesis of indoles from simple anilines and ketones. This versatile system is featured by the broad substrate scope and the use of ambient oxygen as an oxidant and is convenient and economical for both laboratory and industry applications. The existence of the labile hydrogen at C-3 and the highly transformable carbonyl at C-2 makes the indoles versatile building blocks for organic synthesis in different contexts. Computational studies based on the density functional theory (DFT) suggest that the rate-determining step is carboxylic acid-assisted condensation of the substrates, rather than the functionalization of aryl C-H. Accordingly, a pathway via imine intermediates is deemed to be the preferred mechanism. In contrast to the general deduction, the in situ formed imine, instead of its enamine isomer, is believed to be involved in the first ligand exchange and later carbopalladation of the α-Me, which shed new light on this indolization mechanism.

OBO-Protected Pyruvates as Reagents for the Synthesis of Functionalized Heteroaromatic Compounds

Alves Esteves, C. Henrique,Koyioni, Maria,Christensen, Kirsten E.,Smith, Peter D.,Donohoe, Timothy J.

supporting information, p. 4048 - 4051 (2018/07/15)

Pd-catalyzed α-arylation of methyl-OBO-ketone (OBO = 4-methyl-2,6,7-trioxabicyclo[2.2.2]octan-1-yl) gives rise to arylated OBO-protected pyruvates. By appropriate prefunctionalization of the aryl ring or by subsequent functionalization at the α-carbonyl p

Discovery and structure-activity relationship studies of N-substituted indole derivatives as novel Mcl-1 inhibitors

Luan, Shenglin,Ge, Qi,Chen, Yedong,Dai, Mingyang,Yang, Jinyu,Li, Kun,Liu, Dan,Zhao, Linxiang

supporting information, p. 1943 - 1948 (2017/04/07)

Myeloid cell leukemia-1 (Mcl-1) is an important antiapoptotic protein functioning through protein-protein interactions. We discovered LSL-A6 (2-((2-carbamoyl-1-(3-(4-methoxyphenoxy)propyl)-1H-indol-6-yl)oxy)acetic acid) with a novel N-substituted indole scaffold to interfere Mcl-1 binding as a novel Mcl-1 inhibitor. Molecular modeling indicated that this compound binds with Mcl-1 by interaction with P2 and R263 hot-spots. Structure modification focused on several moieties including indole core, hydrophobic tail and acidic chain were conducted and structure-activity relationship was analyzed. The most potent compound 24d which exhibited Ki value of 110?nM for interfering Mcl-1 binding was obtained after hit-to-lead modification.

N-substituted indole derivative and application thereof

-

, (2017/08/28)

The invention belongs to the technical field of medicine, and relates to an N-substituted indole derivative, pharmaceutically acceptable salts and hydrates thereof, a pharmaceutical composition taking the derivative as an active component, and application

A Novel Series of Highly Potent Small Molecule Inhibitors of Rhinovirus Replication

Kim, Jinwoo,Jung, Yu Kyoung,Kim, Chonsaeng,Shin, Jin Soo,Scheers, Els,Lee, Joo-Youn,Han, Soo Bong,Lee, Chong-Kyo,Neyts, Johan,Ha, Jae-Du,Jung, Young-Sik

, p. 5472 - 5492 (2017/07/22)

Human rhinoviruses (hRVs) are the main causative pathogen for common colds and are associated with the exacerbation of asthma. The wide variety in hRV serotypes has complicated the development of rhinovirus replication inhibitors. In the current investigation, we developed a novel series of benzothiophene derivatives and their analogues (6-8) that potently inhibit the replication of both hRV-A and hRV-B strains. Compound 6g inhibited the replication of hRV-B14, A21, and A71, with respective EC50 values of 0.083, 0.078, and 0.015 μM. The results of a time-of-addition study against hRV-B14 and hRV-A16 and resistant mutation analysis on hRV-B14 implied that 6g acts at the early stage of the viral replication process, interacting with viral capsid protein. A molecular docking study suggested that 6g has a capsid-binding mode similar to that of pleconaril. Finally, derivatives of 6 also displayed significant inhibition against poliovirus 3 (PV3) replication, implying their potential inhibitory activities against other enterovirus species.

Synthesis of Indole-2-carboxylate Derivatives via Palladium-Catalyzed Aerobic Amination of Aryl C-H Bonds

Clagg, Kyle,Hou, Haiyun,Weinstein, Adam B.,Russell, David,Stahl, Shannon S.,Koenig, Stefan G.

supporting information, p. 3586 - 3589 (2016/08/16)

A direct oxidative C-H amination affording 1-acetyl indolecarboxylates starting from 2-acetamido-3-arylacrylates has been achieved. Indole-2-carboxylates can be targeted with a straightforward deacetylation of the initial reaction products. The C-H amination reaction is carried out using a catalytic Pd(II) source with oxygen as the terminal oxidant. The scope and application of this chemistry is demonstrated with good to high yields for numerous electron-rich and electron-poor substrates. Further reaction of selected products via Suzuki arylation and deacetylation provides access to highly functionalized indole structures.

Post a RFQ

Enter 15 to 2000 letters.Word count: 0 letters

Attach files(File Format: Jpeg, Jpg, Gif, Png, PDF, PPT, Zip, Rar,Word or Excel Maximum File Size: 3MB)

1 Customer Service

What can I do for you?
Get Best Price

Get Best Price for 15050-04-1