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1-(2-(2-methyl-5-nitro-1H-imidazol-1-yl)ethyl)-4-phenyl-1H-1,2,3-triazole is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

1144040-32-3

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1144040-32-3 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 1144040-32-3 includes 10 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 7 digits, 1,1,4,4,0,4 and 0 respectively; the second part has 2 digits, 3 and 2 respectively.
Calculate Digit Verification of CAS Registry Number 1144040-32:
(9*1)+(8*1)+(7*4)+(6*4)+(5*0)+(4*4)+(3*0)+(2*3)+(1*2)=93
93 % 10 = 3
So 1144040-32-3 is a valid CAS Registry Number.

1144040-32-3Downstream Products

1144040-32-3Relevant academic research and scientific papers

Metronidazole-triazole conjugates: Activity against Clostridium difficile and parasites

Jarrad, Angie M.,Karoli, Tomislav,Debnath, Anjan,Tay, Chin Yen,Huang, Johnny X.,Kaeslin, Geraldine,Elliott, Alysha G.,Miyamoto, Yukiko,Ramu, Soumya,Kavanagh, Angela M.,Zuegg, Johannes,Eckmann, Lars,Blaskovich, Mark A.T.,Cooper, Matthew A.

, p. 96 - 102 (2015)

Abstract Metronidazole has been used clinically for over 50 years as an antiparasitic and broad-spectrum antibacterial agent effective against anaerobic bacteria. However resistance to metronidazole in parasites and bacteria has been reported, and improved second-generation metronidazole analogues are needed. The copper catalysed Huigsen azide-alkyne 1,3-dipolar cycloaddition offers a way to efficiently assemble new libraries of metronidazole analogues. Several new metronidazole-triazole conjugates (Mtz-triazoles) have been identified with excellent broad spectrum antimicrobial and antiparasitic activity targeting Clostridium difficile, Entamoeba histolytica and Giardia lamblia. Cross resistance to metronidazole was observed against stable metronidazole resistant C. difficile and G. lamblia strains. However for the most potent Mtz-triazoles, the activity remained in a therapeutically relevant window.

Synthesis, antiamoebic activity and docking studies of metronidazole-triazole-styryl hybrids

Negi, Beena,Poonan, Prija,Ansari, Mohammad Fawad,Kumar, Deepak,Aggarwal, Sakshi,Singh, Ramandeep,Azam, Amir,Rawat, Diwan S.

, p. 633 - 641 (2018/03/22)

A series of 22 novel metronidazole-triazole-styryl hybrids were synthesized and evaluated for their in vitro antiamoebic activity against HM1: IMSS strain of Entamoeba histolytica. Some of the hybrids were found to be more active (IC50 = 0.12–0

Anti-methicillin resistant Staphylococcus aureus activity, synergism with oxacillin and molecular docking studies of metronidazole-triazole hybrids

Negi, Beena,Kumar, Deepak,Kumbukgolla, Widuranga,Jayaweera, Sampath,Ponnan, Prija,Singh, Ramandeep,Agarwal, Sakshi,Rawat, Diwan S.

, p. e426 - e437 (2016/04/19)

MRSA causes 60-70% of Staphylococcus aureus infection in hospitals and it has developed resistance against the currently available drugs. Interestingly, a series of 35 metronidazole-triazole hybrids on screening against MRSA were found to be active. Compound 22 was found to be effective at 4 μg/mL concentration against nine strains of MRSA. The inhibitory activity was further enhanced upto 1 μg/mL when this compound was used in combination with oxacillin in 1:1 ratio. All the compounds were found to be non-toxic in THP-1 cell line upto a concentration of 50 μM. The time-kill kinetics studies suggested bacteriostatic nature of the compounds. In silico studies show that these compounds interact with Thr600, Ser598, Asn464, His583 and Tyr446 in the active site of PBP2a crystal structure from MRSA.

Expanded therapeutic potential in activity space of next-generation 5-nitroimidazole antimicrobials with broad structural diversity

Miyamoto, Yukiko,Kalisiak, Jaroslaw,Korthals, Keith,Lauwaet, Tineke,Cheung, Dae Young,Lozano, Ricardo,Cobo, Eduardo R.,Upcroft, Peter,Upcroft, Jacqueline A.,Berg, Douglas E.,Gillin, Frances D.,Fokin, Valery V.,Sharpless, K. Barry,Eckmann, Lars

, p. 17564 - 17569 (2013/11/06)

Metronidazole and other 5-nitroimidazoles (5-NI) are among the most effective antimicrobials available against many important anaerobic pathogens, but evolving resistance is threatening their long-term clinical utility. The common 5-NIs were developed decades ago, yet little 5-NI drug development has since taken place, leaving the true potential of this important drug class unexplored. Here we report on a unique approach to the modular synthesis of diversified 5-NIs for broad exploration of their antimicrobial potential. Many of the more than 650 synthesized compounds, carrying structurally diverse functional groups, have vastly improved activity against a range of microbes, including the pathogenic protozoa Giardia lamblia and Trichomonas vaginalis, and the bacterial pathogens Helicobacter pylori, Clostridium difficile, and Bacteroides fragilis. Furthermore, they can overcome different forms of drug resistance, and are active and nontoxic in animal infection models. These findings provide impetus to the development of structurally diverse, next-generation 5-NI drugs as agents in the antimicrobial armamentarium, thus ensuring their future viability as primary therapeutic agents against many clinically important infections.

Synthesis and antibacterial activity evaluation of metronidazole-triazole conjugates

Beena,Kumar, Nitin,Rohilla, Rajesh K.,Roy,Rawat, Diwan S.

supporting information; experimental part, p. 1396 - 1398 (2009/11/30)

Synthesis and antibacterial activity of metronidazole-triazole conjugates are reported. Total 21 hybrid compounds have been synthesized with different substitution pattern on the triazole ring in order to study their influence on the antibacterial activit

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