3 Results for "

aspartate biosynthetic pathway

" in MedChemExpress (MCE) Product Catalog:
Products (3)

3 Results for "aspartate biosynthetic pathway" in MCE Product Catalog:

1
1 Cited Publications
Cat. No.: HY-W016288
CAS No.: 7149-49-7
Synonyms: 2,3-Naphthalenedicarboxaldehyde; Naphthalene-2,3-dialdehyde
Target:  

Fungal

Research Areas:  

Infection

Naphthalene-2,3-dicarboxaldehyde (NDA) is an effective inhibitor of Candida albicans aspartate semialdehyde dehydrogenase (ASADH), with a Ki value of 45 μM. Naphthalene-2,3-dicarboxaldehyde targets ASADH in the aspartate biosynthetic pathway of Candida albicans. Naphthalene-2,3-dicarboxaldehyde reacts with primary amines to generate highly fluorescent and stable derivatives. Naphthalene-2,3-dicarboxaldehyde serves as a fungistatic agent and a fluorogenic derivatization reagent. Naphthalene-2,3-Dicarboxaldehyde can be used for the research of candidiasis .
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Cat. No.: HY-W016288R
CAS No.: 7149-49-7
Synonyms: 2,3-Naphthalenedicarboxaldehyde (Standard); Naphthalene-2,3-dialdehyde (Standard)
Research Areas:  

Infection

Naphthalene-2,3-dicarboxaldehyde (Standard) is the analytical standard for Naphthalene-2,3-dicarboxaldehyde (HY-W016288). This product is for research and analytical applications. Naphthalene-2,3-dicarboxaldehyde (NDA) is an effective inhibitor of Candida albicans aspartate semialdehyde dehydrogenase (ASADH), with a Ki value of 45 μM. Naphthalene-2,3-dicarboxaldehyde targets ASADH in the aspartate biosynthetic pathway of Candida albicans. Naphthalene-2,3-dicarboxaldehyde reacts with primary amines to generate highly fluorescent and stable derivatives. Naphthalene-2,3-dicarboxaldehyde serves as a fungistatic agent and a fluorogenic derivatization reagent. Naphthalene-2,3-Dicarboxaldehyde can be used for the research of candidiasis .
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Cat. No.: HY-L064
1,827 compounds

Glutamine is an important metabolic fuel that helps rapidly proliferating cells meet the increased demand for ATP, biosynthetic precursors, and reducing agents. Glutamine Metabolism pathway involves the initial deamination of glutamine by glutaminase(GLS), yielding glutamate and ammonia. Glutamate is converted to the TCA cycle intermediate α-ketoglutarate (α-KG) by either glutamate dehydrogenase (GDH) or by the alanine or aspartate transaminases (TAs), to produce both ATP and anabolic carbons for the synthesis of amino acids, nucleotides and lipids. During periods of hypoxia or mitochondrial dysfunction, α-KG can be converted to citrate in a reductive carboxylation reaction catalyzed by IDH2. The newly formed citrate exits the mitochondria where it is used to synthesize fatty acids and amino acids and produce the reducing agent, NADPH.

Cancer cells display an altered metabolic circuitry that is directly regulated by oncogenic mutations and loss of tumor suppressors. Mounting evidence indicates that altered glutamine metabolism in cancer cells has critical roles in supporting macromolecule biosynthesis, regulating signaling pathways, and maintaining redox homeostasis, all of which contribute to cancer cell proliferation and survival. Thus, intervention in glutamine metabolic processes could provide novel approaches to improve cancer treatment.

MCE owns a unique collection of 1,827 compounds targeting the mainly proteins and enzymes involved in glutamine metabolism pathway. Glutamine Metabolism compound library is a useful tool for intervention in glutamine metabolic processes.