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(S)-GNE-140 Sale

目录号 : GC32993

(S)-GNE-140是活性较小的GNE-140的对映体,能够抑制乳酸脱氢酶A(LDHA)。

(S)-GNE-140 Chemical Structure

Cas No.:2003234-64-6

规格 价格 库存 购买数量
10mM (in 1mL DMSO)
¥6,176.00
现货
1mg
¥1,782.00
现货
5mg
¥5,625.00
现货
10mg
¥7,992.00
现货
50mg
¥24,030.00
现货

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Sample solution is provided at 25 µL, 10mM.

产品文档

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产品描述

(S)-GNE-140 is the less active enantiomer of GNE-140 which can inhibit Lactate dehydrogenase A (LDHA).

[1]. Purkey HE, et al. Cell Active Hydroxylactam Inhibitors of Human Lactate Dehydrogenase with Oral Bioavailability in Mice. ACS Med Chem Lett. 2016 Aug 26;7(10):896-901.

Chemical Properties

Cas No. 2003234-64-6 SDF
Canonical SMILES O=C1N[C@](C2=CSC=C2)(C3=CC=C(N4CCOCC4)C=C3)CC(O)=C1SC5=CC=CC=C5Cl
分子式 C25H23ClN2O3S2 分子量 499.04
溶解度 DMSO : 14 mg/mL (28.05 mM) 储存条件 Store at -20°C
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储备液的保存方式和期限:-80°C 储存时,请在 6 个月内使用,-20°C 储存时,请在 1 个月内使用。
为了提高溶解度,请将管子加热至37℃,然后在超声波浴中震荡一段时间。
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溶解性数据

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1 mg 5 mg 10 mg
1 mM 2.0038 mL 10.0192 mL 20.0385 mL
5 mM 0.4008 mL 2.0038 mL 4.0077 mL
10 mM 0.2004 mL 1.0019 mL 2.0038 mL
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Research Update

Triple Isozyme Lactic Acid Dehydrogenase Inhibition in Fully Viable MDA-MB-231 Cells Induces Cytostatic Effects That Are Not Reversed by Exogenous Lactic Acid

Biomolecules 2021 Nov 24;11(12):1751.PMID:34944395DOI:PMC8698706

A number of aggressive human malignant tumors are characterized by an intensified glycolytic rate, over-expression of lactic acid dehydrogenase A (LDHA), and subsequent lactate accumulation, all of which contribute toward an acidic peri-cellular immunosuppressive tumor microenvironment (TME). While recent focus has been directed at how to inhibit LDHA, it is now becoming clear that multiple isozymes of LDH must be simultaneously inhibited in order to fully suppress lactic acid and halt glycolysis. In this work we explore the biochemical and genomic consequences of an applied triple LDH isozyme inhibitor (A, B, and C) (GNE-140) in MDA-MB-231 triple-negative breast cancer cells (TNBC) cells. The findings confirm that GNE-140 does in fact, fully block the production of lactic acid, which also results in a block of glucose utilization and severe impedance of the glycolytic pathway. Without a fully functional glycolytic pathway, breast cancer cells continue to thrive, sustain viability, produce ample energy, and maintain mitochondrial potential (ΔΨM). The only observable negative consequence of GNE-140 in this work, was the attenuation of cell division, evident in both 2D and 3D cultures and occurring in fully viable cells. Of important note, the cytostatic effects were not reversed by the addition of exogenous (+) lactic acid. While the effects of GNE-140 on the whole transcriptome were mild (12 up-regulated differential expressed genes (DEGs); 77 down-regulated DEGs) out of the 48,226 evaluated, the down-regulated DEGS collectively centered around a loss of genes related to mitosis, cell cycle, GO/G1-G1/S transition, and DNA replication. These data were also observed with digital florescence cytometry and flow cytometry, both corroborating a G0/G1 phase blockage. In conclusion, the findings in this work suggest there is an unknown element linking LDH enzyme activity to cell cycle progression, and this factor is completely independent of lactic acid. The data also establish that complete inhibition of LDH in cancer cells is not a detriment to cell viability or basic production of energy.