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1.
SLAS Discov ; 26(9): 1225-1237, 2021 10.
Artigo em Inglês | MEDLINE | ID: mdl-34218698

RESUMO

High-throughput phenotypic screening is a key driver for the identification of novel chemical matter in drug discovery for challenging targets, especially for those with an unclear mechanism of pathology. For toxic or gain-of-function proteins, small-molecule suppressors are a targeting/therapeutic strategy that has been successfully applied. As with other high-throughput screens, the screening strategy and proper assays are critical for successfully identifying selective suppressors of the target of interest. We executed a small-molecule suppressor screen to identify compounds that specifically reduce apolipoprotein L1 (APOL1) protein levels, a genetically validated target associated with increased risk of chronic kidney disease. To enable this study, we developed homogeneous time-resolved fluorescence (HTRF) assays to measure intracellular APOL1 and apolipoprotein L2 (APOL2) protein levels and miniaturized them to 1536-well format. The APOL1 HTRF assay served as the primary assay, and the APOL2 and a commercially available p53 HTRF assay were applied as counterscreens. Cell viability was also measured with CellTiter-Glo to assess the cytotoxicity of compounds. From a 310,000-compound screening library, we identified 1490 confirmed primary hits with 12 different profiles. One hundred fifty-three hits selectively reduced APOL1 in 786-O, a renal cell adenocarcinoma cell line. Thirty-one of these selective suppressors also reduced APOL1 levels in conditionally immortalized human podocytes. The activity and specificity of seven resynthesized compounds were validated in both 786-O and podocytes.


Assuntos
Apolipoproteína L1/antagonistas & inibidores , Descoberta de Drogas/métodos , Ensaios de Triagem em Larga Escala , Podócitos/efeitos dos fármacos , Podócitos/metabolismo , Humanos , Bibliotecas de Moléculas Pequenas
2.
J Pharmacol Exp Ther ; 371(1): 45-55, 2019 10.
Artigo em Inglês | MEDLINE | ID: mdl-31300612

RESUMO

Metabolic dysregulation and mitochondrial dysfunction are important features of acute and chronic tissue injury across species, and human genetics and preclinical data suggest that the master metabolic regulator 5'-adenosine monophosphate-activated protein kinase (AMPK) may be an effective therapeutic target for chronic kidney disease (CKD). We have recently disclosed a pan-AMPK activator, MK-8722, that was shown to have beneficial effects in preclinical models. In this study we investigated the effects of MK-8722 in a progressive rat model of diabetic nephropathy to determine whether activation of AMPK would be of therapeutic benefit. We found that MK-8722 administration in a therapeutic paradigm is profoundly renoprotective, as demonstrated by a reduction in proteinuria (63% decrease in MK-8722 10 mg/kg per day compared with vehicle group) and a significant improvement in glomerular filtration rate (779 and 430 µl/min per gram kidney weight in MK-8722 10 mg/kg per day and vehicle group, respectively), as well as improvements in kidney fibrosis. We provide evidence that the therapeutic effects of MK-8722 may be mediated by modulation of renal mitochondrial quality control as well by attenuating fibrotic and lipotoxic mechanisms in kidney cells. MK-8722 (10 mg/kg per day compared with vehicle group) achieved modest blood pressure reduction (10 mmHg lower for mean blood pressure) and significant metabolic improvements (decreased plasma glucose, triglyceride, and body weight) that could contribute to renoprotection. These data further validate the concept that targeting metabolic dysregulation in CKD could be a potential therapeutic approach. SIGNIFICANCE STATEMENT: We demonstrate in the present study that the pharmacological activation of AMPK using a small-molecule agent provided renoprotection and improved systemic and cellular metabolism. We further indicate that modulation of renal mitochondrial quality control probably contributed to renoprotection and was distinct from the effects of enalapril. Our findings suggest that improving renal mitochondrial biogenesis and function and attenuating fibrosis and lipotoxicity by targeting key metabolic nodes could be a potential therapeutic approach in management of CKD that could complement the current standard of care.


Assuntos
Nefropatias Diabéticas/metabolismo , Hipoglicemiantes/uso terapêutico , Imidazóis/uso terapêutico , Proteínas Quinases/metabolismo , Piridinas/uso terapêutico , Quinases Proteína-Quinases Ativadas por AMP , Idoso , Animais , Benzimidazóis , Glicemia/metabolismo , Pressão Sanguínea , Células Cultivadas , Nefropatias Diabéticas/tratamento farmacológico , Feminino , Taxa de Filtração Glomerular , Humanos , Hipoglicemiantes/farmacologia , Imidazóis/farmacologia , Rim/efeitos dos fármacos , Rim/metabolismo , Masculino , Pessoa de Meia-Idade , Mitocôndrias/efeitos dos fármacos , Piridinas/farmacologia , Ratos , Ratos Zucker , Triglicerídeos/sangue
3.
PLoS One ; 14(4): e0211559, 2019.
Artigo em Inglês | MEDLINE | ID: mdl-30998685

RESUMO

Apolipoprotein L1 (APOL1) genetic variants G1 and G2, compared to the common allele G0, are major risk factors for non-diabetic kidney disease in African descent populations. APOL1 is a minor protein component of HDL, as well as being expressed in podocytes and vascular cells. Reverse cholesterol transport involves the transport of cholesterol to HDL by cellular ATP-binding cassette; ABCA1 and ABCG1 with subsequent delivery from peripheral tissues to the liver. With impaired reverse cholesterol transport, lipid accumulation occurs and macrophages morphologically transform into foam cells, releasing inflammatory factors. We asked whether the APOL1 risk variants alter peripheral cholesterol metabolism and specifically affect macrophage cholesterol efflux. Tissues and bone marrow (BM)-derived monocytes were isolated from wild-type mice (WT) and from BAC/APOL1 transgenic (APOL1-G0, APOL1-G1, and APOL1-G2) mice, which carry a bacterial artificial chromosome that contains the human APOL1 genomic region. Monocytes were differentiated into macrophages using M-CSF, and then polarized into M1 and M2 macrophages. Cholesterol content, cholesterol efflux, and ABCA1 and ABCG1 mRNA expression were measured. Kidney, spleen, and bone marrow-derived macrophages from APOL1-G1 and -G2 mice showed increased cholesterol accumulation and decreased ABCA1 and ABCG1 mRNA levels. BM-derived macrophages from APOL1-G1 and -G2 mice showed significantly reduced cholesterol efflux compared to WT or APOL1-G0 macrophages. Taken together, the evidence suggests that APOL1-G1 and -G2 risk variants impaired reverse cholesterol transport through decreased expression of cholesterol efflux transporters suggesting a possible mechanism to promote macrophage foam cell formation, driving inflammation in the glomerulus and renal interstitium.


Assuntos
Apolipoproteína L1/metabolismo , Colesterol/metabolismo , Rim/metabolismo , Macrófagos/metabolismo , Animais , Apolipoproteína L1/genética , Transporte Biológico , Células Cultivadas , Variação Genética , Humanos , Nefropatias/genética , Nefropatias/metabolismo , Masculino , Camundongos , Camundongos Transgênicos , Baço/metabolismo
4.
Cancer Res ; 70(2): 719-29, 2010 Jan 15.
Artigo em Inglês | MEDLINE | ID: mdl-20068153

RESUMO

Colon cancer stem cells (CSC) can be identified with AC133, an antibody that detects an epitope on CD133. However, recent evidence suggests that expression of CD133 is not restricted to CSCs, but is also expressed on differentiated tumor cells. Intriguingly, we observed that detection of the AC133 epitope on the cell surface decreased upon differentiation of CSC in a manner that correlated with loss of clonogenicity. However, this event did not coincide with a change in CD133 promoter activity, mRNA, splice variant, protein expression, or even cell surface expression of CD133. In contrast, we noted that with CSC differentiation, a change occured in CD133 glycosylation. Thus, AC133 may detect a glycosylated epitope, or differential glycosylation may cause CD133 to be retained inside the cell. We found that AC133 could effectively detect CD133 glycosylation mutants or bacterially expressed unglycosylated CD133. Moreover, cell surface biotinylation experiments revealed that differentially glycosylated CD133 could be detected on the membrane of differentiated tumor cells. Taken together, our results argue that CD133 is a cell surface molecule that is expressed on both CSC and differentiated tumor cells, but is probably differentially folded as a result of differential glycosylation to mask specific epitopes. In summary, we conclude that AC133 can be used to detect cancer stem cells, but that results from the use of this antibody should be interpreted with caution.


Assuntos
Antígenos CD/imunologia , Neoplasias do Colo/imunologia , Neoplasias do Colo/patologia , Glicoproteínas/imunologia , Peptídeos/imunologia , Antígeno AC133 , Animais , Antígenos CD/biossíntese , Antígenos CD/genética , Diferenciação Celular , Neoplasias do Colo/genética , Neoplasias do Colo/metabolismo , Regulação para Baixo , Epitopos/imunologia , Regulação Neoplásica da Expressão Gênica , Glicoproteínas/biossíntese , Glicoproteínas/genética , Glicosilação , Humanos , Camundongos , Camundongos Endogâmicos NOD , Camundongos SCID , Células-Tronco Neoplásicas , Peptídeos/genética , Regiões Promotoras Genéticas , Isoformas de Proteínas , RNA Mensageiro/biossíntese , RNA Mensageiro/genética , Células Tumorais Cultivadas
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