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AB76039

Anti-SIRT1 (phospho S47) antibody [EPR2849Y]

  • BOND RX™ Validated
  • 20ul selling size
  • RabMAb
  • Recombinant
  • What is this?

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(13 Publications)

Rabbit Recombinant Monoclonal SIRT1 phospho S47 antibody. Suitable for IHC-P, Dot, WB, ICC/IF and reacts with Human, Synthetic peptide samples. Cited in 13 publications.

View Alternative Names

SIR2L1, SIRT1, NAD-dependent protein deacetylase sirtuin-1, hSIRT1, NAD-dependent protein deacylase sirtuin-1, Regulatory protein SIR2 homolog 1, SIR2-like protein 1, hSIR2

6 Images
Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections) - Anti-SIRT1 (phospho S47) antibody [EPR2849Y] (AB76039)
  • IHC-P

Unknown

Immunohistochemistry (Formalin/PFA-fixed paraffin-embedded sections) - Anti-SIRT1 (phospho S47) antibody [EPR2849Y] (AB76039)

Immunohistochemical analysis of paraffin-embedded human gastric adenocarcinoma tissue sections labeling SIRT1 with purified ab76039 at 1/300 dilution. Rabbit specific IHC polymer detection kit HRP/DAB (ab209101) was used as the secondary antibody. Sections were counterstained with Hematoxylin.
Antigen retrieval was heat mediated antigen retrieval using Bond™ Epitope Retrieval Solution 2 (pH 9.0) .
The immunostaining was performed on a Leica Biosystems BOND™ RX instrument

Immunocytochemistry/ Immunofluorescence - Anti-SIRT1 (phospho S47) antibody [EPR2849Y] (AB76039)
  • ICC/IF

Unknown

Immunocytochemistry/ Immunofluorescence - Anti-SIRT1 (phospho S47) antibody [EPR2849Y] (AB76039)

Immunocytochemistry/Immunofluorescence analysis of A549 +/- LP cells labelling SIRT1 (phospho S47) with ab76039 at a dilution of 1/100. Cells were fixed with 4% paraformaldehyde and permeabilized with 0.1% tritonX-100. ab150077 (goat anti-rabbit IgG Alexa Fluor® 488) (1/1000) was used as the secondary antibody. The cells were co-stained with ab195889 (Anti-alpha Tubulin antibody [DM1A] - Microtubule Marker (Alexa Fluor® 594)) at a 1/200 dilution. Nuclei counterstained with DAPI (blue).

Western blot - Anti-SIRT1 (phospho S47) antibody [EPR2849Y] (AB76039)
  • WB

Unknown

Western blot - Anti-SIRT1 (phospho S47) antibody [EPR2849Y] (AB76039)

All lanes:

Western blot - Anti-SIRT1 (phospho S47) antibody [EPR2849Y] (ab76039) at 1/2000 dilution

Lane 1:

293 cell lysate at 10 µg

Lane 2:

293 cell lysate treated with LP at 10 µg

Secondary

All lanes:

HRP labelled goat anti-rabbit at 1/2000 dilution

Predicted band size: 81 kDa

Observed band size: 82 kDa

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Western blot - Anti-SIRT1 (phospho S47) antibody [EPR2849Y] (AB76039)
  • WB

Unknown

Western blot - Anti-SIRT1 (phospho S47) antibody [EPR2849Y] (AB76039)

Blocking and dilution buffer : 5% NFDM/TBST.

All lanes:

Western blot - Anti-SIRT1 (phospho S47) antibody [EPR2849Y] (ab76039) at 1/1000 dilution

Lane 1:

NIH:OVCAR-3 (human ovary adenocarcinoma epithelial cell), whole cell lysate at 10 µg

Lane 2:

NIH:OVCAR-3 treated with 2mM H2O2 for 30 minutes whole cell lysate at 10 µg

Lane 3:

NIH:OVCAR-3 treated with 2mM H2O2 for 30 min whole cell lysate. Then the membrane was incubated with alkaline phosphatase at 10 µg

Secondary

All lanes:

Western blot - Goat Anti-Rabbit IgG H&L (HRP) (<a href='/en-us/products/secondary-antibodies/goat-rabbit-igg-h-l-hrp-ab97051'>ab97051</a>) at 1/5000 dilution

Predicted band size: 81 kDa

Observed band size: 110 kDa

false

Western blot - Anti-SIRT1 (phospho S47) antibody [EPR2849Y] (AB76039)
  • WB

Unknown

Western blot - Anti-SIRT1 (phospho S47) antibody [EPR2849Y] (AB76039)

Blocking and dilution buffer : 5% NFDM/TBST.

All lanes:

Western blot - Anti-SIRT1 (phospho S47) antibody [EPR2849Y] (ab76039) at 1/2000 dilution

Lane 1:

A549 (human lung carcinoma epithelial cell) whole cell lysate at 10 µg

Lane 2:

A549 treated with 1mM AICAR for 48 hours whole cell lysate at 10 µg

Lane 3:

A549 treated with 1mM AICAR for 48 hours whole cell lysate. Then the membrane was incubated with alkaline phosphatase at 10 µg

Secondary

All lanes:

Western blot - Goat Anti-Rabbit IgG H&L (HRP) (<a href='/en-us/products/secondary-antibodies/goat-rabbit-igg-h-l-hrp-ab97051'>ab97051</a>) at 1/20000 dilution

Predicted band size: 81 kDa

Observed band size: 110 kDa

false

Dot Blot - Anti-SIRT1 (phospho S47) antibody [EPR2849Y] (AB76039)
  • Dot

Unknown

Dot Blot - Anti-SIRT1 (phospho S47) antibody [EPR2849Y] (AB76039)

Dot blot analysis of SIRT1 (phospho S47) phospho peptide (Lane 1) and SIRT1 non-phospho peptide (Lane 2) labelling SIRT1 (phospho S47) with ab76039 at a dilution of 1/1000. A Goat Anti-Rabbit IgG (H+L) Peroxidase conjugated (ab97051) was used as the secondary antibody at a dilution of 1/20000. Blocking buffer : 5% NFDM/TBST. Dilution buffer : 5% NFDM /TBST.

  • Carrier free

    Anti-SIRT1 (phospho S47) antibody [EPR2849Y] - BSA and Azide free

Key facts

Host species

Rabbit

Clonality

Monoclonal

Clone number

EPR2849Y

Isotype

IgG

Carrier free

No

Reacts with

Human

Applications

IHC-P, Dot, WB, ICC/IF

applications

Immunogen

The exact immunogen used to generate this antibody is proprietary information.

Reactivity data

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Product details

Species reactivity
Mouse, Rat: We have preliminary internal testing data to indicate this antibody may not react with these species.
Please contact us for more information.

Patented technology
Our RabMAb® technology is a patented hybridoma-based technology for making rabbit monoclonal antibodies. For details on our patents, please refer to RabMAb® patents.

What are the advantages of a recombinant monoclonal antibody?
This product is a recombinant monoclonal antibody, which offers several advantages including:

  • - High batch-to-batch consistency and reproducibility
  • - Improved sensitivity and specificity
  • - Long-term security of supply
  • - Animal-free batch production

For more information, read more on recombinant antibodies.

Properties and storage information

Form
Liquid
Purification technique
Affinity purification Protein A
Storage buffer
pH: 7.2 - 7.4 Preservative: 0.05% Sodium azide Constituents: 50% Tissue culture supernatant, 40% Glycerol (glycerin, glycerine), 9.85% Tris glycine, 0.1% BSA
Shipped at conditions
Blue Ice
Appropriate short-term storage conditions
+4°C
Appropriate long-term storage conditions
-20°C
Aliquoting information
Upon delivery aliquot
Storage information
Avoid freeze / thaw cycle

Supplementary information

This supplementary information is collated from multiple sources and compiled automatically.

SIRT1 also known as Silent mating type information regulation 2 homolog 1 is a NAD-dependent deacetylase enzyme. SIRT1 weighs approximately 120 kDa and plays an important role in regulating transcription apoptosis and stress resistance. Researchers have found SIRT1 in various tissues with higher expression in the heart brain and skeletal muscle. It is a component of the larger family of sirtuins which are involved in metabolic regulation and aging.
Biological function summary

SIRT1 modulates several cellular processes such as gene silencing DNA repair and lifespan extension. SIRT1 participates in complexes with other proteins including histones and transcription factors to influence chromatin structure and gene expression. It acts through deacetylation of target proteins affecting their function and stability. The activity of SIRT1 is also linked to environmental and cellular conditions including caloric intake and oxidative stress.

Pathways

SIRT1 is integral in the regulation of metabolic and longevity pathways. It interacts with the FOXO family proteins and the tumor suppressor protein p53 aiding in response to cellular stress and metabolic demands. The role of SIRT1 in the insulin signaling pathway exemplifies its influence on glucose homeostasis and energy balance. These interactions highlight its importance in metabolic health and aging.

SIRT1 links to neurodegenerative diseases such as Alzheimer's disease and metabolic disorders like type 2 diabetes. In Alzheimer's disease SIRT1 interacts with the amyloid precursor protein suggesting a protective role against amyloid-beta accumulation. Additionally studies have shown connections between SIRT1 and insulin receptor substrates highlighting its role in managing insulin sensitivity and glucose metabolism in diabetes. Understanding SIRT1's functions offers potential therapeutic targets for these disorders.

Product protocols

For this product, it's our understanding that no specific protocols are required. You can visit:

Target data

NAD-dependent protein deacetylase that links transcriptional regulation directly to intracellular energetics and participates in the coordination of several separated cellular functions such as cell cycle, response to DNA damage, metabolism, apoptosis and autophagy (PubMed : 11672523, PubMed : 12006491, PubMed : 14976264, PubMed : 14980222, PubMed : 15126506, PubMed : 15152190, PubMed : 15205477, PubMed : 15469825, PubMed : 15692560, PubMed : 16079181, PubMed : 16166628, PubMed : 16892051, PubMed : 16998810, PubMed : 17283066, PubMed : 17290224, PubMed : 17334224, PubMed : 17505061, PubMed : 17612497, PubMed : 17620057, PubMed : 17936707, PubMed : 18203716, PubMed : 18296641, PubMed : 18662546, PubMed : 18687677, PubMed : 19188449, PubMed : 19220062, PubMed : 19364925, PubMed : 19690166, PubMed : 19934257, PubMed : 20097625, PubMed : 20100829, PubMed : 20203304, PubMed : 20375098, PubMed : 20620956, PubMed : 20670893, PubMed : 20817729, PubMed : 20955178, PubMed : 21149730, PubMed : 21245319, PubMed : 21471201, PubMed : 21504832, PubMed : 21555002, PubMed : 21698133, PubMed : 21701047, PubMed : 21775285, PubMed : 21807113, PubMed : 21841822, PubMed : 21890893, PubMed : 21947282, PubMed : 22274616, PubMed : 22918831, PubMed : 24415752, PubMed : 24824780, PubMed : 29681526, PubMed : 29765047, PubMed : 30409912). Can modulate chromatin function through deacetylation of histones and can promote alterations in the methylation of histones and DNA, leading to transcriptional repression (PubMed : 15469825). Deacetylates a broad range of transcription factors and coregulators, thereby regulating target gene expression positively and negatively (PubMed : 14976264, PubMed : 14980222, PubMed : 15152190). Serves as a sensor of the cytosolic ratio of NAD(+)/NADH which is altered by glucose deprivation and metabolic changes associated with caloric restriction (PubMed : 15205477). Is essential in skeletal muscle cell differentiation and in response to low nutrients mediates the inhibitory effect on skeletal myoblast differentiation which also involves 5'-AMP-activated protein kinase (AMPK) and nicotinamide phosphoribosyltransferase (NAMPT) (By similarity). Component of the eNoSC (energy-dependent nucleolar silencing) complex, a complex that mediates silencing of rDNA in response to intracellular energy status and acts by recruiting histone-modifying enzymes (PubMed : 18485871). The eNoSC complex is able to sense the energy status of cell : upon glucose starvation, elevation of NAD(+)/NADP(+) ratio activates SIRT1, leading to histone H3 deacetylation followed by dimethylation of H3 at 'Lys-9' (H3K9me2) by SUV39H1 and the formation of silent chromatin in the rDNA locus (PubMed : 18485871, PubMed : 21504832). Deacetylates 'Lys-266' of SUV39H1, leading to its activation (PubMed : 21504832). Inhibits skeletal muscle differentiation by deacetylating PCAF and MYOD1 (PubMed : 19188449). Deacetylates H2A and 'Lys-26' of H1-4 (PubMed : 15469825). Deacetylates 'Lys-16' of histone H4 (in vitro). Involved in NR0B2/SHP corepression function through chromatin remodeling : Recruited to LRH1 target gene promoters by NR0B2/SHP thereby stimulating histone H3 and H4 deacetylation leading to transcriptional repression (PubMed : 20375098). Proposed to contribute to genomic integrity via positive regulation of telomere length; however, reports on localization to pericentromeric heterochromatin are conflicting (By similarity). Proposed to play a role in constitutive heterochromatin (CH) formation and/or maintenance through regulation of the available pool of nuclear SUV39H1 (PubMed : 15469825, PubMed : 18004385). Upon oxidative/metabolic stress decreases SUV39H1 degradation by inhibiting SUV39H1 polyubiquitination by MDM2 (PubMed : 18004385, PubMed : 21504832). This increase in SUV39H1 levels enhances SUV39H1 turnover in CH, which in turn seems to accelerate renewal of the heterochromatin which correlates with greater genomic integrity during stress response (PubMed : 18004385, PubMed : 21504832). Deacetylates 'Lys-382' of p53/TP53 and impairs its ability to induce transcription-dependent proapoptotic program and modulate cell senescence (PubMed : 11672523, PubMed : 12006491, PubMed : 22542455). Deacetylates TAF1B and thereby represses rDNA transcription by the RNA polymerase I (By similarity). Deacetylates MYC, promotes the association of MYC with MAX and decreases MYC stability leading to compromised transformational capability (PubMed : 19364925, PubMed : 21807113). Deacetylates FOXO3 in response to oxidative stress thereby increasing its ability to induce cell cycle arrest and resistance to oxidative stress but inhibiting FOXO3-mediated induction of apoptosis transcriptional activity; also leading to FOXO3 ubiquitination and protesomal degradation (PubMed : 14976264, PubMed : 14980222, PubMed : 21841822). Appears to have a similar effect on MLLT7/FOXO4 in regulation of transcriptional activity and apoptosis (PubMed : 15126506). Deacetylates DNMT1; thereby impairs DNMT1 methyltransferase-independent transcription repressor activity, modulates DNMT1 cell cycle regulatory function and DNMT1-mediated gene silencing (PubMed : 21947282). Deacetylates RELA/NF-kappa-B p65 thereby inhibiting its transactivating potential and augments apoptosis in response to TNF (PubMed : 15152190). Deacetylates HIF1A, KAT5/TIP60, RB1 and HIC1 (PubMed : 17283066, PubMed : 17620057, PubMed : 20100829, PubMed : 20620956). Deacetylates FOXO1 resulting in its nuclear retention and enhancement of its transcriptional activity leading to increased gluconeogenesis in liver (PubMed : 15692560). Inhibits E2F1 transcriptional activity and apoptotic function, possibly by deacetylation (PubMed : 16892051). Involved in HES1- and HEY2-mediated transcriptional repression (PubMed : 12535671). In cooperation with MYCN seems to be involved in transcriptional repression of DUSP6/MAPK3 leading to MYCN stabilization by phosphorylation at 'Ser-62' (PubMed : 21698133). Deacetylates MEF2D (PubMed : 16166628). Required for antagonist-mediated transcription suppression of AR-dependent genes which may be linked to local deacetylation of histone H3 (PubMed : 17505061). Represses HNF1A-mediated transcription (By similarity). Required for the repression of ESRRG by CREBZF (PubMed : 19690166). Deacetylates NR1H3 and NR1H2 and deacetylation of NR1H3 at 'Lys-434' positively regulates transcription of NR1H3 : RXR target genes, promotes NR1H3 proteasomal degradation and results in cholesterol efflux; a promoter clearing mechanism after reach round of transcription is proposed (PubMed : 17936707). Involved in lipid metabolism : deacetylates LPIN1, thereby inhibiting diacylglycerol synthesis (PubMed : 20817729, PubMed : 29765047). Implicated in regulation of adipogenesis and fat mobilization in white adipocytes by repression of PPARG which probably involves association with NCOR1 and SMRT/NCOR2 (By similarity). Deacetylates p300/EP300 and PRMT1 (By similarity). Deacetylates ACSS2 leading to its activation, and HMGCS1 deacetylation (PubMed : 21701047). Involved in liver and muscle metabolism. Through deacetylation and activation of PPARGC1A is required to activate fatty acid oxidation in skeletal muscle under low-glucose conditions and is involved in glucose homeostasis (PubMed : 23142079). Involved in regulation of PPARA and fatty acid beta-oxidation in liver. Involved in positive regulation of insulin secretion in pancreatic beta cells in response to glucose; the function seems to imply transcriptional repression of UCP2. Proposed to deacetylate IRS2 thereby facilitating its insulin-induced tyrosine phosphorylation. Deacetylates SREBF1 isoform SREBP-1C thereby decreasing its stability and transactivation in lipogenic gene expression (PubMed : 17290224, PubMed : 20817729). Involved in DNA damage response by repressing genes which are involved in DNA repair, such as XPC and TP73, deacetylating XRCC6/Ku70, and facilitating recruitment of additional factors to sites of damaged DNA, such as SIRT1-deacetylated NBN can recruit ATM to initiate DNA repair and SIRT1-deacetylated XPA interacts with RPA2 (PubMed : 15205477, PubMed : 16998810, PubMed : 17334224, PubMed : 17612497, PubMed : 20670893, PubMed : 21149730). Also involved in DNA repair of DNA double-strand breaks by homologous recombination and specifically single-strand annealing independently of XRCC6/Ku70 and NBN (PubMed : 15205477, PubMed : 17334224, PubMed : 20097625). Promotes DNA double-strand breaks by mediating deacetylation of SIRT6 (PubMed : 32538779). Transcriptional suppression of XPC probably involves an E2F4 : RBL2 suppressor complex and protein kinase B (AKT) signaling. Transcriptional suppression of TP73 probably involves E2F4 and PCAF. Deacetylates WRN thereby regulating its helicase and exonuclease activities and regulates WRN nuclear translocation in response to DNA damage (PubMed : 18203716). Deacetylates APEX1 at 'Lys-6' and 'Lys-7' and stimulates cellular AP endonuclease activity by promoting the association of APEX1 to XRCC1 (PubMed : 19934257). Catalyzes deacetylation of ERCC4/XPF, thereby impairing interaction with ERCC1 and nucleotide excision repair (NER) (PubMed : 32034146). Increases p53/TP53-mediated transcription-independent apoptosis by blocking nuclear translocation of cytoplasmic p53/TP53 and probably redirecting it to mitochondria. Deacetylates XRCC6/Ku70 at 'Lys-539' and 'Lys-542' causing it to sequester BAX away from mitochondria thereby inhibiting stress-induced apoptosis. Is involved in autophagy, presumably by deacetylating ATG5, ATG7 and MAP1LC3B/ATG8 (PubMed : 18296641). Deacetylates AKT1 which leads to enhanced binding of AKT1 and PDK1 to PIP3 and promotes their activation (PubMed : 21775285). Proposed to play role in regulation of STK11/LBK1-dependent AMPK signaling pathways implicated in cellular senescence which seems to involve the regulation of the acetylation status of STK11/LBK1. Can deacetylate STK11/LBK1 and thereby increase its activity, cytoplasmic localization and association with STRAD; however, the relevance of such activity in normal cells is unclear (PubMed : 18687677, PubMed : 20203304). In endothelial cells is shown to inhibit STK11/LBK1 activity and to promote its degradation. Deacetylates SMAD7 at 'Lys-64' and 'Lys-70' thereby promoting its degradation. Deacetylates CIITA and augments its MHC class II transactivation and contributes to its stability (PubMed : 21890893). Deacetylates MECOM/EVI1 (PubMed : 21555002). Deacetylates PML at 'Lys-487' and this deacetylation promotes PML control of PER2 nuclear localization (PubMed : 22274616). During the neurogenic transition, represses selective NOTCH1-target genes through histone deacetylation in a BCL6-dependent manner and leading to neuronal differentiation. Regulates the circadian expression of several core clock genes, including BMAL1, RORC, PER2 and CRY1 and plays a critical role in maintaining a controlled rhythmicity in histone acetylation, thereby contributing to circadian chromatin remodeling (PubMed : 18662546). Deacetylates BMAL1 and histones at the circadian gene promoters in order to facilitate repression by inhibitory components of the circadian oscillator (By similarity). Deacetylates PER2, facilitating its ubiquitination and degradation by the proteasome (By similarity). Protects cardiomyocytes against palmitate-induced apoptosis (By similarity). Deacetylates XBP1 isoform 2; deacetylation decreases protein stability of XBP1 isoform 2 and inhibits its transcriptional activity (PubMed : 20955178). Deacetylates PCK1 and directs its activity toward phosphoenolpyruvate production promoting gluconeogenesis (PubMed : 30193097). Involved in the CCAR2-mediated regulation of PCK1 and NR1D1 (PubMed : 24415752). Deacetylates CTNB1 at 'Lys-49' (PubMed : 24824780). In POMC (pro-opiomelanocortin) neurons, required for leptin-induced activation of PI3K signaling (By similarity). Deacetylates SOX9; promoting SOX9 nuclear localization and transactivation activity (By similarity). Involved in the regulation of centrosome duplication : deacetylates CENATAC in G1 phase, allowing for SASS6 accumulation on the centrosome and subsequent procentriole assembly (PubMed : 31722219). Deacetylates NDC80/HEC1 (PubMed : 30409912). In addition to protein deacetylase activity, also acts as a protein-lysine deacylase by mediating protein delactylation, depropionylation and decrotonylation (PubMed : 28497810, PubMed : 38512451). Mediates depropionylation of Osterix (SP7) (By similarity). Catalyzes decrotonylation of histones; it however does not represent a major histone decrotonylase (PubMed : 28497810). Mediates protein delactylation of TEAD1 and YAP1 (PubMed : 38512451).. Isoform 2. Deacetylates 'Lys-382' of p53/TP53, however with lower activity than isoform 1. In combination, the two isoforms exert an additive effect. Isoform 2 regulates p53/TP53 expression and cellular stress response and is in turn repressed by p53/TP53 presenting a SIRT1 isoform-dependent auto-regulatory loop.. SirtT1 75 kDa fragment. Catalytically inactive 75SirT1 may be involved in regulation of apoptosis. May be involved in protecting chondrocytes from apoptotic death by associating with cytochrome C and interfering with apoptosome assembly.. (Microbial infection) In case of HIV-1 infection, interacts with and deacetylates the viral Tat protein. The viral Tat protein inhibits SIRT1 deacetylation activity toward RELA/NF-kappa-B p65, thereby potentiates its transcriptional activity and SIRT1 is proposed to contribute to T-cell hyperactivation during infection.
See full target information SIRT1 pS47

Publications (13)

Recent publications for all applications. Explore the full list and refine your search

Journal of orthopaedic surgery and research 20:831 PubMed40993725

2025

USP28 participates in high glucose-mediated endothelial dysfunction via deubiquitinating SIRT1 protein in diabetic foot ulcers.

Applications

Unspecified application

Species

Unspecified reactive species

Qiong Liu,Jin Zhang,Jichang Bai,Kuanzhi Liu

Scientific reports 15:29741 PubMed40804251

2025

HSF1 in macrophages suppressed the progression of asthma via modulating SIRPα/SHP2-Dectin-1/ SYK mediated ROS and inflammatory responses.

Applications

Unspecified application

Species

Unspecified reactive species

Xiaojuan Liu,Yingqian Zhang,Huifang Wu,Jingli Zhang,Yingxue Wang,Huifeng Zhang

Frontiers in cell and developmental biology 10:829067 PubMed35874807

2022

TFP5-Mediated CDK5 Activity Inhibition Improves Diabetic Nephropathy NGF/Sirt1 Regulating Axis.

Applications

Unspecified application

Species

Unspecified reactive species

Shi-Lu Cao,Hong-Yan Luo,Yong-Cai Gao,Xiao-Mei Lan,Shun-Yao Liu,Bo Li,Li Bao,Jing E,Danna Ma,Guo-Qing Zhang,Li-Rong Yang,Xi Bao,Ya-Li Zheng

Evidence-based complementary and alternative medicine : eCAM 2022:3642349 PubMed35707471

2022

Protective Effect of XinJiaCongRongTuSiZiWan on the Reproductive Toxicity of Female Rats Induced by Triptolide.

Applications

Unspecified application

Species

Unspecified reactive species

Disi Deng,Jin Yan,Wanjing Li,Yeke Wu,Keming Wu

Experimental and therapeutic medicine 23:373 PubMed35495603

2022

Rutaecarpine ameliorates lipopolysaccharide-induced BEAS-2B cell injury through inhibition of endoplasmic reticulum stress via activation of the AMPK/SIRT1 signaling pathway.

Applications

Unspecified application

Species

Unspecified reactive species

Hao Zhang,Kun Zhu,Xuefeng Zhang,Yihui Ding,Bing Zhu,Wen Meng,Fan Zhang

Autophagy 18:1879-1897 PubMed34890308

2021

CDK9 inhibition blocks the initiation of PINK1-PRKN-mediated mitophagy by regulating the SIRT1-FOXO3-BNIP3 axis and enhances the therapeutic effects involving mitochondrial dysfunction in hepatocellular carcinoma.

Applications

Unspecified application

Species

Unspecified reactive species

Jingyue Yao,Jubo Wang,Ye Xu,Qinglong Guo,Yuening Sun,Jian Liu,Sichan Li,Yongjian Guo,Libin Wei

Acta pharmacologica Sinica 43:1033-1045 PubMed34188177

2021

Novel CDK9 inhibitor oroxylin A promotes wild-type P53 stability and prevents hepatocellular carcinoma progression by disrupting both MDM2 and SIRT1 signaling.

Applications

Unspecified application

Species

Unspecified reactive species

Jing-Yue Yao,Shu Xu,Yue-Ning Sun,Ye Xu,Qing-Long Guo,Li-Bin Wei

Oncology reports 44:1246-1254 PubMed32582972

2020

Holliday junction‑recognition protein modulates apoptosis, cell cycle arrest and reactive oxygen species stress in human renal cell carcinoma.

Applications

Unspecified application

Species

Unspecified reactive species

Jiang-Shui Yuan,Zeng-Sheng Chen,Ke Wang,Zong-Liang Zhang

Neuro-oncology advances 2:vdaa006 PubMed32118205

2020

Noninvasive quantification of SIRT1 expression-activity and pharmacologic inhibition in a rat model of intracerebral glioma using 2-[F]BzAHA PET/CT/MRI.

Applications

Unspecified application

Species

Unspecified reactive species

Maxwell T Laws,Robin E Bonomi,David J Gelovani,Jeremy Llaniguez,Xin Lu,Thomas Mangner,Juri G Gelovani

Journal of medicinal chemistry 61:7116-7130 PubMed30052441

2018

Molecular Imaging of Sirtuin1 Expression-Activity in Rat Brain Using Positron-Emission Tomography-Magnetic-Resonance Imaging with [F]-2-Fluorobenzoylaminohexanoicanilide.

Applications

Unspecified application

Species

Unspecified reactive species

Robin Bonomi,Vadim Popov,Maxwell T Laws,David Gelovani,Anjoy Majhi,Aleksandr Shavrin,Xin Lu,Otto Muzik,Nashaat Turkman,Renshyan Liu,Thomas Mangner,Juri G Gelovani
View all publications

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