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Sangon Biotech d glucose
D Glucose, supplied by Sangon Biotech, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/d+glucose/d+glucose/pmc12856427-99-16-40
Average 86 stars, based on 1 article reviews
d glucose - by Bioz Stars, 2026-09
86/100 stars

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Article Title: Structure-adaptive dual-function poly-T sequences enable a homogeneous label-free colorimetric sensing platform.
Article Snippet: Compared with the extensive research on G-rich nucleic acids, the catalytic properties of T-rich sequences have received limited attention.. Herein, the peroxidase-like activity of poly-T sequences was investigated, and the results demonstrated that the poly-T sequences can display peroxidase-like activity with acetic acid as an activator, and the catalytic efficiency is positively correlated with sequence length.. Based on this, we constructed a novel homogeneous colorimetric sensing platform with melamine as the target.

Article Title: Methods for preparing pantoic acid, pantothenic acid and panthenol as well as salts thereof
Article Snippet: Casein Tryptone, yeast powder, D-(+)-glucose, potassium dihydrogen phosphate, sodium chloride, calcium chloride, ammonium chloride, D-calcium pantothenate, β-alanine, IPTG, thiamine and kanamycin sulfate were all purchased from Shanghai Sangon Biotech.

Article Title: High Q-factor all-dielectric terahertz metasurface biosensor with sensitivity enhanced via resonance-to-fingerprint peak matching
Article Snippet: A high quality factor (Q-factor) dual-band all-dielectric terahertz metasurface-based biosensor has been proposed and fabricated, with one resonance occurring in proximity to the fingerprint peak of D-(+)-glucose.. The alldielectric terahertz metasurface exhibits exceptional resonance characteristics, with Q-factors as high as 140 and 108 for its two distinct resonance peaks, which are significantly higher than those of traditional metasurfaces.. To evaluate its biosensing capabilities, the device was employed to detect D-(+)-glucose solutions across a concentration gradient spanning from 0.05 mmol/L to 0.5 mmol/L.

Article Title: Engineering Kluyveromyces marxianus for 3-hydroxypropionic acid production at elevated temperature from Jerusalem artichoke tubers and crude glycerol
Article Snippet: All compounds and biological reagents used in this study meet or exceed analytical grade purity specifications. d -glucose, glycerol, restriction endonucleases ( Eco RI, Not I), T4 DNA ligase, and yeast nitrogen base without amino acids (YNB) were purchased from Sangon Biotech Co., Ltd. (Shanghai, China).

Article Title: <scp>UCMSCs</scp> ‐Derived Exosomal <scp>circHIPK3</scp> Restrains Oxidative Stress and Inflammation by Downregulating the Stability of <scp>HMGB1 mRNA</scp> via Recruiting <scp>UPF1</scp> in Diabetes Foot Ulcer
Article Snippet: For HG stimulation, HUVECs and HDMECs were treated with D- glucose (20 mM, Sangon Biotech) for 72 h as per the manufacturer's instructions [27].

Article Title: Engineering Kluyveromyces marxianus for 3-hydroxypropionic acid production at elevated temperature from Jerusalem artichoke tubers and crude glycerol
Article Snippet: D-glucose, glycerol, restriction endonucleases (EcoRI, NotI), T4 DNA ligase, and yeast nitrogen base without amino acids (YNB) were purchased from Sangon Biotech Co., Ltd. (Shanghai, China).

Article Title: A wearable paper-based SGR/MCC microneedle array sensor for continuous glucose monitoring.
Article Snippet: D-(+)-Glucose and Propidium iodide (PI) were obtained from Sangon Biotech Co., Ltd. (Shanghai, China).

Injection:

Article Title: Hepatic GPR110 contributes to sex disparity in the development of MASH through oestrogen receptor α-dependent signalling.
Article Snippet: Metabolic dysfunction-associated steatohepatitis (MASH) is an important phase in the progression of metabolic dysfunction-associated steatotic liver disease to end-stage liver diseases, posing an increasing threat to public health worldwide with limited treatment options.. Here we show that GPR110 is a liver-selective G-protein-coupled receptor closely associated with MASH in a sex-specific manner.. Hepatocyte-specific Gpr110 knockout protects against MASH in female, but not male mice.



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The target genes regulated by H3K18la were identified by CUT&Tag assay combined with RNA‐seq. (A) Average plot and heat map displaying the binding density of H3K18la with different H3K18la binding peaks in hippocampus of the Sur group and Con group. (B) Genome‐wide distribution of the upregulated H3K18la‐binding peaks in mice after surgery. (C) Bar graph illustrating the number of target genes associated with upregulated and downregulated H3K18la peaks, and the top 2 enriched de novo motifs of target genes. (D) GO analysis of candidate target genes associated with upregulated H3K18la peaks. (E) Volcano plot of differentially expressed genes in RNA‐seq ( n = 3). (F) Heat map showing TOP 20 differential genes <t>after</t> <t>2‐DG</t> treatment in RNA‐seq ( n = 3). (G) Venn diagram showing the intersection of H3K18la up‐regulated target genes and 2‐DG down‐regulated target genes. (H) Genome browser tracks show H3K18la binding at representative target gene loci. Peaks specifically located at the Lag3 promoters are identified by red rectangles. (I) H3K18la occupancy analysis by ChIP‐qPCR ( n = 3). Data are mean ± SD. Statistical significance was assessed by unpaired 2‐tailed Student t ‐test compared with Con group. **** p < 0.0001.
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The target genes regulated by H3K18la were identified by CUT&Tag assay combined with RNA‐seq. (A) Average plot and heat map displaying the binding density of H3K18la with different H3K18la binding peaks in hippocampus of the Sur group and Con group. (B) Genome‐wide distribution of the upregulated H3K18la‐binding peaks in mice after surgery. (C) Bar graph illustrating the number of target genes associated with upregulated and downregulated H3K18la peaks, and the top 2 enriched de novo motifs of target genes. (D) GO analysis of candidate target genes associated with upregulated H3K18la peaks. (E) Volcano plot of differentially expressed genes in RNA‐seq ( n = 3). (F) Heat map showing TOP 20 differential genes <t>after</t> <t>2‐DG</t> treatment in RNA‐seq ( n = 3). (G) Venn diagram showing the intersection of H3K18la up‐regulated target genes and 2‐DG down‐regulated target genes. (H) Genome browser tracks show H3K18la binding at representative target gene loci. Peaks specifically located at the Lag3 promoters are identified by red rectangles. (I) H3K18la occupancy analysis by ChIP‐qPCR ( n = 3). Data are mean ± SD. Statistical significance was assessed by unpaired 2‐tailed Student t ‐test compared with Con group. **** p < 0.0001.
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The target genes regulated by H3K18la were identified by CUT&Tag assay combined with RNA‐seq. (A) Average plot and heat map displaying the binding density of H3K18la with different H3K18la binding peaks in hippocampus of the Sur group and Con group. (B) Genome‐wide distribution of the upregulated H3K18la‐binding peaks in mice after surgery. (C) Bar graph illustrating the number of target genes associated with upregulated and downregulated H3K18la peaks, and the top 2 enriched de novo motifs of target genes. (D) GO analysis of candidate target genes associated with upregulated H3K18la peaks. (E) Volcano plot of differentially expressed genes in RNA‐seq ( n = 3). (F) Heat map showing TOP 20 differential genes after 2‐DG treatment in RNA‐seq ( n = 3). (G) Venn diagram showing the intersection of H3K18la up‐regulated target genes and 2‐DG down‐regulated target genes. (H) Genome browser tracks show H3K18la binding at representative target gene loci. Peaks specifically located at the Lag3 promoters are identified by red rectangles. (I) H3K18la occupancy analysis by ChIP‐qPCR ( n = 3). Data are mean ± SD. Statistical significance was assessed by unpaired 2‐tailed Student t ‐test compared with Con group. **** p < 0.0001.

Journal: CNS Neuroscience & Therapeutics

Article Title: Histone H3K18 Lactylation Contributes to Perioperative Neurocognitive Disorder Through Immune Checkpoint Lymphocyte Activation Gene 3 Mediated Microglial Pyroptosis

doi: 10.1002/cns.71058

Figure Lengend Snippet: The target genes regulated by H3K18la were identified by CUT&Tag assay combined with RNA‐seq. (A) Average plot and heat map displaying the binding density of H3K18la with different H3K18la binding peaks in hippocampus of the Sur group and Con group. (B) Genome‐wide distribution of the upregulated H3K18la‐binding peaks in mice after surgery. (C) Bar graph illustrating the number of target genes associated with upregulated and downregulated H3K18la peaks, and the top 2 enriched de novo motifs of target genes. (D) GO analysis of candidate target genes associated with upregulated H3K18la peaks. (E) Volcano plot of differentially expressed genes in RNA‐seq ( n = 3). (F) Heat map showing TOP 20 differential genes after 2‐DG treatment in RNA‐seq ( n = 3). (G) Venn diagram showing the intersection of H3K18la up‐regulated target genes and 2‐DG down‐regulated target genes. (H) Genome browser tracks show H3K18la binding at representative target gene loci. Peaks specifically located at the Lag3 promoters are identified by red rectangles. (I) H3K18la occupancy analysis by ChIP‐qPCR ( n = 3). Data are mean ± SD. Statistical significance was assessed by unpaired 2‐tailed Student t ‐test compared with Con group. **** p < 0.0001.

Article Snippet: Sur + 2‐DG mice received 2‐DG (250 mg/kg; MedChemExpress, HY‐13966) [ ] intraperitoneally once daily for 2 days preoperatively until 30 min before surgery.

Techniques: RNA Sequencing, Binding Assay, Genome Wide, ChIP-qPCR

H3K18la promotes Lag3 expression in microglial cells induced by either lactate or LPS and IFN‐γ. (A) BV2 cells were first treated with 0‐, 1‐, 5‐, and 25‐mM lactate for 24 h. Subsequently, cells pretreated with 25 mM lactate or 10 mM 2‐DG for 3 h were stimulated with LPS and IFN‐γ for 24 h. (B) Representative immunoblotting of Pan‐Kla, H3K18la and Lag3 in BV2 cells intervention with lactate, with histone H3 or GAPDH used for normalization. (C‐E) Quantitation of Pan‐Kla, H3K18la and Lag3 gray value ( n = 3). (F) The lactate levels of BV2 cells activated by LPS and IFN‐γ ( n = 5–6). (G) Representative immunoblotting of Pan‐Kla, H3K18la and Lag3 in BV2 cells activated by LPS and IFN‐γ, with histone H3 or GAPDH used for normalization. (H–J) Quantitation of Pan‐Kla, H3K18la and Lag3 gray value ( n = 3–4). (K) Representative fluorescence images of Pan‐Kla or Lag3 in BV2 cells. (L, M) The relative fluorescence intensities of Pan and Lag3 in BV2 cells ( n = 6). The images include scale indicators of 50 μm for size reference. The data are presented as the mean ± SD, A–D were assessed by unpaired 2‐tailed Student t ‐test compared with Con group. The other results were assessed by one‐way ANOVA followed by Tukey's post hoc test. * p < 0.05, ** p < 0.01, *** p < 0.001, **** p < 0.0001.

Journal: CNS Neuroscience & Therapeutics

Article Title: Histone H3K18 Lactylation Contributes to Perioperative Neurocognitive Disorder Through Immune Checkpoint Lymphocyte Activation Gene 3 Mediated Microglial Pyroptosis

doi: 10.1002/cns.71058

Figure Lengend Snippet: H3K18la promotes Lag3 expression in microglial cells induced by either lactate or LPS and IFN‐γ. (A) BV2 cells were first treated with 0‐, 1‐, 5‐, and 25‐mM lactate for 24 h. Subsequently, cells pretreated with 25 mM lactate or 10 mM 2‐DG for 3 h were stimulated with LPS and IFN‐γ for 24 h. (B) Representative immunoblotting of Pan‐Kla, H3K18la and Lag3 in BV2 cells intervention with lactate, with histone H3 or GAPDH used for normalization. (C‐E) Quantitation of Pan‐Kla, H3K18la and Lag3 gray value ( n = 3). (F) The lactate levels of BV2 cells activated by LPS and IFN‐γ ( n = 5–6). (G) Representative immunoblotting of Pan‐Kla, H3K18la and Lag3 in BV2 cells activated by LPS and IFN‐γ, with histone H3 or GAPDH used for normalization. (H–J) Quantitation of Pan‐Kla, H3K18la and Lag3 gray value ( n = 3–4). (K) Representative fluorescence images of Pan‐Kla or Lag3 in BV2 cells. (L, M) The relative fluorescence intensities of Pan and Lag3 in BV2 cells ( n = 6). The images include scale indicators of 50 μm for size reference. The data are presented as the mean ± SD, A–D were assessed by unpaired 2‐tailed Student t ‐test compared with Con group. The other results were assessed by one‐way ANOVA followed by Tukey's post hoc test. * p < 0.05, ** p < 0.01, *** p < 0.001, **** p < 0.0001.

Article Snippet: Sur + 2‐DG mice received 2‐DG (250 mg/kg; MedChemExpress, HY‐13966) [ ] intraperitoneally once daily for 2 days preoperatively until 30 min before surgery.

Techniques: Expressing, Western Blot, Quantitation Assay, Fluorescence