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nih3t3 l1  (ATCC)


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    Structured Review

    ATCC nih3t3 l1
    Nih3t3 L1, supplied by ATCC, used in various techniques. Bioz Stars score: 99/100, based on 6998 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/nih3t3/3T3-L1/pm42225060-782-22-23
    Average 99 stars, based on 6998 article reviews
    nih3t3 l1 - by Bioz Stars, 2026-09
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    Related Articles

    Derivative Assay:

    Article Title: Chitosan Oligosaccharides Suppress Adipogenesis and Lipid Accumulation in 3T3-L1 Preadipocytes via Multi-Pathway Transcriptomic Reprogramming.
    Article Snippet: .. 3T3-L1 preadipocyte cells (ATCC CL-173), derived from mouse embryo, were purchased from the American Type Culture Collection (ATCC, Manassas, VA, USA). .. Cells were maintained in a preadipocyte growth medium (GM; Dulbecco’s Modified Eagle’s Medium with high glucose, DMEM-HG; Cytiva, Marlborough, MA, USA) supplemented with 10% bovine calf serum (CS; ATCC, Manassas, VA, USA), 100 units/mL penicillin, and 100 μg/mL streptomycin (P/S; Gibco, Thermo Fisher Scientific, Waltham, MA, USA) at 37 ◦C in a humidified atmosphere of 5% CO2/95% air.

    Cell Culture:

    Article Title: Nitrate-Sialin2 axis couples ER-mitochondrial calcium signaling with fatty acid metabolism to drive white adipose browning.
    Article Snippet: .. The 3T3-L1 embryonic fibroblasts (ATCC, #CL-173) were cultured in DMEM medium (Corning, #10-013-CV) containing 10% calf serum (Gibco, #16010159) at 37 °C with 5% CO2. ..

    Article Title: Nano- and microplastics induce size specific adipogenic and metabolic dysregulation.
    Article Snippet: The widespread presence of nanoand microplastics (NMPs) in the environment and their detection in human tissues raise concerns about their potential metabolic impacts.. While previous studies have focused on NMPs toxicity, the size-dependent effects of NMPs on adipogenesis remain poorly understood.. Adipocyte differentiation in 3T3-L1 cells was investigated using environmentally relevant NMPs sizes (200 nm, 2 μm and 20 μm), representing 10-fold size increments under non-cytotoxic conditions (50 μg/mL).

    Modification:

    Article Title: Fibrillin-1 inhibits early adipogenic commitment via αvβ3 integrin signaling.
    Article Snippet: .. 3T3-L1 preadipocytes (American Type Culture Collection, ATCC #CL-173) were maintained in Dulbecco’s Modified Eagle Medium (DMEM) supplemented with 10% fetal bovine serum (FBS), 100 μg/mL penicillin/streptomycin, and 2 mM L-glutamine (PSG) (1% PSG). ..



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    ATCC article pii s2211124725005108 nih3t3 atcc crl
    Article Pii S2211124725005108 Nih3t3 Atcc Crl, supplied by ATCC, used in various techniques. Bioz Stars score: 99/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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    nih3t3  (ATCC)
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    ATCC nih3t3
    Exploration of optogenetic clustering properties of CRY2. (A) Top panels, time-lapse images of a <t>NIH3T3</t> cell expressing CRY2high–mCherry activated with a 488-nm microscope laser starting at time t =0 (blue vertical arrow, 1.5 s pulses every 10 s). Scale bars: 5 µm. Bottom panel, coefficient of variation (CV) of fluorescence intensity calculated as the ratio between the nuclear intensity standard deviation and the nuclear intensity mean, presented as relative to the CV at time t =0. Data points corresponding to the images are marked in red. (B) Top panel, protein sequence of the C-terminus of the CRY2 PHR domain and part of the artificial linker used for C-terminal fusions for wild-type CRY2 (CRY2wt) and for CRY2 mutants. The newly generated variant CRY2hiclu is marked in bold. Mutations relative to the CRY2wt sequence are highlighted in gray. Bottom panel, images of NIH3T3 cells expressing CRY2 mutants fused to mCherry, illuminated with 1 s blue light pulses every 10 s for 15 min, and then fixed. The nucleus is delimited with a yellow line. Scale bars: 5 µm. (C) CV calculated from images obtained from NIH3T3 cells expressing CRY2 variants fused to mCherry, illuminated with pulsed blue light for 15 min, and then fixed, plotted as a function of mCherry nuclear intensity. ∼25 cells were analyzed per sample (each dot represents one cell). Continuous lines represent simple logistic fits. (D) Time-lapse images of a NIH3T3 cell expressing CRY2hiclu–mCherry activated once with the 488-nm microscope laser for 15 s at time t =0 (marked with a blue arrow). Scale bars: 5 µm. (E) Mean ( n =25) CV calculated from time-lapse images obtained from NIH3T3 cells expressing CRY2olig-mCherry, illuminated with blue light at time t =0, and then kept without blue light. The clustering ( t c ) and declustering times ( t d ) were determined from individual kinetic curves. (F) t c (top panel) and t d (bottom panel) represented as a function of mCherry nuclear intensity. ∼25–40 cells were analyzed per sample (each dot represents one cell). Continuous lines represent simple exponential (clustering) and linear (declustering) fits.
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    ATCC non tumor nih3t3 cell line
    Exploration of optogenetic clustering properties of CRY2. (A) Top panels, time-lapse images of a <t>NIH3T3</t> cell expressing CRY2high–mCherry activated with a 488-nm microscope laser starting at time t =0 (blue vertical arrow, 1.5 s pulses every 10 s). Scale bars: 5 µm. Bottom panel, coefficient of variation (CV) of fluorescence intensity calculated as the ratio between the nuclear intensity standard deviation and the nuclear intensity mean, presented as relative to the CV at time t =0. Data points corresponding to the images are marked in red. (B) Top panel, protein sequence of the C-terminus of the CRY2 PHR domain and part of the artificial linker used for C-terminal fusions for wild-type CRY2 (CRY2wt) and for CRY2 mutants. The newly generated variant CRY2hiclu is marked in bold. Mutations relative to the CRY2wt sequence are highlighted in gray. Bottom panel, images of NIH3T3 cells expressing CRY2 mutants fused to mCherry, illuminated with 1 s blue light pulses every 10 s for 15 min, and then fixed. The nucleus is delimited with a yellow line. Scale bars: 5 µm. (C) CV calculated from images obtained from NIH3T3 cells expressing CRY2 variants fused to mCherry, illuminated with pulsed blue light for 15 min, and then fixed, plotted as a function of mCherry nuclear intensity. ∼25 cells were analyzed per sample (each dot represents one cell). Continuous lines represent simple logistic fits. (D) Time-lapse images of a NIH3T3 cell expressing CRY2hiclu–mCherry activated once with the 488-nm microscope laser for 15 s at time t =0 (marked with a blue arrow). Scale bars: 5 µm. (E) Mean ( n =25) CV calculated from time-lapse images obtained from NIH3T3 cells expressing CRY2olig-mCherry, illuminated with blue light at time t =0, and then kept without blue light. The clustering ( t c ) and declustering times ( t d ) were determined from individual kinetic curves. (F) t c (top panel) and t d (bottom panel) represented as a function of mCherry nuclear intensity. ∼25–40 cells were analyzed per sample (each dot represents one cell). Continuous lines represent simple exponential (clustering) and linear (declustering) fits.
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    Procell Inc nih3t3 cells
    Exploration of optogenetic clustering properties of CRY2. (A) Top panels, time-lapse images of a <t>NIH3T3</t> cell expressing CRY2high–mCherry activated with a 488-nm microscope laser starting at time t =0 (blue vertical arrow, 1.5 s pulses every 10 s). Scale bars: 5 µm. Bottom panel, coefficient of variation (CV) of fluorescence intensity calculated as the ratio between the nuclear intensity standard deviation and the nuclear intensity mean, presented as relative to the CV at time t =0. Data points corresponding to the images are marked in red. (B) Top panel, protein sequence of the C-terminus of the CRY2 PHR domain and part of the artificial linker used for C-terminal fusions for wild-type CRY2 (CRY2wt) and for CRY2 mutants. The newly generated variant CRY2hiclu is marked in bold. Mutations relative to the CRY2wt sequence are highlighted in gray. Bottom panel, images of NIH3T3 cells expressing CRY2 mutants fused to mCherry, illuminated with 1 s blue light pulses every 10 s for 15 min, and then fixed. The nucleus is delimited with a yellow line. Scale bars: 5 µm. (C) CV calculated from images obtained from NIH3T3 cells expressing CRY2 variants fused to mCherry, illuminated with pulsed blue light for 15 min, and then fixed, plotted as a function of mCherry nuclear intensity. ∼25 cells were analyzed per sample (each dot represents one cell). Continuous lines represent simple logistic fits. (D) Time-lapse images of a NIH3T3 cell expressing CRY2hiclu–mCherry activated once with the 488-nm microscope laser for 15 s at time t =0 (marked with a blue arrow). Scale bars: 5 µm. (E) Mean ( n =25) CV calculated from time-lapse images obtained from NIH3T3 cells expressing CRY2olig-mCherry, illuminated with blue light at time t =0, and then kept without blue light. The clustering ( t c ) and declustering times ( t d ) were determined from individual kinetic curves. (F) t c (top panel) and t d (bottom panel) represented as a function of mCherry nuclear intensity. ∼25–40 cells were analyzed per sample (each dot represents one cell). Continuous lines represent simple exponential (clustering) and linear (declustering) fits.
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    ATCC mouse fibroblast nih3t3
    Exploration of optogenetic clustering properties of CRY2. (A) Top panels, time-lapse images of a <t>NIH3T3</t> cell expressing CRY2high–mCherry activated with a 488-nm microscope laser starting at time t =0 (blue vertical arrow, 1.5 s pulses every 10 s). Scale bars: 5 µm. Bottom panel, coefficient of variation (CV) of fluorescence intensity calculated as the ratio between the nuclear intensity standard deviation and the nuclear intensity mean, presented as relative to the CV at time t =0. Data points corresponding to the images are marked in red. (B) Top panel, protein sequence of the C-terminus of the CRY2 PHR domain and part of the artificial linker used for C-terminal fusions for wild-type CRY2 (CRY2wt) and for CRY2 mutants. The newly generated variant CRY2hiclu is marked in bold. Mutations relative to the CRY2wt sequence are highlighted in gray. Bottom panel, images of NIH3T3 cells expressing CRY2 mutants fused to mCherry, illuminated with 1 s blue light pulses every 10 s for 15 min, and then fixed. The nucleus is delimited with a yellow line. Scale bars: 5 µm. (C) CV calculated from images obtained from NIH3T3 cells expressing CRY2 variants fused to mCherry, illuminated with pulsed blue light for 15 min, and then fixed, plotted as a function of mCherry nuclear intensity. ∼25 cells were analyzed per sample (each dot represents one cell). Continuous lines represent simple logistic fits. (D) Time-lapse images of a NIH3T3 cell expressing CRY2hiclu–mCherry activated once with the 488-nm microscope laser for 15 s at time t =0 (marked with a blue arrow). Scale bars: 5 µm. (E) Mean ( n =25) CV calculated from time-lapse images obtained from NIH3T3 cells expressing CRY2olig-mCherry, illuminated with blue light at time t =0, and then kept without blue light. The clustering ( t c ) and declustering times ( t d ) were determined from individual kinetic curves. (F) t c (top panel) and t d (bottom panel) represented as a function of mCherry nuclear intensity. ∼25–40 cells were analyzed per sample (each dot represents one cell). Continuous lines represent simple exponential (clustering) and linear (declustering) fits.
    Mouse Fibroblast Nih3t3, supplied by ATCC, used in various techniques. Bioz Stars score: 99/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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    ATCC nih3t3 l1
    Exploration of optogenetic clustering properties of CRY2. (A) Top panels, time-lapse images of a <t>NIH3T3</t> cell expressing CRY2high–mCherry activated with a 488-nm microscope laser starting at time t =0 (blue vertical arrow, 1.5 s pulses every 10 s). Scale bars: 5 µm. Bottom panel, coefficient of variation (CV) of fluorescence intensity calculated as the ratio between the nuclear intensity standard deviation and the nuclear intensity mean, presented as relative to the CV at time t =0. Data points corresponding to the images are marked in red. (B) Top panel, protein sequence of the C-terminus of the CRY2 PHR domain and part of the artificial linker used for C-terminal fusions for wild-type CRY2 (CRY2wt) and for CRY2 mutants. The newly generated variant CRY2hiclu is marked in bold. Mutations relative to the CRY2wt sequence are highlighted in gray. Bottom panel, images of NIH3T3 cells expressing CRY2 mutants fused to mCherry, illuminated with 1 s blue light pulses every 10 s for 15 min, and then fixed. The nucleus is delimited with a yellow line. Scale bars: 5 µm. (C) CV calculated from images obtained from NIH3T3 cells expressing CRY2 variants fused to mCherry, illuminated with pulsed blue light for 15 min, and then fixed, plotted as a function of mCherry nuclear intensity. ∼25 cells were analyzed per sample (each dot represents one cell). Continuous lines represent simple logistic fits. (D) Time-lapse images of a NIH3T3 cell expressing CRY2hiclu–mCherry activated once with the 488-nm microscope laser for 15 s at time t =0 (marked with a blue arrow). Scale bars: 5 µm. (E) Mean ( n =25) CV calculated from time-lapse images obtained from NIH3T3 cells expressing CRY2olig-mCherry, illuminated with blue light at time t =0, and then kept without blue light. The clustering ( t c ) and declustering times ( t d ) were determined from individual kinetic curves. (F) t c (top panel) and t d (bottom panel) represented as a function of mCherry nuclear intensity. ∼25–40 cells were analyzed per sample (each dot represents one cell). Continuous lines represent simple exponential (clustering) and linear (declustering) fits.
    Nih3t3 L1, supplied by ATCC, used in various techniques. Bioz Stars score: 99/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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    ATCC nih3t3 cells
    TG2 suppression modulated proteins associated with ECM maintenance, inflammation, apoptosis, and TGF-β signaling in rTGF-β-treated hPTECs and <t>NIH3T3</t> cells. (A) Western blots of fibronectin, periostin, collagen type IV, TNF-α, integrin-α5, and β-actin of hPTECs treated with rTGF-β and cysteamine (48 h), and (B) densitometric quantification normalized to β-actin. (C) Western blots of fibronectin, periostin, collagen type I-α1, integrin-α5, and β-actin of NIH3T3 cells treated with rTGF-β and cysteamine (24 h), and (D) densitometric quantification normalized to β-actin. (E) Light microscopic images of hPTECs and (F) NIH3T3 cells treated with rTGF-β and cysteamine. (G) Annexin V and propidium iodide (PI) staining of human proximal tubular epithelial cells (hPTECs) treated with rTGF-β and cysteamine (48 h), and (H) quantification. Statistical significance: * P ≤ 0.05, ** P ≤ 0.01, *** P ≤ 0.001.
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    ATCC starvation nih3t3 cells
    TG2 suppression modulated proteins associated with ECM maintenance, inflammation, apoptosis, and TGF-β signaling in rTGF-β-treated hPTECs and <t>NIH3T3</t> cells. (A) Western blots of fibronectin, periostin, collagen type IV, TNF-α, integrin-α5, and β-actin of hPTECs treated with rTGF-β and cysteamine (48 h), and (B) densitometric quantification normalized to β-actin. (C) Western blots of fibronectin, periostin, collagen type I-α1, integrin-α5, and β-actin of NIH3T3 cells treated with rTGF-β and cysteamine (24 h), and (D) densitometric quantification normalized to β-actin. (E) Light microscopic images of hPTECs and (F) NIH3T3 cells treated with rTGF-β and cysteamine. (G) Annexin V and propidium iodide (PI) staining of human proximal tubular epithelial cells (hPTECs) treated with rTGF-β and cysteamine (48 h), and (H) quantification. Statistical significance: * P ≤ 0.05, ** P ≤ 0.01, *** P ≤ 0.001.
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    Image Search Results


    Exploration of optogenetic clustering properties of CRY2. (A) Top panels, time-lapse images of a NIH3T3 cell expressing CRY2high–mCherry activated with a 488-nm microscope laser starting at time t =0 (blue vertical arrow, 1.5 s pulses every 10 s). Scale bars: 5 µm. Bottom panel, coefficient of variation (CV) of fluorescence intensity calculated as the ratio between the nuclear intensity standard deviation and the nuclear intensity mean, presented as relative to the CV at time t =0. Data points corresponding to the images are marked in red. (B) Top panel, protein sequence of the C-terminus of the CRY2 PHR domain and part of the artificial linker used for C-terminal fusions for wild-type CRY2 (CRY2wt) and for CRY2 mutants. The newly generated variant CRY2hiclu is marked in bold. Mutations relative to the CRY2wt sequence are highlighted in gray. Bottom panel, images of NIH3T3 cells expressing CRY2 mutants fused to mCherry, illuminated with 1 s blue light pulses every 10 s for 15 min, and then fixed. The nucleus is delimited with a yellow line. Scale bars: 5 µm. (C) CV calculated from images obtained from NIH3T3 cells expressing CRY2 variants fused to mCherry, illuminated with pulsed blue light for 15 min, and then fixed, plotted as a function of mCherry nuclear intensity. ∼25 cells were analyzed per sample (each dot represents one cell). Continuous lines represent simple logistic fits. (D) Time-lapse images of a NIH3T3 cell expressing CRY2hiclu–mCherry activated once with the 488-nm microscope laser for 15 s at time t =0 (marked with a blue arrow). Scale bars: 5 µm. (E) Mean ( n =25) CV calculated from time-lapse images obtained from NIH3T3 cells expressing CRY2olig-mCherry, illuminated with blue light at time t =0, and then kept without blue light. The clustering ( t c ) and declustering times ( t d ) were determined from individual kinetic curves. (F) t c (top panel) and t d (bottom panel) represented as a function of mCherry nuclear intensity. ∼25–40 cells were analyzed per sample (each dot represents one cell). Continuous lines represent simple exponential (clustering) and linear (declustering) fits.

    Journal: Journal of Cell Science

    Article Title: OptoLoop – an optogenetic tool to probe the functional role of genome organization

    doi: 10.1242/jcs.264574

    Figure Lengend Snippet: Exploration of optogenetic clustering properties of CRY2. (A) Top panels, time-lapse images of a NIH3T3 cell expressing CRY2high–mCherry activated with a 488-nm microscope laser starting at time t =0 (blue vertical arrow, 1.5 s pulses every 10 s). Scale bars: 5 µm. Bottom panel, coefficient of variation (CV) of fluorescence intensity calculated as the ratio between the nuclear intensity standard deviation and the nuclear intensity mean, presented as relative to the CV at time t =0. Data points corresponding to the images are marked in red. (B) Top panel, protein sequence of the C-terminus of the CRY2 PHR domain and part of the artificial linker used for C-terminal fusions for wild-type CRY2 (CRY2wt) and for CRY2 mutants. The newly generated variant CRY2hiclu is marked in bold. Mutations relative to the CRY2wt sequence are highlighted in gray. Bottom panel, images of NIH3T3 cells expressing CRY2 mutants fused to mCherry, illuminated with 1 s blue light pulses every 10 s for 15 min, and then fixed. The nucleus is delimited with a yellow line. Scale bars: 5 µm. (C) CV calculated from images obtained from NIH3T3 cells expressing CRY2 variants fused to mCherry, illuminated with pulsed blue light for 15 min, and then fixed, plotted as a function of mCherry nuclear intensity. ∼25 cells were analyzed per sample (each dot represents one cell). Continuous lines represent simple logistic fits. (D) Time-lapse images of a NIH3T3 cell expressing CRY2hiclu–mCherry activated once with the 488-nm microscope laser for 15 s at time t =0 (marked with a blue arrow). Scale bars: 5 µm. (E) Mean ( n =25) CV calculated from time-lapse images obtained from NIH3T3 cells expressing CRY2olig-mCherry, illuminated with blue light at time t =0, and then kept without blue light. The clustering ( t c ) and declustering times ( t d ) were determined from individual kinetic curves. (F) t c (top panel) and t d (bottom panel) represented as a function of mCherry nuclear intensity. ∼25–40 cells were analyzed per sample (each dot represents one cell). Continuous lines represent simple exponential (clustering) and linear (declustering) fits.

    Article Snippet: NIH3T3 (mouse fibroblasts, ATCC #CRL-1658), U2OS (from human osteosarcoma, ATCC #HTB-96), HeLa (from human cervical adenocarcinoma, ATCC #CRM-CCL-2) and Lenti-X HEK-293T (from human embryonic kidney, cat. #632180 from Takara Bio, Japan) cell lines were cultured in Dulbecco's modified Eagle's medium (Gibco, Waltham, MA, USA) supplemented with 10% (15% for NIH3T3) fetal bovine serum (Gibco, Waltham, MA, USA) plus 100 IU/ml penicillin and 100 μg/ml streptomycin (Gibco, Waltham, MA, USA) at 37°C in a humidified atmosphere with 5% CO 2 .

    Techniques: Expressing, Microscopy, Fluorescence, Standard Deviation, Sequencing, Generated, Variant Assay

    TG2 suppression modulated proteins associated with ECM maintenance, inflammation, apoptosis, and TGF-β signaling in rTGF-β-treated hPTECs and NIH3T3 cells. (A) Western blots of fibronectin, periostin, collagen type IV, TNF-α, integrin-α5, and β-actin of hPTECs treated with rTGF-β and cysteamine (48 h), and (B) densitometric quantification normalized to β-actin. (C) Western blots of fibronectin, periostin, collagen type I-α1, integrin-α5, and β-actin of NIH3T3 cells treated with rTGF-β and cysteamine (24 h), and (D) densitometric quantification normalized to β-actin. (E) Light microscopic images of hPTECs and (F) NIH3T3 cells treated with rTGF-β and cysteamine. (G) Annexin V and propidium iodide (PI) staining of human proximal tubular epithelial cells (hPTECs) treated with rTGF-β and cysteamine (48 h), and (H) quantification. Statistical significance: * P ≤ 0.05, ** P ≤ 0.01, *** P ≤ 0.001.

    Journal: Frontiers in Physiology

    Article Title: A comprehensive approach to elucidating the pathophysiology of kidney fibrosis based on extracellular vesicle proteomics

    doi: 10.3389/fphys.2026.1786999

    Figure Lengend Snippet: TG2 suppression modulated proteins associated with ECM maintenance, inflammation, apoptosis, and TGF-β signaling in rTGF-β-treated hPTECs and NIH3T3 cells. (A) Western blots of fibronectin, periostin, collagen type IV, TNF-α, integrin-α5, and β-actin of hPTECs treated with rTGF-β and cysteamine (48 h), and (B) densitometric quantification normalized to β-actin. (C) Western blots of fibronectin, periostin, collagen type I-α1, integrin-α5, and β-actin of NIH3T3 cells treated with rTGF-β and cysteamine (24 h), and (D) densitometric quantification normalized to β-actin. (E) Light microscopic images of hPTECs and (F) NIH3T3 cells treated with rTGF-β and cysteamine. (G) Annexin V and propidium iodide (PI) staining of human proximal tubular epithelial cells (hPTECs) treated with rTGF-β and cysteamine (48 h), and (H) quantification. Statistical significance: * P ≤ 0.05, ** P ≤ 0.01, *** P ≤ 0.001.

    Article Snippet: The cells were incubated at 37 °C and 5% CO 2 for 48 h. NIH3T3 cells (ATCC: CRL-1658) were maintained in DMEM/F12 (Biowest, Riverside, MO, USA; Cat# L0092) supplemented with 10% FBS (Gibco, Cat# A4766801) and 1% 100X penicillin-streptomycin (Gibco, Cat# 15140-122).

    Techniques: Western Blot, Staining