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human pasmcs  (PromoCell)


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    Structured Review

    PromoCell human pasmcs
    Human Pasmcs, supplied by PromoCell, used in various techniques. Bioz Stars score: 94/100, based on 45 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/human+pasmc/Human+Pulmonary+Artery+Smooth+Muscle+Cells/pm41016151-82-0-4
    Average 94 stars, based on 45 article reviews
    human pasmcs - by Bioz Stars, 2026-09
    94/100 stars

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    Cell Culture:

    Article Title: Activin A–Endothelin-1 Axis Governs Pulmonary Vascular Remodeling: Mechanistic Basis for Emerging Therapies in PAH
    Article Snippet: .. Human pulmonary artery ECs (PAECs; no. C-12241; PromoCell) and pulmonary artery smooth muscle cells (PASMCs; no. C-12521; PromoCell) were cultured in HuMedia-EG2 (Kurabo) and smooth muscle cells growth medium 2 (PromoCell), respectively, at 37 °C and 5% CO 2 . ..

    Article Title: Activin A–Endothelin-1 Axis Governs Pulmonary Vascular Remodeling: Mechanistic Basis for Emerging Therapies in PAH
    Article Snippet: Arterioscler Thromb Vasc Biol.. 2026;46:e323681.. DOI: 10.1161/ATVBAHA.125.323681 May 2026 1 Arterioscler Thromb Vasc Biol is available at www.ahajournals.org/journal/atvb Correspondence to: Gusty Rizky Teguh Ryanto, MD, PhD, Laboratory of Clinical Pharmaceutical Science, 658-8558, 4-19-1 Motoyama Kitamachi, Higashinada, Kobe, Hyogo, Japan, Email gryanto@kobepharma-u.ac.jp; or Noriaki Emoto, MD, PhD, Laboratory of Clinical Pharmaceutical Science, 658-8558, 4-19-1 Motoyama Kitamachi, Higashinada, Kobe, Hyogo, Japan, Email emoto@kobepharma-u.ac.jp Supplemental Material is available at https://www.ahajournals.org/doi/suppl/10.1161/ATVBAHA.125.323681.

    Article Title: Plumbagin improves pulmonary vascular remodeling in PAH via miR-21-5p/MMP/TIMP regulation, with diagnostic implications for cardiac function.
    Article Snippet: Three-dimensional reconstruction and image optimization were performed using Imaris software (Oxford Instruments, Zurich, Switzerland) to enhance spatial resolution and facilitate colocalization analysis. .. Human PASMCs (HPASMCs; Cat#C-12521, PromoCell, Heidelberg, Germany), originally isolated from human pulmonary arteries, were cultured in smooth muscle cell medium (Cat#1101; ScienCell Research Laboratories, USA) supplemented with a smooth muscle cell growth supplement, 2 % fetal bovine serum (FBS), and 1 % penicillinstreptomycin solution. ..

    Isolation:

    Article Title: Plumbagin improves pulmonary vascular remodeling in PAH via miR-21-5p/MMP/TIMP regulation, with diagnostic implications for cardiac function.
    Article Snippet: Three-dimensional reconstruction and image optimization were performed using Imaris software (Oxford Instruments, Zurich, Switzerland) to enhance spatial resolution and facilitate colocalization analysis. .. Human PASMCs (HPASMCs; Cat#C-12521, PromoCell, Heidelberg, Germany), originally isolated from human pulmonary arteries, were cultured in smooth muscle cell medium (Cat#1101; ScienCell Research Laboratories, USA) supplemented with a smooth muscle cell growth supplement, 2 % fetal bovine serum (FBS), and 1 % penicillinstreptomycin solution. ..



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    Effect of mitoTEMPO treatment on HIF‐1α stabilization in vitro. HIF‐1α protein levels were assessed by western blot, and steady‐state mRNA levels for lactate dehydrogenase A ( Ldha ) and pyruvate dehydrogenase kinase 1 ( Pdk1 ) by quantitative real‐time PCR in (a) CMT167 cells, (b) <t>hPASMCs,</t> and (c) mPASMCs, exposed to normoxia (21% O 2 ), severe hypoxia (1% O 2 ), or mild hypoxia (10% O 2 ) for 24 h and treated with triphenylphosphonium (TPP + ) (blue dots) or mitoTEMPO (MT) (red dots). Immunoblots shown are representative of three independent experiments. CMT167: mouse lung carcinoma epithelial cells; hPASMCs: human pulmonary artery smooth muscle cells; mPASMCs: mouse pulmonary artery smooth muscle cells. Densitometric analysis of HIF‐1α bands normalized to β‐Actin. Data are presented as mean ± SD. Statistical comparisons were made using two‐way ANOVA with Tukey's post hoc test ( n = 3 per group). (ns: no signal). Quantitative real‐time PCR data reflect mean ΔCt ± SD ( n = 3 per experimental group).
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    Effect of mitoTEMPO treatment on HIF‐1α stabilization in vitro. HIF‐1α protein levels were assessed by western blot, and steady‐state mRNA levels for lactate dehydrogenase A ( Ldha ) and pyruvate dehydrogenase kinase 1 ( Pdk1 ) by quantitative real‐time PCR in (a) CMT167 cells, (b) <t>hPASMCs,</t> and (c) mPASMCs, exposed to normoxia (21% O 2 ), severe hypoxia (1% O 2 ), or mild hypoxia (10% O 2 ) for 24 h and treated with triphenylphosphonium (TPP + ) (blue dots) or mitoTEMPO (MT) (red dots). Immunoblots shown are representative of three independent experiments. CMT167: mouse lung carcinoma epithelial cells; hPASMCs: human pulmonary artery smooth muscle cells; mPASMCs: mouse pulmonary artery smooth muscle cells. Densitometric analysis of HIF‐1α bands normalized to β‐Actin. Data are presented as mean ± SD. Statistical comparisons were made using two‐way ANOVA with Tukey's post hoc test ( n = 3 per group). (ns: no signal). Quantitative real‐time PCR data reflect mean ΔCt ± SD ( n = 3 per experimental group).
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    Effect of mitoTEMPO treatment on HIF‐1α stabilization in vitro. HIF‐1α protein levels were assessed by western blot, and steady‐state mRNA levels for lactate dehydrogenase A ( Ldha ) and pyruvate dehydrogenase kinase 1 ( Pdk1 ) by quantitative real‐time PCR in (a) CMT167 cells, (b) <t>hPASMCs,</t> and (c) mPASMCs, exposed to normoxia (21% O 2 ), severe hypoxia (1% O 2 ), or mild hypoxia (10% O 2 ) for 24 h and treated with triphenylphosphonium (TPP + ) (blue dots) or mitoTEMPO (MT) (red dots). Immunoblots shown are representative of three independent experiments. CMT167: mouse lung carcinoma epithelial cells; hPASMCs: human pulmonary artery smooth muscle cells; mPASMCs: mouse pulmonary artery smooth muscle cells. Densitometric analysis of HIF‐1α bands normalized to β‐Actin. Data are presented as mean ± SD. Statistical comparisons were made using two‐way ANOVA with Tukey's post hoc test ( n = 3 per group). (ns: no signal). Quantitative real‐time PCR data reflect mean ΔCt ± SD ( n = 3 per experimental group).
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    Procell Inc human pasmcs hpasmcs
    Effect of mitoTEMPO treatment on HIF‐1α stabilization in vitro. HIF‐1α protein levels were assessed by western blot, and steady‐state mRNA levels for lactate dehydrogenase A ( Ldha ) and pyruvate dehydrogenase kinase 1 ( Pdk1 ) by quantitative real‐time PCR in (a) CMT167 cells, (b) <t>hPASMCs,</t> and (c) mPASMCs, exposed to normoxia (21% O 2 ), severe hypoxia (1% O 2 ), or mild hypoxia (10% O 2 ) for 24 h and treated with triphenylphosphonium (TPP + ) (blue dots) or mitoTEMPO (MT) (red dots). Immunoblots shown are representative of three independent experiments. CMT167: mouse lung carcinoma epithelial cells; hPASMCs: human pulmonary artery smooth muscle cells; mPASMCs: mouse pulmonary artery smooth muscle cells. Densitometric analysis of HIF‐1α bands normalized to β‐Actin. Data are presented as mean ± SD. Statistical comparisons were made using two‐way ANOVA with Tukey's post hoc test ( n = 3 per group). (ns: no signal). Quantitative real‐time PCR data reflect mean ΔCt ± SD ( n = 3 per experimental group).
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    Effect of mitoTEMPO treatment on HIF‐1α stabilization in vitro. HIF‐1α protein levels were assessed by western blot, and steady‐state mRNA levels for lactate dehydrogenase A ( Ldha ) and pyruvate dehydrogenase kinase 1 ( Pdk1 ) by quantitative real‐time PCR in (a) CMT167 cells, (b) <t>hPASMCs,</t> and (c) mPASMCs, exposed to normoxia (21% O 2 ), severe hypoxia (1% O 2 ), or mild hypoxia (10% O 2 ) for 24 h and treated with triphenylphosphonium (TPP + ) (blue dots) or mitoTEMPO (MT) (red dots). Immunoblots shown are representative of three independent experiments. CMT167: mouse lung carcinoma epithelial cells; hPASMCs: human pulmonary artery smooth muscle cells; mPASMCs: mouse pulmonary artery smooth muscle cells. Densitometric analysis of HIF‐1α bands normalized to β‐Actin. Data are presented as mean ± SD. Statistical comparisons were made using two‐way ANOVA with Tukey's post hoc test ( n = 3 per group). (ns: no signal). Quantitative real‐time PCR data reflect mean ΔCt ± SD ( n = 3 per experimental group).
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    Excess BCAAs promoted a pro-ferroptotic phenotype in <t>human</t> <t>PASMC</t> . (A) Representative confocal micrographs of PASMC stained with MitoTracker Orange and quantification of mitochondrial organization in control and BCAA-treated PASMC (Control PASMC [Con]: 1.1±0.6, BCAA-Treated PASMC [BCAA]: 0.7±0.3); p -values determined by Mann-Whitney U-test. (B) Confocal micrographs of TRME-stained PASMC in control and BCAA-treated media, with corresponding quantification of mitochondrial membrane hyperpolarization, indicated by fluorescence intensity (Con: 8.3±17.2, BCAA: 42.7±9.7). p -values determined by Mann-Whitney U-test. (C) Excess BCAAs increase mitochondrial ROS, demonstrated by confocal micrographs of control and BCAA-treated PASMCs stained with MitoSox Red (Con: 6.4±2.1, BCAA: 14.5±6.9 MFI). p -values determined by Mann-Whitney U-test. (D) Representative confocal micrographs of control, BCAA-treated, and BCAA and ferrostatin-1-treated PASMCs incubated with 50 μM oleate and 50 μM palmitate and stained for lipid peroxidation using BODIPY (Con: 1.8±0.3, BCAA: 1.4±0.1, BCAA-treated with 5 μM ferrostatin-1 [BCAA-FER1]: 1.7±0.3). p -values determined by Kruskal-Wallis test and Dunn’s multiple comparisons test. (E) Incubation with BCAAs induces ferroptotic cell death, demonstrated by viability staining of control, BCAA-treated, and BCAA-treated with ferrostatin-1 PASMCs via Trypan Blue (Con: 9.4±7.5, BCAA: 31.7±11.7, BCAA-FER1: 13.0±11.1). White arrows indicate trypan blue-positive cells. p -values determined by ordinary one-way ANOVA with Tukey’s multiple comparison test.
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    ScienCell primary human pasmcs
    Excess BCAAs promoted a pro-ferroptotic phenotype in <t>human</t> <t>PASMC</t> . (A) Representative confocal micrographs of PASMC stained with MitoTracker Orange and quantification of mitochondrial organization in control and BCAA-treated PASMC (Control PASMC [Con]: 1.1±0.6, BCAA-Treated PASMC [BCAA]: 0.7±0.3); p -values determined by Mann-Whitney U-test. (B) Confocal micrographs of TRME-stained PASMC in control and BCAA-treated media, with corresponding quantification of mitochondrial membrane hyperpolarization, indicated by fluorescence intensity (Con: 8.3±17.2, BCAA: 42.7±9.7). p -values determined by Mann-Whitney U-test. (C) Excess BCAAs increase mitochondrial ROS, demonstrated by confocal micrographs of control and BCAA-treated PASMCs stained with MitoSox Red (Con: 6.4±2.1, BCAA: 14.5±6.9 MFI). p -values determined by Mann-Whitney U-test. (D) Representative confocal micrographs of control, BCAA-treated, and BCAA and ferrostatin-1-treated PASMCs incubated with 50 μM oleate and 50 μM palmitate and stained for lipid peroxidation using BODIPY (Con: 1.8±0.3, BCAA: 1.4±0.1, BCAA-treated with 5 μM ferrostatin-1 [BCAA-FER1]: 1.7±0.3). p -values determined by Kruskal-Wallis test and Dunn’s multiple comparisons test. (E) Incubation with BCAAs induces ferroptotic cell death, demonstrated by viability staining of control, BCAA-treated, and BCAA-treated with ferrostatin-1 PASMCs via Trypan Blue (Con: 9.4±7.5, BCAA: 31.7±11.7, BCAA-FER1: 13.0±11.1). White arrows indicate trypan blue-positive cells. p -values determined by ordinary one-way ANOVA with Tukey’s multiple comparison test.
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    Excess BCAAs promoted a pro-ferroptotic phenotype in <t>human</t> <t>PASMC</t> . (A) Representative confocal micrographs of PASMC stained with MitoTracker Orange and quantification of mitochondrial organization in control and BCAA-treated PASMC (Control PASMC [Con]: 1.1±0.6, BCAA-Treated PASMC [BCAA]: 0.7±0.3); p -values determined by Mann-Whitney U-test. (B) Confocal micrographs of TRME-stained PASMC in control and BCAA-treated media, with corresponding quantification of mitochondrial membrane hyperpolarization, indicated by fluorescence intensity (Con: 8.3±17.2, BCAA: 42.7±9.7). p -values determined by Mann-Whitney U-test. (C) Excess BCAAs increase mitochondrial ROS, demonstrated by confocal micrographs of control and BCAA-treated PASMCs stained with MitoSox Red (Con: 6.4±2.1, BCAA: 14.5±6.9 MFI). p -values determined by Mann-Whitney U-test. (D) Representative confocal micrographs of control, BCAA-treated, and BCAA and ferrostatin-1-treated PASMCs incubated with 50 μM oleate and 50 μM palmitate and stained for lipid peroxidation using BODIPY (Con: 1.8±0.3, BCAA: 1.4±0.1, BCAA-treated with 5 μM ferrostatin-1 [BCAA-FER1]: 1.7±0.3). p -values determined by Kruskal-Wallis test and Dunn’s multiple comparisons test. (E) Incubation with BCAAs induces ferroptotic cell death, demonstrated by viability staining of control, BCAA-treated, and BCAA-treated with ferrostatin-1 PASMCs via Trypan Blue (Con: 9.4±7.5, BCAA: 31.7±11.7, BCAA-FER1: 13.0±11.1). White arrows indicate trypan blue-positive cells. p -values determined by ordinary one-way ANOVA with Tukey’s multiple comparison test.
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    Image Search Results


    Effect of mitoTEMPO treatment on HIF‐1α stabilization in vitro. HIF‐1α protein levels were assessed by western blot, and steady‐state mRNA levels for lactate dehydrogenase A ( Ldha ) and pyruvate dehydrogenase kinase 1 ( Pdk1 ) by quantitative real‐time PCR in (a) CMT167 cells, (b) hPASMCs, and (c) mPASMCs, exposed to normoxia (21% O 2 ), severe hypoxia (1% O 2 ), or mild hypoxia (10% O 2 ) for 24 h and treated with triphenylphosphonium (TPP + ) (blue dots) or mitoTEMPO (MT) (red dots). Immunoblots shown are representative of three independent experiments. CMT167: mouse lung carcinoma epithelial cells; hPASMCs: human pulmonary artery smooth muscle cells; mPASMCs: mouse pulmonary artery smooth muscle cells. Densitometric analysis of HIF‐1α bands normalized to β‐Actin. Data are presented as mean ± SD. Statistical comparisons were made using two‐way ANOVA with Tukey's post hoc test ( n = 3 per group). (ns: no signal). Quantitative real‐time PCR data reflect mean ΔCt ± SD ( n = 3 per experimental group).

    Journal: Physiological Reports

    Article Title: The effect of mitoTEMPO on the development of hypoxia‐induced pulmonary hypertension in male mice

    doi: 10.14814/phy2.70804

    Figure Lengend Snippet: Effect of mitoTEMPO treatment on HIF‐1α stabilization in vitro. HIF‐1α protein levels were assessed by western blot, and steady‐state mRNA levels for lactate dehydrogenase A ( Ldha ) and pyruvate dehydrogenase kinase 1 ( Pdk1 ) by quantitative real‐time PCR in (a) CMT167 cells, (b) hPASMCs, and (c) mPASMCs, exposed to normoxia (21% O 2 ), severe hypoxia (1% O 2 ), or mild hypoxia (10% O 2 ) for 24 h and treated with triphenylphosphonium (TPP + ) (blue dots) or mitoTEMPO (MT) (red dots). Immunoblots shown are representative of three independent experiments. CMT167: mouse lung carcinoma epithelial cells; hPASMCs: human pulmonary artery smooth muscle cells; mPASMCs: mouse pulmonary artery smooth muscle cells. Densitometric analysis of HIF‐1α bands normalized to β‐Actin. Data are presented as mean ± SD. Statistical comparisons were made using two‐way ANOVA with Tukey's post hoc test ( n = 3 per group). (ns: no signal). Quantitative real‐time PCR data reflect mean ΔCt ± SD ( n = 3 per experimental group).

    Article Snippet: Mouse lung carcinoma epithelial (CMT167) cells (10032302, Merck, Germany) and human PASMCs (hPASMCs) (C‐12521, PromoCell, Germany) were purchased.

    Techniques: In Vitro, Western Blot, Real-time Polymerase Chain Reaction

    Excess BCAAs promoted a pro-ferroptotic phenotype in human PASMC . (A) Representative confocal micrographs of PASMC stained with MitoTracker Orange and quantification of mitochondrial organization in control and BCAA-treated PASMC (Control PASMC [Con]: 1.1±0.6, BCAA-Treated PASMC [BCAA]: 0.7±0.3); p -values determined by Mann-Whitney U-test. (B) Confocal micrographs of TRME-stained PASMC in control and BCAA-treated media, with corresponding quantification of mitochondrial membrane hyperpolarization, indicated by fluorescence intensity (Con: 8.3±17.2, BCAA: 42.7±9.7). p -values determined by Mann-Whitney U-test. (C) Excess BCAAs increase mitochondrial ROS, demonstrated by confocal micrographs of control and BCAA-treated PASMCs stained with MitoSox Red (Con: 6.4±2.1, BCAA: 14.5±6.9 MFI). p -values determined by Mann-Whitney U-test. (D) Representative confocal micrographs of control, BCAA-treated, and BCAA and ferrostatin-1-treated PASMCs incubated with 50 μM oleate and 50 μM palmitate and stained for lipid peroxidation using BODIPY (Con: 1.8±0.3, BCAA: 1.4±0.1, BCAA-treated with 5 μM ferrostatin-1 [BCAA-FER1]: 1.7±0.3). p -values determined by Kruskal-Wallis test and Dunn’s multiple comparisons test. (E) Incubation with BCAAs induces ferroptotic cell death, demonstrated by viability staining of control, BCAA-treated, and BCAA-treated with ferrostatin-1 PASMCs via Trypan Blue (Con: 9.4±7.5, BCAA: 31.7±11.7, BCAA-FER1: 13.0±11.1). White arrows indicate trypan blue-positive cells. p -values determined by ordinary one-way ANOVA with Tukey’s multiple comparison test.

    Journal: bioRxiv

    Article Title: Impaired Lung BCAA Metabolism Promotes Ferroptosis and Resultant Pulmonary Arterial Hypertension-Associated Hepatopathy

    doi: 10.1101/2025.09.03.672819

    Figure Lengend Snippet: Excess BCAAs promoted a pro-ferroptotic phenotype in human PASMC . (A) Representative confocal micrographs of PASMC stained with MitoTracker Orange and quantification of mitochondrial organization in control and BCAA-treated PASMC (Control PASMC [Con]: 1.1±0.6, BCAA-Treated PASMC [BCAA]: 0.7±0.3); p -values determined by Mann-Whitney U-test. (B) Confocal micrographs of TRME-stained PASMC in control and BCAA-treated media, with corresponding quantification of mitochondrial membrane hyperpolarization, indicated by fluorescence intensity (Con: 8.3±17.2, BCAA: 42.7±9.7). p -values determined by Mann-Whitney U-test. (C) Excess BCAAs increase mitochondrial ROS, demonstrated by confocal micrographs of control and BCAA-treated PASMCs stained with MitoSox Red (Con: 6.4±2.1, BCAA: 14.5±6.9 MFI). p -values determined by Mann-Whitney U-test. (D) Representative confocal micrographs of control, BCAA-treated, and BCAA and ferrostatin-1-treated PASMCs incubated with 50 μM oleate and 50 μM palmitate and stained for lipid peroxidation using BODIPY (Con: 1.8±0.3, BCAA: 1.4±0.1, BCAA-treated with 5 μM ferrostatin-1 [BCAA-FER1]: 1.7±0.3). p -values determined by Kruskal-Wallis test and Dunn’s multiple comparisons test. (E) Incubation with BCAAs induces ferroptotic cell death, demonstrated by viability staining of control, BCAA-treated, and BCAA-treated with ferrostatin-1 PASMCs via Trypan Blue (Con: 9.4±7.5, BCAA: 31.7±11.7, BCAA-FER1: 13.0±11.1). White arrows indicate trypan blue-positive cells. p -values determined by ordinary one-way ANOVA with Tukey’s multiple comparison test.

    Article Snippet: Human PASMC (ATCC PCS-100-023) were grown with Sigma Basic Eagle Medium (Sigma, B1522-500) with supplements (Lonza, CC-3182) and passaged with subculture reagents (Lonza CC-5034).

    Techniques: Staining, Control, MANN-WHITNEY, Membrane, Fluorescence, Incubation, Comparison