experimental methods human renal proximal tubular epithelial cells Search Results


90
Cell Applications Inc human renal proximal tubular epithelial cells hrptepc
In vitro cellular binding/uptake of all constructs in primary human renal cells. Primary human glomerular microvascular endothelial cells (HGME), proximal tubule <t>epithelial</t> cells <t>(HRPTEpC),</t> and podocytes were exposed to each fluorescently labeled ELP fusion protein at 10 µM for 24 h. Protein levels bound to or in each cell type were determined by flow cytometry ( A ). Expression of the VEGF receptors Flt-1 and Flk-1 were determined in each cell line by Western blot (( B ). Lane 1—HGME, Lane 2—HRPTEpC, and Lane 3—podocytes). * Statistically significant increase relative to ELP-treated cells (one-way ANOVA performed within each cell type with post-hoc Tukey’s multiple comparison).
Human Renal Proximal Tubular Epithelial Cells Hrptepc, supplied by Cell Applications Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Innoprot Inc human renal proximal tubular epithelial cells
In vitro cellular binding/uptake of all constructs in primary human renal cells. Primary human glomerular microvascular endothelial cells (HGME), proximal tubule <t>epithelial</t> cells <t>(HRPTEpC),</t> and podocytes were exposed to each fluorescently labeled ELP fusion protein at 10 µM for 24 h. Protein levels bound to or in each cell type were determined by flow cytometry ( A ). Expression of the VEGF receptors Flt-1 and Flk-1 were determined in each cell line by Western blot (( B ). Lane 1—HGME, Lane 2—HRPTEpC, and Lane 3—podocytes). * Statistically significant increase relative to ELP-treated cells (one-way ANOVA performed within each cell type with post-hoc Tukey’s multiple comparison).
Human Renal Proximal Tubular Epithelial Cells, supplied by Innoprot Inc, used in various techniques. Bioz Stars score: 93/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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ScienCell human renal proximal tubular epithelial cells (hrptepic)
SA-β-gal staining ( A ) and the mRNA expression of senescence markers (PAI-1, p16 INK-4a , p21 Cip1/Waf1 , p53, IL-6, MCP-1, TNF-α) ( B – H ) were significantly increased in human renal proximal tubular <t>epithelial</t> cells <t>(HRPTEpiC)</t> following TNF-α and TGF-β treatment. Similarly, the protein levels of IFITM3 were elevated under the same conditions ( I , J ). Data are mean ± SD ( n = 3/group). * P < 0.05 vs. Normal. PAI-1: plasminogen activator inhibitor-1. Scale bar: 200 µm ( A ).
Human Renal Proximal Tubular Epithelial Cells (Hrptepic), supplied by ScienCell, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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ScienCell human renal proximal tubular epithelial cell lysate
α-Klotho isoforms, sequence, and Western blot. A, Structure of the two isoforms of α-Klotho. Isoform 1 represents the full-length protein and contains a signal sequence domain (SS), two homologous domains (KL1, KL2), a short transmembrane domain (TM), and a short cytoplasmic tail. Shown is the site of the epitope for the antibody used in our experiments: AA 800 to 900, KL2. This epitope is absent from Isoform 2, a soluble, secreted protein that arises from alternative RNA splicing and contains only AA 1–549, and where the terminal 15 residues are replaced by the sequence shown. B, The full-length α-Klotho protein sequence of 1012 AA is shown, with KL1 and KL2 shown in red and green respectively, and TM highlighted (black). The peptides giving rise to the PRM signature are also shown (bold typeface; common to isoforms 1 and 2, red; exclusive to full-length α-Klotho, isoform 1, blue). C and D, Western blot analysis of cell lysates (C) and tissues (D) supports the presence of the full-length α-Klotho. Full-length rh α-Klotho protein (rh-α-Klotho). EC, <t>epithelial</t> cells.
Human Renal Proximal Tubular Epithelial Cell Lysate, supplied by ScienCell, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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human renal proximal tubular epithelial cell lysate - by Bioz Stars, 2026-08
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Cosmo Bio USA human renal proximal tubular epithelial cells cosmo bio
α-Klotho isoforms, sequence, and Western blot. A, Structure of the two isoforms of α-Klotho. Isoform 1 represents the full-length protein and contains a signal sequence domain (SS), two homologous domains (KL1, KL2), a short transmembrane domain (TM), and a short cytoplasmic tail. Shown is the site of the epitope for the antibody used in our experiments: AA 800 to 900, KL2. This epitope is absent from Isoform 2, a soluble, secreted protein that arises from alternative RNA splicing and contains only AA 1–549, and where the terminal 15 residues are replaced by the sequence shown. B, The full-length α-Klotho protein sequence of 1012 AA is shown, with KL1 and KL2 shown in red and green respectively, and TM highlighted (black). The peptides giving rise to the PRM signature are also shown (bold typeface; common to isoforms 1 and 2, red; exclusive to full-length α-Klotho, isoform 1, blue). C and D, Western blot analysis of cell lysates (C) and tissues (D) supports the presence of the full-length α-Klotho. Full-length rh α-Klotho protein (rh-α-Klotho). EC, <t>epithelial</t> cells.
Human Renal Proximal Tubular Epithelial Cells Cosmo Bio, supplied by Cosmo Bio USA, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Kurabo industries human renal proximal tubular epithelial cells
α-Klotho isoforms, sequence, and Western blot. A, Structure of the two isoforms of α-Klotho. Isoform 1 represents the full-length protein and contains a signal sequence domain (SS), two homologous domains (KL1, KL2), a short transmembrane domain (TM), and a short cytoplasmic tail. Shown is the site of the epitope for the antibody used in our experiments: AA 800 to 900, KL2. This epitope is absent from Isoform 2, a soluble, secreted protein that arises from alternative RNA splicing and contains only AA 1–549, and where the terminal 15 residues are replaced by the sequence shown. B, The full-length α-Klotho protein sequence of 1012 AA is shown, with KL1 and KL2 shown in red and green respectively, and TM highlighted (black). The peptides giving rise to the PRM signature are also shown (bold typeface; common to isoforms 1 and 2, red; exclusive to full-length α-Klotho, isoform 1, blue). C and D, Western blot analysis of cell lysates (C) and tissues (D) supports the presence of the full-length α-Klotho. Full-length rh α-Klotho protein (rh-α-Klotho). EC, <t>epithelial</t> cells.
Human Renal Proximal Tubular Epithelial Cells, supplied by Kurabo industries, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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ScienCell tecs 4100
α-Klotho isoforms, sequence, and Western blot. A, Structure of the two isoforms of α-Klotho. Isoform 1 represents the full-length protein and contains a signal sequence domain (SS), two homologous domains (KL1, KL2), a short transmembrane domain (TM), and a short cytoplasmic tail. Shown is the site of the epitope for the antibody used in our experiments: AA 800 to 900, KL2. This epitope is absent from Isoform 2, a soluble, secreted protein that arises from alternative RNA splicing and contains only AA 1–549, and where the terminal 15 residues are replaced by the sequence shown. B, The full-length α-Klotho protein sequence of 1012 AA is shown, with KL1 and KL2 shown in red and green respectively, and TM highlighted (black). The peptides giving rise to the PRM signature are also shown (bold typeface; common to isoforms 1 and 2, red; exclusive to full-length α-Klotho, isoform 1, blue). C and D, Western blot analysis of cell lysates (C) and tissues (D) supports the presence of the full-length α-Klotho. Full-length rh α-Klotho protein (rh-α-Klotho). EC, <t>epithelial</t> cells.
Tecs 4100, supplied by ScienCell, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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tecs 4100 - by Bioz Stars, 2026-08
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ScienCell primary human renal proximal tubular epithelial cells rptec lot:5111
α-Klotho isoforms, sequence, and Western blot. A, Structure of the two isoforms of α-Klotho. Isoform 1 represents the full-length protein and contains a signal sequence domain (SS), two homologous domains (KL1, KL2), a short transmembrane domain (TM), and a short cytoplasmic tail. Shown is the site of the epitope for the antibody used in our experiments: AA 800 to 900, KL2. This epitope is absent from Isoform 2, a soluble, secreted protein that arises from alternative RNA splicing and contains only AA 1–549, and where the terminal 15 residues are replaced by the sequence shown. B, The full-length α-Klotho protein sequence of 1012 AA is shown, with KL1 and KL2 shown in red and green respectively, and TM highlighted (black). The peptides giving rise to the PRM signature are also shown (bold typeface; common to isoforms 1 and 2, red; exclusive to full-length α-Klotho, isoform 1, blue). C and D, Western blot analysis of cell lysates (C) and tissues (D) supports the presence of the full-length α-Klotho. Full-length rh α-Klotho protein (rh-α-Klotho). EC, <t>epithelial</t> cells.
Primary Human Renal Proximal Tubular Epithelial Cells Rptec Lot:5111, supplied by ScienCell, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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BioIVT Inc human renal proximal tubular epithelial cells (ptecs) from cell line hk-2
α-Klotho isoforms, sequence, and Western blot. A, Structure of the two isoforms of α-Klotho. Isoform 1 represents the full-length protein and contains a signal sequence domain (SS), two homologous domains (KL1, KL2), a short transmembrane domain (TM), and a short cytoplasmic tail. Shown is the site of the epitope for the antibody used in our experiments: AA 800 to 900, KL2. This epitope is absent from Isoform 2, a soluble, secreted protein that arises from alternative RNA splicing and contains only AA 1–549, and where the terminal 15 residues are replaced by the sequence shown. B, The full-length α-Klotho protein sequence of 1012 AA is shown, with KL1 and KL2 shown in red and green respectively, and TM highlighted (black). The peptides giving rise to the PRM signature are also shown (bold typeface; common to isoforms 1 and 2, red; exclusive to full-length α-Klotho, isoform 1, blue). C and D, Western blot analysis of cell lysates (C) and tissues (D) supports the presence of the full-length α-Klotho. Full-length rh α-Klotho protein (rh-α-Klotho). EC, <t>epithelial</t> cells.
Human Renal Proximal Tubular Epithelial Cells (Ptecs) From Cell Line Hk 2, supplied by BioIVT Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Korean Cell Line Bank renal cell carcinoma cells achn
α-Klotho isoforms, sequence, and Western blot. A, Structure of the two isoforms of α-Klotho. Isoform 1 represents the full-length protein and contains a signal sequence domain (SS), two homologous domains (KL1, KL2), a short transmembrane domain (TM), and a short cytoplasmic tail. Shown is the site of the epitope for the antibody used in our experiments: AA 800 to 900, KL2. This epitope is absent from Isoform 2, a soluble, secreted protein that arises from alternative RNA splicing and contains only AA 1–549, and where the terminal 15 residues are replaced by the sequence shown. B, The full-length α-Klotho protein sequence of 1012 AA is shown, with KL1 and KL2 shown in red and green respectively, and TM highlighted (black). The peptides giving rise to the PRM signature are also shown (bold typeface; common to isoforms 1 and 2, red; exclusive to full-length α-Klotho, isoform 1, blue). C and D, Western blot analysis of cell lysates (C) and tissues (D) supports the presence of the full-length α-Klotho. Full-length rh α-Klotho protein (rh-α-Klotho). EC, <t>epithelial</t> cells.
Renal Cell Carcinoma Cells Achn, supplied by Korean Cell Line Bank, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Keygen Biotech human intestinal caco2 cells
α-Klotho isoforms, sequence, and Western blot. A, Structure of the two isoforms of α-Klotho. Isoform 1 represents the full-length protein and contains a signal sequence domain (SS), two homologous domains (KL1, KL2), a short transmembrane domain (TM), and a short cytoplasmic tail. Shown is the site of the epitope for the antibody used in our experiments: AA 800 to 900, KL2. This epitope is absent from Isoform 2, a soluble, secreted protein that arises from alternative RNA splicing and contains only AA 1–549, and where the terminal 15 residues are replaced by the sequence shown. B, The full-length α-Klotho protein sequence of 1012 AA is shown, with KL1 and KL2 shown in red and green respectively, and TM highlighted (black). The peptides giving rise to the PRM signature are also shown (bold typeface; common to isoforms 1 and 2, red; exclusive to full-length α-Klotho, isoform 1, blue). C and D, Western blot analysis of cell lysates (C) and tissues (D) supports the presence of the full-length α-Klotho. Full-length rh α-Klotho protein (rh-α-Klotho). EC, <t>epithelial</t> cells.
Human Intestinal Caco2 Cells, supplied by Keygen Biotech, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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ScienCell hk-2 cells
α-Klotho isoforms, sequence, and Western blot. A, Structure of the two isoforms of α-Klotho. Isoform 1 represents the full-length protein and contains a signal sequence domain (SS), two homologous domains (KL1, KL2), a short transmembrane domain (TM), and a short cytoplasmic tail. Shown is the site of the epitope for the antibody used in our experiments: AA 800 to 900, KL2. This epitope is absent from Isoform 2, a soluble, secreted protein that arises from alternative RNA splicing and contains only AA 1–549, and where the terminal 15 residues are replaced by the sequence shown. B, The full-length α-Klotho protein sequence of 1012 AA is shown, with KL1 and KL2 shown in red and green respectively, and TM highlighted (black). The peptides giving rise to the PRM signature are also shown (bold typeface; common to isoforms 1 and 2, red; exclusive to full-length α-Klotho, isoform 1, blue). C and D, Western blot analysis of cell lysates (C) and tissues (D) supports the presence of the full-length α-Klotho. Full-length rh α-Klotho protein (rh-α-Klotho). EC, <t>epithelial</t> cells.
Hk 2 Cells, supplied by ScienCell, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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In vitro cellular binding/uptake of all constructs in primary human renal cells. Primary human glomerular microvascular endothelial cells (HGME), proximal tubule epithelial cells (HRPTEpC), and podocytes were exposed to each fluorescently labeled ELP fusion protein at 10 µM for 24 h. Protein levels bound to or in each cell type were determined by flow cytometry ( A ). Expression of the VEGF receptors Flt-1 and Flk-1 were determined in each cell line by Western blot (( B ). Lane 1—HGME, Lane 2—HRPTEpC, and Lane 3—podocytes). * Statistically significant increase relative to ELP-treated cells (one-way ANOVA performed within each cell type with post-hoc Tukey’s multiple comparison).

Journal: Pharmaceutics

Article Title: Utilizing a Kidney-Targeting Peptide to Improve Renal Deposition of a Pro-Angiogenic Protein Biopolymer

doi: 10.3390/pharmaceutics11100542

Figure Lengend Snippet: In vitro cellular binding/uptake of all constructs in primary human renal cells. Primary human glomerular microvascular endothelial cells (HGME), proximal tubule epithelial cells (HRPTEpC), and podocytes were exposed to each fluorescently labeled ELP fusion protein at 10 µM for 24 h. Protein levels bound to or in each cell type were determined by flow cytometry ( A ). Expression of the VEGF receptors Flt-1 and Flk-1 were determined in each cell line by Western blot (( B ). Lane 1—HGME, Lane 2—HRPTEpC, and Lane 3—podocytes). * Statistically significant increase relative to ELP-treated cells (one-way ANOVA performed within each cell type with post-hoc Tukey’s multiple comparison).

Article Snippet: Human renal proximal tubular epithelial cells (HRPTEpC) were purchased from Cell Applications, Inc. (San Diego, CA, USA) and subcultured according to the manufacturer’s recommendations using RenaEpi Growth factor media.

Techniques: In Vitro, Binding Assay, Construct, Labeling, Flow Cytometry, Expressing, Western Blot, Comparison

SA-β-gal staining ( A ) and the mRNA expression of senescence markers (PAI-1, p16 INK-4a , p21 Cip1/Waf1 , p53, IL-6, MCP-1, TNF-α) ( B – H ) were significantly increased in human renal proximal tubular epithelial cells (HRPTEpiC) following TNF-α and TGF-β treatment. Similarly, the protein levels of IFITM3 were elevated under the same conditions ( I , J ). Data are mean ± SD ( n = 3/group). * P < 0.05 vs. Normal. PAI-1: plasminogen activator inhibitor-1. Scale bar: 200 µm ( A ).

Journal: Cell Death & Disease

Article Title: Cellular senescence promotes macrophage-to-myofibroblast transition in chronic ischemic renal disease

doi: 10.1038/s41419-025-07666-1

Figure Lengend Snippet: SA-β-gal staining ( A ) and the mRNA expression of senescence markers (PAI-1, p16 INK-4a , p21 Cip1/Waf1 , p53, IL-6, MCP-1, TNF-α) ( B – H ) were significantly increased in human renal proximal tubular epithelial cells (HRPTEpiC) following TNF-α and TGF-β treatment. Similarly, the protein levels of IFITM3 were elevated under the same conditions ( I , J ). Data are mean ± SD ( n = 3/group). * P < 0.05 vs. Normal. PAI-1: plasminogen activator inhibitor-1. Scale bar: 200 µm ( A ).

Article Snippet: Firstly, human renal proximal tubular epithelial cells (HRPTEpiC) (ScienCell, Carlsbad, CA) [ , ] were grown in an epithelial cell medium (ScienCell) containing epithelial cell growth supplement (ScienCell), in a humidified atmosphere of 95% air and 5% CO 2 at 37 °C.

Techniques: Staining, Expressing

A Schematic of the in vitro experimental protocol. B , C : Immunofluorescence staining of Ki67 and quantitative analysis of Ki67 + cells. The number of Ki67 + cells decreased after co-culture with senescent human renal proximal tubular epithelial cells (HRPTEpiC) (senescent cells, SC). Scale bar: 100 µm ( B ). The data are mean ± SD (n = 3/group). D – H : The effects of IFITM-3 and ITGB-3 on macrophage senescence. IFITM3 and ITGB3 were manipulated in SC HRPTEpiC and macrophages, respectively. Macrophages were subsequently collected for Western blot analysis of senescence markers p21 Cip1/Waf1 , p53, p-p53.S15, and γ-H2AX. Silencing ITGB3 or IFITM3 individually using siRNA reduced the expression of these senescence markers. However, this blunting effect was mitigated when IFITM3 was overexpressed in HRPTEpiC, indicating that IFITM3 plays a critical role in maintaining senescence signaling despite ITGB3 knockdown. Data are mean ± SD ( n = 3/group). * P < 0.05 vs. Normal control (NC) and Non-SC groups; # P < 0.05 vs. SC group; and P < 0.05 vs. SC + IFITM3 over-expressing groups. I – K : Relative mRNA expression of the senescence markers p16 INK-4a , p21 Cip1/Waf1 , and p53 increased in macrophages co-incubated with senescent cells. β-actin was used as loading control. Data are mean ± SD ( n = 3/group). * P < 0.05 vs. Normal.

Journal: Cell Death & Disease

Article Title: Cellular senescence promotes macrophage-to-myofibroblast transition in chronic ischemic renal disease

doi: 10.1038/s41419-025-07666-1

Figure Lengend Snippet: A Schematic of the in vitro experimental protocol. B , C : Immunofluorescence staining of Ki67 and quantitative analysis of Ki67 + cells. The number of Ki67 + cells decreased after co-culture with senescent human renal proximal tubular epithelial cells (HRPTEpiC) (senescent cells, SC). Scale bar: 100 µm ( B ). The data are mean ± SD (n = 3/group). D – H : The effects of IFITM-3 and ITGB-3 on macrophage senescence. IFITM3 and ITGB3 were manipulated in SC HRPTEpiC and macrophages, respectively. Macrophages were subsequently collected for Western blot analysis of senescence markers p21 Cip1/Waf1 , p53, p-p53.S15, and γ-H2AX. Silencing ITGB3 or IFITM3 individually using siRNA reduced the expression of these senescence markers. However, this blunting effect was mitigated when IFITM3 was overexpressed in HRPTEpiC, indicating that IFITM3 plays a critical role in maintaining senescence signaling despite ITGB3 knockdown. Data are mean ± SD ( n = 3/group). * P < 0.05 vs. Normal control (NC) and Non-SC groups; # P < 0.05 vs. SC group; and P < 0.05 vs. SC + IFITM3 over-expressing groups. I – K : Relative mRNA expression of the senescence markers p16 INK-4a , p21 Cip1/Waf1 , and p53 increased in macrophages co-incubated with senescent cells. β-actin was used as loading control. Data are mean ± SD ( n = 3/group). * P < 0.05 vs. Normal.

Article Snippet: Firstly, human renal proximal tubular epithelial cells (HRPTEpiC) (ScienCell, Carlsbad, CA) [ , ] were grown in an epithelial cell medium (ScienCell) containing epithelial cell growth supplement (ScienCell), in a humidified atmosphere of 95% air and 5% CO 2 at 37 °C.

Techniques: In Vitro, Immunofluorescence, Staining, Co-Culture Assay, Western Blot, Expressing, Knockdown, Control, Incubation

α-Klotho isoforms, sequence, and Western blot. A, Structure of the two isoforms of α-Klotho. Isoform 1 represents the full-length protein and contains a signal sequence domain (SS), two homologous domains (KL1, KL2), a short transmembrane domain (TM), and a short cytoplasmic tail. Shown is the site of the epitope for the antibody used in our experiments: AA 800 to 900, KL2. This epitope is absent from Isoform 2, a soluble, secreted protein that arises from alternative RNA splicing and contains only AA 1–549, and where the terminal 15 residues are replaced by the sequence shown. B, The full-length α-Klotho protein sequence of 1012 AA is shown, with KL1 and KL2 shown in red and green respectively, and TM highlighted (black). The peptides giving rise to the PRM signature are also shown (bold typeface; common to isoforms 1 and 2, red; exclusive to full-length α-Klotho, isoform 1, blue). C and D, Western blot analysis of cell lysates (C) and tissues (D) supports the presence of the full-length α-Klotho. Full-length rh α-Klotho protein (rh-α-Klotho). EC, epithelial cells.

Journal: The Journal of Clinical Endocrinology and Metabolism

Article Title: α-Klotho Expression in Human Tissues

doi: 10.1210/jc.2015-1800

Figure Lengend Snippet: α-Klotho isoforms, sequence, and Western blot. A, Structure of the two isoforms of α-Klotho. Isoform 1 represents the full-length protein and contains a signal sequence domain (SS), two homologous domains (KL1, KL2), a short transmembrane domain (TM), and a short cytoplasmic tail. Shown is the site of the epitope for the antibody used in our experiments: AA 800 to 900, KL2. This epitope is absent from Isoform 2, a soluble, secreted protein that arises from alternative RNA splicing and contains only AA 1–549, and where the terminal 15 residues are replaced by the sequence shown. B, The full-length α-Klotho protein sequence of 1012 AA is shown, with KL1 and KL2 shown in red and green respectively, and TM highlighted (black). The peptides giving rise to the PRM signature are also shown (bold typeface; common to isoforms 1 and 2, red; exclusive to full-length α-Klotho, isoform 1, blue). C and D, Western blot analysis of cell lysates (C) and tissues (D) supports the presence of the full-length α-Klotho. Full-length rh α-Klotho protein (rh-α-Klotho). EC, epithelial cells.

Article Snippet: Cell lysates were obtained from commercially available primary cell cultures (ScienCell Research Laboratories), including: Human Epidermal Keratinocyte Lysate-adult (product code HEKL-a, catalog no. 2116), Human Prostate Epithelial Cell Lysate (product code HPrEpiCL, catalog no. 4416), Human Mammary Epithelial Cell Lysate (product code HMEpiCL, catalog no. 7616), Human Renal Proximal Tubular Epithelial Cell Lysate (product code HRPTEpiCL, catalog no. 4106), and Human Neuron Lysate (product code HNL, catalog no. 1526).

Techniques: Sequencing, Western Blot

α-Klotho protein expression and distribution in human epithelial and reproductive tissues. IHC, positive staining (brown) was found in all the cellular layers of the epidermis (A) and appendage tissue such as hair follicle and sebaceous gland (B). Intestinal expression was primarily found in epithelial cells as illustrated in jejunum (C) and colon (D). In reproductive tissues, positive staining was found in epithelial Sertoli cells (E), testosterone producing Leydig cells (illustrated with white arrows) of the testis (F), and epithelial cells of the prostate gland G). H–K, In mammary tissue (H), endometrium of uterus (I), and endometrium of salpinx (K), the epithelial cell layer was staining strongly for α-Klotho protein; insets are larger magnifications of the epithelial layer. n ≥ 5 for each tissue.

Journal: The Journal of Clinical Endocrinology and Metabolism

Article Title: α-Klotho Expression in Human Tissues

doi: 10.1210/jc.2015-1800

Figure Lengend Snippet: α-Klotho protein expression and distribution in human epithelial and reproductive tissues. IHC, positive staining (brown) was found in all the cellular layers of the epidermis (A) and appendage tissue such as hair follicle and sebaceous gland (B). Intestinal expression was primarily found in epithelial cells as illustrated in jejunum (C) and colon (D). In reproductive tissues, positive staining was found in epithelial Sertoli cells (E), testosterone producing Leydig cells (illustrated with white arrows) of the testis (F), and epithelial cells of the prostate gland G). H–K, In mammary tissue (H), endometrium of uterus (I), and endometrium of salpinx (K), the epithelial cell layer was staining strongly for α-Klotho protein; insets are larger magnifications of the epithelial layer. n ≥ 5 for each tissue.

Article Snippet: Cell lysates were obtained from commercially available primary cell cultures (ScienCell Research Laboratories), including: Human Epidermal Keratinocyte Lysate-adult (product code HEKL-a, catalog no. 2116), Human Prostate Epithelial Cell Lysate (product code HPrEpiCL, catalog no. 4416), Human Mammary Epithelial Cell Lysate (product code HMEpiCL, catalog no. 7616), Human Renal Proximal Tubular Epithelial Cell Lysate (product code HRPTEpiCL, catalog no. 4106), and Human Neuron Lysate (product code HNL, catalog no. 1526).

Techniques: Expressing, Staining

Mass spectrometry characterization of the transmembrane α-Klotho protein in human tissues and cells: extracellular α-Klotho peptide GLFYVDFLSQKD (exon 3). A–D, Representative mass spectrometry spectra (left) and Skyline data (right) confirmed the presence of full-length α-Klotho rh full-length α-Klotho protein (rh-α-Klotho) (A), renal proximal tubular epithelial cells (B), kidney tissue (C), and renal artery (D). E–G, The full-length specific (isoform 1) αKlotho peptide LWITMNEPYTR (exon 4). Representative mass spectrometry spectra (left) and Skyline data (right) confirmed the presence of full-length α-Klotho. E), rh full-length α-Klotho protein (rh-α-Klotho); F, kidney tissue; G, renal artery; and H, neuronal cells.

Journal: The Journal of Clinical Endocrinology and Metabolism

Article Title: α-Klotho Expression in Human Tissues

doi: 10.1210/jc.2015-1800

Figure Lengend Snippet: Mass spectrometry characterization of the transmembrane α-Klotho protein in human tissues and cells: extracellular α-Klotho peptide GLFYVDFLSQKD (exon 3). A–D, Representative mass spectrometry spectra (left) and Skyline data (right) confirmed the presence of full-length α-Klotho rh full-length α-Klotho protein (rh-α-Klotho) (A), renal proximal tubular epithelial cells (B), kidney tissue (C), and renal artery (D). E–G, The full-length specific (isoform 1) αKlotho peptide LWITMNEPYTR (exon 4). Representative mass spectrometry spectra (left) and Skyline data (right) confirmed the presence of full-length α-Klotho. E), rh full-length α-Klotho protein (rh-α-Klotho); F, kidney tissue; G, renal artery; and H, neuronal cells.

Article Snippet: Cell lysates were obtained from commercially available primary cell cultures (ScienCell Research Laboratories), including: Human Epidermal Keratinocyte Lysate-adult (product code HEKL-a, catalog no. 2116), Human Prostate Epithelial Cell Lysate (product code HPrEpiCL, catalog no. 4416), Human Mammary Epithelial Cell Lysate (product code HMEpiCL, catalog no. 7616), Human Renal Proximal Tubular Epithelial Cell Lysate (product code HRPTEpiCL, catalog no. 4106), and Human Neuron Lysate (product code HNL, catalog no. 1526).

Techniques: Mass Spectrometry, Targeted Proteomics

Confirmation of Transmembrane α-Klotho Protein Expression in Human Tissues and Cells

Journal: The Journal of Clinical Endocrinology and Metabolism

Article Title: α-Klotho Expression in Human Tissues

doi: 10.1210/jc.2015-1800

Figure Lengend Snippet: Confirmation of Transmembrane α-Klotho Protein Expression in Human Tissues and Cells

Article Snippet: Cell lysates were obtained from commercially available primary cell cultures (ScienCell Research Laboratories), including: Human Epidermal Keratinocyte Lysate-adult (product code HEKL-a, catalog no. 2116), Human Prostate Epithelial Cell Lysate (product code HPrEpiCL, catalog no. 4416), Human Mammary Epithelial Cell Lysate (product code HMEpiCL, catalog no. 7616), Human Renal Proximal Tubular Epithelial Cell Lysate (product code HRPTEpiCL, catalog no. 4106), and Human Neuron Lysate (product code HNL, catalog no. 1526).

Techniques: Expressing, Recombinant