Human Alkaline Phosphatase/ALPL APC-conjugated Antibody
Human Alkaline Phosphatase/ALPL APC-conjugated Antibody Summary
Applications
Please Note: Optimal dilutions should be determined by each laboratory for each application. General Protocols are available in the Technical Information section on our website.
Scientific Data
Detection of Alkaline Phosphatase/ALPL in BG01V Human Cells by Flow Cytometry. BG01V human embryonic stem cells were stained with Mouse Anti-Human Alkaline Phosphatase/ALPL APC-conjugated Monoclonal Antibody (Catalog # FAB1448A, filled histogram) or isotype control antibody (IC002A, open histogram). View our protocol for Staining Membrane-associated Proteins.
Detection of Alkaline Phosphatase/ALPL in iPSCs by Flow Cytometry iPSCs were stained with Mouse Anti-Human Alkaline Phosphatase/ALPL APC-conjugated Monoclonal Antibody (Catalog # FAB1448A, filled histogram) or isotype control antibody (Catalog # IC002A, open histogram). View our protocol for Staining Membrane-associated Proteins.
Reconstitution Calculator
Preparation and Storage
- 12 months from date of receipt, 2 to 8 °C as supplied.
Background: Alkaline Phosphatase/ALPL
The liver, bone and kidney Alkaline Phosphatase, also known as tissue non-specific Alkaline Phosphatase, is a Glycosyl Phosphatidylinositol (GPI) anchored protein. Human liver/bone/kidney Alkaline Phosphatase shares 90% amino acid sequence homology with the mouse enzyme.
- Lawson, G.M. et al. (1985) Clin. Chem. 31:381.
- Gronthos, S. et al. (1999) J. Bone Miner. Res. 14:47.
- Dorheim, M.A. et al. (1993) J. Cell Physiol. 154:317.
Product Datasheets
Citations for Human Alkaline Phosphatase/ALPL APC-conjugated Antibody
R&D Systems personnel manually curate a database that contains references using R&D Systems products. The data collected includes not only links to publications in PubMed, but also provides information about sample types, species, and experimental conditions.
13
Citations: Showing 1 - 10
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Dissection of Cellular Communication between Human Primary Osteoblasts and Bone Marrow Mesenchymal Stem Cells in Osteoarthritis at Single-Cell Resolution
Authors: Ying Liu, Yan Chen, Xiao-Hua Li, Chong Cao, Hui-Xi Zhang, Cui Zhou et al.
International Journal of Stem Cells
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A miR-125/Sirtuin-7 pathway drives the pro-calcific potential of myeloid cells in diabetic vascular disease
Authors: Saula Vigili de Kreutzenberg, Alessandra Giannella, Giulio Ceolotto, Elisabetta Faggin, Roberta Cappellari, Marta Mazzucato et al.
Diabetologia
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A New Method of Bone Stromal Cell Characterization by Flow Cytometry
Authors: Chirayu Patel, Lihong Shi, John F. Whitesides, Brittni M. Foster, Roberto J. Fajardo, Ellen E. Quillen et al.
Current Protocols
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Protein Expression of AEBP1, MCM4, and FABP4 Differentiate Osteogenic, Adipogenic, and Mesenchymal Stromal Stem Cells
Authors: T Sauer, G Facchinett, M Kohl, JM Kowal, S Rozanova, J Horn, H Schmal, I Kwee, AP Schulz, S Hartwig, M Kassem, JK Habermann, T Gemoll
International Journal of Molecular Sciences, 2022-02-25;23(5):.
Species: Human
Sample Types: Whole Cells
Applications: Flow Cytometry -
Identification of a clinical signature predictive of differentiation fate of human bone marrow stromal cells
Authors: Justyna Magdalena Kowal, Sören Möller, Dalia Ali, Florence Figeac, Torben Barington, Hagen Schmal et al.
Stem Cell Research & Therapy
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A systematic dissection of human primary osteoblasts in vivo at single-cell resolution
Authors: Yun Gong, Junxiao Yang, Xiaohua Li, Cui Zhou, Yu Chen, Zun Wang et al.
Aging (Albany NY)
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Single-cell high-content imaging parameters predict functional phenotype of cultured human bone marrow stromal stem cells
Authors: Justyna M. Kowal, Hagen Schmal, Ulrich Halekoh, Jacob B. Hjelmborg, Moustapha Kassem
Stem Cells Translational Medicine
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Type 2 diabetes affects bone cells precursors and bone turnover
Authors: F Sassi, I Buondonno, C Luppi, E Spertino, E Stratta, M Di Stefano, M Ravazzoli, G Isaia, M Trento, P Passera, M Porta, GC Isaia, P D'Amelio
BMC Endocr Disord, 2018-08-08;18(1):55.
Species: Human
Sample Types: Whole Cells
Applications: Flow Cytometry -
Negative Association Between Sclerostin and INSL3 in Isolated Human Osteocytes and in Klinefelter Syndrome: New Hints for Testis-Bone Crosstalk
Authors: A Di Nisio, L De Toni, MS Rocca, M Ghezzi, R Selice, G Taglialavo, A Ferlin, C Foresta
J. Clin. Endocrinol. Metab., 2018-05-01;0(0):.
Species: Human
Sample Types: Whole Cells
Applications: Flow Cytometry -
Interleukin-1beta (IL-1?)-induced Notch ligand Jagged1 suppresses mitogenic action of IL-1? on human dystrophic myogenic cells
Authors: Y Nagata, T Kiyono, K Okamura, YI Goto, M Matsuo, M Ikemoto-Ue, N Hashimoto
PLoS ONE, 2017-12-01;12(12):e0188821.
Species: Human
Sample Types: Whole Cells
Applications: Flow Cytometry -
The C-terminus of tissue factor pathway inhibitor alpha is required for its interaction with factors V and Va.
J. Thromb. Haemost., 2012-09-01;10(9):1944-6.
Species: Human
Sample Types: Whole Cells
Applications: Flow Cytometry -
Human Periosteum Is a Source of Cells for Orthopaedic Tissue Engineering: A Pilot Study
Authors: Michael D. Ball, Ian C. Bonzani, Melissa J. Bovis, Andrew Williams, Molly M. Stevens
Clinical Orthopaedics & Related Research
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A defined glycosaminoglycan-binding substratum for human pluripotent stem cells.
Authors: Klim JR, Li L, Wrighton PJ
Nat. Methods, 2010-11-14;7(12):989-94.
Species: Human
Sample Types: Whole Cells
Applications: Flow Cytometry
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