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ACP5 Produkte

(Acid Phosphatase 5, Tartrate Resistant (ACP5))

Kategorien

This gene encodes an iron containing glycoprotein which catalyzes the conversion of orthophosphoric monoester to alcohol and orthophosphate.

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Ausgewählte ACP5 Kategorien

ACP5 Antikörper

High quality antibodies with extensive validation data.

ACP5 ELISA Kits

Reliable ELISA kits for a wide range of species.

ACP5 Proteine

Proteins for various applications incl. WB, ELISA, IF etc.

Empfohlene ACP5 Antikörper

Produkt
Reaktivität
Applikation
Validierungen
Kat. Nr.
Menge
Datenblatt
Reaktivität Human
Applikation FACS, ELISA, WB
Validierungen
  • (1)
  • collections(5)
Kat. Nr. ABIN1724847
Menge 0.1 mg
Reaktivität Human
Applikation IHC, ELISA, WB
Validierungen
  • (1)
  • collections(5)
Kat. Nr. ABIN1724877
Menge 0.1 mg
Reaktivität Human, Mouse, Pig, Rat
Applikation FACS, ELISA, WB
Validierungen
  • collections(6)
Kat. Nr. ABIN1846241
Menge 100 μL

Empfohlene ACP5 ELISA Kits

Produkt
Reaktivität
Analytical Method
Validierungen
Kat. Nr.
Menge
Datenblatt
Reaktivität Human
Analytical Method Quantitative Sandwich ELISA
Validierungen
  • (1)
  • collections(1)
Kat. Nr. ABIN6953394
Menge 96 tests
Reaktivität Mouse
Analytical Method Quantitative Sandwich ELISA
Validierungen
  • (2)
  • collections(1)
Kat. Nr. ABIN6962960
Menge 96 tests
Reaktivität Rat
Analytical Method Quantitative Sandwich ELISA
Validierungen
  • (1)
  • collections(1)
Kat. Nr. ABIN6963234
Menge 96 tests

Empfohlene ACP5 Proteine

Produkt
Reaktivität
Source
Validierungen
Kat. Nr.
Menge
Datenblatt
Reaktivität Human
Source Escherichia coli (E. coli)
Validierungen
  • collections(1)
Kat. Nr. ABIN3086391
Menge 1 mg
Reaktivität Mouse
Source Escherichia coli (E. coli)
Validierungen
  • collections(1)
Kat. Nr. ABIN3121434
Menge 1 mg
Reaktivität Human
Source Human Cells
Validierungen
  • collections(1)
Kat. Nr. ABIN2003033
Menge 20 μg

Neueste Publikationen zu unseren ACP5 Produkten

Yu, Wu, Li, Liu, Zheng, Du, Zhou, Yang, Luo, Hu, Li, Yao, Liu: "Cycloastragenol prevents age-related bone loss: Evidence in d-galactose-treated and aged rats." in: Biomedicine & pharmacotherapy, Vol. 128, pp. 110304, (2021) (PubMed).

Du, Yan, Zhu, Chen, Wang, Ye, Wang, Zhu, Lu, Cao: "QKI deficiency leads to osteoporosis by promoting RANKL-induced osteoclastogenesis and disrupting bone metabolism." in: Cell death & disease, Vol. 11, Issue 5, pp. 330, (2020) (PubMed).

Lin, Wang, Gu, Li, Chen, Chen, Tang, Liu, Pan, Liu, Tang, Fan: "Smart Nanosacrificial Layer on the Bone Surface Prevents Osteoporosis through Acid-Base Neutralization Regulated Biocascade Effects." in: Journal of the American Chemical Society, Vol. 142, Issue 41, pp. 17543-17556, (2020) (PubMed).

Li, Zeng, Zhao, Jing, Tang, Ding, Feng: "Effects of low-intensity pulsed electromagnetic fields on bone microarchitecture, mechanical strength and bone turnover in type 2 diabetic db/db mice." in: Scientific reports, Vol. 7, Issue 1, pp. 10834, (2019) (PubMed).

Ma, Fang, Jiang, Zhang, Wang, Zhang, Chen: "Bone mesenchymal stem cell secretion of sRANKL/OPG/M-CSF in response to macrophage-mediated inflammatory response influences osteogenesis on nanostructured Ti surfaces." in: Biomaterials, Vol. 154, pp. 234-247, (2018) (PubMed).

Ye, Lou, Yu, Zhang, Wang, Wu, Li, Ping, Yang, Yang, Chen, Gao, Huang, Liu: "NUMB maintains bone mass by promoting degradation of PTEN and GLI1 via ubiquitination in osteoblasts." in: Bone research, Vol. 6, pp. 32, (2018) (PubMed).

Hwang, Kim, Kim, Mun, Hong, Son, Yee: "Suppression Effect of Astaxanthin on Osteoclast Formation In Vitro and Bone Loss In Vivo." in: International journal of molecular sciences, Vol. 19, Issue 3, (2018) (PubMed).

Kim, Lee, Hwang, Kang, Yee, Son: "In Vitro and In Vivo Effects of Gracilaria verrucosa Extracts on Osteoclast Differentiation." in: Journal of clinical medicine, Vol. 6, Issue 3, (2017) (PubMed).

Alkhamees, Al-Roujayee, Abuohashish, Ahmed: "Anti-osteoporotic effects of an antidepressant tianeptine on ovariectomized rats." in: Biomedicine & pharmacotherapy, Vol. 87, pp. 575-582, (2017) (PubMed).

Sim, Kook, Yun, Bhattarai, Cho, Lee: "Brief Report: Consecutive Alendronate Administration-Mediated Inhibition of Osteoclasts Improves Long-Term Engraftment Potential and Stress Resistance of HSCs." in: Stem cells (Dayton, Ohio), Vol. 34, Issue 10, pp. 2601-2607, (2017) (PubMed).

Synonyme und alternative Namen zu ACP5

acid phosphatase 5, tartrate resistant (ACP5), acid phosphatase 5a, tartrate resistant (acp5a), acid phosphatase 5, tartrate resistant S homeolog (acp5.S), acid phosphatase 5, tartrate resistant (acp5), tartrate resistant acid phosphatase (NAEGRDRAFT_81291), Tartrate-resistant acid phosphatase type 5 (ppa5), tartrate-resistant acid phosphatase type 5 (LOC100282899), acid phosphatase 5b, tartrate resistant (acp5b), acid phosphatase 5, tartrate resistant (Acp5), acp5, MGC78938, MGC89674, sb:cb576, SPENCDI, TR-AP, TRACP, TRAP, Trap, TTRRAP, UF, wu:fb19f01, wu:fb30b03, wu:fi14e01, wu:fj66f03, zgc:63825, zgc:92339

Bezeichner auf Proteinebene für ACP5

  • TrATPase
  • tartrate-resistant acid ATPase
  • tartrate-resistant acid phosphatase type 5
  • acid phosphatase 5, tartrate resistant
  • acp5 protein
  • acid phosphatase type 5
  • tartrate-resistant acid phosphatase
  • uteroferrin
  • trATPase
  • type 5 acid phosphatase
  • tartrate resistant acid phosphatase
  • Tartrate-resistant acid phosphatase type 5
  • trap
  • TR-AP
  • acid phosphatase type V
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