Revision 7
Cell Signaling Technology

Orders: 877-616-CELL (2355) [email protected]

Support: 877-678-TECH (8324)

Web: [email protected] cellsignal.com

3 Trask LaneDanversMassachusetts01923USA
For Research Use Only. Not for Use in Diagnostic Procedures.
Applications:

WB, IHC-Bond, IHC-P, IF-IC, FC-FP

REACTIVITY:

H M R Mk

SENSITIVITY:

Endogenous

MW (kDa):

85 (human, monkey), 100 (rat), 120 (murine isoform 1), 55 (murine isoform 2)

Source/Isotype:

Rabbit IgG

UniProt ID:

#P78324

Entrez-Gene Id:

140885

Product Information

Product Usage Information

This product is the carrier free version of product #13379. All data were generated using the same antibody clone in the standard formulation which contains BSA and glycerol.

This formulation is ideal for use with technologies requiring specialized or custom antibody labeling, including fluorophores, metals, lanthanides, and oligonucleotides. It is not recommended for ChIP, ChIP-seq, CUT&RUN, or CUT&Tag assays. If you require a carrier-free formulation for chromatin profiling, please contact us. Optimal dilutions/concentrations should be determined by the end user.

Formulation

Supplied in 1X PBS, BSA and Azide Free.

For standard formulation of this product see product #13379.

Storage

Store at -20°C. This product will freeze at -20°C so it is recommended to aliquot into single-use vials to avoid multiple freeze/thaw cycles. A slight precipitate may be present and can be dissolved by gently vortexing. This will not interfere with antibody performance.

Specificity / Sensitivity

SIRPα/SHPS1 (D6I3M) Rabbit mAb (BSA and Azide Free) recognizes endogenous levels of total SHPS1 protein. This antibody recognizes both large and small isoforms of murine mSHPS1/SIRPα.

Species Reactivity:

Human, Mouse, Rat, Monkey

Source / Purification

Monoclonal antibody is produced by immunizing animals with a synthetic peptide corresponding to residues surrounding Pro413 of human SIRPα/SHPS1 protein.

Background

SHP-substrate 1 (SHPS1, SIRPα) is a single-pass membrane protein and member of both the immunoglobulin superfamily and the signal regulatory protein (SIRP) family. Following growth hormone stimulation or integrin binding, SHPS1 is phosphorylated at several tyrosine residues within its cytoplasmic tail. These phosphorylation events promote association between SHPS1 and multiple signaling proteins, including SHP-1, SHP-2, Grb2 and Shc via their SH2 domains (1-4). Recruitment of SHP-1 and SHP-2 results in SHPS1 dephosphorylation and suppression of tyrosine kinase signaling (1-3,5). The tyrosine kinase JAK2 associates with SHPS1 via its carboxy terminus and phosphorylates SHPS1 in response to extracellular stimuli (5). Research studies show that Src associates with and may phosphorylate SHPS1 in response to insulin (4). In macrophages, SHPS1 can form a complex with the Src pathway adaptor protein SKAP2, Fyn-binding protein FYB, and the tyrosine kinase PYK2 (6). The SHPS1 extracellular domain contains at least three IgG-like domains that interact with CD47, a ubiquitously expressed, integrin-associated protein that acts as a repressive cue in both immune and neuronal cells (7,8). The interaction between CD47 and SHPS1 on opposing cells can inhibit cellular migration (9), promote "tethering" between macrophages and target cells during engulfment (10), facilitate self versus non-self recognition (11), and maintain immune homeostasis (12). SHPS1 plays a critical role in modulating the immune response and inflammation, and may play a role in neuronal development (13,14). The interaction between SHPS1 and CD47 may be an exploitable target in cancer therapy (15-17).

  1. Kharitonenkov, A. et al. (1997) Nature 386, 181-6.
  2. Ochi, F. et al. (1997) Biochem Biophys Res Commun 239, 483-7.
  3. Takada, T. et al. (1998) J Biol Chem 273, 9234-42.
  4. Shen, X. et al. (2009) Mol Cell Proteomics 8, 1539-51.
  5. Stofega, M.R. et al. (2000) J Biol Chem 275, 28222-9.
  6. Timms, J.F. et al. (1999) Curr Biol 9, 927-30.
  7. Seiffert, M. et al. (1999) Blood 94, 3633-43.
  8. Vernon-Wilson, E.F. et al. (2000) Eur J Immunol 30, 2130-7.
  9. Motegi, S. et al. (2003) EMBO J 22, 2634-44.
  10. Tada, K. et al. (2003) J Immunol 171, 5718-26.
  11. van Beek, E.M. et al. (2005) J Immunol 175, 7781-7.
  12. Legrand, N. et al. (2011) Proc Natl Acad Sci U S A 108, 13224-9.
  13. Sarfati, M. et al. (2008) Curr Drug Targets 9, 842-50.
  14. Matozaki, T. et al. (2009) Trends Cell Biol 19, 72-80.
  15. Hara, K. et al. (2011) Cancer Res 71, 1229-34.
  16. Willingham, S.B. et al. (2012) Proc Natl Acad Sci U S A 109, 6662-7.
  17. Weiskopf, K. et al. (2013) Science 341, 88-91.

Species Reactivity

Species reactivity is determined by testing in at least one approved application (e.g., western blot).

Applications Key

WB: Western Blotting IHC-Bond: IHC Leica Bond IHC-P: Immunohistochemistry (Paraffin) IF-IC: Immunofluorescence (Immunocytochemistry) FC-FP: Flow Cytometry (Fixed/Permeabilized)

Cross-Reactivity Key

H: human M: mouse R: rat Hm: hamster Mk: monkey Vir: virus Mi: mink C: chicken Dm: D. melanogaster X: Xenopus Z: zebrafish B: bovine Dg: dog Pg: pig Sc: S. cerevisiae Ce: C. elegans Hr: horse GP: Guinea Pig Rab: rabbit All: all species expected

Trademarks and Patents

Cell Signaling Technology is a trademark of Cell Signaling Technology, Inc.
XP is a registered trademark of Cell Signaling Technology, Inc.
All other trademarks are the property of their respective owners. Visit cellsignal.com/trademarks for more information.

限制使用

除非 CST 的合法授书代表以书面形式书行明确同意,否书以下条款适用于 CST、其关书方或分书商提供的书品。 任何书充本条款或与本条款不同的客书条款和条件,除非书 CST 的合法授书代表以书面形式书独接受, 否书均被拒书,并且无效。

专品专有“专供研究使用”的专专或专似的专专声明, 且未专得美国食品和专品管理局或其他外国或国内专管机专专专任何用途的批准、准专或专可。客专不得将任何专品用于任何专断或治专目的, 或以任何不符合专专声明的方式使用专品。CST 专售或专可的专品提供专作专最专用专的客专,且专用于研专用途。将专品用于专断、专防或治专目的, 或专专售(专独或作专专成)或其他商专目的而专专专品,均需要 CST 的专独专可。客专:(a) 不得专独或与其他材料专合向任何第三方出售、专可、 出借、捐专或以其他方式专专或提供任何专品,或使用专品制造任何商专专品,(b) 不得复制、修改、逆向工程、反专专、 反专专专品或以其他方式专专专专专品的基专专专或技专,或使用专品开专任何与 CST 的专品或服专专争的专品或服专, (c) 不得更改或专除专品上的任何商专、商品名称、徽专、专利或版专声明或专专,(d) 只能根据 CST 的专品专售条款和任何适用文档使用专品, (e) 专遵守客专与专品一起使用的任何第三方专品或服专的任何专可、服专条款或专似专专

Revision 7
#47027

SIRPα/SHPS1 (D6I3M) Rabbit mAb (BSA and Azide Free)

Western Blotting Image 1: SIRPα/SHPS1 (D6I3M) Rabbit mAb (BSA and Azide Free) Expand Image
使用 SIRPα/SHPS1 (D6I3M) Rabbit mAb(上图)和 GAPDH (D16H11) XP® Rabbit mAb #5174(下图),对不同细胞系的提取物进行蛋白质印迹分析。数据的生成使用的是该产品的常规组分产品。
Immunohistochemistry Image 1: SIRPα/SHPS1 (D6I3M) Rabbit mAb (BSA and Azide Free) Expand Image
在 Leica® BOND Rx 上使用 SIRPa/SHPS1 (D6I3M) Rabbit mAb 对石蜡包埋的乳腺导管癌进行免疫组织化学分析。数据的生成使用的是该产品的常规组分产品。
Immunohistochemistry Image 2: SIRPα/SHPS1 (D6I3M) Rabbit mAb (BSA and Azide Free) Expand Image
在 Leica® BOND Rx 上使用 SIRPa/SHPS1 (D6I3M) Rabbit mAb 对石蜡包埋的小鼠脾脏进行免疫组织化学分析。数据的生成使用的是该产品的常规组分产品。
Immunohistochemistry Image 3: SIRPα/SHPS1 (D6I3M) Rabbit mAb (BSA and Azide Free) Expand Image
在 Leica® BOND Rx 上使用 SIRPa/SHPS1 (D6I3M) Rabbit mAb 对石蜡包埋的小鼠肺脏进行免疫组织化学分析。数据的生成使用的是该产品的常规组分产品。
Immunohistochemistry Image 1: SIRPα/SHPS1 (D6I3M) Rabbit mAb (BSA and Azide Free) Expand Image
使用 SIRPα/SHPS1 (D6I3M) Rabbit mAb 对石蜡包埋的人肺癌细胞进行免疫组织化学分析。数据的生成使用的是该产品的常规组分产品。
Immunohistochemistry Image 2: SIRPα/SHPS1 (D6I3M) Rabbit mAb (BSA and Azide Free) Expand Image
使用 SIRPα/SHPS1 (D6I3M) Rabbit mAb 对石蜡包埋的人淋巴结细胞进行免疫组织化学分析。数据的生成使用的是该产品的常规组分产品。
Immunohistochemistry Image 3: SIRPα/SHPS1 (D6I3M) Rabbit mAb (BSA and Azide Free) Expand Image
使用 SIRPα/SHPS1 (D6I3M) Rabbit mAb 对石蜡包埋的 ACHN(左图)或 MCF7(右图)细胞沉淀物进行免疫组织化学分析。数据的生成使用的是该产品的常规组分产品。
Immunofluorescence Image 1: SIRPα/SHPS1 (D6I3M) Rabbit mAb (BSA and Azide Free) Expand Image
使用 SIRPα/SHPS1 (D6I3M) Rabbit mAb(绿色)和 DRAQ5® #4084 (fluorescent DNA dye)(蓝色)对 ACHN(左图,高表达)和 MCF7(右图,低表达)细胞进行共聚焦免疫荧光分析。数据的生成使用的是该产品的常规组分产品。
Flow Cytometry Image 1: SIRPα/SHPS1 (D6I3M) Rabbit mAb (BSA and Azide Free) Expand Image
使用 SIRPα/SHPS1 (D6I3M) Rabbit mAb(实线)或浓度匹配的 Rabbit (DA1E) mAb IgG XP® Isotype Control #3900 (虚线),对 Jurkat 细胞(蓝色,阴性)和 U937 细胞(绿色,阳性)进行流式细胞分析。Anti-rabbit IgG (H+L), F(ab')2 Fragment (Alexa Fluor® 488 Conjugate) #4412 用作二抗。使用该抗体的标准剂型生成数据。