BT Lab
SKU:BT-AP01763
Chk1 Polyclonal Antibody
Chk1 Polyclonal Antibody
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The checkpoint kinase 1 encoded by CHEK1 belongs to the Ser/Thr protein kinase family. It is required for checkpoint mediated cell cycle arrest in response to DNA damage or the presence of unreplicated DNA. This protein acts to integrate signals from ATM and ATR, two cell cycle proteins involved in DNA damage responses, that also associate with chromatin in meiotic prophase I. Phosphorylation of CDC25A protein phosphatase by this protein is required for cells to delay cell cycle progression in response to double-strand DNA breaks. Several alternatively spliced transcript variants have been found for this gene.
The Chk1 Polyclonal Antibody is a highly specific and sensitive tool designed for the detection and analysis of Chk1 protein expression in various biological samples. This antibody is produced using advanced immunization techniques, ensuring high affinity and specificity towards Chk1 protein.
The Chk1 Polyclonal Antibody exhibits exceptional performance in a wide range of applications, including Western blotting, immunohistochemistry, and immunofluorescence. It enables researchers to accurately assess the expression levels and subcellular localization of Chk1 protein in different tissues and cell types.
With its superior sensitivity, this antibody allows for the detection of low-abundance Chk1 protein, making it an ideal choice for studies requiring precise quantification. Its robust performance ensures reliable and reproducible results, facilitating the advancement of scientific research in the field of cell cycle regulation and DNA damage response.
The Chk1 Polyclonal Antibody is manufactured under stringent quality control measures, guaranteeing batch-to-batch consistency and reliability. It is supplied as a ready-to-use solution, eliminating the need for time-consuming antibody preparation.
Choose the Chk1 Polyclonal Antibody for its exceptional specificity, sensitivity, and versatility, and unlock new insights into the intricate mechanisms of cell cycle control and DNA damage response.
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