Purification and identification of the STAT5 protease in myeloid cells

Author:

Schuster Björn1,Hendry Lisa1,Byers Helen2,Lynham Steven F.3,Ward Malcolm A.2,John Susan1

Affiliation:

1. Division of Infection, Immunity and Inflammatory Diseases, Guy's Campus, King's College London, London SE1 9RT, U.K.

2. Proteome Sciences PLC, Denmark Hill Campus, King's College London, London SE5 8AF, U.K.

3. Department of Neuroscience, Institute of Psychiatry, Denmark Hill Campus, King's College London, London SE5 8AF, U.K.

Abstract

STAT (signal transducer and activator of transcription) proteins are critical regulators of cytokine-induced cell proliferation, differentiation and survival. STAT functional activity can be variably regulated by post-translational modifications, including phosphorylation, acetylation, methylation and sumoylation. Additionally, limited proteolytic digestion of full-length STAT proteins (STATα) generates C-terminally truncated forms (STATγ) in different cell lineages, which have significantly reduced transcriptional activity due to the lack of the transactivation domain. Previously, it has been shown that STAT5γ, generated by an unidentified nuclear serine protease, plays an important role in myeloid cell differentiation and is aberrantly expressed in acute myeloid leukaemia. To better understand this regulatory mechanism for STAT5 function, we have purified the STAT5 protease from the immature myeloid cell line 32D and identified it by MS analysis as the granule-derived serine protease, CatG (cathepsin G). We show that purified CatG can specifically cleave full-length STAT5 to generate STAT5γ, and this activity can be inhibited by AEBSF [4-(2-aminoethyl)benzenesulfonyl fluoride] in an in vitro protease assay. Importantly, preparation of nuclear and cytoplasmic extracts from immature myeloid cell lines, 32D and FDC-P1, in the presence of a specific inhibitor for CatG results in the identification of STAT5α only. These studies indicate that nuclear STAT5γ does not naturally exist in immature myeloid cells and is artificially generated from STAT5α during the preparation of extracts due to the abundance of CatG in these cells. Therefore in contrast with earlier studies, our data suggest that STAT5α, rather than STAT5γ is the active form in immature myeloid cells.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

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