Clustering of phosphatase RPTPα promotes Src signaling and the arthritogenic action of synovial fibroblasts

原癌基因酪氨酸蛋白激酶Src 细胞生物学 外域 成纤维细胞 肌动蛋白 生物 化学 癌症研究 激酶 受体 生物化学 体外
作者
S. Sendo,William B. Kiosses,Shen Yang,Dennis J. Wu,Daniel W. K. Lee,Lin Liu,Yael Aschner,Allison J. Vela,Gregory P. Downey,Eugenio Santelli,Nunzio Bottini
出处
期刊:Science Signaling [American Association for the Advancement of Science (AAAS)]
卷期号:16 (792)
标识
DOI:10.1126/scisignal.abn8668
摘要

Receptor-type protein phosphatase α (RPTPα) promotes fibroblast-dependent arthritis and fibrosis, in part, by enhancing the activation of the kinase SRC. Synovial fibroblasts lining joint tissue mediate inflammation and tissue damage, and their infiltration into adjacent tissues promotes disease progression. RPTPα includes an ectodomain and two intracellular catalytic domains (D1 and D2) and, in cancer cells, undergoes inhibitory homodimerization, which is dependent on a D1 wedge motif. Through single-molecule localization and labeled molecule interaction microscopy of migrating synovial fibroblasts, we investigated the role of RPTPα dimerization in the activation of SRC, the migration of synovial fibroblasts, and joint damage in a mouse model of arthritis. RPTPα clustered with other RPTPα and with SRC molecules in the context of actin-rich structures. A known dimerization-impairing mutation in the wedge motif (P210L/P211L) and the deletion of the D2 domain reduced RPTPα-RPTPα clustering; however, it also unexpectedly reduced RPTPα-SRC association. The same mutations also reduced recruitment of RPTPα to actin-rich structures and inhibited SRC activation and cellular migration. An antibody against the RPTPα ectodomain that prevented the clustering of RPTPα also inhibited RPTPα-SRC association and SRC activation and attenuated fibroblast migration and joint damage in arthritic mice. A catalytically inactivating RPTPα-C469S mutation protected mice from arthritis and reduced SRC activation in synovial fibroblasts. We conclude that RPTPα clustering retains it to actin-rich structures to promote SRC-mediated fibroblast migration and can be modulated through the extracellular domain.
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