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bioRxiv · 10.1101/2021.12.13.472401

Pentoxifylline-induced Protein Expression Change in RAW 264.7 Cells as Determined by Immunoprecipitation-based High Performance Liquid Chromatography

Abstract

Although pentoxifylline (PTX) was identified as a competitive non-selective phosphodiesterase inhibitor, its pharmacological effect has not been clearly elucidated. The present study explored the effect of low dose 10 g/mL PTX (therapeutic dose) compared to high dose 300 g/mL PTX (experimental dose) in RAW 264.7 cells through immunoprecipitation-based high performance liquid chromatography (IP-HPLC), immunohistochemistry, and western blot. 10 g/mL PTX increased the expression of proliferation (Ki-67, PCNA, cyclin D2, cdc25A), epigenetic modification (KDM4D, PCAF), protein translation (DOHH, DHPS, eIF5A1), RAS signaling (KRAS, pAKT1/2/3, PI3K), NFkB signaling (NFkB, GADD45, p38), protection (HSP70, SOD1, GSTO1/2), neuromuscular differentiation (NSE{gamma}, myosin-1a, desmin), osteoblastic differentiation (BMP2, RUNX2, osterix), acute inflammation (TNF, IL-1, CXCR4), innate immunity ({beta}-defensin 1, lactoferrin, TLR-3, -4), cell-mediated immunity (CD4, CD8, CD80), while decreased the expression of ER stress (eIF2, eIF2AK3, ATF6), fibrosis (FGF2, CTGF, collagen 3A1), and chronic inflammation (CD68, MMP-2, -3, COX2) versus the untreated controls. The activation of proliferation by 10 g/mL PTX was also supported by the increase of cMyc-MAX heterodimer and {beta}-catenin-TCF1 complex in double IP-HPLC. 10 g/mL PTX enhanced FAS-mediated apoptosis but diminished p53-mediated apoptosis, and downregulated many angiogenesis proteins (angiogenin, VEGF-A, and FLT4), but upregulated HIF1, VEGFR2, and CMG2 reactively. Whereas, 300 g/mL PTX consistently decreased proliferation, epigenetic modification, RAS and NFkB signaling, neuromuscular and osteoblastic differentiation, but increased apoptosis, ER stress, and fibrosis compared to 10 g/mL PTX. These data suggest PTX has different biological effect on RWA 264.7 cells depending on the concentration of 10 g/mL and 300 g/mL PTX. The low dose 10 g/mL PTX enhanced RAS/NFkB signaling, proliferation, differentiation, and inflammation, particularly, it stimulated neuromuscular and osteoblastic differentiation, innate immunity, and cell-mediated immunity, but attenuated ER stress, fibrosis, angiogenesis, and chronic inflammation, while the high dose 300 g/mL PTX was found to alleviate the 10 g/mL PTX-induced biological effects, resulted in the suppression of RAS/NFkB signaling, proliferation, neuromuscular and osteoblastic differentiation, and inflammation.

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BibTeXRIS

Lee, S. K., Seo, M. H., Kim, D. W., Kim, Y. S.. 2021-12-13. Pentoxifylline-induced Protein Expression Change in RAW 264.7 Cells as Determined by Immunoprecipitation-based High Performance Liquid Chromatography. https://doi.org/10.1101/2021.12.13.472401

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