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Systems Analysis of the Complement-Induced Priming Phase of Liver Regeneration
Author(s) -
Jun Min,
Robert A. DeAngelis,
Edimara S. Reis,
Shakti Gupta,
Mano R. Maurya,
Charles R. Evans,
Arun K. Das,
Charles Burant,
John D. Lambris,
Shankar Subramaniam
Publication year - 2016
Publication title -
the journal of immunology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.737
H-Index - 372
eISSN - 1550-6606
pISSN - 0022-1767
DOI - 10.4049/jimmunol.1600628
Subject(s) - complement system , liver regeneration , biology , microbiology and biotechnology , regeneration (biology) , priming (agriculture) , transcriptome , immunology , immune system , gene , gene expression , biochemistry , botany , germination
Liver regeneration is a well-orchestrated process in the liver that allows mature hepatocytes to reenter the cell cycle to proliferate and replace lost or damaged cells. This process is often impaired in fatty or diseased livers, leading to cirrhosis and other deleterious phenotypes. Prior research has established the role of the complement system and its effector proteins in the progression of liver regeneration; however, a detailed mechanistic understanding of the involvement of complement in regeneration is yet to be established. In this study, we have examined the role of the complement system during the priming phase of liver regeneration through a systems level analysis using a combination of transcriptomic and metabolomic measurements. More specifically, we have performed partial hepatectomy on mice with genetic deficiency in C3, the major component of the complement cascade, and collected their livers at various time points. Based on our analysis, we show that the C3 cascade activates c-fos and promotes the TNF-α signaling pathway, which then activates acute-phase genes such as serum amyloid proteins and orosomucoids. The complement activation also regulates the efflux and the metabolism of cholesterol, an important metabolite for cell cycle and proliferation. Based on our systems level analysis, we provide an integrated model for the complement-induced priming phase of liver regeneration.

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