PAAD-Family Proteins and Host Defense Mechanisms. The PAAD (PYRIN) domain is a protein interaction module belonging to a superfamily of protein domains involved in NF-kappaB induction and Caspase activation, which includes the Death Domain (DD), Death Effector Domain (DED), and Caspase-Associated Recruitment Domain (CARD) proteins. At least 19 PAAD encoding genes are predicted in the human genome, and hereditary mutations in some of these genes are associated with hyper-inflammation syndromes. Fourteen PAAD-proteins (called PANs/PYPAFs) have a domain architecture reminiscent of pathogen-response genes of plants, with a PAAD, followed by a Nucleotide-binding (NACHT) domain, and then Leucine-Rich-Repeats (LRRs). Conversely, proteins consisting only of a PAAD (PAAD-Only Proteins) [POPs] are encoded within the human genome and the genomes of poxviruses, presumably operating as antagonists of PANs. Recent evidence implicates PAADs inactivation of Caspase-1, an activator of pro-inflammatory cytokines, and in regulation of NF-kappaB, a family of transcription factors that play critical roles in inflammatory and immune cell responses. Moreover, we have observed that certain PAAD-family proteins associate with the IkappaB Kinases (IKKs) that mediate NF-kappaB induction.
The aim of this proposal is to provide a better understanding of the molecular mechanisms and physiological roles of PAAD-family proteins in inflammatory cell responses to infectious agents. Three PAAD-containing proteins will serve as prototypes for studies of this large protein family, including (a) ASC, a bipartite adapter protein capable of associating with both the IKK complex and pro-Caspase-1; (b) Cryopyrin, a PAN-family protein, representing the causative protein of cold autoinflammatory syndrome; and(c) the cellular and viral POPs, small proteins comprised only of a PAAD that antagonize the NF-kappaB-inducing actions of ASC and Cryopyrin. Biochemical, genetic, and cell-biology methods will be employed for gaining a better understanding of how these proteins function at the biochemical level and what functions they perform in the context of responses to infectious agents.
Correa, Ricardo G; Krajewska, Maryla; Ware, Carl F et al. (2014) The NLR-related protein NWD1 is associated with prostate cancer and modulates androgen receptor signaling. Oncotarget 5:1666-82 |
Gerlic, Motti; Faustin, Benjamin; Postigo, Antonio et al. (2013) Vaccinia virus F1L protein promotes virulence by inhibiting inflammasome activation. Proc Natl Acad Sci U S A 110:7808-13 |
Proell, Martina; Gerlic, Motti; Mace, Peter D et al. (2013) The CARD plays a critical role in ASC foci formation and inflammasome signalling. Biochem J 449:613-21 |
Eibl, Clarissa; Grigoriu, Simina; Hessenberger, Manuel et al. (2012) Structural and functional analysis of the NLRP4 pyrin domain. Biochemistry 51:7330-41 |
Askari, Nadav; Correa, Ricardo G; Zhai, Dayong et al. (2012) Expression, purification, and characterization of recombinant NOD1 (NLRC1): A NLR family member. J Biotechnol 157:75-81 |
D'Osualdo, Andrea; Reed, John C (2012) NLRP1, a regulator of innate immunity associated with vitiligo. Pigment Cell Melanoma Res 25:5-8 |
D'Osualdo, Andrea; Weichenberger, Christian X; Wagner, Roland N et al. (2011) CARD8 and NLRP1 undergo autoproteolytic processing through a ZU5-like domain. PLoS One 6:e27396 |
Gregory, Sean M; Davis, Beckley K; West, John A et al. (2011) Discovery of a viral NLR homolog that inhibits the inflammasome. Science 331:330-4 |
Labbe, Katherine; McIntire, Christian R; Doiron, Karine et al. (2011) Cellular inhibitors of apoptosis proteins cIAP1 and cIAP2 are required for efficient caspase-1 activation by the inflammasome. Immunity 35:897-907 |
Yu, Eric; Zhai, Dayong; Jin, Chaofang et al. (2011) Structural determinants of caspase-9 inhibition by the vaccinia virus protein, F1L. J Biol Chem 286:30748-58 |
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