Evidence shows that Paneth cell a-defensins affect in innate immunity in vivo. Mouse a-defensins are broadly bactericidal at low ?M levels and are released at mM quantities. Thus, there is strong rationale for determining structural determinants of Paneth cell a-defensins and their precursors, mechanisms of their biosynthesis, and the role of novel defensin-related Paneth cell gene products in enteric immunity.
In Aim #1, the bactericidal mechanisms of Crp4 disulfide variants will be studied by determining their membrane disruptive properties, conformational changes in membrane mimetic environments, and by characterizing bactericidal subfragments of Crp4 mutant peptides. The effects of Crp4 mutagenesis at Arg7, Glu15, and Gly19, residue positions conserved in all a-defensins, on bactericidal activities, peptide refolding and structure, and membrane disruptive behavior. We will determine the NMR structures of Crp4 and site-directed mutants of Crp4 in the presence of rapidly-tumbling phospholipid bicelles to test the hypothesis that specific residue positions that interact with phospholipid bilayers are determinants of bactericidal peptide activity.
In Aim #2, we will mutate Asp and Glu residues in the proCrp4 proregion and measure effects of mutagenesis on proCrp4 bactericidal activity, membrane disruptive behavior, and conformation. Arg to Lys mutations will be made in Crp4 and proCrp4 at all positions, and the effects of mutagenesis on mechanisms of bactericidal activity, conformational changes, and peptide folding will be characterized. The structural basis for proCrp4 inactivity will be studied by determining the solution structure of native and mutant proCrp4 molecules by NMR spectroscopy.
Aim #3 is focused on characterizing new Paneth cell defensin-related gene products by determining the bactericidal activities, membrane disruptive properties, and secondary structures of CRS1C and CRS4C. The processing and activation mechanisms of proCRSIC and proCRS4C in mouse Paneth cells will be identified, and the structures of CRS4C and CRS1C in solution and in bicelles will be determined by NMR spectroscopy. From these studies, an understanding of the functional determinants of these key biochemical components of enteric innate immunity will be gained in mechanistic and molecular terms and at the structural level. Knowledge of such mechanisms is essential to augment innate defenses and to insure compatibility of new therapeutics with endogenous effectors of host defense. ? ?

Agency
National Institute of Health (NIH)
Institute
National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK)
Type
Research Project (R01)
Project #
5R01DK044632-15
Application #
7227232
Study Section
Special Emphasis Panel (ZRG1-DDR (01))
Program Officer
Carrington, Jill L
Project Start
1993-05-01
Project End
2011-04-30
Budget Start
2007-05-01
Budget End
2008-04-30
Support Year
15
Fiscal Year
2007
Total Cost
$286,753
Indirect Cost
Name
University of California Irvine
Department
Pathology
Type
Schools of Medicine
DUNS #
046705849
City
Irvine
State
CA
Country
United States
Zip Code
92697
Cobo, Eduardo R; Holani, Ravi; Moreau, France et al. (2018) Entamoeba histolytica Alters ileal Paneth Cell Functions in Intact and Muc2 Mucin Deficiency. Infect Immun :
Tai, Kenneth P; Kamdar, Karishma; Yamaki, Jason et al. (2015) Microbicidal effects of ?- and ?-defensins against antibiotic-resistant Staphylococcus aureus and Pseudomonas aeruginosa. Innate Immun 21:17-29
Mastroianni, Jennifer R; Lu, Wuyuan; Selsted, Michael E et al. (2014) Differential Susceptibility of Bacteria to Mouse Paneth Cell ?-Defensins under Anaerobic Conditions. Antibiotics (Basel) 3:493-508
Tai, Kenneth P; Le, Valerie V; Selsted, Michael E et al. (2014) Hydrophobic determinants of ?-defensin bactericidal activity. Infect Immun 82:2195-202
Patil, Amar A; Ouellette, Andre J; Lu, Wuyuan et al. (2013) Rattusin, an intestinal ?-defensin-related peptide in rats with a unique cysteine spacing pattern and salt-insensitive antibacterial activities. Antimicrob Agents Chemother 57:1823-31
Andersson, Håkan S; Figueredo, Sharel M; Haugaard-Kedström, Linda M et al. (2012) The ?-defensin salt-bridge induces backbone stability to facilitate folding and confer proteolytic resistance. Amino Acids 43:1471-83
Schaal, Justin B; Tran, Dat; Tran, Patti et al. (2012) Rhesus macaque theta defensins suppress inflammatory cytokines and enhance survival in mouse models of bacteremic sepsis. PLoS One 7:e51337
Schmidt, Nathan W; Tai, Kenneth P; Kamdar, Karishma et al. (2012) Arginine in ?-defensins: differential effects on bactericidal activity correspond to geometry of membrane curvature generation and peptide-lipid phase behavior. J Biol Chem 287:21866-72
Tongaonkar, Prasad; Golji, Amir E; Tran, Patti et al. (2012) High fidelity processing and activation of the human ?-defensin HNP1 precursor by neutrophil elastase and proteinase 3. PLoS One 7:e32469
Mastroianni, Jennifer R; Costales, Jessica K; Zaksheske, Jennifer et al. (2012) Alternative luminal activation mechanisms for paneth cell ?-defensins. J Biol Chem 287:11205-12

Showing the most recent 10 out of 27 publications