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Appendix G<br />

Producing Significant Results<br />

REPRINTS – JOURNAL ARTICLES, ETC. CONT’D<br />

Pseudopterogorgia elisabethae. Life Sci. 62(26): PL 401-<br />

407.<br />

Mayer, A.M.S., S. Oh, K.H. Ramsey, P.B. Jacobson, K.B. Glaser, and<br />

A.M. Romanic. 1999. Escherichia coli lipopolysaccharide<br />

potentiation and inhibition of rat neonatal microglia<br />

superoxide anion generation: Correlation with prior<br />

lactic dehydrogenase, nitric oxide, tumor necrosis<br />

factor-α, thromboxane B 2<br />

, and metalloprotease release.<br />

Shock 11(3): 180-186.<br />

McCoy, M.C., and J.D. Faulkner. 2001. Uoamines A and B,<br />

piperidine alkaloids from the ascidian Aplidium uouo. J.<br />

Nat. Prod. 64(8): 1087-1089.<br />

Menzel, L.P., I.-H. Lee, B. Sjostrand, and R.I. Lehrer. 2002.<br />

Immunolocalization of clavanins in Styela clava<br />

hemocytes. Dev. Comp. Immunol. 26: 505-515.<br />

Morse, D.E. 1999. Silicon biotechnology: harnessing biological<br />

silica production to construct new materials. Trends in<br />

Biotechnology 17: 230-232.<br />

Morse, D.E. 1999. Silicon biotechnology: Proteins, genes<br />

and molecular mechanisms controlling biosilica<br />

nanofabrication offer new routes to polysiloxane<br />

synthesis. In Organosilicon chemistry IV: From molecules<br />

to materials, ed. N. Auner and J. Weis, 5-16. New York:<br />

Wiley-VCH.<br />

Morse, D.E. 2001. Biotechnology reveals new routes<br />

to synthesis and structural control of silica and<br />

polysilsesquioxanes. In The chemistry of organic silicon<br />

compounds, Vol. 3, ed. Z. Rappoport and Y. Apeloig, 805-<br />

819. New York: Wiley.<br />

Paloczi, G.T., B.L. Smith, P.K. Hansma, and D.A. Walters. 1998.<br />

Rapid imaging of calcite crystal growth using atomic<br />

force microscopy with small cantilevers. Appl. Phys. Lett.<br />

73(12): 1658-1660.<br />

Qureshi, A., C.S. Stevenson, C.L. Albert, R.S. Jacobs, and D.J.<br />

Faulkner. 1999. Homo- and nor-plakotenin, new<br />

carboxylic acids from the Palauan sponge Plakortis lita.<br />

J. Nat. Prod. 62(8): 1205-1207.<br />

Rahbaek, L., S. Sperry, J.E. Piper, and P. Crews. 1998.<br />

Deoxynortrichoharzin, a new polyketide from the<br />

saltwater culture of a sponge-derived Paecilomyces<br />

fungus. J. Nat. Prod. 61(12): 1571-1573.<br />

Rapoport, H.S., and R.E. Shadwick. 2002. Mechanical<br />

characterization of an unusual elastic biomaterial<br />

from the egg capsules of marine snails (Busycon spp.)<br />

Biomacromolecules 3(1): 42-50.<br />

Reddy, M.V.R., M.R. Rao, D. Rhodes, M.S.T. Hansen, K. Rubins,<br />

F.D. Bushman, Y. Venkateswarlu, and D.J. Faulkner. 1999.<br />

Lamellarin α 20-sulfate, an inhibitor of HIV-1 integrase<br />

active against HIV-1 virus in cell culture. J. Med. Chem.<br />

42(11): 1901-1907.<br />

Renner, M.K., Y.-C. Shen, X.-C. Cheng, P.R. Jensen, W.<br />

Frankmoelle, C.A. Kauffman, W. Fenical,<br />

E. Lobkovsky, and J. Clardy. 1999. Cyclomarins A-C,<br />

new antiinflammatory cyclic peptides produced by a<br />

marine bacterium (Streptomyces sp.). J. Am. Chem. Soc.<br />

121(49): 11273-11276.<br />

Sakowicz, R., M.S. Berdelis, K. Ray, C.L. Blackburn, C. Hopmann,<br />

D.J. Faulkner, and L.S.B. Goldstein. 1998. A marine<br />

natural product inhibitor of kinesin motors. Science<br />

280: 292-295.<br />

Schmidt, E.W., C.A. Bewley, and D.J. Faulkner. 1998.<br />

Theopalauamide, a bicyclic glycopeptide from<br />

filamentous bacterial symbionts of the lithistid sponge<br />

Theonella swinhoei from Palau and Mozambique. J. Org.<br />

Chem. 63: 1254-1258.<br />

Schmidt, E.W., and D.J. Faulkner. 1998. Microsclerodermins<br />

C - E, antifungal cyclic peptides from the lithistid<br />

marine sponges Theonella sp. and Microscleroderma sp.<br />

Tetrahedron 54: 3043-3056.<br />

Schmidt, E.W., A.Y. Obraztsova, S.K. Davidson, D.J. Faulkner, and<br />

M.G. Haygood. 2000. Identification of the antifungal<br />

peptide-containing symbiont of the marine sponge<br />

Theonella swinhoei as a novel δ-proteobacterium,<br />

“Candidatus Entotheonella palauensis”. Mar. Biol. 136:<br />

969-977.<br />

Shimizu, K., J. Cha, G.D. Stucky, and D.E. Morse. 1998. Silicatein<br />

α: Cathepsin L-like protein in sponge biosilica. Proc.<br />

Natl. Acad. Sci. 95:6234-6238.<br />

Shimizu, K., Y. Del Amo, M.A. Brzezinski, G.D. Stucky, and D.E.<br />

Morse. 2001. A novel fluorescent silica tracer for<br />

biological silicification studies. Chem. Biol. 8: 1051-<br />

1060.<br />

Shimizu, K., and D.E. Morse. 2000. The biological and<br />

biomimetic synthesis of silica and other polysiloxanes.<br />

In: Biomineralization: from biology to biotechnology and<br />

medical application, ed. E. Baeuerlein, 207-219. New<br />

York: Wiley-VCH.<br />

Smith, B.L. 1998. Studying shells: a growth industry. Chemistry<br />

& Industry 17:649-653.<br />

65<br />

Appendices

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