Selected
Publications:
Shi, L., Katavic, V., Yu, Y., Kunst, L. and Haughn, G. (2012) Arabidopsis glabra2 mutant seeds deficient in mucilage biosynthesis produce more oil. Plant J. 69, 37-46.
L. Zhao, V. Katavic, F. Li, G. W. Haughn, and L. Kunst (2010) Insertional mutant analysis reveals that LONG-CHAIN ACYL-COA SYNTHETASE 1 (LACS1), but not LACS8, functionally overlaps with LACS9 in Arabidopsis seed oil biosynthesis. Plant J. 64, 1048-1058.
L. Kunst and L. Samuels (2009) Plant cuticles shine: advances in wax biosynthesis and export. Curr. Opin. Plant Biol. 12: 721-727
X. Wu, F. Beaudoin, F. Li, R. P. Haslam, J. E. Markham, H. Zheng, J. A. Napier and L. Kunst (2009) Functional characterization of the Arabidopsis thaliana β-ketoacyl-CoA reductase candidates of the fatty acid elongase. Plant Physiology 150:1174-1191.
A. DeBono, T. Yeats, J.K.C. Rose, D. Bird, R. Jetter, L. Kunst and A.L.Samuels (2009) LTPG is a glycosylphosphatidylinositol-anchored lipid transfer protein required for export of lipids to the
plant surface. Plant Cell 21: 1230-1238.
F. Li, X. Wu, P. Lam, D. Bird, H. Zheng, L. Samuels, R.
Jetter and L. Kunst (2008) Identification of the wax ester
synthase/acyl-coenzyme A:diacylglycerol acyltransferase
WSD1 required for stem wax ester biosynthesis in Arabidopsis.
Plant Physiol. 148:97-107.
R. Jetter and L. Kunst (2008) Plant surface lipid biosynthetic
pathways and their utility for metabolic engineering of
waxes and hydrocarbon biofuels. Plant J. 54: 670–683.
L. Samuels, L. Kunst, and R. Jetter (2008) Sealing plant
surfaces: Cuticular wax formation by epidermal cells. Annu.
Rev. Plant Biol. 59: 683-707.
S. Greer, M. Wen, D. Bird, X. Wu, L. Samuels, L. Kunst,
and R. Jetter (2007) The cytochrome P450 enzyme CYP96A15
is the mid-chain alkane hydroxylase responsible for formation
of secondary alcohols and ketones in stem cuticular wax
of Arabidopsis thaliana. Plant Physiol. 145: 653-667.
O. Rowland, R. Lee, R. Franke, L. Schreiber and L. Kunst
(2007) The CER3 gene from Arabidopsis thaliana
is allelic to WAX2/YRE/FLP1 and is required for
cuticular wax biosynthesis. FEBS Lett. 581: 3538–3544.
D. Bird, F. Beisson, A. Brigham, J. Shin, S. Greer, R.
Jetter, L. Kunst, X. Wu, A. Yephremov, and L. Samuels (2007)
Characterization of Arabidopsis ABCG11/WBC11, an ATP binding
cassette (ABC) transporter that is required for cuticular
lipid secretion. Plant J. 52: 485-498.
C. Lai, L. Kunst and R. Jetter (2007) Composition of alkyl
esters in the cuticular wax on inflorescence stems of Arabidopsis
thaliana cer mutants. Plant J. 50: 189-196.
T. S. Hooker, P. Lam, H. Zheng, and L. Kunst (2007) A core
subunit of the RNA-processing/degrading exosome specifically
influences cuticular wax biosynthesis in Arabidopsis. Plant
Cell 19: 904–913.
O. Rowland, H. Zheng, S.R. Hepworth, P. Lam, R. Jetter,
and L. Kunst (2006) CER4 encodes an alcohol-forming
fatty acyl-coenzyme A reductase involved in cuticular wax
production in Arabidopsis. Plant Physiol. 142: 866-877.
M.C. Suh, A. L. Samuels, R. Jetter, L. Kunst, M. Pollard,
J. Ohlrogge, and F. Beisson (2005) Cuticular lipid composition,
surface structure, and gene expression in Arabidopsis stem
epidermis. Plant Physiol. 139: 1649–1665.
H. Zheng, O. Rowland, and L. Kunst (2005) Disruptions of
the Arabidopsis enoyl-CoA reductase gene reveal an essential
role for very-long-chain fatty acid synthesis in cell expansion
during plant morphogenesis. Plant Cell 17: 1467-1481.
H. Moon, G. Chowrira, O. Rowland, B. J.Blacklock,M. A.
Smith, and L. Kunst (2004) A root-specific condensing enzyme
from Lesquerella fendleri that elongates very-long-chain
saturated fatty acids. Plant Mol. Biol. 56: 917-927.
J. A. Pighin, H. Zheng, L. J. Balakshin, I. P. Goodman,
T. L. Western, R. Jetter, L. Kunst, and A. L. Samuels (2004)
Plant cuticular lipid export requires an ABC transporter.
Science 306: 702-704.