Biology Reference
In-Depth Information
62. Richardson MR, Liu S, Ringham HN et al
(2008) Sample complexity reduction for
two-dimensional electrophoresis using
solution isoelectric focusing prefractionation.
Electrophoresis 29:2637-2644
63. Natarajan SS, Savithiry S, Krishnan HB et al
(2009) An effi cient extraction method to
enhance analysis of low abundant proteins
from soybean seed. Anal Biochem 394:
259-268
64. Hirabayashi J (2004) Lectin-based structural
glycomics: glycoproteomics and glycan profi l-
ing. Glycoconj J 21:35-40
65. Van Damme EJ (2011) Lectins as tools to
select for glycosylated proteins. Methods Mol
Biol 753:289-297
66. Maruyama N, Katsube T, Wada Y et al (1998)
The roles of the N-linked glycans and exten-
sion regions of soybean beta-conglycinin in
folding, assembly and structural features. Eur J
Biochem 258:854-862
67. Boschetti E, Monsarrat B, Righetti PG (2007)
The “Invisible Proteome”: how to capture the
low abundance proteins via combinatorial
ligand libraries. Curr Proteomics 4:198-208
68. Boschetti E, Righetti PG (2009) The art of
observing rare protein species in proteomes
with peptide ligand libraries. Proteomics
9:1492-1510
69. Boschetti E, Bindschedler LV, Tang C et al
(2009) Combinatorial peptide ligand libraries
and plant proteomics: a winning strategy at a
price. J Chromatogr A 1216:1215-1222
70. Boschetti E, Righetti PG (2008) The
ProteoMiner in the proteomic arena: a non-
depleting tool for discovering low-abundance
species. J Proteomics 71:255-264
71. Fasoli E, D'Amato A, Kravchuk AV et al (2011)
Popeye strikes again: the deep proteome of
spinach leaves. J Proteomics 74:127-136
72. Chait BT (2011) Mass spectrometry in the post-
genomic era. Annu Rev Biochem 80:239-246
73. Bandeira N, Nesvizhskii A, McIntosh M
(2011) Advancing next-generation proteomics
through computational research. J Proteome
Res 10:2895
74. Gibbs PE, Strongin KB, McPherson A (1989)
Evolution of legume seed storage proteins—a
domain common to legumins and vicilins is
duplicated in vicins. Mol Biol Evol 6:614-623
75. Esen A (1990) An immunodominant site of
gamma-zein1 is in the region of tandem hexa-
peptide repeats. J Protein Chem 9:453-460
76. Feeney KA, Wellner N, Gilbert SM et al (2003)
Molecular structures and interactions of repeti-
tive peptides based on wheat glutenin subunits
depend on chain length. Biopolymers 72:
123-131
77. Stevenson SE, Chu Y, Ozias-Akins P et al (2009)
Validation of gel-free, label-free quantitative
proteomics approaches: applications for seed
allergen profi ling. J Proteomics 72:555-566
78. Huang Y, Houston NL, Tovar-Mendez A et al
(2010) A quantitative mass spectrometry-
based approach for identifying protein kinase-
clients and quantifying kinase activity. Anal
Biochem 402:69-76
79. Lundgren DH, Hwang S-I, Wu L et al (2010)
Role of spectral counting in quantitative pro-
teomics. Expert Rev Proteomics 7:39-53
80. Farley AR, Link AJ (2009) Identifi cation and
quantifi cation of protein posttranslational modi-
fi cations. Methods Enzymol 463:725-763
81. Siuti N, Kelleher NL (2007) Decoding protein
modifi cations using top-down mass spectrom-
etry. Nat Methods 4:817-821
82. Agrawal GK, Thelen JJ (2009) A high-
resolution two dimensional gel- and Pro-Q
DPS-based proteomics workfl ow for phospho-
protein identifi cation and quantitative profi l-
ing. Meth Mol Biol 527:3-19
83. Lewandowska-Gnatowska E, Johnston M,
Antoine W et al (2011) Using multiplex-
staining to study changes in the maize leaf
phosphoproteome in response to mechanical
wounding. Phytochemistry 72:1285-1292
84. Nesvizhskii AI (2012) Computational and
informatics strategies for identifi cation of spe-
cifi c protein interaction partners in affi nity
purifi cation mass spectrometry experiments.
Proteomics 12:1639-1655
85. Gache V, Waridel P, Winter C et al (2010)
Xenopus meiotic microtubule-associated inter-
actome. PLoS One 5:e9248
86. Sharon M (2010) How far can we go with
structural mass spectrometry of protein com-
plexes? J Am Soc Mass Spectrom 21:487-500
87. Heeren RM, Ron MA, Smith DF et al (2009)
Imaging mass spectrometry: hype or hope? J
Am Soc Mass Spectrom 20:1006-1014
88. Stauber J, MacAleese L, Franck J et al (2010)
On-tissue protein identifi cation and imaging
by MALDI-ion mobility mass spectrometry. J
Am Soc Mass Spectrom 21:338-347
89. Lee YJ, Perdian DC, Song Z et al (2012) Use
of mass spectrometry for imaging metabolites
in plants. Plant J 70:81-95
90. Sparvero LJ, Amoscato AA, Dixon CE et al
(2012) Mapping of phospholipids by MALDI
imaging (MALDI-MSI): realities and expecta-
tions. Chem Phys Lipids 165:545-562
91. Schober Y, Guenther S, Spengler B et al (2012)
High-resolution matrix-assisted laser desorp-
tion/ionization imaging of tryptic peptides
from tissue. Rapid Commun Mass Spectrom
26:1141-1146
Search WWH ::




Custom Search