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1 synthesis of correctly processed proteins in Pichia.
2 in Xenopus oocytes and for overexpression in Pichia.
3 and could be overexpressed and purified from Pichia.
4  S. cerevisiae Cse4 and the noncomplementing Pichia angusta ortholog showed that species specificity
5                           The methylotrophic Pichia angusta VKM Y-2559 and the oleaginous Cryptococcu
6 tact monomeric ATP synthase from the fungus, Pichia angusta, has been solved by electron cryo-microsc
7  crystal structure of the PROPPIN Atg18 from Pichia angusta.
8  species, and a eukaryote (the yeast species Pichia anomalia) were investigated.
9 tory peptide and placed under control of the Pichia AOX1 promoter in the vector pPIC9.
10 and was applied to two model microorganisms, Pichia augusta and Escherichia coli, cultivated on (13)C
11 rsion to prokaryote (E. coli)- or eukaryote (Pichia)-based codon usage dramatically improved the leve
12                 Our results suggest that the Pichia-based EBA-F2 vaccine construct has further potent
13 ric Sup35p, containing the Sup35NM region of Pichia, can be turned into a prion in S. cerevisiae by o
14                 Microsomal preparations from Pichia cells expressing AtGALT2 incorporated [(14)C]Gal
15 ased on P. falciparum, Escherichia coli, and Pichia codon usage and expressed recombinant F2 in E. co
16                                          The Pichia-derived antigen stimulated stronger major histoco
17                                              Pichia-expressed 35-kDa polypeptide, designated iridopti
18 d refolded from E. coli or produced from the Pichia expression system, is equivalent and mimics the f
19         The enzyme cDNA was subcloned into a Pichia expression vector pPIC9K to produce a recombinant
20  one each C. intermedia, C. pelliculosa, and Pichia fabianni).
21  C. inconspicua produced white colonies; the Pichia fermentans group and C. krusei did not.
22 cing the 5.8S internal transcribed spacer as Pichia fermentans, Wickerhamomyces anomalus and Candida
23 between another five more divergent species, Pichia guilliermondii, C. glabrata, C. zeylanoides, C. h
24 tes (Saccharomyces cerevisiae - KF551990 and Pichia gummiguttae - MCC 1273) and influence of jamun se
25 ression systems, including Escherichia coli, Pichia, insect cells, and mammalian cells.
26 anamorphic yeast Candida utilis (teleomorph: Pichia jadinii) by conventional methods.
27                In this Opinion piece, we use Pichia (Komagataella) pastoris to illustrate the limitat
28  light subunit LAT2 in detergent-solubilized Pichia membranes, allowing functional reconstitution of
29 ing from the distantly related yeast species Pichia methanolica.
30 d and purified the p36 component of ANXII in Pichia methanolica.
31 OA is situated on the opposite inner face in Pichia mitochondria.
32  the cytosolic face of the outer membrane in Pichia mitochondria.
33 ed as a non-covalent dimer from secretion in Pichia pastoris (115 mg/l) and was a potent inhibitor of
34 hains was tested with human LAL expressed in Pichia pastoris (phLAL) and CHO cells (chLAL), respectiv
35 ng mannose terminated human LAL expressed in Pichia pastoris (phLAL), purified, and administered by t
36                                              Pichia pastoris (Pp) Pex8p, the only known intraperoxiso
37 been co-produced in the methylotrophic yeast Pichia pastoris (Pp).
38 s produced in both H. jecorina (HjCel3A) and Pichia pastoris (Pp-HjCel3A).
39 olded (EcCSP) or in the methylotrophic yeast Pichia pastoris (PpCSP) for structural analyses.
40       We show that the ScPex11p homologue in Pichia pastoris (PpPex11p) is phosphorylated at serine 1
41 roteins from Escherichia coli (bacteria) and Pichia pastoris (yeast) immobilized in a microfluidic ch
42 garicus meleagris recombinantly expressed in Pichia pastoris .
43                                         When Pichia pastoris adapts from methanol to glucose growth,
44          Expression of an intronless ckx1 in Pichia pastoris allowed production of large amounts of r
45                                  Recombinant Pichia pastoris AMA1-FVO (PpAMA1-FVO) and PpAMA1-3D7 are
46 bacter globiformis amine oxidase (AGAO), and Pichia pastoris amine oxidase (PPLO) have been examined.
47 gC2 and gD2 were produced in glycoengineered Pichia pastoris and administered intramuscularly as a bi
48               The proteins were expressed in Pichia pastoris and adsorbed on Alhydrogel.
49 1-15 domains were expressed in high yield in Pichia pastoris and baculovirus, respectively.
50    In this report, we described two systems (Pichia pastoris and baculovirus/Sf9 cells) for expressio
51 eport that MS is localized to the nucleus of Pichia pastoris and Candida albicans but is cytoplasmic
52 d N- and O-linked mannosylation in the yeast Pichia pastoris and compared them to their unglycosylate
53 is rat Kv1.2 which has been overexpressed in Pichia pastoris and crystallised.
54 tide, SDF-2, are conserved between the yeast Pichia pastoris and D. discoideum.
55 1 and -DBL5 recombinant proteins produced in Pichia pastoris and developed a panel of seven chondroit
56 from barley aleurone tissue was expressed in Pichia pastoris and Escherichia coli.
57 an in vitro cell-free ER-budding assay using Pichia pastoris and followed two endogenous PMPs, Pex11p
58 e redox enzyme was recombinantly produced in Pichia pastoris and homogeneously purified, and its gluc
59 d Rlm7, the AvrLm4-7 protein was produced in Pichia pastoris and its crystal structure was determined
60                                     GSA12 in Pichia pastoris and its Saccharomyces cerevisiae counter
61 tic properties of VKORC1L1 when expressed in Pichia pastoris and more particularly its susceptibility
62  and the former is additionally conserved in Pichia pastoris and Paracoccus denitrificans, suggesting
63 7Y-hGALE proteins were also overexpressed in Pichia pastoris and purified for analysis.
64 d Cys-less P-glycoproteins were expressed in Pichia pastoris and purified in high yield in detergent-
65 d this aquaporin in the methylotrophic yeast Pichia pastoris and purified the hexahistidine-tagged pr
66 ant human ABCG5 and ABCG8 genes in the yeast Pichia pastoris and purified the proteins to near homoge
67     Human MATN-1 was cloned and expressed in Pichia pastoris and purified to homogeneity.
68 .1) was produced in the methylotrophic yeast Pichia pastoris and purified to near-electrophoretic hom
69 d multiple Bla g 2 mutants were expressed in Pichia pastoris and purified.
70 a-amylase expressed in amylolytic strains of Pichia pastoris and Saccharomyces cerevisiae.
71 rexpressed the human cytosolic ISCS in yeast Pichia pastoris and showed that the cytosolic form of IS
72 t was expressed in both Escherichia coli and Pichia pastoris and shown to be active.
73 x Arabidopsis GT31 members were expressed in Pichia pastoris and tested for enzyme activity.
74 oduced in glycoengineered lines of the yeast Pichia pastoris and that antibody-mediated effector func
75              WCI5 and WCI2 were expressed in Pichia pastoris and the recombinant proteins were assaye
76 hesis, the candidate genes were expressed in Pichia pastoris and their activities measured with the b
77       Recombinant thaumatin was expressed in Pichia pastoris and through a co-expression strategy wit
78      Here, we expressed recombinant hSMVT in Pichia pastoris and used affinity chromatography to puri
79 S-7 cells and the methylotropic yeast strain Pichia pastoris and was shown capable of penetrating int
80 ing peptides were expressed recombinantly in Pichia pastoris and were tested for their ability to bin
81 thylotrophic yeasts Hansenula polymorpha and Pichia pastoris are rapidly becoming the systems of choi
82          The PKCI-1 protein was expressed in Pichia pastoris as a dimer of two 13.7-kDa polypeptides.
83 loned by RACE-PCR and expressed in the yeast Pichia pastoris as a secreted enzyme.
84 Our results demonstrate the utility of using Pichia pastoris as an efficient eukaryotic host to expre
85             We used the methylotrophic yeast Pichia pastoris as an expression host to produce a large
86 ry and expressed in the methylotrophic yeast Pichia pastoris at a secretion yield of approximately 10
87 lic forms of AMA1 that were both produced in Pichia pastoris at a sufficient economy of scale to be u
88 termined by autophagy receptors, such as the Pichia pastoris autophagy-related protein 30 (Atg30), wh
89  and pH 8.0 was purified from the engineered Pichia pastoris broth to homogeneity by anion exchange c
90  unaffected in most pex mutants of the yeast Pichia pastoris but is severely reduced in pex4 and pex2
91 lization pathway in the methylotrophic yeast Pichia pastoris by binding to Mxr1p response elements (M
92 romyces cerevisiae, the methylotrophic yeast Pichia pastoris can assimilate amino acids as the sole s
93  peroxisomal matrix, respectively, in living Pichia pastoris cells and followed by fluorescence micro
94 binant staphylokinase (SakSTAR) expressed in Pichia pastoris cells have been determined.
95 G/E56D/L72Y], was generated and expressed in Pichia pastoris cells in yields exceeding 100 mg/liter.
96 aE chain, was expressed in and purified from Pichia pastoris cells.
97               The variants were expressed in Pichia pastoris cells.
98 GT43-4, TaGT47-13, TaGT75-3, and TaGT75-4 in Pichia pastoris confirmed that these proteins form a com
99                            The budding yeast Pichia pastoris contains discrete tER sites and is, ther
100                            The budding yeast Pichia pastoris contains ordered Golgi stacks next to di
101 go selection.We have identified Cvt9 and its Pichia pastoris counterpart Gsa9.
102 thod is demonstrated on a flux experiment of Pichia pastoris employing two different tracers, i.e., 1
103          The recombinant enzyme expressed in Pichia pastoris established a 1.3:1 equilibrium between
104 otein obtained by heterologous expression in Pichia pastoris exhibited greater XET activity against x
105 a streamlined workflow for the generation of Pichia pastoris expression strains, reducing the timelin
106 eine-rich domain of PyP140/RON4 by using the Pichia pastoris expression system and characterized the
107  alone or domain 9 alone were expressed in a Pichia pastoris expression system and tested for their a
108 erologous expression of this cDNA clone in a Pichia pastoris expression system led to the secretion i
109                                          The Pichia pastoris expression system offers economy, ease o
110    To investigate this hypothesis, we used a Pichia pastoris expression system to produce large amoun
111 binant human MD-2 (rhMD-2) was produced in a Pichia pastoris expression system, and the interaction b
112                                    Using the Pichia pastoris expression system, we show that cleavage
113 engineering of the DNA encoding VCP into the Pichia pastoris expression system, were used to localize
114 ession by small-scale fermentation using the Pichia pastoris expression system.
115 , were produced using Escherichia coli and a Pichia pastoris expression system.
116 ase after its heterologous expression in the Pichia pastoris expression system.
117 nt maize chitinase, rChiA, was purified from Pichia pastoris extracellular medium by differential pre
118 ernal standardization by fully (13)C labeled Pichia pastoris extracts enabled absolute quantification
119  is exemplified using unclarified broth from Pichia pastoris fermentation as feedstock.
120 in product (LeMir) was produced in the yeast Pichia pastoris for generation of antibodies.
121 CS proteins expressed in Escherichia coli or Pichia pastoris for their ability to induce immunity and
122              However, FBP1 when expressed in Pichia pastoris generated H2O2 using cysteine at pH 7.2,
123               Recombinant EhCP5 expressed in Pichia pastoris had kinetic properties similar to those
124 lasminogen (amino acids 93-470) expressed in Pichia pastoris had physical properties (molecular size,
125                       Because yeasts such as Pichia pastoris have been shown to O-glycosylate some pr
126             Finally, we demonstrate that the Pichia pastoris homologue Gsa7p that is required for per
127 protein expressed in the methylotropic yeast Pichia pastoris indicate that it catalyzes the 4-epimeri
128                                              Pichia pastoris is a methylotrophic yeast that has been
129                     The methylotrophic yeast Pichia pastoris is a popular host for the production of
130                                              Pichia pastoris is a simple and powerful expression plat
131                                              Pichia pastoris is a yeast capable of expressing large a
132  The pas2 mutant of the methylotrophic yeast Pichia pastoris is characterized by a deficiency in pero
133 r methanol assimilation are synthesized when Pichia pastoris is grown in methanol.
134 nd NOP-1 protein heterologously expressed in Pichia pastoris is labeled by using all-trans [3H]retina
135                                    The yeast Pichia pastoris is used extensively as the host cell for
136  (EPAO), Pisum sativum amine oxidase (PSAO), Pichia pastoris lysyl oxidase (PPLO), bovine plasma amin
137 , Escherichia coli amine oxidase (ECAO), and Pichia pastoris lysyl oxidase (PPLO).
138 uman pancreatic alpha-amylase, concanavalin, Pichia pastoris lysyl oxidase, and Klebsiella pneumoniae
139                                We isolated a Pichia pastoris mutant that was unable to grow on the pe
140                          Growth of the yeast Pichia pastoris on methanol induces the expression of ge
141 ood yields cultivating the heterologous host Pichia pastoris on the 5L bioreactor scale (reUmChlE; 45
142 uffy binding-like (DBL) domains expressed in Pichia pastoris or var2csa plasmid DNA and sera were scr
143 the interaction between Pex19p and all known Pichia pastoris Pex proteins by the yeast two-hybrid ass
144 mport, we examined the behavior of PMPs in a Pichia pastoris pex17 mutant.
145                                              Pichia pastoris PEX17 was cloned by complementation of a
146 e report the cloning and characterization of Pichia pastoris PEX19 by complementation of a peroxisome
147                                 We show that Pichia pastoris Pex8p (PpPex8p) enters the peroxisome ma
148                                          The Pichia pastoris pexophagy receptor Atg30 is recruited to
149       Furthermore, we also demonstrated that Pichia pastoris produces XynCDBFV with higher catalytic
150 in of rat neural agrin (AgG3z8) expressed in Pichia pastoris promoted AChR clustering on surface of C
151                                We show how a Pichia pastoris protein, PpAtg30, mediates peroxisome se
152 e effects of bile acids on ATP hydrolysis in Pichia pastoris purified ABCG5/G8 and found that they st
153 se mutation in a cysteine protease, G79E, in Pichia pastoris resulted in an unstable precursor protei
154 ologous expression of this gene in the yeast Pichia pastoris resulted in the production of a beta-1,4
155 11GlcNAc species from invertase expressed in Pichia pastoris showed three and five peak fractions, re
156 P2, sLRP3, and sLRP4) have been expressed in Pichia pastoris SMD1168 with constitutive coexpression o
157 inant Tum-5 produced in Escherichia coli and Pichia Pastoris specifically inhibited proliferation and
158 ructosidase (BfrA) secreted by a recombinant Pichia pastoris strain was optimally immobilised on Glyo
159 oped a platform using genetically engineered Pichia pastoris strains designed to secrete multiple pro
160                                       In the Pichia pastoris system, the protease domain was expresse
161 mutant) were overproduced recombinantly in a Pichia pastoris system, they displayed the dual inhibito
162 in and expressed in the methylotrophic yeast Pichia pastoris to obtain a post-translationally modifie
163 ed and expressed in the methylotrophic yeast Pichia pastoris to probe for the proposed phosphatidylch
164 Here, we established an expression system in Pichia pastoris to recombinantly produce and purify Cx43
165 on of the glycosylation pathway in the yeast Pichia pastoris to secrete a human glycoprotein with uni
166 xpanded its utility by engineering the yeast Pichia pastoris to secrete human glycoproteins with full
167             Here we successfully generated a Pichia pastoris transformant expressing and secreting ap
168  into the genome of the methylotrophic yeast Pichia pastoris under the control of an AOX promoter and
169 s expressed as a secreted soluble protein in Pichia pastoris under the regulation of alcohol oxidase
170 s nivalis agglutinin; GNA) were expressed in Pichia pastoris using native signal peptides, or the Sac
171 s were observed against both rh-Endo and the Pichia pastoris vector, but no allergic reactions were o
172               The istk gene was expressed in Pichia pastoris vectors.
173 xpression system in the methylotrophic yeast Pichia pastoris was developed.
174 e recombinant protein expressed in the yeast Pichia pastoris was found to have activity against the i
175                     The secretory pathway of Pichia pastoris was genetically re-engineered to perform
176 herapy, an Fv-p53 fusion protein produced in Pichia pastoris was tested on CT26.CL25 colon cancer cel
177                     In-cell NMR in the yeast Pichia pastoris was used to study the influence of metab
178 ress this, we expressed human CFH mutants in Pichia pastoris We found that recombinant I62-CFH (prote
179             ACC synthase is now expressed in Pichia pastoris with an improved yield of 10 mg/L.
180 ed in overexpressing PfCRT to high levels in Pichia pastoris yeast by synthesizing a codon-optimized
181 uced in single Escherichia coli bacteria and Pichia pastoris yeast cell in the current study.
182 sma membrane of Saccharomyces cerevisiae and Pichia pastoris yeast.
183 hancer, we expressed recombinant alpha2AP in Pichia pastoris yeast.
184                        Chy1 was expressed in Pichia pastoris yielding an enzyme with a chymotrypsin s
185 of human fibrinogen were expressed in yeast (Pichia pastoris) and characterized as to their cross-lin
186 s of 27,653 Daltons, was expressed in yeast (Pichia pastoris) and purified by anion exchange column c
187     In Komagataella phaffii (formerly called Pichia pastoris) specifically, the indirect traffic of P
188 e full-length enzyme (expressed in the yeast Pichia pastoris) were quantified.
189 study of expression of the RK gene in yeast (Pichia pastoris), COS-1 cells and in an HEK293 stable ce
190 lus nidulans) and in a methylotrophic yeast (Pichia pastoris), the latter expression system producing
191             Mutant enzymes were expressed in Pichia pastoris, a methylotrophic yeast strain, and thei
192 ; EC1.6.6.1) were cytosolically expressed in Pichia pastoris, a methylotrophic yeast, using spinach (
193  CPTI and CPTII were separately expressed in Pichia pastoris, a yeast with no endogenous CPT activity
194 es were expressed in Escherichia coli and in Pichia pastoris, and analyzed for monoclonal antibody an
195 n domain 11, expressed these mutant forms in Pichia pastoris, and determined binding kinetics with hu
196 ic human cysteine protease, was expressed in Pichia pastoris, and its physicokinetic properties were
197  Escherichia coli, Saccharomyces cerevisiae, Pichia pastoris, and mammalian cell lines.
198 eu, or Trp, the mutant proteins expressed in Pichia pastoris, and purified to homogeneity.
199 he polypeptide was recombinantly produced in Pichia pastoris, and the three-dimensional structure was
200 genesis-defective (pex) mutants of the yeast Pichia pastoris, AOX fails to assemble into active octam
201 and a deglycosylated form, both expressed in Pichia pastoris, are investigated and compared as biocat
202 ast, especially Saccharomyces cerevisiae and Pichia pastoris, are major hosts employed in the express
203                            When expressed in Pichia pastoris, AxlA had activity comparable to the nat
204 of a form of P. falciparum AMA1, produced in Pichia pastoris, by vaccinating Aotus vociferans monkeys
205     Purified recombinant PHACS, expressed in Pichia pastoris, contains bound pyridoxal-5'-phosphate (
206  from the AOX1 (alcohol oxidase) promoter of Pichia pastoris, displacing the chromosomal AOX1 gene.
207         All three Na-GSTs, when expressed in Pichia pastoris, exhibited low lipid peroxidase and glut
208  we report that, when expressed in the yeast Pichia pastoris, full-length ataxin-3 enabled almost nor
209 coprotein (Pgp; mouse MDR3) was expressed in Pichia pastoris, grown in fermentor culture, and purifie
210                    The methylotrophic yeast, Pichia pastoris, has been genetically engineered to prod
211 man bile salt-stimulated lipase expressed in Pichia pastoris, hen ovalbumin, bovine fetuin, bovine th
212 lypeptide ABC transporter TAPL, expressed in Pichia pastoris, into lipid vesicles (liposomes) and per
213 A. fumigatus Cu,Zn SOD has been expressed in Pichia pastoris, is enzymatically active, and has bioche
214  a water transporting aquaporin of the yeast Pichia pastoris, is suggested to be gated by chemo-mecha
215 (AOXI) promoter of the methylotrophic yeast, Pichia pastoris, is used widely for the production of re
216 ressed this gene heterologously in the yeast Pichia pastoris, obtaining a relatively high yield of 2.
217 alpha2beta1, alpha2beta2, and alpha2beta3 in Pichia pastoris, purified the complexes, and compared th
218 d recombinant PI8 in the methylotropic yeast Pichia pastoris, purified the inhibitor to homogeneity,
219 ssed different variants of MDR3 in the yeast Pichia pastoris, purified the proteins via tandem affini
220 n was expressed recombinantly in E. coli and Pichia pastoris, resulting in unglycosylated and mannosy
221 common with a glycosylated form expressed in Pichia pastoris, the [(15)N,(1)H]-correlation spectra of
222                                           In Pichia pastoris, the orientation of a 138-kb invertible
223                                           In Pichia pastoris, the peroxisomal targeting signal 2 (PTS
224 AT2) heterodimers overexpressed in the yeast Pichia pastoris, together with docking analysis and cros
225 almitoyltransferase I (L-CPT I) expressed in Pichia pastoris, two contiguous discrete sequences withi
226 cts were expressed in a methyltrophic yeast, Pichia pastoris, using the alpha-mating factor secretion
227 er liter levels in the methylotrophic yeast, Pichia pastoris, using the methanol oxidase promoter.
228  A binding domain [BoNT/A(Hc)], expressed in Pichia pastoris, was developed as a vaccine candidate fo
229 me of 2964 base pairs and, when expressed in Pichia pastoris, was found to encode an enzyme that coul
230 f human recombinant cathepsin F, produced in Pichia pastoris, was processed to its active mature form
231 ion assays of BdCSLF6 expressed in the yeast Pichia pastoris, we also demonstrate that the catalytic
232 e isolation of peroxisomal import mutants in Pichia pastoris, we have isolated a mutant (pex7) that i
233 e this idea, we examined two budding yeasts: Pichia pastoris, which has coherent Golgi stacks, and Sa
234 m freezing damage, we transformed the yeast, Pichia pastoris, with an inducible DEA1 construct.
235 enicity of the natural allergen, whereas the Pichia pastoris-derived glycosylation does not.
236 se by PCR, and the mutants were expressed in Pichia pastoris.
237 CD4 chimeric proteins in mammalian cells and Pichia pastoris.
238 g dominant-negative mutant forms of Sar1p in Pichia pastoris.
239 ltration of recombinant proteins produced by Pichia pastoris.
240        In this work, nicaTf was expressed in Pichia pastoris.
241      Human IgG1-Fc was first overproduced in Pichia pastoris.
242 ation of human ABC transporters in the yeast Pichia pastoris.
243 strate membrane insertion in both E.coli and Pichia pastoris.
244 ylase has now been successfully expressed in Pichia pastoris.
245 pexophagy of methanol-induced peroxisomes in Pichia pastoris.
246 mbinant protein expressed in and secreted by Pichia pastoris.
247 secretion pathway of the methylotropic yeast Pichia pastoris.
248 es domain 5 alone (Dom5His) was expressed in Pichia pastoris.
249 sed as a recombinant proprotein in the yeast Pichia pastoris.
250 d at discrete tER sites in the budding yeast Pichia pastoris.
251 ase (nXGase) were produced heterologously in Pichia pastoris.
252  and expressed recombinant F2 in E. coli and Pichia pastoris.
253 ne and cytoplasmic domains, was expressed in Pichia pastoris.
254 sed recombinant human clusterin in the yeast Pichia pastoris.
255 ified recombinant Epo (R103A) from the yeast Pichia pastoris.
256 albumin 8 (SFA8) in the methylotrophic yeast Pichia pastoris.
257 1, PH2, and PH4 proteins after expression in Pichia pastoris.
258 amples of human growth hormone secreted from Pichia pastoris.
259 a soluble, secretory protein using the yeast Pichia pastoris.
260 ADE1, and URA3-from the methylotrophic yeast Pichia pastoris.
261 nds retinal after heterologous expression in Pichia pastoris.
262 inant form of AChE C was highly expressed by Pichia pastoris.
263 Z2 formed single rings in cells of the yeast Pichia pastoris.
264 ve (pex) mutants of the methylotrophic yeast Pichia pastoris.
265 acterization of the FLD1 gene from the yeast Pichia pastoris.
266 deletion mutants were expressed in the yeast Pichia pastoris.
267 n both chinese hamster ovary (CHO) cells and Pichia pastoris.
268 uired for peroxisome biogenesis in the yeast Pichia pastoris.
269 and the recombinant protein was expressed in Pichia pastoris.
270 ed 50% of the total supernatant protein from Pichia pastoris.
271 C-terminal half of VCP has been expressed in Pichia pastoris.
272 hate dehydrogenase gene (GAP) from the yeast Pichia pastoris.
273  in and secreted by the methylotrophic yeast Pichia pastoris.
274 roxisome assembly (pas) mutants in the yeast Pichia pastoris.
275 aised to the recombinant protein produced in Pichia pastoris.
276 ytic domain of CA IX in methylotrophic yeast Pichia pastoris.
277 myces boulardii, Saccharomyces paradoxus, or Pichia pastoris.
278 mh2 was heterologously produced in the yeast Pichia pastoris.
279        We tested these ideas using the yeast Pichia pastoris.
280 roduced in 293T cells, Escherichia coli, and Pichia pastoris.
281 llus subtilis xylanase A (XynA) expressed in Pichia pastoris.
282 duced by recombinant expression in the yeast Pichia pastoris.
283 r protein expression in Escherichia coli and Pichia pastoris.
284          The abf3 gene was thus expressed in Pichia pastoris.
285 iogenesis genes in the methylotrophic yeast, Pichia pastoris.
286 ence selected for heterologous expression in Pichia pastoris.
287 pecies were synthesized in the yeast species Pichia pastoris: K195M, K199M, F211V, W214L, R218M, R222
288 ed in the methylotrophic yeast Komagataella (Pichia) pastoris.
289 n three yeast species, Candida parapsilosis, Pichia philodendra and Candida salmanticensis, is charac
290 ations, the antibodies generated against the Pichia-produced protein prevented the binding of recombi
291  the microsomal fractions of Arabidopsis and Pichia, respectively.
292 coccus, Filobasidium, Kloeckera, Malassezia, Pichia, Sporidiobolus, Rhodotorula, Zygosaccharomyces, a
293 s, such as Brettanomyces, Hanseniaspora, and Pichia spp.
294                                              Pichia stipitis is a well-studied, native xylose-ferment
295 tive sequence contains Ile at position 116 ( Pichia stipitis OYE 2.6) revealed that this enzyme's ste
296                We studied a mutant strain of Pichia stipitis, a yeast capable of converting xylose to
297 erevisiae by overproduction of the identical Pichia Sup35NM.
298 n the heterologous system, overproduction of Pichia Sup35p or Sup35NM induced formation of the prion
299 ng MLG not only in tobacco cells but also in Pichia, which generally does not produce MLG.
300                          We demonstrate that Pichia yeast produce 'normally functioning' mammalian Kv

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