GENES CONFERRING TOLERANCE TO ETHANOL AND HIGH TEMPERATURE FOR YEASTS
20170218402 · 2017-08-03
Assignee
Inventors
- Charles Abbas (Champaign, IL)
- Andriy Sibirny (Lviv, UA)
- Andriy Voronovsky (Lviv, UA)
- Olena Ishchuk (Lviv, UA)
Cpc classification
Y02E50/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
Methods of identifying genes conferring ethanol tolerance in yeasts, genes that confer ethanol tolerance, and mutant strains used to identify such genes are described. A gene herein designated HpETT1 was isolated from the yeast Hansenula polymorpha. Expression of HpETT1 in an ethanol sensitive mutant H. polymorpha strain designated 7E complimented ethanol sensitivity of the mutant. When multiple copies of the HpETT1 were integrated into the genome and overexpressed, the transformed strain demonstrated approximately 10-fold greater resistance to ethanol and resistance to the protein misfolding agent AZC. Expression of HpETT1 also increased ethanol tolerance in Saccharomyces cerevisiae. HpEtt1 has 39% sequence identity to a previously identified protein from S. cerevisiae denoted MPE1, however, the MPE1 gene does not confer ethanol resistance to the 7E mutant. Another gene from the yeast Pichia stipites was identified that encodes an orthologue protein having 37% identity to HpETT1 herein designated PsETT1 and also confers ethanol resistance to the 7E mutant.
Claims
1. An isolated nucleic acid encoding a protein at least 37% identical to the ORF for a S. cerevisiae Mpe1 protein (SEQ. ID NO:6) wherein said isolated nucleic acid complements ethanol sensitivity conferred by a ett1 mutant strain of H. polymorpha when said protein encoded by the nucleic acid is expressed in the ett1 mutant strain.
2. The isolated nucleic acid of claim 1 comprising wherein the protein encoded by said nucleic acid is an H. polymorpha ett1 protein according to SEQ. ID NO: 2 or a P. stipitis ett1 protein according to SEQ. ID NO: 4.
3. The isolated nucleic acid of claim 1 wherein the isolated nucleic acid is operably configured with a promoter to express said protein in a yeast transformed with a vector comprising the isolated nucleic acid.
4. The isolated nucleic acid of claim 3 wherein the yeast is selected from the group consisting of H. polymorpha and S. cerevisiae.
5. A yeast transformed with the isolated nucleic acid of claim 3.
6. The yeast of claim 5 wherein the yeast is selected from the group consisting of H. polymorpha and S. cerevisiae.
7. The yeast of claim 5 wherein the isolated nucleic acid is integrated in multiple copies into the genome of the yeast.
8. A method of making ethanol comprising growing the yeast of claim 5 in a medium under conditions selected to produce ethanol.
9. A strain of H. polymorpha that has a mutation in the ETT1 gene encoding a protein according to SEQ. ID NO: 2 where the mutation results in sensitivity to growth on medium containing ethanol in comparison to a parent strain of H. polymorpha that lacks such a mutation.
10. The strain of claim 9 designated 7E on deposit as NRRL Y-50838.
11. A method of making ethanol comprising growing the yeast of claim 6 in a medium under conditions selected to produce ethanol.
12. A method of making ethanol comprising growing the yeast of claim 7 in a medium under conditions selected to produce ethanol.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
Definitions
[0035] Certain common or newly introduced terms that have been used herein are believed to be commonly understood to those of ordinary skilled in the art, or would be commonly understood in view of the present disclosure. Such commonly understood meanings are embraced herein, however, to resolve any questions of clarity that may be asserted by use of certain terms, the following non-limiting definitions are provided to assist in better understanding the present invention.
[0036] A sibling strain, is one strain of microorganism that is of the same species as another strain although not necessarily of the same genotype.
[0037] A parental strain, is a strain of microorganism that has the same genetic background as a derivative strain of the same microorganism, except for alterations that have been made in the derivative strain.
[0038] An ett1 mutant strain, is a strain of H. polymorpha, exemplified herein by H. polymorpha 7E, having a mutation that disrupts the expression of the gene identified herein as HpETT1 and which shows sensitivity to growth on ethanol in comparison to a sibling or parental H. polymorpha strain lacking the mutation.
[0039] An ETT1 gene is a gene from any source that encodes a protein (Ett1 protein) that when expressed in an ettl mutant strain, at least partially overcomes the ethanol sensitive growth properties of the mutant strain.
[0040] A HpETT1 gene is a nucleic acid obtained from a strain of H. polymorpha that encodes an Ett1 protein, exemplified herein by SEQ. ID NO 1 for the gene and SEQ. ID NO 2 for the protein (HpEtt1 protein).
[0041] A PsETT1 gene is a nucleic acid obtained from a strain of P. stipitis that encodes an Ettl protein, exemplified herein by SEQ. ID NO 3 for the gene and SEQ. ID NO 4 for the protein (PsEtt1 protein).
[0042] Overexpress, means to genetically express a nucleic acid encoding an ORF in a transformed host cell to a greater agree than the same nucleic acid is expressed in a non-transformed parent of the host cell under similar growth conditions.
[0043] Increased ethanol sensitivity or ethanol sensitive growth means that that when ethanol is present in a growth medium, a subject strain grows at a slower rate, to a lower density, or otherwise with decreased vigor in comparison to a sibling strain of the same organism grown on the same media.
[0044] Enhanced ethanol tolerance means that when ethanol is present in a growth medium, a subject strain grows at a faster rate, to a greater density, or otherwise with increased vigor in comparison to a sibling strain of the same organism grown on the same media.
Materials AND Methods Used TO Make Exemplary Embodiments
[0045] Strains and Growth Condition.
[0046] The yeast strains disclosed herein are listed in Table 1. The H. polymorpha NCYC495 leul-1 strain was used as a recipient for insertional mutagenesis and was maintained on minimal medium containing 0.67% YNB (Difco, Detroit, Mich., USA) supplemented with 2% sucrose and leucine at 40 mg L.sup.−1 at 37° C. H. polymorpha 7E was selected as an insertional mutant of H. polymorpha NCYC495 leul-1 strain that is unable to grow on YPS medium (0.5% yeast extract, 1% peptone and 2% sucrose) supplemented with 7% ethanol.
[0047] The H. polymorpha CBS4732s strain (Lahtchev et al., 2002) was used as a source of the HpETT1 gene. The strain was maintained on YPD medium (0.5% yeast extract, 1% peptone and 2% glucose) at 37° C.
[0048] The Pichia stipitis strain CBS6054 (Yang et al., 1994) was used as the source of the P. stipitis PsETT1 gene, which is an orthologue of HpETT1. S. cerevisiae strain BY4742 (Brachmann et al., 1998) was used as the source for the S. cerevisiae MPE1 gene.
[0049] The 3Leu+ strain (Ishchuk et al., 2008) was used as a recipient strain for HpETT 1 overexpression in H. polymorpha.
[0050] Yeast transformants were selected either on YNB medium with 2% sucrose or on YPS medium (0.5% yeast extract, 1% peptone and 2% sucrose) supplemented with geneticin at 1 g L.sup.−1 or zeocin at 140 mg L.sup.−1.
[0051] The Escherichia coli strain DH5α[80dkacZΔM15, recA1, endA1, gyrA96, thi1 hsdR17 (r.sub.k.sup.−, m.sub.k.sup.+), supE44, relA1, deoR, Δ(lacZYA-argF) U169] was used in experiments which required a bacterial host. The bacterial strain was grown at 37° C. in the rich (LB) medium as described in Sambrook et al., 1989. Transformed E. coli cells were maintained on a medium containing 100 mg L.sup.−1 of ampicillin.
TABLE-US-00001 TABLE 1 Yeast strains used in this study Strain Description Reference H. polymorpha: leu2 Gleeson and Sudbery, NCYC495 1988 leu1-1 7E NCYC495 leu1-1 insertional this study mutant, leucine prototroph CBS4732s leu2 Lahtchev et al., 2002 3Leu+ NCYC495 leu1-1 derivative, Ishchuk et al., 2008 leucine prototroph P. stipitis wild-type Yang et al., 1994 CBS6054 S. cerevisiae MATα his3_1 leu2_0 Brachmann et al., BY4742 lys2_0 ura3_0 1998
[0052] Construction of Plasmids
[0053] Two integrative plasmid vectors p21 and p70 (
[0054] Based on the initial discovery that the H. polymorpha 7E insertional mutant contained an interruption of a gene having an open reading frame with about 39% identity with the S. cerevisiae MPE1 gene we sought to obtain the natural H. polymorpha homologue of MPE1. The resulting construct was plasmid p21+ETT1Hp (
TABLE-US-00002 IS202 (SEQ. ID NO: 7) (5′-CGGAATTCCATATGGCTGTCATATACTATAAGTTC-3′) and IS203 (SEQ. ID NO: 8) (5′-TTTATAATGCGGCCGCTCACTTTTGATTATTGGTCG-3′).
The PCR fragment was treated with restriction endonucleases Ndel and Notl at the underlined restriction sites and cloned into NdeI/NotI-linearized plasmid p21.
[0055] The genes homologous to HpETT1 were isolated from S. cerevisiae and P. stipitis and subcloned into the p70 expression cassette (
[0056] Another plasmid for expression of the HpETT1 gene constructed was pGLG61+ETT1Hp (
[0057] Molecular Biology Techniques
[0058] Plasmid DNA isolations from E. coli were carried out by using NucleoSpin® Plasmid QuickPure (Macherey-Nagel, Germany). Taq DNA polymerase and Vent.sub.R® DNA polymerase (both New England Biolabs, USA) were used for analytical and preparative PCR, respectively. T4 DNA ligase, T4 DNA polymerase and restriction enzymes were purchased from Fermentas, Lithuania.
[0059] Preparations of total DNA from yeast species were carried out by using DNeasy® Tissue Kit (Qiagen, Germany).
[0060] Transformation of H. polymorpha was performed by electroporation as described previously (Faber et al., 1994).
[0061] Southern blotting analysis was performed using the Amersham ECL Direct Nucleic Acid Labelling and Detection System (GE Healthcare, USA).
[0062] Recombinant Proteins
[0063] The HpEtt1 protein encoded by the HpETT1 gene of H. polymorpha with a sequence of 373 amino acids was expressed as His.sub.6 fusion peptide after being cloned into pET-32-ac (+) (Novagen). The recombinant polypeptide was produced in E. coli BL21(DE3) and purified on nickel-nitriloacetic acid agarose (Qiagen) according to the manufacturer's instructions.
Illustrative Results
[0064] Isolation of H. polymorpha 7E Mutant
[0065] The parental H. polymorpha NCYC495 leul-1 strain tolerates ethanol concentrations in the medium up to 7-8%. However, insertional mutant 7E was selected among H. polymorpha NCYC495 leu1-1 insertional transformants as a one unable to grow on the YNB medium supplemented with 7% ethanol. For this purpose the p19L2 plasmid (Voronovsky et al., 2002) linearized with BamHI was used as an insertional cassette. Leu+ transformants were replica-plated on the ethanol supplemented medium and screened for the growtH. Among 200 transformants only one was unable to grow on the 7% ethanol (designated 7E). The 7E mutant proved to be approximately 300-500 times more sensitive to ethanol compared to the control parental strain (3Leu+ transformant) (
[0066] Plasmid p19L2 carries the LEU2 gene of S. cerevisiae and when it is used to transform a H. polymorpha strain, 1 to a few copies of the plasmid might be integrated into the genome of H. polymorpha. For this reason the copy number of the insertional cassette in the genome of 7E mutant was estimated. The genomic DNA of the 7E mutant and a few other randomly selected Leu.sup.+transformants were treated with HindIII and probed with an ECL-labeled PCR fragment carrying the S. cerevisiae LEU2 gene. There is no HindIII site within LEU2 gene so one Southern blotting signal corresponds to one p19L2 copy in the genome (
[0067] The 7E Insertional Mutant of H. polymorpha has a Disrupted Gene Homologous to the S. cerevisiae MPE1 Gene
[0068] The genomic region flanking the insertional cassette in the 7E mutant was sequenced. It was shown that the plasmid disrupted the H. polymorpha open reading frame having 39% identity to protein (SEQ. ID NO: 6) encoded by the S. cerevisiae MPE1 gene (SEQ. ID NO: 5) which is annotated as coding an essential component of a cleavage and polyadenylation factor required for cleavage and polyadenylation of mRNA (Vo et al., 2001). A sequence comparison (
[0069] Not S. cerevisiae but P. stipitis ETT1 Gene Complement the ett1 Mutation in H. polymorpha.
[0070] To study the functional complementation of ettl mutation of H. polymorpha two heterologous homologues were chosen: the S. cerevisiae MPE1 gene and the gene from P. stipitis (another xylose fermenting yeast species) herein designated PsETT1. The putative product of PsETT1 discovered to have about 37% amino acid identity with the HpEtt1 protein. The effect of expressing these heterlogous genes was compared with the expression of the H. polymorpha HpETT1 gene a as a control. For this purpose the 7E mutant was transformed with plasmids p70+MPE1Sc, p70+ETT1Pst and pGLG61+ETT1Hp (
[0071] Although the HpETT1 gene appears to be not essential for growth for H. polymorpha, the presence of RNA-binding zinc knuckle domain in the HpETT1 gene suggest a possible involvement in RNA maturation, which may be one of the processes negatively affected by ethanol exposure in this and other organisms.
[0072] Construction of H. polymorpha Strain Overexpressing Native HpETT1 Gene.
[0073] The H. polymorpha 3Leu+ strain (Ishchuk et al., 2008) was transformed with plasmid vector pGLG61+ETT1Hp (
[0074] The H. polymorpha HpETT1 Multicopy Integrant has Improved Growth on the Medium with Ethanol.
[0075] Tolerance of H. polymorpha strains to ethanol was measured as the viability in the presence of ethanol in liquid YPD/YPS media. In the media without ethanol there was no difference between strains growth (
[0076] The H. polymorpha ETT1 Multi-Copy Integrant is Resistant to Other Kinds of Stress.
[0077] The 3Leu+pETT1-10 transformant is also more resistant to the proline analogue 2-azetidine carboxylic acid, AZC (
[0078] Overexpression of the H. polymorpha HpETT1 Gene in S. cerevisiae Increases Ethanol Tolerance.
[0079] The H. polymorpha HpETT1 gene was cloned into a yeast expression vector under control of the S. cerevisiae PGK1 promoter. Two transformants showed slightly increased growth on ethanol media (
[0080] Purification of H. polymorpha HpEtt1 Protein.
[0081] The H. polymorpha HpEtt1 protein was overexpressed in bacteria as his tagged fusion protein, then isolated and partially purified as shown in the SDS polyacrylamide gel depicted in
[0082] Discussion.
[0083] The S. cerevisiae Mpe1 protein was previously characterized as an essential evolutionary conserved protein participating in cleavage and polyadenylation of mRNA (Vo et al., 2001). The present disclosure demonstrates that an orthologue present in H. polymorpha that shares 39% sequence identity with the S. cerevisiae Mpe1 protein, which is herein designated HpEttl is involved in ethanol resistance and high temperature resistance in H. polymorpha and also confers a detectable increase in ethanol resistance when expressed in S. cerevisiae. Unlike its S. cerevisiae orthologue, the HpETT1 gene is not necessary for cell viability. The ability to functionally complement the H. polymorpha 7E mutant was used as a method to isolate another Ett1 like protein PsEtt1 from another xylose fermenting yeast. P. stipitis. The PsEtt1 protein shares about 37% amino acid Identity with the HpEtt1. Despite having similar sequence identity at 39% to the S. cerevisiae homologue MPE1, expression of the S. cerevisiae protein in the H. polymorpha 7E mutant, which lacks a functional HpETT1 gene did not restore the growth on 7% ethanol. In spite of being evolutionary conserved, Ett1 p of H. polymorpha as well as other xylose fermenting yeast species P. stipitis participate in ethanol resistance. It is noted that the sequence of the H. polymorpha HpETT1 contains several motifs (
[0084] The results described herein show that H. polymorpha ethanol tolerance could be substantially improved by introducing multiple copies of native ETT1 gene into the genome. The strain constructed in the present disclosure is a recombinant strain carrying 6-7 copies of ETT1 gene and has 10-fold higher resistance towards exogenous ethanol and improved growth kinetics in the ethanol media. Moreover, the corresponding multicopy integrant (3Leu+pETT1-10) proved to be more resistant to the protein misfolding reagent, AZC. The 7E mutant is unable to grow at 50 ° C., which is upper temperature limit to H. polymorpha (Guerra et al., 2005). Ethanol and temperature stresses cause some similar effects, particularly block of mature mRNA export from the nucleus and subsequently the accumulation of bulk poly (A).sup.+ mRNA in this cell compartment (Tani et al., 1995; Saavedra et al., 1996; Krebber et al., 1999). The defects in processes of mRNA maturation also cause the accumulation of bulk poly (A) mRNA in the nucleus (Brodsky and Silver, 2000; Jensen et al., 2001). So it may be supposed that H. polymorpha Ett1Hp being a RNA-binding protein could influence the mRNA maturation under ethanol stress and high temperature but not under optimal growth conditions.