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result(s) for
"Hummel, Aaron W"
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Allele exchange at the EPSPS locus confers glyphosate tolerance in cassava
by
Starker, Colby G.
,
Voytas, Daniel F.
,
Boyher, Adam
in
3-phosphoshikimate 1-carboxyvinyltransferase
,
3-Phosphoshikimate 1-Carboxyvinyltransferase - genetics
,
Alleles
2018
Summary Effective weed control can protect yields of cassava (Manihot esculenta) storage roots. Farmers could benefit from using herbicide with a tolerant cultivar. We applied traditional transgenesis and gene editing to generate robust glyphosate tolerance in cassava. By comparing promoters regulating expression of transformed 5‐enolpyruvylshikimate‐3‐phosphate synthase (EPSPS) genes with various paired amino acid substitutions, we found that strong constitutive expression is required to achieve glyphosate tolerance during in vitro selection and in whole cassava plants. Using strategies that exploit homologous recombination (HR) and nonhomologous end‐joining (NHEJ) DNA repair pathways, we precisely introduced the best‐performing allele into the cassava genome, simultaneously creating a promoter swap and dual amino acid substitutions at the endogenous EPSPS locus. Primary EPSPS‐edited plants were phenotypically normal, tolerant to high doses of glyphosate, with some free of detectable T‐DNA integrations. Our methods demonstrate an editing strategy for creating glyphosate tolerance in crop plants and demonstrate the potential of gene editing for further improvement of cassava.
Journal Article
TAL Effector Specificity for base 0 of the DNA Target Is Altered in a Complex, Effector- and Assay-Dependent Manner by Substitutions for the Tryptophan in Cryptic Repeat –1
by
Starker, Colby G.
,
Voytas, Daniel F.
,
Bradley, Philip
in
Acids
,
Amino Acid Sequence
,
Amino Acid Substitution
2013
TAL effectors are re-targetable transcription factors used for tailored gene regulation and, as TAL effector-nuclease fusions (TALENs), for genome engineering. Their hallmark feature is a customizable central string of polymorphic amino acid repeats that interact one-to-one with individual DNA bases to specify the target. Sequences targeted by TAL effector repeats in nature are nearly all directly preceded by a thymine (T) that is required for maximal activity, and target sites for custom TAL effector constructs have typically been selected with this constraint. Multiple crystal structures suggest that this requirement for T at base 0 is encoded by a tryptophan residue (W232) in a cryptic repeat N-terminal to the central repeats that exhibits energetically favorable van der Waals contacts with the T. We generated variants based on TAL effector PthXo1 with all single amino acid substitutions for W232. In a transcriptional activation assay, many substitutions altered or relaxed the specificity for T and a few were as active as wild type. Some showed higher activity. However, when replicated in a different TAL effector, the effects of the substitutions differed. Further, the effects differed when tested in the context of a TALEN in a DNA cleavage assay, and in a TAL effector-DNA binding assay. Substitution of the N-terminal region of the PthXo1 construct with that of one of the TAL effector-like proteins of Ralstonia solanacearum, which have arginine in place of the tryptophan, resulted in specificity for guanine as the 5' base but low activity, and several substitutions for the arginine, including tryptophan, destroyed activity altogether. Thus, the effects on specificity and activity generated by substitutions at the W232 (or equivalent) position are complex and context dependent. Generating TAL effector scaffolds with high activity that robustly accommodate sites without a T at position 0 may require larger scale re-engineering.
Journal Article
Gene expression atlas for the food security crop cassava
by
Raj Deepika Chauhan
,
Daniel H. Chitwood
,
Anupama Vijayaraghavan
in
biological resistance
,
Biotechnology
,
callus
2017
Cassava (Manihot esculenta) feeds c. 800 million people world-wide. Although this crop displays high productivity under drought and poor soil conditions, it is susceptible to disease, postharvest deterioration and the roots contain low nutritional content.
Here, we provide molecular identities for 11 cassava tissue/organ types through RNA-sequencing and develop an open access, web-based interface for further interrogation of the data.
Through this dataset, we consider the physiology of cassava. Specifically, we focus on identification of the transcriptional signatures that define the massive, underground storage roots used as a food source and the favored target tissue for transgene integration and genome editing, friable embryogenic callus (FEC). Further, we identify promoters able to drive strong expression in multiple tissue/organs.
The information gained from this study is of value for both conventional and biotechnological improvement programs.
Journal Article
Addition of transcription activator‐like effector binding sites to a pathogen strain‐specific rice bacterial blight resistance gene makes it effective against additional strains and against bacterial leaf streak
by
Doyle, Erin L
,
Hummel, Aaron W
,
Bogdanove, Adam J
in
Bacteria
,
Bacterial Secretion Systems
,
Bacterial Secretion Systems - genetics
2012
• Xanthomonas transcription activator‐like (TAL) effectors promote disease in plants by binding to and activating host susceptibility genes. Plants counter with TAL effector‐activated executor resistance genes, which cause host cell death and block disease progression. We asked whether the functional specificity of an executor gene could be broadened by adding different TAL effector binding elements (EBEs) to it. • We added six EBEs to the rice Xa27 gene, which confers resistance to strains of the bacterial blight pathogen Xanthomonas oryzae pv. oryzae (Xoo) that deliver the TAL effector AvrXa27. The EBEs correspond to three other effectors from Xoo strain PXO99A and three from strain BLS256 of the bacterial leaf streak pathogen Xanthomonas oryzae pv. oryzicola (Xoc). • Stable integration into rice produced healthy lines exhibiting gene activation by each TAL effector, and resistance to PXO99A, a PXO99A derivative lacking AvrXa27, and BLS256, as well as two other Xoo and 10 Xoc strains virulent toward wildtype Xa27 plants. Transcripts initiated primarily at a common site. Sequences in the EBEs were found to occur nonrandomly in rice promoters, suggesting an overlap with endogenous regulatory sequences. • Thus, executor gene specificity can be broadened by adding EBEs, but caution is warranted because of the possible coincident introduction of endogenous regulatory elements.
Journal Article
Transcription activator-like (TAL) effectors targeting OsSWEET genes enhance virulence on diverse rice (Oryza sativa) varieties when expressed individually in a TAL effector-deficient strain of Xanthomonas oryzae
by
R. Andres Cernadas
,
Valérie Verdier
,
Clarice L. Schmidt
in
Bacterial Proteins - genetics
,
Bacterial Proteins - metabolism
,
Base Sequence
2012
Genomes of the rice (Oryza sativa) xylem and mesophyll pathogens Xanthomonas oryzae pv. oryzae (Xoo) and pv. oryzicola (Xoc) encode numerous secreted transcription factors called transcription activator-like (TAL) effectors. In a few studied rice varieties, some of these contribute to virulence by activating corresponding host susceptibility genes. Some activate disease resistance genes. The roles of X. oryzae TAL effectors in diverse rice backgrounds, however, are poorly understood.
Xoo TAL effectors that promote infection by activating SWEET sucrose transporter genes were expressed in TAL effector-deficient X. oryzae strain X11-5A, and assessed in 21 rice varieties. Some were also tested in Xoc on variety Nipponbare. Several Xoc TAL effectors were tested in X11-5A on four rice varieties.
Xoo TAL effectors enhanced X11-5A virulence on most varieties, but to varying extents depending on the effector and variety. SWEET genes were activated in all tested varieties, but increased virulence did not correlate with activation level. SWEET activators also enhanced Xoc virulence on Nipponbare. Xoc TAL effectors did not alter X11-5A virulence.
SWEET-targeting TAL effectors contribute broadly and non-tissue-specifically to virulence in rice, and their function is affected by host differences besides target sequences. Further, the utility of X11-5A for characterizing individual TAL effectors in rice was established.
Journal Article
Conferring resistance to geminiviruses with the CRISPR–Cas prokaryotic immune system
by
Baltes, Nicholas J.
,
Cegan, Radim
,
Voytas, Daniel F.
in
631/1647/338/22
,
631/449/2491/2046
,
631/449/447/2311
2015
To reduce crop losses due to geminivirus infection, we targeted the bean yellow dwarf virus (BeYDV) genome for destruction with the CRISPR–Cas (clustered, regularly interspaced short palindromic repeats–CRISPR-associated proteins) system. Transient assays using BeYDV-based replicons revealed that CRISPR–Cas reagents introduced mutations within the viral genome and reduced virus copy number. Transgenic plants expressing CRISPR–Cas reagents and challenged with BeYDV had reduced virus load and symptoms, thereby demonstrating a novel strategy for engineering resistance to geminiviruses.
Transient assays and transgenic experiments demonstrate that sgRNA/Cas9 constructs targeting the bean yellow dwarf virus inhibit the accumulation of the virus and confer resistance in transgenic
N. benthamiana
plants.
Journal Article
Transcription activator‐like ( TAL ) effectors targeting Os SWEET genes enhance virulence on diverse rice ( Oryza sativa ) varieties when expressed individually in a TAL effector‐deficient strain of Xanthomonas oryzae
2012
Genomes of the rice ( Oryza sativa ) xylem and mesophyll pathogens X anthomonas oryzae pv. oryzae ( Xoo ) and pv. oryzicola ( Xoc ) encode numerous secreted transcription factors called transcription activator‐like ( TAL ) effectors. In a few studied rice varieties, some of these contribute to virulence by activating corresponding host susceptibility genes. Some activate disease resistance genes. The roles of X . oryzae TAL effectors in diverse rice backgrounds, however, are poorly understood. Xoo TAL effectors that promote infection by activating SWEET sucrose transporter genes were expressed in TAL effector‐deficient X. oryzae strain X11‐5A, and assessed in 21 rice varieties. Some were also tested in Xoc on variety Nipponbare. Several Xoc TAL effectors were tested in X11‐5A on four rice varieties. Xoo TAL effectors enhanced X11‐5A virulence on most varieties, but to varying extents depending on the effector and variety. SWEET genes were activated in all tested varieties, but increased virulence did not correlate with activation level. SWEET activators also enhanced Xoc virulence on Nipponbare. Xoc TAL effectors did not alter X11‐5A virulence. SWEET ‐targeting TAL effectors contribute broadly and non‐tissue‐specifically to virulence in rice, and their function is affected by host differences besides target sequences. Further, the utility of X11‐5A for characterizing individual TAL effectors in rice was established.
Journal Article
A novel mechanistic framework for precise sequence replacement using reverse transcriptase and diverse CRISPR-Cas systems
by
Reynolds, Grace M
,
Lincoln Chapman, Tracey A
,
Nicholl, David
in
CRISPR
,
Editing
,
Genetic diversity
2022
CRISPR/Cas systems coupled with reverse transcriptase (RT), such as the recently described Prime editing, allow for site-specific replacement of DNA sequences. Despite widespread testing of Prime editing, it is currently only compatible with type II CRISPR/Cas proteins such as Streptococcus pyogenes and Staphylococcus aureus Cas9. Enabling RT compatibility with other CRISPR/Cas domains, such as type V enzymes with orthogonal protospacer adjacent motif specificities and smaller protein size would expand the range of edits that can be made in therapeutic and industrial applications. We achieve this with a novel mode of DNA editing at CRISPR-targeted sites that reverse transcribes the edit into the target strand DNA (e.g., the complement of the PAM-containing strand), rather than the non-target strand DNA, as in Prime editing. We term this technology RNA encoded DNA replacement of alleles with CRISPR (hereafter, REDRAW). We show that REDRAW extends the utility of RT-mediated editing beyond type II to include multiple type V CRISPR domains. REDRAW features a broad (8-10 bases) targeting window, at which all types of substitutions, insertions and deletions are possible. REDRAW combines the advantages of type V CRISPR domains with the extensive range of genetic variation enabled by RT-mediated, templated sequence replacement strategies.Competing Interest StatementThe authors work for Pairwise, a health-focused food and agriculture company that harnesses the transformative potential of new genomics technologies to create innovative new products across the plant-based economy.
Natural and engineered resistance triggered by TAL effectors of Xanthomonas oryzae
2013
Xanthomonas plant pathogenic bacteria cause yield-limiting disease in several important crops. Some species promote infection by secreting transcription activator-like (TAL) effectors directly into host cells where they interact with eukaryotic cellular apparatus to transactivate plant genes. Specific recognition occurs through direct, predictable interactions between hypervariable amino acid residues in the central DNA binding domain and adjacent nucleotides in the sense strand of the gene promoter, thus defining the length and sequence of the effector binding element (EBE). Activation of host susceptibility genes promotes disease, whereas induction of executor resistance (R) genes leads to plant defense. The vascular pathogen Xanthomonas oryzae pv. oryzae (Xoo) and the mesophyll pathogen Xanthomonas oryzae pv. oryzicola (Xoc) are causal agents of the devastating rice (Oryza sativa) diseases bacterial blight and bacterial leaf streak, respectively. To investigate whether executor R genes can be engineered for broader resistance, we added six predicted EBEs corresponding to TAL effectors from Xoo and Xoc to the promoter of Xa27. This modification resulted in specific activation of Xa27 in transgenic rice by Xoo, Xoc and each of the corresponding TAL effectors individually, as measured by quantitative Real Time RT-PCR (qPCR). It expanded the resistance of Xa27 to include additional strains of Xoo and all tested strains of Xoc. A bioinformatics analysis of sequences amended to the Xa27 promoter suggests the likely introduction of unwanted regulatory elements, highlighting the importance of EBE design to guard against spurious gene activation. During a screen of Xoc TAL effectors, we observed a hypersensitive reaction (HR) triggered by Tal2a when it was expressed heterologously in rice leaves by another Xanthomonas strain. The response was Tal2a-specific and dependent on gene activation, suggesting an executor R gene mechanism. EBE prediction, qPCR and next generation RNA sequencing studies identified three rice genes activated specifically in response to Tal2a. One, a ubiquitin carboxy-terminal hydrolase (UCH), was activated with designer TAL effectors (dTALEs) but was not sufficient to cause the HR. Testing of the remaining three genes through dTALE activation is ongoing. Expression from high and low copy plasmids points to a dose-dependent avirulence effect of Tal2a in Xoo and Xoc.
Dissertation
TAL Effector Specificity for base 0 of the DNA Target Is Altered in a Complex, Effector- and Assay-Dependent Manner by Substitutions for the Tryptophan in Cryptic Repeat -1: e82120
2013
TAL effectors are re-targetable transcription factors used for tailored gene regulation and, as TAL effector-nuclease fusions (TALENs), for genome engineering. Their hallmark feature is a customizable central string of polymorphic amino acid repeats that interact one-to-one with individual DNA bases to specify the target. Sequences targeted by TAL effector repeats in nature are nearly all directly preceded by a thymine (T) that is required for maximal activity, and target sites for custom TAL effector constructs have typically been selected with this constraint. Multiple crystal structures suggest that this requirement for T at base 0 is encoded by a tryptophan residue (W232) in a cryptic repeat N-terminal to the central repeats that exhibits energetically favorable van der Waals contacts with the T. We generated variants based on TAL effector PthXo1 with all single amino acid substitutions for W232. In a transcriptional activation assay, many substitutions altered or relaxed the specificity for T and a few were as active as wild type. Some showed higher activity. However, when replicated in a different TAL effector, the effects of the substitutions differed. Further, the effects differed when tested in the context of a TALEN in a DNA cleavage assay, and in a TAL effector-DNA binding assay. Substitution of the N-terminal region of the PthXo1 construct with that of one of the TAL effector-like proteins of Ralstonia solanacearum, which have arginine in place of the tryptophan, resulted in specificity for guanine as the 5' base but low activity, and several substitutions for the arginine, including tryptophan, destroyed activity altogether. Thus, the effects on specificity and activity generated by substitutions at the W232 (or equivalent) position are complex and context dependent. Generating TAL effector scaffolds with high activity that robustly accommodate sites without a T at position 0 may require larger scale re-engineering.
Journal Article