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Butler, N. M.

Publications and source records attributed to Butler, N. M..

3 recordsLinked to original sources

Immobilized dicot and monocot viral vectors enable rapid screening of RNA mobility elements for mobile RNA engineering and RNA-based genome editing

RNA mobility has emerged as a valuable component of RNA-based genome editing and DNA-free transformation technologies. However, experimental systems for rapidly evaluating RNA mobility remain limited, particularly in monocot species where grafting approaches are not feasible. Here, we developed immobilized versions of Foxtail Mosaic Virus (FoMV) and Tobacco Rattle Virus (TRV) with impaired systemic viral movement as generalizable platforms for transient expression and functional screening of mobile RNAs. A simple Nicotiana benthamiana leaf assay enabled direct visualization and molecular quantification of transcript mobility using fluorescent reporter fusions carrying seven previously described RNA mobility elements from dicot and monocot species. The platform consistently distinguished mobile elements displaying higher or lower frequencies of mobility across both viral systems, with T-RNA-like sequence (TLS), TLSgly and maize FLOWERING LOCUS T (FT) ortholog, ZCN19, and as well as ZCN16 displaying significantly higher frequencies of mobility compared to non-mobile element controls in FoMV and TRV, respectively. Translation of these findings to virus-induced genome editing demonstrated that mobile elements identified through the screening platform enhanced FoMV-mediated editing of PHYTOENE DESATURASE in Setaria viridis (SvPDS), with TLSgly increasing somatic editing frequencies approximately two-fold relative to sgRNA alone. Together, these results establish immobilized FoMV and TRV platforms as versatile screening tools for evaluating RNA mobility, optimizing RNA cargos for viral genome editing, and a scalable framework for engineering mobile RNAs and accelerating development of RNA-based technologies for functional genomics and crop improvement.

plant biology↗

Viral-mediated delivery of morphogenic regulators enables leaf transformation in Sorghum bicolor (L.)

Recent advancements in monocot transformation, using leaf tissue as explant material, have expanded the number of grass species capable of transgenesis. However, the complexity of vectors and reliance on inducible excision of essential morphogenic regulators have so far limited widespread application. Plant RNA viruses, such as Foxtail Mosaic Virus (FoMV), present a unique opportunity to express morphogenic regulator genes, such as Babyboom (Bbm), Wuschel2 (Wus2), Wuschel-like homeobox protein 2a (Wox2a), and the GROWTH-REGULATING FACTOR 4 (GRF4) GRF-INTERACTING FACTOR 1 (GIF1) fusion protein transiently in leaf explant tissues. Furthermore, altruistic delivery of conventional and viral vectors could provide opportunities to simplify vectors used for leaf transformation-- facilitating vector optimization and reducing reliance on morphogenic regulator gene integration. In this study, both viral and conventional T-DNA vectors were tested for their ability to promote the formation of embryonic calli, a critical step in leaf transformation protocols, using Sorghum bicolor leaf explants. Although conventional leaf transformation vectors yielded viable embryonic calli (43.2 {+/-} 2.9%: GRF4-GIF1, 50.2{+/-} 3%: Bbm/Wus2), altruistic conventional vectors employing the GRF4-GIF1 morphogenic regulator resulted in improved efficiencies (61.3 {+/-} 4.7%). Altruistic delivery was further enhanced with the use of viral vectors employing both GRF4-GIF1 and Bbm/Wus2 regulators, resulting in 75.1 {+/-} 2.3% and 79.2 {+/-} 2.5% embryonic calli formation, respectively. Embryonic calli generated from both conventional and viral vectors produced shoots expressing fluorescent reporters, which were confirmed using molecular analysis. This work provides an important proof-of-concept for use of both altruistic vectors and viral-expressed morphogenic regulators for improving plant transformation.

bioengineering↗

Jan and mini-Jan, a model system for potato functional genomics

Potato (Solanum tuberosum) is the third most important food crop in the world. Although the potato genome has been fully sequenced, functional genomics research of potato lags relative to other major food crops due primarily to the lack of a model experimental potato line. Here, we present a diploid potato line, Jan, which possesses all essential characteristics for facile functional genomics studies. Jan has a high level of homozygosity after seven generations of self-pollination. Jan is vigorous and highly fertile with outstanding tuber traits, high regeneration rates, and excellent transformation efficiencies. We generated a chromosome-scale genome assembly for Jan, annotated genes, and identified syntelogs relative to the potato reference genome assembly DMv6.1 to facilitate functional genomics. To miniaturize plant architecture, we developed two "mini-Jan" lines with compact and dwarf plant stature using CRISPR/Cas9-mediated mutagenesis targeting the Dwarf and Erecta genes related to growth. Mini-Jan mutants are fully fertile and will permit higher-throughput studies in limited growth chamber and greenhouse space. Thus, Jan and mini-Jan provide an outstanding model system that can be leveraged for gene editing and functional genomics research in potato.

plant biology↗