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1.
Planta ; 260(1): 18, 2024 Jun 05.
Article in English | MEDLINE | ID: mdl-38837044

ABSTRACT

MAIN CONCLUSION: We have developed and optimized a rapid, versatile Agrobacterium-mediated transient expression system for cannabis seedlings that can be used in functional genomics studies of both hemp-type and drug-type cannabis. Cannabis (Cannabis sativa L.) holds great promise in the medical and food industries due to its diverse chemical composition, including specialized cannabinoids. However, the study of key genes involved in various biological processes, including secondary metabolite biosynthesis, has been hampered by the lack of efficient in vivo functional analysis methods. Here, we present a novel, short-cycle, high-efficiency transformation method for cannabis seedlings using Agrobacterium tumefaciens. We used the RUBY reporter system to monitor transformation results without the need for chemical treatments or specialized equipment. Four strains of A. tumefaciens (GV3101, EHA105, LBA4404, and AGL1) were evaluated for transformation efficiency, with LBA4404 and AGL1 showing superior performance. The versatility of the system was further demonstrated by successful transformation with GFP and GUS reporter genes. In addition, syringe infiltration was explored as an alternative to vacuum infiltration, offering simplicity and efficiency for high-throughput applications. Our method allows rapid and efficient in vivo transformation of cannabis seedlings, facilitating large-scale protein expression and high-throughput characterization studies.


Subject(s)
Agrobacterium tumefaciens , Cannabis , Genomics , Seedlings , Transformation, Genetic , Agrobacterium tumefaciens/genetics , Seedlings/genetics , Genomics/methods , Cannabis/genetics , Cannabis/metabolism , Plants, Genetically Modified , Genes, Reporter , Green Fluorescent Proteins/genetics , Green Fluorescent Proteins/metabolism
2.
Methods Mol Biol ; 2775: 59-79, 2024.
Article in English | MEDLINE | ID: mdl-38758311

ABSTRACT

Biolistic transformation of Cryptococcus neoformans is used as a molecular tool to genetically alter or delete targeted genes. The DNA is introduced into the yeast on DNA-coated gold beads by a helium shock wave produced using a biolistic particle system. The procedure often involves insertion of a dominant selectable marker into the desired site by homologous recombination. To increase the likelihood of homologous recombination, large fragments of overlapping DNA are used. The two most used dominant selectable markers are nourseothricin and Geneticin. With the need to generate multiple gene deletions in the same strain, there are recyclable marker systems, such as the bacteriophage P1 Cre-loxP system or CRISPR that provide additional useful molecular tools. While newer strategies exist to generate deletions and introduce markers and other gene modifications, biolistic transformation has remained a viable tool to facilitate the construction of genetically modified yeast strains. This chapter provides a working protocol on how to delete and restore a gene in C. neoformans.


Subject(s)
Biolistics , Cryptococcus neoformans , Transformation, Genetic , Cryptococcus neoformans/genetics , Biolistics/methods , Homologous Recombination , Gene Deletion
3.
Methods Mol Biol ; 2775: 81-90, 2024.
Article in English | MEDLINE | ID: mdl-38758312

ABSTRACT

Transformation of foreign DNA into Cryptococcus species is a powerful tool for exploring gene functions in these human pathogens. Agrobacterium tumefaciens-mediated transformation (AtMT) has been used for the stable introduction of exogenous DNA into Cryptococcus for over two decades, being particularly impactful for insertional mutagenesis screens to discover new genes involved in fungal biology. A detailed protocol to conduct this transformation method is provided in the chapter. Scope for modifications and the benefits and disadvantages of using AtMT in Cryptococcus species are also presented.


Subject(s)
Agrobacterium tumefaciens , Cryptococcus , Transformation, Genetic , Cryptococcus/genetics , Agrobacterium tumefaciens/genetics , DNA, Bacterial/genetics , Genetic Vectors/genetics , Gene Transfer Techniques
4.
PLoS One ; 19(5): e0298299, 2024.
Article in English | MEDLINE | ID: mdl-38722945

ABSTRACT

Sunflower is one of the four major oil crops in the world. 'Zaoaidatou' (ZADT), the main variety of oil sunflower in the northwest of China, has a short growth cycle, high yield, and high resistance to abiotic stress. However, the ability to tolerate adervesity is limited. Therefore, in this study, we used the retention line of backbone parent ZADT as material to establish its tissue culture and genetic transformation system for new variety cultivating to enhance resistance and yields by molecular breeding. The combination of 0.05 mg/L IAA and 2 mg/L KT in MS was more suitable for direct induction of adventitious buds with cotyledon nodes and the addition of 0.9 mg/L IBA to MS was for adventitious rooting. On this basis, an efficient Agrobacterium tumefaciens-mediated genetic transformation system for ZADT was developed by the screening of kanamycin and optimization of transformation conditions. The rate of positive seedlings reached 8.0%, as determined by polymerase chain reaction (PCR), under the condition of 45 mg/L kanamycin, bacterial density of OD600 0.8, infection time of 30 min, and co-cultivation of three days. These efficient regeneration and genetic transformation platforms are very useful for accelerating the molecular breeding process on sunflower.


Subject(s)
Agrobacterium tumefaciens , Helianthus , Plants, Genetically Modified , Transformation, Genetic , Helianthus/genetics , Helianthus/microbiology , Helianthus/growth & development , Agrobacterium tumefaciens/genetics , Plants, Genetically Modified/genetics , Tissue Culture Techniques/methods , Plant Roots/microbiology , Plant Roots/genetics , Plant Roots/growth & development , Plant Breeding/methods , Crops, Agricultural/genetics , Crops, Agricultural/growth & development
5.
PLoS One ; 19(4): e0297547, 2024.
Article in English | MEDLINE | ID: mdl-38625963

ABSTRACT

Most legumes are able to develop a root nodule symbiosis in association with proteobacteria collectively called rhizobia. Among them, the tropical species Aeschynomene evenia has the remarkable property of being nodulated by photosynthetic Rhizobia without the intervention of Nod Factors (NodF). Thereby, A. evenia has emerged as a working model for investigating the NodF-independent symbiosis. Despite the availability of numerous resources and tools to study the molecular basis of this atypical symbiosis, the lack of a transformation system based on Agrobacterium tumefaciens significantly limits the range of functional approaches. In this report, we present the development of a stable genetic transformation procedure for A. evenia. We first assessed its regeneration capability and found that a combination of two growth regulators, NAA (= Naphthalene Acetic Acid) and BAP (= 6-BenzylAminoPurine) allows the induction of budding calli from epicotyls, hypocotyls and cotyledons with a high efficiency in media containing 0,5 µM NAA (up to 100% of calli with continuous stem proliferation). To optimize the generation of transgenic lines, we employed A. tumefaciens strain EHA105 harboring a binary vector carrying the hygromycin resistance gene and the mCherry fluorescent marker. Epicotyls and hypocotyls were used as the starting material for this process. We have found that one growth medium containing a combination of NAA (0,5 µM) and BAP (2,2 µM) was sufficient to induce callogenesis and A. tumefaciens strain EHA105 was sufficiently virulent to yield a high number of transformed calli. This simple and efficient method constitutes a valuable tool that will greatly facilitate the functional studies in NodF-independent symbiosis.


Subject(s)
Fabaceae , Fabaceae/genetics , Fabaceae/microbiology , Agrobacterium tumefaciens/genetics , Symbiosis/genetics , Phenotype , Vegetables/genetics , Transformation, Genetic , Plants, Genetically Modified
6.
Planta ; 259(5): 119, 2024 Apr 09.
Article in English | MEDLINE | ID: mdl-38594473

ABSTRACT

MAIN CONCLUSION: S. plumbizincicola genetic transformation was optimized using a self-excision molecular-assisted transformation system by integrating the SpGRF4/SpGIF1 gene with XVE and Cre/loxP. Sedum plumbizincicola, despite being an excellent hyperaccumulator of cadmium and zinc with significant potential for soil pollution phytoremediation on farmland, has nonetheless trailed behind other major model plants in genetic transformation technology. In this study, different explants and SpGRF4-SpGIF1 genes were used to optimize the genetic transformation of S. plumbizincicola. We found that petiole and stem segments had higher genetic transformation efficiency than cluster buds. Overexpression of SpGRF4-SpGIF1 could significantly improve the genetic transformation efficiency and shorten the period of obtaining regenerated buds. However, molecular assistance with overexpression of SpGRF4-SpGIF1 leads to abnormal morphology, resulting in plant tissue enlargement and abnormal growth. Therefore, we combined SpGRF4-SpGIF1 with XVE and Cre/loxP to obtain DNA autocleavage transgenic plants induced by estradiol, thereby ensuring normal growth in transgenic plants. This study optimized the S. plumbizincicola genetic transformation system, improved the efficiency of genetic transformation, and established a self-excision molecular-assisted transformation system. This work also established the basis for studying S. plumbizincicola gene function, and for S. plumbizincicola breeding and germplasm innovation.


Subject(s)
Sedum , Soil Pollutants , Plant Breeding , Cadmium , Biodegradation, Environmental , Transformation, Genetic , Soil
7.
Methods Mol Biol ; 2788: 227-241, 2024.
Article in English | MEDLINE | ID: mdl-38656517

ABSTRACT

The Coffea spp. plant is a significant crop in Latin America, Africa, and Asia, and recent advances in genomics and transcriptomics have opened possibilities for studying candidate genes and introducing new desirable traits through genetic engineering. While stable transformation of coffee plants has been reported using various techniques, it is a time-consuming and laborious process. To overcome this, transient transformation methods have been developed, which avoid the limitations of stable transformation. This chapter describes an ex vitro protocol for transient expression using A. tumefaciens-mediated infiltration of coffee leaves, which could be used to produce coffee plants expressing desirable traits against biotic and abiotic stresses, genes controlling biochemical and physiological traits, as well as for gene editing through CRISPR/Cas9.


Subject(s)
Agrobacterium tumefaciens , Coffea , Gene Editing , Plant Leaves , Plants, Genetically Modified , Transgenes , Coffea/genetics , Plant Leaves/genetics , Plant Leaves/metabolism , Plants, Genetically Modified/genetics , Agrobacterium tumefaciens/genetics , Gene Editing/methods , Transformation, Genetic , CRISPR-Cas Systems , Gene Expression Regulation, Plant
8.
Methods Mol Biol ; 2788: 209-226, 2024.
Article in English | MEDLINE | ID: mdl-38656516

ABSTRACT

Coffea arabica L. is a crucial crop globally, but its genetic homogeneity leads to its susceptibility to diseases and pests like the coffee berry borer (CBB). Chemical and cultural control methods are difficult due to the majority of the CBB life cycle taking place inside coffee beans. One potential solution is the use of the gene cyt1Aa from Bacillus thuringiensis as a biological insecticide. To validate candidate genes against CBB, a simple, rapid, and efficient transient expression system is necessary. This study uses cell suspensions as a platform for expressing the cyt1Aa gene in the coffee genome (C. arabica L. var. Catuaí) to control CBB. The Agrobacterium tumefaciens strain GV3101::pMP90 containing the bar and cyt1Aa genes are used to genetically transform embryogenic cell suspensions. PCR amplification of the cyt1Aa gene is observed 2, 5, and 7 weeks after infection. This chapter describes a protocol that can be used for the development of resistant varieties against biotic and abiotic stresses and CRISPR/Cas9-mediated genome editing.


Subject(s)
Agrobacterium tumefaciens , Coffea , Coffea/genetics , Agrobacterium tumefaciens/genetics , CRISPR-Cas Systems , Plants, Genetically Modified/genetics , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Bacillus thuringiensis/genetics , Endotoxins/genetics , Bacillus thuringiensis Toxins , Gene Editing/methods , Hemolysin Proteins/genetics , Gene Expression Regulation, Plant , Transformation, Genetic , Coffee/genetics
9.
Methods Mol Biol ; 2788: 317-335, 2024.
Article in English | MEDLINE | ID: mdl-38656523

ABSTRACT

The Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR)-Cas 9 (CRISPR-associated protein 9) is a robust DNA-encoded, RNA-mediated sequence-specific nuclease system widely used for genome editing of various plants. Although there are many reports on the assembly of gRNAs and plant transformation, there is no single resource for the complete gene editing methodology in tomato. This chapter provides a comprehensive protocol for designing gRNAs, their assembly into the vector, plant transformation, and final mutant analysis in tomato.


Subject(s)
CRISPR-Cas Systems , Gene Editing , Genetic Vectors , RNA, Guide, CRISPR-Cas Systems , Solanum lycopersicum , Solanum lycopersicum/genetics , Gene Editing/methods , RNA, Guide, CRISPR-Cas Systems/genetics , Genetic Vectors/genetics , Genome, Plant , Plants, Genetically Modified/genetics , Transformation, Genetic
10.
Methods Mol Biol ; 2788: 257-271, 2024.
Article in English | MEDLINE | ID: mdl-38656519

ABSTRACT

Tissue culture optimization protocols limit indica rice breeding. Such a challenge is vital because emergent techniques still rely on tissue culture methods and could allow the breeding of new varieties with higher production and toleration of adverse environmental effects caused by climate change. Genome editing technology, using CRISPR/Cas9, is a fast and precise method for accelerated plant breeding. It limited its use in indica subspecies because of the recalcitrant response to in vitro culture methods. This chapter describes a protocol for CRISPR/Cas9 editing in indica subspecies, specifically in the CR-5272 variety derived from parental lines IR-822, using Agrobacterium tumefaciens and biolistic transformation.


Subject(s)
Agrobacterium tumefaciens , CRISPR-Cas Systems , Gene Editing , Oryza , Oryza/genetics , Gene Editing/methods , Agrobacterium tumefaciens/genetics , Genome, Plant , Plant Breeding/methods , Transformation, Genetic , Plants, Genetically Modified/genetics , Biolistics/methods
11.
Methods Mol Biol ; 2788: 295-316, 2024.
Article in English | MEDLINE | ID: mdl-38656522

ABSTRACT

This protocol outlines the construction of a plant transformation plasmid to express both the Cas9 nuclease and individual guide RNA (gRNA), facilitating the induction of double-stranded breaks (DSBs) in DNA and subsequent imprecise repair via the non-homologous end-joining (NHEJ) pathway. The gRNA expression cassettes are assembled from three components. First, the Medicago truncatula U6.6 (MtU6) promoter (352 bp) and scaffold (83 bp) sequences are amplified from a pUC-based plasmid. Additionally, a third fragment, corresponding to the target sequence, is synthesized as an oligonucleotide. The three gRNA expression fragments are then loosely assembled in a ligation-free cloning reaction and used as a template for an additional PCR step to amplify a single gRNA expression construct, ready for assembly into the transformation vector. The benefits of this design include cost efficiency, as subsequent cloning reactions only require 59 oligonucleotides and standard cloning reagents. Researchers engaged in CRISPR/Cas9-mediated genome editing in plants will find this protocol a clear and resource-efficient approach to create transformation plasmids for their experiments.


Subject(s)
CRISPR-Cas Systems , Gene Knockout Techniques , Genetic Vectors , RNA, Guide, CRISPR-Cas Systems , Genetic Vectors/genetics , RNA, Guide, CRISPR-Cas Systems/genetics , Gene Knockout Techniques/methods , Plasmids/genetics , Medicago truncatula/genetics , Gene Editing/methods , Plants, Genetically Modified/genetics , Cloning, Molecular/methods , Promoter Regions, Genetic/genetics , DNA End-Joining Repair/genetics , Transformation, Genetic
12.
Methods Mol Biol ; 2788: 337-354, 2024.
Article in English | MEDLINE | ID: mdl-38656524

ABSTRACT

Modern genome editing tools particularly CRISPR/Cas9 have revolutionized plant genome manipulation for engineering resilience against changing climatic conditions, disease infestation, as well as functional genomic studies. CRISPR-mediated genome editing allows for editing at a single as well as multiple locations in the genome simultaneously, making it an effective tool for polyploid species too. However, still, its applications are limited to the model crops only. Extending it to crop plants will help improve field crops against the changing climates more rapidly and precisely. Here we describe the protocol for editing the genome of a field crop Brassica juncea (mustard), an allotetraploid and important oilseed crop of the Indo-Pak Subcontinent region. This protocol is based on the Agrobacterium-mediated transformation for the delivery of CRISPR components into the plant genome using cotyledon as explants. We elaborate on steps for recovering genome-edited knockouts, for validation of the edits, as well as recovering the transgene-free edited plants through a commonly used segregating approach.


Subject(s)
CRISPR-Cas Systems , Gene Editing , Genome, Plant , Mustard Plant , Plants, Genetically Modified , Gene Editing/methods , Mustard Plant/genetics , Plants, Genetically Modified/genetics , Agrobacterium/genetics , Transformation, Genetic
13.
Plant Signal Behav ; 19(1): 2345983, 2024 Dec 31.
Article in English | MEDLINE | ID: mdl-38686613

ABSTRACT

The hairy root induction system was used to efficiently investigate gene expression and function in plant root. Cucumber is a significant vegetable crop worldwide, with shallow roots, few lateral roots, and weak root systems, resulting in low nutrient absorption and utilization efficiency. Identifying essential genes related to root development and nutrient absorption is an effective way to improve the growth and development of cucumbers. However, genetic mechanisms underlying cucumber root development have not been explored. Here, we report a novel, rapid, effective hairy root transformation system. Compared to the in vitro cotyledon transformation method, this method shortened the time needed to obtain transgenic roots by 13 days. Furthermore, we combined this root transformation method with CRISPR/Cas9 technology and validated our system by exploring the expression and function of CsMYB36, a pivotal gene associated with root development and nutrient uptake. The hairy root transformation system established in this study provides a powerful method for rapidly identifying essential genes related to root development in cucumber and other horticultural crop species. This advancement holds promise for expediting research on root biology and molecular breeding strategies, contributing to the broader understanding and improvements crop growth and development.


Subject(s)
Cucumis sativus , Plant Proteins , Plant Roots , Plants, Genetically Modified , Plant Roots/growth & development , Plant Roots/genetics , Cucumis sativus/genetics , Cucumis sativus/growth & development , Plant Proteins/genetics , Plant Proteins/metabolism , Plants, Genetically Modified/genetics , Gene Expression Regulation, Plant , Transformation, Genetic , CRISPR-Cas Systems/genetics
14.
Microbiol Res ; 284: 127729, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38663232

ABSTRACT

Marine bacteria play vital roles in symbiosis, biogeochemical cycles and produce novel bioactive compounds and enzymes of interest for the pharmaceutical, biofuel and biotechnology industries. At present, investigations into marine bacterial functions and their products are primarily based on phenotypic observations, -omic type approaches and heterologous gene expression. To advance our understanding of marine bacteria and harness their full potential for industry application, it is critical that we have the appropriate tools and resources to genetically manipulate them in situ. However, current genetic tools that are largely designed for model organisms such as E. coli, produce low transformation efficiencies or have no transfer ability in marine bacteria. To improve genetic manipulation applications for marine bacteria, we need to improve transformation methods such as conjugation and electroporation in addition to identifying more marine broad host range plasmids. In this review, we aim to outline the reported methods of transformation for marine bacteria and discuss the considerations for each approach in the context of improving efficiency. In addition, we further discuss marine plasmids and future research areas including CRISPR tools and their potential applications for marine bacteria.


Subject(s)
Aquatic Organisms , Bacteria , Electroporation , Plasmids , Transformation, Bacterial , Bacteria/genetics , Bacteria/metabolism , Plasmids/genetics , Aquatic Organisms/genetics , Genetic Engineering/methods , Conjugation, Genetic , Escherichia coli/genetics , Escherichia coli/metabolism , Seawater/microbiology , Transformation, Genetic , CRISPR-Cas Systems
15.
J Microbiol Biotechnol ; 34(5): 1178-1187, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38563100

ABSTRACT

Cordyceps militaris is a significant edible fungus that produces a variety of bioactive compounds. We have previously established a uridine/uracil auxotrophic mutant and a corresponding Agrobacterium tumefaciens-mediated transformation (ATMT) system for genetic characterization in C. militaris using pyrG as a screening marker. In this study, we constructed an ATMT system based on a dual pyrG and hisB auxotrophic mutant of C. militaris. Using the uridine/uracil auxotrophic mutant as the background and pyrG as a selection marker, the hisB gene encoding imidazole glycerophosphate dehydratase, required for histidine biosynthesis, was knocked out by homologous recombination to construct a histidine auxotrophic C. militaris mutant. Then, pyrG in the histidine auxotrophic mutant was deleted to construct a ΔpyrG ΔhisB dual auxotrophic mutant. Further, we established an ATMT transformation system based on the dual auxotrophic C. militaris by using GFP and DsRed as reporter genes. Finally, to demonstrate the application of this dual transformation system for studies of gene function, knock out and complementation of the photoreceptor gene CmWC-1 in the dual auxotrophic C. militaris were performed. The newly constructed ATMT system with histidine and uridine/uracil auxotrophic markers provides a promising tool for genetic modifications in the medicinal fungus C. militaris.


Subject(s)
Agrobacterium tumefaciens , Cordyceps , Transformation, Genetic , Uracil , Agrobacterium tumefaciens/genetics , Agrobacterium tumefaciens/metabolism , Cordyceps/genetics , Cordyceps/metabolism , Cordyceps/growth & development , Uracil/metabolism , Histidine/metabolism , Uridine/metabolism , Fungal Proteins/genetics , Fungal Proteins/metabolism , Gene Knockout Techniques , Hydro-Lyases/genetics , Hydro-Lyases/metabolism , Genes, Reporter , Mutation , Homologous Recombination
16.
PLoS Negl Trop Dis ; 18(4): e0012092, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38578808

ABSTRACT

Madurella mycetomatis is the main cause of mycetoma, a chronic granulomatous infection for which currently no adequate therapy is available. To improve therapy, more knowledge on a molecular level is required to understand how M. mycetomatis is able to cause this disease. However, the genetic toolbox for M. mycetomatis is limited. To date, no method is available to genetically modify M. mycetomatis. In this paper, a protoplast-mediated transformation protocol was successfully developed for this fungal species, using hygromycin as a selection marker. Furthermore, using this method, a cytoplasmic-GFP-expressing M. mycetomatis strain was created. The reported methodology will be invaluable to explore the pathogenicity of M. mycetomatis and to develop reporter strains which can be useful in drug discovery as well as in genetic studies.


Subject(s)
Hygromycin B , Madurella , Protoplasts , Transformation, Genetic , Hygromycin B/pharmacology , Hygromycin B/analogs & derivatives , Madurella/genetics , Madurella/drug effects , Drug Resistance, Fungal/genetics , Mycetoma/microbiology , Mycetoma/drug therapy , Cinnamates/pharmacology
17.
J Biotechnol ; 388: 59-71, 2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38636845

ABSTRACT

Withania somnifera (L.) Dunal is an important indigenous medicinal plant with extensive pharmaceutical potential. The root is the main source of major bioactive compounds of this plant species including withanolides, withanine, phenolic acids, etc. Hairy root culture (HRC) is a crucial method for low-cost production of active compounds on a large scale. Four different Agrobacterium rhizogenes strains have been used for the hairy root induction. Maximum transformation efficiency (87.34 ± 2.13%) was achieved with A4 bacterial strain-mediated transformed culture. The genetic transformation was confirmed by using specific primers of seven different genes. Seven HR (Hairy root) lines were selected after screening 29 HR lines based on their fast growth rate and high accumulation of withanolides and phenolic acids content. Two biotic and three abiotic elicitors were applied to the elite root line to trigger more accumulation of withanolides and phenolic acids. While all the elicitors effectively increased withanolides and phenolic acids production, among the five different elicitors, salicylic acid (4.14 mg l-1) induced 11.49 -fold increase in withanolides (89.07 ± 2.75 mg g-1 DW) and 5.34- fold increase in phenolic acids (83.69 ± 3.11 mg g- 1 DW) after 5 days of elicitation compared to the non-elicited culture (7.75 ± 0.63 mg g-1 DW of withanolides and 15.66 ± 0.92 mg g-1 DW of phenolic acids). These results suggest that elicitors can tremendously increase the biosynthesis of active compounds in this system; thus, the HRC of W. somnifera is cost-effective and can be efficiently used for the industrial production of withanolides and phenolic acids.


Subject(s)
Agrobacterium , Hydroxybenzoates , Plant Roots , Withania , Withanolides , Withania/metabolism , Withania/genetics , Withania/growth & development , Hydroxybenzoates/metabolism , Withanolides/metabolism , Plant Roots/metabolism , Plant Roots/growth & development , Plant Roots/genetics , Agrobacterium/genetics , Agrobacterium/metabolism , Transformation, Genetic
18.
Planta ; 259(5): 98, 2024 Mar 24.
Article in English | MEDLINE | ID: mdl-38522041

ABSTRACT

MAIN CONCLUSION: A stable genetic transformation system for Erigeron breviscapus was developed. We cloned the EbYUC2 gene and genetically transformed it into Arabidopsis thaliana and E. breviscapus. The leaf number, YUC2 gene expression, and the endogenous auxin content in transgenic plants were significantly increased. Erigeron breviscapus is a prescription drug for the clinical treatment of cardiovascular and cerebrovascular diseases. The rosette leaves have the highest content of the major active compound scutellarin and are an important component in the yield of E. breviscapus. However, little is known about the genes related to the leaf number and flowering time of E. breviscapus. In our previous study, we identified three candidate genes related to the leaf number and flowering of E. breviscapus by combining resequencing data and genome-wide association study (GWAS). However, their specific functions remain to be characterized. In this study, we cloned and transformed the previously identified full-length EbYUC2 gene into Arabidopsis thaliana, developed the first stable genetic transformation system for E. breviscapus, and obtained the transgenic plants overexpressing EbYUC2. Compared with wild-type plants, the transgenic plants showed a significant increase in the number of leaves, which was correlated with the increased expression of EbYUC2. Consistently, the endogenous auxin content, particularly indole-3-acetic acid, in transgenic plants was also significantly increased. These results suggest that EbYUC2 may control the leaf number by regulating auxin biosynthesis, thereby laying a foundation for revealing the molecular mechanism governing the leaf number and flowering time of E. breviscapus.


Subject(s)
Arabidopsis , Erigeron , Erigeron/genetics , Arabidopsis/genetics , Genome-Wide Association Study , Indoleacetic Acids , Plant Leaves/genetics , Plants, Genetically Modified , Transformation, Genetic
19.
Mol Biol Rep ; 51(1): 407, 2024 Mar 09.
Article in English | MEDLINE | ID: mdl-38460010

ABSTRACT

BACKGROUND: Lack of efficient transformation protocol continues to be a major bottleneck for successful genome editing or transgenic development in wheat. An in planta transformation method was developed in Indian bread wheat in earlier study (Vasil et al. in Nat Biotechnol 10:667-674, 1992) which was labour-intensive and time-consuming. In the present study, in planta transformation method was improved to make it simple, efficient, less labour-intensive and time-saving. METHODS AND RESULTS: PCR-based screening for generated transformants at T0 stage was introduced in this method. Shoot apical meristem of two days old wheat seedling was inoculated with the routine active culture of Agrobacterium tumefaciens harboring plasmid pCAMBIA1300-Ubi-GFP having gene GFP under the control of Zea mays ubiquitin promoter. PCR analysis at T0 stage confirmed 27 plants to be transgene positive. These 27 plants were only taken to the next generation (T1) and the rest were discarded. At T1 generation 6 plants were analyzed to be PCR positive. Out of them, 4 plants were confirmed to have stable integration of transgene (GFP). Fluorescent microscopy at T1 stage confirmed the 4 Southern hybridization positive plants to be expressing reporter gene GFP. CONCLUSIONS: Screening at T0 stage, reduced the load of plants to be taken to T1 generation and their screening thereof at T1 with no overall loss in transformation efficiency. We successfully transformed wheat genotype HD2894 with 3.33% transformation efficiency using a simple, effective method which was less labour-intensive and less time-consuming. This method may be utilized to develop wheat transgenic as well as genome edited lines for desirable traits.


Subject(s)
Agrobacterium tumefaciens , Triticum , Triticum/genetics , Plants, Genetically Modified/genetics , Transformation, Genetic , Agrobacterium tumefaciens/genetics , Transgenes
20.
Plant Cell Rep ; 43(3): 63, 2024 Feb 10.
Article in English | MEDLINE | ID: mdl-38340191

ABSTRACT

KEY MESSAGE: To establish a sterile culture system and protoplast regeneration system for Bryum argenteum, and to establish and apply CRISPR/Cas9 system in Bryum argenteum. Bryum argenteum is a fascinating, cosmopolitan, and versatile moss species that thrives in various disturbed environments. Because of its comprehensive tolerance to the desiccation, high UV and extreme temperatures, it is emerging as a model moss for studying the molecular mechanisms underlying plant responses to abiotic stresses. However, the lack of basic tools such as gene transformation and targeted genome modification has hindered the understanding of the molecular mechanisms underlying the survival of B. argenteum in different environments. Here, we reported the protonema of B. argenteum can survive up to 95.4% water loss. In addition, the genome size of B. argenteum is approximately 313 Mb by kmer analysis, which is smaller than the previously reported 700 Mb. We also developed a simple method for protonema induction and an efficient protoplast isolation and regeneration protocol for B. argenteum. Furthermore, we established a PEG-mediated protoplast transient transfection and stable transformation system for B. argenteum. Two homologues of ABI3(ABA-INSENSITIVE 3) gene were successfully cloned from B. argenteum. To further investigate the function of the ABI3 gene in B. argenteum, we used the CRISPR/Cas9 genetic editing system to target the BaABI3A and BaABI3B gene in B. argenteum protoplasts. This resulted in mutagenesis at the target in about 2-5% of the regenerated plants. The isolated abi3a and abi3b mutants exhibited increased sensitivity to desiccation, suggesting that BaABI3A and BaABI3B play redundant roles in desiccation stress. Overall, our results provide a rapid and simple approach for molecular genetics in B. argenteum. This study contributes to a better understanding of the molecular mechanisms of plant adaptation to extreme environmental.


Subject(s)
Bryophyta , Bryopsida , Gene Editing , Bryopsida/genetics , Bryophyta/genetics , Stress, Physiological/genetics , Transformation, Genetic , CRISPR-Cas Systems/genetics , Protoplasts
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