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Barrera Rojas, C. H.

Publications and source records attributed to Barrera Rojas, C. H..

2 recordsLinked to original sources

SAND-MEDIATED DNA EXTRACTION FROM ORCHIDS FOR GENOMIC APPLICATIONS

DNA extraction is an essential routine procedure for downstream applications in genetics and molecular biology. Since DNA was extracted for the first time, countless protocols have been developed yielding excellent results; however, the diversity of plant families and the distribution in remote areas represent a challenge for these protocols. Orchidaceae, one of the most species-rich plant families in the world, is a group with abundant polyphenols and polysaccharides in its tissues. In addition, sample collection in remote areas represents a challenge, consequently, conventional protocols can be inappropriate for obtaining DNA. In this way, CTAB-based gel preservation has emerged as an excellent alternative to easily collect, store and transport samples, moreover, alternatives such as sterile sand and DNA stabilization solutions during grinding allow a suitable DNA extraction. Here, we combined saturated NaCI-CTAB gels, sterile sand, sucrose-based DNA stabilization buffer, and conventional CTAB solution for obtaining DNA from fresh and stored samples for up to 32 days at room temperature, and described, from sample collection to spectrophotometer-obtained quantification, a non-organic method for obtaining DNA from orchids species for genomic applications. This protocol allows not only the extraction of suitable quantities of high molecular weight DNA of adequate purity and integrity from different orchid species without the use of expensive equipment and cumbersome reagents such as liquid nitrogen and toxic phenols, and/or time-consuming procedures, but also, the use of this DNA in downstream applications such as PCR-based genotyping, restriction enzyme analysis, and most genomic applications.

genetics↗

The miR156-targeted SlSBP15 represses tomato shoot branching via modulating auxin transport and interacting with GOBLET and BRANCHED1b

The microRNA156 (miR156)/SQUAMOSA PROMOTER-BINDING PROTEIN-LIKE (SPL/SBP) regulatory hub is highly conserved among phylogenetically distinct species, but how it interconnects multiple pathways to converge to common integrators controlling shoot architecture is still unclear. Here, we demonstrated that the miR156/SlSBP15 hub modulates tomato shoot branching (SB) by connecting phytohormones with important genetic pathways regulating both axillary bud (AB) development and outgrowth. We verified that plants overexpressing the miR156 (156-OE plants) display high SB, whereas plants overexpressing a miR156-resistant SlSBP15 alelle (rSBP15 plants) display arrested SB and are able to partially restore the wild-type (WT) phenotype in156-OE background. Although rSBP15 plants showed ABs smaller than MT, its activation is dependent on shoot apex-derived auxin transport inhibition. Additionally, hormonal measurements reveal that IAA and ABA concentrations were lower in 156-OE and higher in rSBP15-OE plants. SlSBP15 regulates AB development and outgrowth by inhibiting auxin transport and the activity of GOBLET (GOB), and by interacting with BRANCHED1b (SlBRC1b) at the protein level to control abscisic acid (ABA) levels within ABs. Our data provide a new mechanism by which the miR156/SPL/SBP hub regulates SB, and suggest that SlSBP15 has potential applications in improving tomato architecture.

developmental biology↗