Author:
Dubas E.,Castillo A. M.,Żur I.,Krzewska M.,Vallés M. P.
Abstract
Abstract
Background
A mannitol stress treatment and a subsequent application of n-butanol, known as a microtubule-disrupting agent, enhance microspore embryogenesis (ME) induction and plant regeneration in bread wheat. To characterize changes in cortical (CMT) and endoplasmic (EMT) microtubules organization and dynamics, associated with ME induction treatments, immunocytochemistry studies complemented by confocal laser scanning microscopy (CLSM) were accomplished. This technique has allowed us to perform advanced 3- and 4D studies of MT architecture. The degree of MT fragmentation was examined by the relative fluorescence intensity quantification.
Results
In uni-nucleated mannitol-treated microspores, severe CMT and EMT fragmentation occurs, although a complex network of short EMT bundles protected the nucleus. Additional treatment with n-butanol resulted in further depolymerization of both CMT and EMT, simultaneously with the formation of MT aggregates in the perinuclear region. Some aggregates resembled a preprophase band. In addition, a portion of the microspores progressed to the first mitotic division during the treatments. Bi-nucleate pollen-like structures showed a high MT depolymerization after mannitol treatment and numerous EMT bundles around the vegetative and generative nuclei after n-butanol. Interestingly, bi-nucleate symmetric structures showed prominent stabilization of EMT.
Conclusions
Fragmentation and stabilization of microtubules induced by mannitol- and n-butanol lead to new configurations essential for the induction of microspore embryogenesis in bread wheat. These results provide robust insight into MT dynamics during EM induction and open avenues to address newly targeted treatments to induce ME in recalcitrant species.
Publisher
Springer Science and Business Media LLC
Reference69 articles.
1. Dunwell JM. Haploids in flowering plants: origins and exploitation. Plant Biotechnol J. 2010;8:377–424.
2. Dwivedi SL, Britt AB, Tripathi L, Sharma S, Upadhyaya HD, Ortiz R. Haploids: constraints and opportunities in plant breeding. Biotechnol Adv. 2015;33:812–29.
3. Ren J, Wu P, Trampe B, Tian X, Lubberstedt T, Chen S. Novel technologies in doubled haploid line development. Plant Biotechnol J. 2017;15:1361–70.
4. Wędzony M, Forster BP, Zur I, Golemiec E, Szechyńska-Hebda M, Dubas E, et al. Progress in doubled haploid technology in higher plants. In: Touraev A, Forster BP, Jain SM, editors. Advances in haploid production in higher plants. Berlin: Springer Science + Business Media B.V; 2009. p. 1–33.
5. Bhaskara GB. Basic principles and recent advances in anther/pollen culture for crop improvement. In: Prasad BD, Sahni S, Kumar P, Siddiqui MW, editors. Plant biotechnology: principles, techniques, and applications. 1st ed. Boca Raton: Apple Academic Press; 2018. p. 87–123.
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