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dimethyl sulfoxide/タバコ属

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5 結果

Dimethyl sulfoxide can initiate cell divisions of arrested callus protoplasts by promoting cortical microtubule assembly.

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A serious problem in the technology of plant cell culture is that isolated protoplasts from many species are reluctant to divide. We have succeeded in inducing consecutive divisions in a "naturally" arrested system-i.e., protoplasts from a hibiscus cell line, which do not divide under standard

Cryostorage of cloned amino Acid analog-resistant carrot and tobacco suspension cultures.

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Five clones were isolated from five different amino acid analog-resistant Daucus carota L. var. Sativa and Nicotiana tabacum L. cv. Xanthi cell lines. The individual clones were similar in their resistance to dl-5-methyltryptophan, S-(2-aminoethyl)-l-cysteine, or azetidine-2-carboxylic acid, and in

Increased resistance to oxidative stress in transgenic plants by targeting mannitol biosynthesis to chloroplasts.

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To investigate the potential role of a polyol, mannitol, in oxidative stress protection, a bacterial mannitol-1-phosphate dehydrogenase gene was targeted to chloroplasts by the addition of an amino-terminal transit peptide. Transgenic tobacco (Nicotiana tabacum) lines accumulate mannitol at

High frequency of fusion induced in freely suspended protoplast mixtures by polyethylene glycol and dimethylsulfoxide at high pH.

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Fusion of freely suspended protoplast mixtures (hypocotyl protoplasts of Brassica napus mixed with mesophyll protoplasts of either B. campestris or Nicotiana plumbaginifolia) was induced by a solution containing 10% polyethylene glycol, 10% dimethyl-sulfoxide and 0.1M glycine-NaOH buffer (pH 10.0).

Actin filaments are dispensable for bulk autophagy in plants.

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Actin filament, also known as microfilament, is one of two major cytoskeletal elements in plants and plays important roles in various biological processes. Like in animal cells, actin filaments have been thought to participate in autophagy in plants. However, surprisingly, in this study we found
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