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Control of pollen hydration in Brassica requires continued protein synthesis, and glycosylation in necessary for intraspecific incompatibility.

机译:控制芸苔属植物花粉水合作用需要持续的蛋白质合成,而种内不相容性则需要糖基化。

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摘要

Pollen hydration and self-incompatibility (SI) in Brassica have been studied by using a combination of in vivo video-microscopy and experiments with metabolic inhibitors. Experiments with cycloheximide confirm earlier observations that pollen hydration is regulated through protein synthesis. No protein or glycoprotein has positively been identified with this event; however, it is unlikely that the total pool of any particular glycoprotein is involved, but rather a newly synthesized or otherwise activated fraction. Micromanipulation of pollen on the stigmatic papillae suggests that access to this hydration regulation system is limited to members of the Brassicaceae: pollen grains of other species-even those possessing dry stigmas-fail to hydrate. It is proposed that an interaction between enzymes of the stigma surface and the superficial layer of the pollen grain coating creates continuity between the content of the papillar wall and the grain protoplast. Inhibition of protein synthesis also overcomes SI, and since the advent of regulated hydration and synthesis of the so-called S-gene glycoproteins coincide with the acquisition of the SI system, there is strong circumstantial evidence that the same molecular species is involved in both processes. Experiments with tunicamycin, which prevents glycosylation of glycoproteins, indicate that the glycosyl groups of the S-gene glycoprotein are required for the operation of the SI system but not for the regulation of hydration. Further experiments suggest that pollen is positively inhibited on incompatible papillae but that this inhibition is biostatic. Recovery from the effects of the SI system appears to involve the metabolism of an inhibitor by the pollen. SI in Brassica thus emerges as a sophisticated process under dynamic control in both the female and male partners. The evolutionary advantages of such a system are discussed.
机译:通过结合体内视频显微镜和代谢抑制剂实验研究了芸苔属中的花粉水合作用和自交不亲和性。用环己酰亚胺进行的实验证实了较早的观察结果,即花粉水合作用是通过蛋白质合成来调节的。没有蛋白或糖蛋白被阳性鉴定为该事件。然而,不太可能涉及任何特定糖蛋白的总库,而是新合成或以其他方式活化的部分。花粉在柱头状乳突上的显微操纵表明,这种水合作用调节系统仅限于十字花科的成员:其他物种的花粉粒,甚至那些具有干燥柱头的花粉都无法水合。提出柱头表面的酶与花粉颗粒涂层的表层之间的相互作用在乳头壁的含量和颗粒原生质体之间产生连续性。抑制蛋白质合成也可以克服SI,并且由于所谓的S基因糖蛋白的水合和合成受到调控的出现与SI系统的获得相吻合,因此有很强的间接证据表明这两个过程都涉及相同的分子种类。用衣霉素防止糖蛋白糖基化的实验表明,S基因糖蛋白的糖基是SI系统操作所需的,而不是水合调节所需的。进一步的实验表明,花粉对不相容的乳头有积极的抑制作用,但这种抑制作用是生物抑制的。从SI系统的作用中恢复似乎涉及花粉抑制剂的代谢。因此,在男性和女性伴侣的动态控制下,芸苔属植物的SI逐渐成为一个复杂的过程。讨论了这种系统的进化优势。

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