Max-Planck-Institut für Molekulare Pflanzenphysiologie, D-14424 Potsdam, Germany.
Physiol Plant. 2011 Oct;143(2):115-25. doi: 10.1111/j.1399-3054.2011.01495.x. Epub 2011 Jul 19.
To investigate whether the route from sucrose to starch limits sink strength of potato tubers, we established an additional storage carbohydrate pool and analyzed allocation of imported assimilates to the different pools. Tuber specific expression of the fructan biosynthetic enzymes of globe artichoke resulted in accumulation of fructans to about 5% of the starch level, but did not increase tuber dry weight per plant. While partial repression of starch synthesis caused yield reduction in wild-type plants, it stimulated fructan accumulation, and yield losses were ameliorated in tubers expressing fructosyltransferases. However, a nearly complete block of the starch pathway by inhibition of sucrose synthase could not be compensated by the fructan pathway. Although fructan concentrations rose, yield reduction was even enhanced, probably because of a futile cycle of fructan synthesis and degradation by invertase, which is induced when sucrose synthase is knocked out. The data do not support a limitation of sink strength by enzyme activities of the starch pathway but point to an energy limitation of storage carbohydrate formation in potato tubers.
为了研究蔗糖到淀粉的途径是否限制了马铃薯块茎的库强,我们建立了一个额外的储存碳水化合物库,并分析了进口同化产物在不同库之间的分配。菊芋果糖生物合成酶在块茎中的特异性表达导致果糖积累到淀粉水平的约 5%,但并没有增加每株植物的块茎干重。虽然淀粉合成的部分抑制导致野生型植物减产,但它刺激了果糖的积累,在表达果糖基转移酶的块茎中,减产得到了缓解。然而,通过抑制蔗糖合酶几乎完全阻断淀粉途径,无法通过果糖途径得到补偿。尽管果糖浓度升高,但减产甚至加剧,可能是因为蔗糖合酶敲除时诱导的转化酶对果糖合成和降解的无效循环。这些数据不支持淀粉途径的酶活性限制库强,而是指出了马铃薯块茎中储存碳水化合物形成的能量限制。