TY - JOUR
T1 - The metabolic (under)groundwork of the lily bulb toward sprouting
AU - Lazare, Silit
AU - Burgos, Asdrubal
AU - Brotman, Yariv
AU - Zaccai, Michele
N1 - Publisher Copyright:
© 2017 Scandinavian Plant Physiology Society
PY - 2018/8
Y1 - 2018/8
N2 - Large bulbs of Lilium longiflorum have an obligatory cold requirement to flower. Bulb cooling is widely used to induce and accelerate flowering. However, in-depth investigations of the effect of bulb cooling on major landmarks of plant development are lacking. It has been demonstrated that low temperature induces carbohydrate degradation, yet integrative studies on metabolic changes occurring in the bulb are not available. We detected that cold exposure mainly hastened bulb sprouting, rather than floral transition or blooming. Metabolite profiling of cooled and non-cooled bulbs was carried out, revealing cold-induced accumulation of soluble sugars, lipids and specific amino acids, and a significant reduction in tricarboxylic acid (TCA)-cycle elements. We observed that metabolic pathways located in the cytosol – including glycolysis, lipid synthesis and part of the gamma-Aminobutyric acid (GABA) shunt – were enhanced by cold exposure, while mitochondrial metabolism – namely the TCA cycle – was reduced by cold. We suggest a physiological model accounting for this metabolic discrepancy.
AB - Large bulbs of Lilium longiflorum have an obligatory cold requirement to flower. Bulb cooling is widely used to induce and accelerate flowering. However, in-depth investigations of the effect of bulb cooling on major landmarks of plant development are lacking. It has been demonstrated that low temperature induces carbohydrate degradation, yet integrative studies on metabolic changes occurring in the bulb are not available. We detected that cold exposure mainly hastened bulb sprouting, rather than floral transition or blooming. Metabolite profiling of cooled and non-cooled bulbs was carried out, revealing cold-induced accumulation of soluble sugars, lipids and specific amino acids, and a significant reduction in tricarboxylic acid (TCA)-cycle elements. We observed that metabolic pathways located in the cytosol – including glycolysis, lipid synthesis and part of the gamma-Aminobutyric acid (GABA) shunt – were enhanced by cold exposure, while mitochondrial metabolism – namely the TCA cycle – was reduced by cold. We suggest a physiological model accounting for this metabolic discrepancy.
UR - http://www.scopus.com/inward/record.url?scp=85044862474&partnerID=8YFLogxK
U2 - 10.1111/ppl.12685
DO - 10.1111/ppl.12685
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C2 - 29274128
AN - SCOPUS:85044862474
SN - 0031-9317
VL - 163
SP - 436
EP - 449
JO - Physiologia Plantarum
JF - Physiologia Plantarum
IS - 4
ER -