An Interplay of Light and Smoke Compounds in Photoblastic Seeds

被引:8
作者
Baczek-Kwinta, Renata [1 ]
机构
[1] Agr Univ Krakow, Dept Plant Physiol Breeding & Seed Sci, Fac Agr & Econ, Podluzna 3, PL-30239 Krakow, Poland
来源
PLANTS-BASEL | 2022年 / 11卷 / 13期
关键词
seed germination; smoke compounds; karrikin; red light; blue light; phytochrome; butenolide; smoke water; mandelonitrile; gibberellin; ABSCISIC-ACID METABOLISM; PHYTOCHROME REGULATION; HETEROPOGON-CONTORTUS; PROMOTE GERMINATION; SEEDLING GROWTH; BLUE-LIGHT; DORMANCY; KARRIKINOLIDE; RESPONSES; REQUIREMENTS;
D O I
10.3390/plants11131773
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Light increases the germinability of positively photoblastic seeds and inhibits the germination of negative ones. In an area where plant-generated smoke from fire is a periodically occurring environmental factor, smoke chemicals can affect the germination of seeds, including those that are photoblastically sensitive. Moreover, as smoke and its compounds, mostly karrikin 1, KAR1, have been used for priming the seeds of many species, including photoblastic ones, a systematic review of papers dealing with the phenomenon was conducted. The review indicates that the unification of experimental treatments (light spectrum, intensity and photoperiod, and KAR1 concentration within the species) could improve the quality of global research on the impact of smoke chemicals on photoblastic seeds, also at the molecular level. The review also reveals that the physiologically active concentration of KAR1 varies in different species. Moreover, the physiological window of KAR's impact on germination can be narrow due to different depths of primary seed dormancy. Another concern is the mode of action of different smoke sources and formulations (aerosol smoke, smoke-saturated water), or pure smoke chemicals. The reason for this concern is the additive or synergetic effect of KARs, cyanohydrins, nitrates and other compounds, and the presence of a germination inhibitor, trimethylbutenolide (TMB) in smoke and its formulations. Obviously, environmental factors that are characteristic of the local environment need to be considered. From a practical perspective, seeds germinating faster in response to smoke chemicals can outcompete other seeds. Hence, a thorough understanding of this phenomenon can be useful in the restoration of plant habitats and the protection of rare species, as well as yielding an improvement in plants that are sown directly to the field. On the other hand, the application of smoke compounds can induce "suicidal germination" in the photoblastic seeds that are buried in the soil and deplete the soil seed bank of the local population of unwanted species.
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页数:12
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