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弥合差距:从光感知到与酚类化合物生产相关基因的转录调控。

Bridging the Gap: From Photoperception to the Transcription Control of Genes Related to the Production of Phenolic Compounds.

机构信息

Department of Physics, University of Ostrava, 710 00 Ostrava, Czech Republic.

Department of Biology and Ecology, University of Ostrava, 710 00 Ostrava, Czech Republic.

出版信息

Int J Mol Sci. 2024 Jun 27;25(13):7066. doi: 10.3390/ijms25137066.

Abstract

Phenolic compounds are a group of secondary metabolites responsible for several processes in plants-these compounds are involved in plant-environment interactions (attraction of pollinators, repelling of herbivores, or chemotaxis of microbiota in soil), but also have antioxidative properties and are capable of binding heavy metals or screening ultraviolet radiation. Therefore, the accumulation of these compounds has to be precisely driven, which is ensured on several levels, but the most important aspect seems to be the control of the gene expression. Such transcriptional control requires the presence and activity of transcription factors (TFs) that are driven based on the current requirements of the plant. Two environmental factors mainly affect the accumulation of phenolic compounds-light and temperature. Because it is known that light perception occurs via the specialized sensors (photoreceptors) we decided to combine the biophysical knowledge about light perception in plants with the molecular biology-based knowledge about the transcription control of specific genes to bridge the gap between them. Our review offers insights into the regulation of genes related to phenolic compound production, strengthens understanding of plant responses to environmental cues, and opens avenues for manipulation of the total content and profile of phenolic compounds with potential applications in horticulture and food production.

摘要

酚类化合物是一组次生代谢物,负责植物的几个过程-这些化合物参与植物-环境相互作用(吸引传粉者、排斥食草动物、或土壤中微生物的趋化性),但也具有抗氧化特性,能够结合重金属或屏蔽紫外线辐射。因此,这些化合物的积累必须被精确地驱动,这在几个层面上得到了保证,但最重要的方面似乎是基因表达的控制。这种转录控制需要转录因子(TFs)的存在和活性,这些转录因子基于植物的当前需求而被驱动。两个环境因素主要影响酚类化合物的积累-光和温度。因为已知光的感知是通过专门的传感器(光感受器)发生的,所以我们决定将关于植物光感知的生物物理知识与基于分子生物学的特定基因转录控制知识结合起来,以弥合它们之间的差距。我们的综述深入了解了与酚类化合物生产相关的基因的调控,加强了对植物对环境线索的反应的理解,并为操纵酚类化合物的总量和分布提供了途径,这在园艺和食品生产中具有潜在的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3a7a/11241081/ba02b6c38257/ijms-25-07066-g004.jpg

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