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Riboregulators and the role of Hfq in photosynthetic bacteria

机译:核调节剂和Hfq在光合细菌中的作用

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Anoxygenic and oxygenic bacteria directly convert solar energy into biomass using photosynthesis. The formation and composition of photosynthetic complexes has to be tightly controlled in response to environmental conditions, as exposure to sunlight can be harmful due to the generation of reactive oxygen species and the damaging effects of UV irradiation. Therefore, photosynthetic bacteria are exposed to a particular set of regulatory challenges in addition to those that also affect other bacteria, requiring sophisticated regulatory systems. Indeed, hundreds of potential regulatory RNAs have been identified in photosynthetic model bacteria as well as antisense RNAs (asRNAs) of up to several kb in length that protect certain mRNAs from degradation. The trans-acting small non-coding RNAs (sRNAs), PcrZ and PsrR1, control pigment and photosystem biogenesis in Rhodobacter sphaeroides and cyanobacteria, respectively. The asRNAs IsrR and As1_flv4 act as negative regulators and the asRNAs PsbA2R and PsbA3R as positive effectors of photosynthesis gene expression in Synechocystis 6803.
机译:产氧细菌和氧细菌通过光合作用直接将太阳能转化为生物质。光合配合物的形成和组成必须根据环境条件进行严格控制,因为暴露于阳光下会由于活性氧的产生和紫外线辐射的破坏作用而有害。因此,光合细菌除了还影响其他细菌的挑战外,还面临着一系列特殊的挑战,需要复杂的调节系统。实际上,已经在光合作用模型细菌中鉴定了数百种潜在的调节性RNA,以及长达几kb的反义RNA(asRNA),可以保护某些mRNA免受降解。反式小编码RNA(sRNA),PcrZ和PsrR1分别控制球形红球菌和蓝细菌中的色素和光系统生物发生。 asRNAs IsrR和As1_flv4充当负调节剂,而asRNAs PsbA2R和PsbA3R充当集胞藻6803中光合作用基因表达的正效应子。

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