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Duszyn, M.

Publications and source records attributed to Duszyn, M..

2 recordsLinked to original sources

Role of CIA2 and CIL in the regulation of chloroplast photomorphogenesis in Arabidopsis

Chloroplast development plays a crucial role in plant de-etiolation, a process in which plants switch from growth in darkness to light-driven development, known as photomorphogenesis. This study provides evidence that CIA2 (Chloroplast Import Apparatus 2) and CIL (CIA2-Like) contribute to chloroplast biogenesis, likely by affecting and regulating PSII assembly and related gene expression. Although their precise molecular roles remain unclear, our findings support their involvement in chloroplast development. This is indicated by deregulation of foliar chlorophyll content, chlorophyll a fluorescence parameters, chloroplast size, and gene expression of PSII molecular markers in cia2cil double mutant during de-etiolation. Chlorophyll a fluorescence and quantitative gene expression analysis during de-etiolation revealed a significant reduction in PSII maximal efficiency and non-photochemical quenching, as well as deregulated transcription of genes such as LHCB2.1 and psbA. According to the immunoblotting and microscopy imaging results, there is an impaired assembly of PSII and a compromised ultrastructure of the chloroplast membranes in cia2cil plants. However, in CIA2p::CIA2cia2cil and 35Sp::CIA2cia2cil complementation lines, reversion of this phenotype was observed. These results suggest a supporting role for CIA2 and CIL in the plant de-etiolation process, expanding our understanding of chloroplast biogenesis regulation.

plant biology↗

Transpiration, Photoinhibition and Non-photochemical Quenching Reciprocally Control Foliar Heat Emission

Global warming intensifies heat waves and drought, causing energy absorption in excess (EAE) in plants, thereby inhibiting transpiration and photosynthesis. Non-photochemical quenching (NPQ) contributes significantly to EAE dissipation as heat, with leaves emitting ca. 107 W m-2 while absorbing ca. 417 W m-2. Foliar temperature is further elevated when transpiration is inhibited, but NPQ is not increased. Surprisingly, during generic photosynthetic electron transport and NPQ partial inhibition, foliar temperature under EAE was reduced considerably. Our findings emphasize the importance of mutual co-regulation of photosynthetic electron transport, NPQ, and transpiration in foliar temperature regulation and suggest that overall heat emission from forest ecosystems may conditionally vary on a terawatt (TW) scale per 1,000,000 km-2. Global warming models do not take into account this putative phenomenon. One Sentence SummaryPhotosynthesis and Foliar Thermoregulation

plant biology↗