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YADAV, R. M.

Publications and source records attributed to YADAV, R. M..

2 recordsLinked to original sources

Distinctive mechanism of LHCSR3 expression and function under osmotic stress in Chlamydomonas reinhardtii

Light-harvesting complex stress-related protein 3 (LHCSR3) expression is observed in various protoxidizing conditions like high light and nutrient starvation. LHCSR3 expression is essential for energy-dependent quenching (qE), whereas its role under nutrient starvation is elusive. It is also unclear how nutrient starvation can induce LHCSR3 expression under subsaturating light intensities. To study the role of LHCSR3 under nutrient starvation, the C. reinhardtii cells are grown under osmotic stress that would prevent water uptake; therefore same holds true for soluble nutrients in the medium. In this work, we have shown that LHCSR3 expression can occur under osmotic stress and subsaturating light intensities, whereas it does not elicit qE. Further examination of thylakoid membrane architecture from wild-type and npq4 mutant grown under nutrient starvation revealed that LHCSR3 expression affects the interaction between the PSII core with its peripheral LHCII antenna and possibly can prevent excitation energy transfer. Thylakoid lumen acidification is essential for the expression and function of LHCSR3. Under saturating light intensities, this is achieved by the increased rate of photosynthetic electron flow coupled with proton translocation into the thylakoid lumen. Whereas, under nutrient starvation, the reports of LHCSR3 expression also showed reduced photosynthetic electron flow. Therefore, an alternative mechanism should exist for developing the proton gradient. We observed the downregulation of chloroplast (cp) ATP synthase activity and its abundance under osmotic stress, suggesting the role of (cp) ATP synthase in thylakoid lumen acidification under reduced photosynthetic electron flow. This observation is supported by the expression of LHCSR3 in (cp) ATP-synthase mutant atpF upon exposure to moderate light intensity. This study proposes that the mechanism of LHCSR3 expression and its functionality can vary with the type of photooxidizing stress.

plant biology↗

Low polyethylene glycol (PEG) concentration contributes to photoprotection in Chlamydomonas reinhardtii under highlight stress.

The highlight is one of the major problems encountered by all the autotrophs in the natural environment, as it affects the photosynthetic performance of these organisms, they were equipped themself with the diverse photoprotective mechanism. However, the drastic climate change in recent years had a more lethal effect on these organisms as it is beyond their threshold to withstand. In the past decade, scientists have unravelled many photoprotective mechanisms like qE, qZ, qT and qI (NPQ) used by autotrophs to combat highlight stress and the thirst for discovering such a new mechanism remains constant. In this regard, we studied the effect of mild osmotic stress (2%PEG) in alleviating high-light stress using Chlamydomonas (C) reinhardtii as a model system. The cells were grown in low Polyethylene glycol (PEG)-induced osmotic stress at varying light intensities; their response to these treatments had been examined via biochemical and biophysical approaches. The PEG-treated cells showed better growth and photosynthetic efficiency even at highlight than control, but their NPQ level is lesser than control, suggesting a unique or novel photoprotective mechanism is operating in PEG-treated samples. The Circular dichroism and ATG8 localization assay suggest that supercomplexes organization is not much disturbed in PEG-treated samples irrespective of light intensity. Also, the latter indicates that PEG-treated cells were healthier than the control at the highlight. This result is promising as we can improve the algal biomass under natural environmental conditions with fluctuating light intensity. As algal biomass has immense commercial importance in biofuel production, cosmetics and pharmaceutical application. This mechanism can be exploited to promote the socio-economic status of our nation. HighlightsO_LIPEG application triggers ROS accumulations, stimulating signalling cascade and overcoming highlight-induced compromise in biomass. C_LIO_LIUnder highlight, the photosynthetic pigment (chlorophyll and carotenoid) constantly increased with PEG except for C-250. Specifically, the photoprotective pigment like violaxanthin and lutein has been increased. C_LIO_LIPEG shielding stabilizes pigment-protein interaction, confirming that the supercomplex organization is in its native state. C_LIO_LIPEG keeps low ATG8 accumulation, preventing cells and enabling it to combat highlights more effectively. C_LI Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=129 SRC="FIGDIR/small/505872v1_ufig1.gif" ALT="Figure 1"> View larger version (23K): org.highwire.dtl.DTLVardef@1bef077org.highwire.dtl.DTLVardef@9d45bcorg.highwire.dtl.DTLVardef@14d7366org.highwire.dtl.DTLVardef@1d3617f_HPS_FORMAT_FIGEXP M_FIG C_FIG

plant biology↗