bioRxiv Science⌕ Search

Biology subjects

Panigrahi, K. C.

Publications and source records attributed to Panigrahi, K. C..

2 recordsLinked to original sources

Carbon nanoparticle exposure strengthens water-relation parameters by stimulating abscisic acid pathway and aquaporins genes in rice

Mechanism of action and molecular basis of positive growth effects including yield increase due to carbon nanoparticle (CNP) treatment in rice plants is dissected here. CNP at 500 -750 {micro}g/mL were found to be the optimum dosages showing best seedling growth. CNP treatment resulted increase in stomata size, gaseous exchange and water use efficiency along with decrease in stomata frequency, relative humidity, internal CO2 concentration. CNP treatment exerted cold tolerance in seedlings and water stress tolerance in reproductive stage. CNP-coupled with water uptake was found to be endocytosis mediated, although CNP uptake was not affected by endocytosis inhibitor application in roots. Genomic analysis resulted major involvement of ABA pathway and stomata size and frequency genes in Arabidopsis and rice. Elevated endogenous ABA in rice seedlings and flag leaves along with increased expression of ABA biosynthetic genes in Arabidopsis and rice AtNCED3, AtNCED6, OsNCED1 confirmed increased ABA synthesis. Negative regulators of ABA pathway, OsSNRK2 down-regulation and up-regulation of stomagen (OsEPFL9) reconfirmed ABAs involvement. CNP treatment resulted water stress tolerance by maintaining lower stomatal conductance, transpiration rate and higher relative water content. Increased ABA (OsSNRK1, OsSNRK2) and aquaporin (OsPIP2-5) genes expressions could explain the better water stress tolerance in rice plants treated with CNP. Altogether, due to thermomorphogenesis, down-regulation of Phytochrome B resulted altered the ABA pathway and stomatal distribution with size. These changes resulted improved water relation parameters and WUE showing improvement in yield. Detailed mechanism of action of CNP in abiotic stress tolerance can be exploited in in nano-agriculture.

plant biology↗

Light and temperature-dependent developmental role of Auxin Binding Protein 1 (ABP1) in Arabidopsis thaliana

Auxin Binding Protein 1 (ABP1) is a small glycoprotein of about 22 kDa that has long been debated as the auxin receptor, and has been put into question for its unclear functions. Despite its conservancy during land plant evolution, its precise role in plant development is still elusive. Historically, it has been implicated in various rapid responses such as membrane polarization, calcium fluxes, TMK1-based cell-surface signalling, auxin canalization, etc. A relatively recent observation questioning the role of ABP1 in plant development led us to explore its probable functions if any. In the current study, we reinvestigated the plausible function of ABP1 using its CRISPR-based loss-of-function mutants, namely abp1-C1 and abp1-C2. Here we show that, ABP1 acts as a positive regulator for primary root elongation under red and secondary root elongation under blue light in seedlings at 22 {degrees}C. Under red light at 18 {degrees}C, it has a negative effect on hypocotyl growth inhibition. Furthermore, it is involved in flowering time control at 18 {degrees}C irrespective of the photoperiod. We show that the transcript levels of Phytochrome B (phyB) and GIGANTEA (GI) are altered in the mutants of ABP1 under red light and low temperature (18 {degrees}C) regimes. Further, ABP1 show a pronounced role in tolerance to dehydration induced due to low temperature (18 {degrees}C), which correlates with an increase in endogenous abscisic acid (ABA), salicylic acid (SA), and a decrease in jasmonic acid (JA) content in leaves. The functional roles of ABP1 under red light, low temperature and dehydration tolerance in Arabidopsis thaliana once again frames it to be an important regulator under adverse and varied conditions that the plant can experience, and thus opened up new avenues for further studies.

plant biology↗