35 research outputs found
Physiological and cell ultrastructure disturbances in wheat seedlings generated by Chenopodium murale hairy root exudate.
Chenopodium murale L. is an invasive weed species significantly interfering with wheat crop. However, the complete nature of its allelopathic influence on crops is not yet fully understood. In the present study, the focus is made on establishing the relation between plant morphophysiological changes and oxidative stress, induced by allelopathic extract. Phytotoxic medium of C. murale hairy root clone R5 reduced the germination rate (24% less than control value) of wheat cv. Nataša seeds, as well as seedling growth, diminishing shoot and root length significantly, decreased total chlorophyll content, and induced abnormal root gravitropism. The R5 treatment caused cellular structural abnormalities, reflecting on the root and leaf cell shape and organization. These abnormalities mostly included the increased number of mitochondria and reorganization of the vacuolar compartment, changes in nucleus shape, and chloroplast organization and distribution. The most significant structural changes were observed in cell wall in the form of amoeboid protrusions and folds leading to its irregular shape. These structural alterations were accompanied by an oxidative stress in tissues of treated wheat seedlings, reflected as increased level of H2O2 and other ROS molecules, an increase of radical scavenging capacity and total phenolic content. Accordingly, the retardation of wheat seedling growth by C. murale allelochemicals may represent a consequence of complex activity involving both cell structure alteration and physiological processes.This is a post-peer-review, pre-copyedit version of an article published in Protoplasma. The final authenticated version is available online at: [http://dx.doi.org/10.1007/s00709-018-1250-0
Ancient DNA from the skeletons of Roopkund Lake reveals Mediterranean migrants in India
Situated at over 5,000 meters above sea level in the Himalayan Mountains, Roopkund Lake is home to the scattered skeletal remains of several hundred individuals of unknown origin. We report genome-wide ancient DNA for 38 skeletons from Roopkund Lake, and find that they cluster into three distinct groups. A group of 23 individuals have ancestry that falls within the range of variation of present-day South Asians. A further 14 have ancestry typical of the eastern Mediterranean. We also identify one individual with Southeast Asian-related ancestry. Radiocarbon dating indicates that these remains were not deposited simultaneously. Instead, all of the individuals with South Asian-related ancestry date to ~800 CE (but with evidence of being deposited in more than one event), while all other individuals date to ~1800 CE. These differences are also reflected in stable isotope measurements, which reveal a distinct dietary profile for the two main groups
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Not AvailableCowpea (Vigna unguiculata (L.) Walp.) is one such legume that can facilitate
achieving sustainable nutrition and climate change goals. Assessing nutritional
traits conventionally can be laborious and time-consuming. NIRS is a
technique used to rapidly determine biochemical parameters for large
germplasm. NIRS prediction models were developed to assess protein, starch,
TDF, phenols, and phytic acid based on MPLS regression. Higher RSQexternal
values such as 0.903, 0.997, 0.901, 0.706, and 0.955 were obtained for protein,
starch, TDF, phenols, and phytic acid respectively. Models for all the traits
displayed RPD values of >2.5 except phenols and low SEP indicating the
excellent prediction of models. For all the traits worked, p-value ≥ 0.05
implied the accuracy and reliability score >0.8 (except phenol) ensured
the applicability of the models. These prediction models will facilitate high
throughput screening of large cowpea germplasm in a non-destructive way
and the selection of desirable chemotypes in any genetic background with
huge application in cowpea crop improvement programs across the worldThis study was supported by funding from Department of Biotechnology, Government of India under project on minor pulses (No. BT/Ag/Network/Pulse-I /2017-18, date:187 24th Oct 2018). In-house project on Biochemical evaluation of Field and vegetable crops. DBT funded and an international collaborative project Consumption of Resilient Orphan Crops & Products for Healthier Diets (CROPS4HD) which is co funded by the Swiss Agency for Development and Cooperation, Global Programme Food Security (SDC GPFS) and executed in India through FiBL (Research Institute of Organic Agriculture), and Alliance of Bioversity and CIAT with ICAR-NBPGR as a lead partner. Junior Research Fellowship granted to SP by ICAR Research Grant No. 2(9)/2018-HRD dated 30th October 2018