scholarly journals Comprehensive in silico Characterization of Universal Stress Proteins in Rice (Oryza sativa L.) With Insight Into Their Stress-Specific Transcriptional Modulation

2021 ◽  
Vol 12 ◽  
Author(s):  
Shatil Arabia ◽  
Asif Ahmed Sami ◽  
Saima Akhter ◽  
Rakha Hari Sarker ◽  
Tahmina Islam

In a world where climate change is real and its consequences are unprecedented, understanding of the plant adaptive capacity and native stress-responsive machinery is crucial. In recent years, universal stress proteins (USPs) have received much attention in the field of plant science due to their stress-specific transcriptional regulation. This study focuses on the extensive characterization of the USP gene family members in the monocot crop rice (Oryza sativa L. var. japonica). Here, we report a total of 44 USP genes in the rice genome. In silico characterization of these genes showed that domain architecture played a major role in the functional diversification of the USP gene family which holds for all plant USPs. On top of that, a higher conservation of OsUSP members has been exhibited with a monocot genome (Zea mays L.) as compared to a dicot genome (Arabidopsis thaliana L.). Expression profiling of the identified genes led to the discovery of multiple OsUSP genes that showed pronounced transcript alteration under various abiotic stress conditions, indicating their potential role as multi-functional stress-specific modules. Furthermore, expression validation of OsUSP genes using qRT-PCR provided a strong evidence for the utility OsUSP genes in building multi-stress tolerant plants. Altogether, this study provides leads to suitable USP candidates that could be targeted for plant breeding and genetic engineering experiments to develop stress resilient crop species.

Genome ◽  
1996 ◽  
Vol 39 (2) ◽  
pp. 307-313 ◽  
Author(s):  
Z. X. Wang ◽  
N. Iwata

Four rice (Oryza sativa L.) deficiencies, involving chromosomes 4 (Df4), 8 (Df8), and 11 (Df11-1, Df11-2), were studied. The deficiencies were induced by means of the pseudodominance technique, i.e., strains carrying one or more recessive marker genes were fertilized with irradiated pollen of a strain carrying normal alleles at corresponding loci. No characteristic morphological features were found in the deficiencies, as compared with the normal F1 plants in the progeny. The deficiencies showed high or complete seed sterility. Genetic and cytological studies indicated deficiencies in chromosomes 4, 8, and 11. The fragment chromosomes in Df4, Df8, and Df11-2 were short, possibly being derived from the heterochromatin regions of the chromosomes, including kinetochores, and the fragment chromosome in Df11-1 was long, with about 75% of the long arm missing. At metaphase I, Df4, Df8, and Df11-2 showed only the chromosome configuration of 11 II (bivalents) + 2I (univalents), and Df11-1 only that of 12 II. It seems that the short fragments tend to stay as univalents in meiosis, probably because of their shortness. On the other hand, long fragments act as normal chromosomes and associate with their homologues. The deficiencies were not transmitted to the progenies, although only a few offspring were examined. By using the induced deficiencies Df4 and Df11-1, two morphological marker genes, lg (liguleless) and la (lazy growth habit), were located on the long arm of chromosomes 4 and 11, respectively. This is the first report in rice utilizing induced chromosome deficiencies to locate a gene on a specific arm of a chromosome. The use of induced deficiencies for studying the structure of the rice genome is discussed. Key words : rice, chromosome, deficiencies, cytology, transmission.


2016 ◽  
Vol 64 (2) ◽  
pp. 405-418 ◽  
Author(s):  
Joong Hyoun Chin ◽  
Yoo-Jin Lee ◽  
Wenzhu Jiang ◽  
Hee-Jong Koh ◽  
Michael J. Thomson

Plant Science ◽  
2003 ◽  
Vol 165 (4) ◽  
pp. 895-903 ◽  
Author(s):  
Bakul Rani Debi ◽  
Junko Mushika ◽  
Shin Taketa ◽  
Akio Miyao ◽  
Hirohiko Hirochika ◽  
...  

BMB Reports ◽  
2006 ◽  
Vol 39 (5) ◽  
pp. 595-606 ◽  
Author(s):  
Gongke Zhou ◽  
Yufeng Xu ◽  
Ji Li ◽  
Lingyan Yang ◽  
Jin-Yuan Liu

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