Published 2005 | Version v1
Book

Unwinding after high salinity stress: Pea DNA helicase 45 over- expression in tobacco confers high salinity tolerance without affecting yield (abstract)

Creators

  • 1. International Centre for Genetic Engineering and Biotechnology, New Dehli (India)

Description

Soil salinity is an increasing threat for agriculture and is a major factor in reducing plant productivity; therefore, it is necessary to obtain salinity-tolerant varieties. A typical characteristic of soil salinity is the induction of multiple stress- inducible genes. Some of the genes encoding osmolytes, ion channels or enzymes are able to confer salinity-tolerant phenotypes when transferred to sensitive plants. As salinity stress affects the cellular gene-expression machinery, it is evident that molecules involved in nucleic acid processing including helicases, are likely to be affected as well. DNA helicases unwind duplex DNA and are involved in replication, repair, recombination and transcription while RNA helicases unfold the secondary structures in RNA and are involved in transcription, ribosome biogenesis and translation initiation. We have earlier reported the isolation of a pea DNA helicase 45 (PDH45) that exhibits striking homology with eIF-4A (Plant J. 24:219-230,2000). Here we report that PDH45 mRNA is induced in pea seedlings in response to high salt and its over- expression driven by a constitutive CAMV-355-promoter in tobacco plants confers salinity tolerance, thus suggesting a new pathway for manipulating stress tolerance in crop plants. The T0 transgenic plants showed high-levels of PDH45 protein in normal and stress conditions, as compared to wild type (WT) plants. The T0 transgenics also showed tolerance to high salinity as tested by a leaf disc senescence assay. The T1 transgenics were able to grow to maturity and set normal viable seeds under continuous salinity stress, without any reduction in plant yield, in terms of seed weight. Measurement of Na/sup +/ ions in different parts of the plant showed higher accumulation in the old leaves and negligible in seeds of T1 transgenic lines as compared with the WT plants. The possible mechanism of salinity tolerance will be discussed. Over-expression of PDH45 provides a possible example of the exploitation of DNA/RNA unwinding pathways for engineering salinity tolerance without affecting yield in crop plants. The helicase was also upregulated in response to other stresses like dehydration and low temperatures. In addition, future generations of the transgenic tobacco plants maintained the exogenous gene and continued to resist high salt stress, suggesting that stress tolerance can be manipulated in crop plants. (author)

Part of:
International Conference on Biotechnology for Salinity and Drought Tolerance in Plants

Additional details

Publishing Information

Publisher
National Commission on Biotechnology, Islamabad, Pakistan
Imprint Place
Islamabad (Pakistan)
Imprint Title
International Conference on Biotechnology for Salinity and Drought Tolerance in Plants
Imprint Pagination
211 p.
Journal Page Range
p. 78

Conference

Title
International Conference on Biotechnology for Salinity and Drought Tolerance in Plants
Dates
28-31 Mar 2005
Place
Islamabad (Pakistan)

INIS

Country of Publication
Pakistan
Country of Input or Organization
Pakistan
INIS RN
36058262
Subject category
S60: APPLIED LIFE SCIENCES;
Resource subtype / Literary indicator
Conference
Descriptors DEI
DNA HELICASES; NICOTIANA; PLANT GROWTH; SALINITY; SOILS; TOBACCO; TOLERANCE
Descriptors DEC
ENZYMES; GROWTH; MAGNOLIOPHYTA; MAGNOLIOPSIDA; ORGANIC COMPOUNDS; PLANTS; PROTEINS

Optional Information