Ectopic expression of cucumber (Cucumis sativus L.) CsTIR/AFB genes enhance salt tolerance in transgenic Arabidopsis
Auxin receptors TIR1/AFBs play an essential role in a series of signaling network cascades. These F-box proteins have also been identified to participate in different stress responses via the auxin signaling pathway in Arabidopsis . Cucumber ( Cucumis sativus L.) is one of the most important crops w...
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Veröffentlicht in: | Plant cell, tissue and organ culture tissue and organ culture, 2017-10, Vol.131 (1), p.107-118 |
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Sprache: | eng |
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Zusammenfassung: | Auxin receptors TIR1/AFBs play an essential role in a series of signaling network cascades. These F-box proteins have also been identified to participate in different stress responses via the auxin signaling pathway in
Arabidopsis
. Cucumber (
Cucumis sativus
L.) is one of the most important crops worldwide, which is also a model plant for research. In the study herein, two cucumber homologous auxin receptor F-box genes
CsTIR
and
CsAFB
were cloned and studied for the first time. The deduced amino acid sequences showed a 78% identity between CsTIR and AtTIR1 and 76% between CsAFB and AtAFB2. All these proteins share similar characteristics of an F-box domain near the N-terminus, and several Leucine-rich repeat regions in the middle.
Arabidopsis
plants ectopically overexpressing
CsTIR
or
CsAFB
were obtained and verified. Shorter primary roots and more lateral roots were found in these transgenic lines with auxin signaling amplified. Results showed that expression of
CsTIR
/
AFB
genes in
Arabidopsis
could lead to higher seeds germination rates and plant survival rates than wild-type under salt stress. The enhanced salt tolerance in transgenic plants is probably caused by maintaining root growth and controlling water loss in seedlings, and by stabilizing life-sustaining substances as well as accumulating endogenous osmoregulation substances. We proposed that CsTIR/AFB-involved auxin signal regulation might trigger auxin mediated stress adaptation response and enhance the plant salt stress resistance by osmoregulation. |
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ISSN: | 0167-6857 1573-5044 |
DOI: | 10.1007/s11240-017-1267-7 |