(Z)-3-Hexen-1-ol accumulation enhances hyperosmotic stress tolerance in Camellia sinensis
Volatile components in fresh leaves are involved in the regulation of many stress responses, such as insect damage, fungal infection and high temperature. However, the potential function of volatile components in hyperosmotic response is largely unknown. Here, we found that 7-day hyperosmotic treatm...
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Veröffentlicht in: | Plant molecular biology 2020-06, Vol.103 (3), p.287-302 |
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Zusammenfassung: | Volatile components in fresh leaves are involved in the regulation of many stress responses, such as insect damage, fungal infection and high temperature. However, the potential function of volatile components in hyperosmotic response is largely unknown. Here, we found that 7-day hyperosmotic treatment specifically led to the accumulation of (
Z
)-3-hexen-1-ol, (
E
)-2-hexenal and methyl salicylate. Transcriptome and qRT-PCR analyses suggested the activation of linolenic acid degradation and methyl salicylate processes. Importantly, exogenous (
Z
)-3-hexen-1-ol pretreatment dramatically enhanced the hyperosmotic stress tolerance of tea plants and decreased stomatal conductance, whereas (
E
)-2-hexenal and methyl salicylate pretreatments did not exhibit such a function. qRT-PCR analysis revealed that exogenous ABA induced the expressions of related enzyme genes, and (
Z
)-3-hexen-1-ol could up-regulate the expressions of many
DREB
and
RD
genes. Moreover, exogenous (
Z
)-3-hexen-1-ol tremendously induced the expressions of specific
LOX
and
ADH
genes within 24 h. Taken together, hyperosmotic stress induced (
Z
)-3-hexen-1-ol accumulation in tea plant via the activation of most
LOX
,
HPL
and
ADH
genes, while (
Z
)-3-hexen-1-ol could dramatically enhance the hyperosmotic stress tolerance via the decrease of stomatal conductance and MDA, accumulation of ABA and proline, activation of
DREB
and
RD
gene expressions, and probably positive feedback regulation of
LOX
s and
ADH
s.
Key message
Hyperosmotic stress induced (
Z
)-3-hexen-1-ol accumulation in
Camellia sinensis
via the up-regulation of most
LOX
,
HPL
and
ADH
genes, while (
Z
)-3-hexen-1-ol could dramatically enhance the hyperosmotic stress tolerance via the decrease of stomatal conductance, accumulation of proline, activation of
DREB
and
RD
gene expressions, and probably positive feedback regulation of
LOX
s and
ADH
s. |
---|---|
ISSN: | 0167-4412 1573-5028 |
DOI: | 10.1007/s11103-020-00992-2 |