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Genome-wide identification and salt stress-responsive expression profiling of Aux/IAA gene family in Asparagus officinalis
by
Ying, Jiali
, Cai, Yunfei
, Ye, Youju
, Li, Lebin
, Qian, Renjuan
, Wen, Shuangshuang
in
Abiotic stress
/ Abscisic acid
/ Agriculture
/ amino acid motifs
/ Asparagus
/ Asparagus officinalis
/ Asparagus Plant - genetics
/ Asparagus Plant - metabolism
/ Asparagus Plant - physiology
/ Aux/IAA gene family
/ auxins
/ Biomedical and Life Sciences
/ Botanical research
/ Cellular stress response
/ domain
/ Drought
/ Expression patterns
/ family
/ Gene duplication
/ Gene Expression Profiling
/ Gene Expression Regulation, Plant
/ Genes
/ Genes, Plant
/ Genetic aspects
/ Genome, Plant
/ Genome-wide analysis
/ Genome-Wide Association Study
/ Genomes
/ Genomic analysis
/ genomics
/ Indoleacetic Acids - metabolism
/ Life Sciences
/ Localization
/ Molecular modelling
/ Multigene Family
/ Phylogenetics
/ Physiological aspects
/ Plant genetics
/ Plant growth
/ Plant Growth Regulators - genetics
/ Plant Growth Regulators - metabolism
/ Plant hormones
/ Plant Proteins - genetics
/ Plant Proteins - metabolism
/ Plant Sciences
/ Protein composition
/ Proteins
/ Regulatory mechanisms (biology)
/ Regulatory sequences
/ Salinity tolerance
/ Salt
/ Salt stress
/ Salt stress (Botany)
/ Salt Stress - genetics
/ Salts
/ Signal transduction
/ species
/ The role of phytohormones in plant growth and development
/ Tree Biology
2025
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Genome-wide identification and salt stress-responsive expression profiling of Aux/IAA gene family in Asparagus officinalis
by
Ying, Jiali
, Cai, Yunfei
, Ye, Youju
, Li, Lebin
, Qian, Renjuan
, Wen, Shuangshuang
in
Abiotic stress
/ Abscisic acid
/ Agriculture
/ amino acid motifs
/ Asparagus
/ Asparagus officinalis
/ Asparagus Plant - genetics
/ Asparagus Plant - metabolism
/ Asparagus Plant - physiology
/ Aux/IAA gene family
/ auxins
/ Biomedical and Life Sciences
/ Botanical research
/ Cellular stress response
/ domain
/ Drought
/ Expression patterns
/ family
/ Gene duplication
/ Gene Expression Profiling
/ Gene Expression Regulation, Plant
/ Genes
/ Genes, Plant
/ Genetic aspects
/ Genome, Plant
/ Genome-wide analysis
/ Genome-Wide Association Study
/ Genomes
/ Genomic analysis
/ genomics
/ Indoleacetic Acids - metabolism
/ Life Sciences
/ Localization
/ Molecular modelling
/ Multigene Family
/ Phylogenetics
/ Physiological aspects
/ Plant genetics
/ Plant growth
/ Plant Growth Regulators - genetics
/ Plant Growth Regulators - metabolism
/ Plant hormones
/ Plant Proteins - genetics
/ Plant Proteins - metabolism
/ Plant Sciences
/ Protein composition
/ Proteins
/ Regulatory mechanisms (biology)
/ Regulatory sequences
/ Salinity tolerance
/ Salt
/ Salt stress
/ Salt stress (Botany)
/ Salt Stress - genetics
/ Salts
/ Signal transduction
/ species
/ The role of phytohormones in plant growth and development
/ Tree Biology
2025
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Genome-wide identification and salt stress-responsive expression profiling of Aux/IAA gene family in Asparagus officinalis
by
Ying, Jiali
, Cai, Yunfei
, Ye, Youju
, Li, Lebin
, Qian, Renjuan
, Wen, Shuangshuang
in
Abiotic stress
/ Abscisic acid
/ Agriculture
/ amino acid motifs
/ Asparagus
/ Asparagus officinalis
/ Asparagus Plant - genetics
/ Asparagus Plant - metabolism
/ Asparagus Plant - physiology
/ Aux/IAA gene family
/ auxins
/ Biomedical and Life Sciences
/ Botanical research
/ Cellular stress response
/ domain
/ Drought
/ Expression patterns
/ family
/ Gene duplication
/ Gene Expression Profiling
/ Gene Expression Regulation, Plant
/ Genes
/ Genes, Plant
/ Genetic aspects
/ Genome, Plant
/ Genome-wide analysis
/ Genome-Wide Association Study
/ Genomes
/ Genomic analysis
/ genomics
/ Indoleacetic Acids - metabolism
/ Life Sciences
/ Localization
/ Molecular modelling
/ Multigene Family
/ Phylogenetics
/ Physiological aspects
/ Plant genetics
/ Plant growth
/ Plant Growth Regulators - genetics
/ Plant Growth Regulators - metabolism
/ Plant hormones
/ Plant Proteins - genetics
/ Plant Proteins - metabolism
/ Plant Sciences
/ Protein composition
/ Proteins
/ Regulatory mechanisms (biology)
/ Regulatory sequences
/ Salinity tolerance
/ Salt
/ Salt stress
/ Salt stress (Botany)
/ Salt Stress - genetics
/ Salts
/ Signal transduction
/ species
/ The role of phytohormones in plant growth and development
/ Tree Biology
2025
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Genome-wide identification and salt stress-responsive expression profiling of Aux/IAA gene family in Asparagus officinalis
Journal Article
Genome-wide identification and salt stress-responsive expression profiling of Aux/IAA gene family in Asparagus officinalis
2025
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Overview
Background
The
Aux/IAA
gene family encodes proteins that are central to auxin signaling and plant growth regulation. While
Asparagus officinalis
is a globally cultivated crop valued for its edible shoots, medicinal uses, and economic significance, the specific regulatory mechanisms and stress-responsive functions of
Aux/IAA
genes in this species remain largely uncharacterized. Previous studies have demonstrated
Aux/IAA
involvement in abiotic stress responses, but their roles in
A. officinalis
have not been systematically investigated. This study fills this gap by identifying candidate
Aux/IAA
genes in
A. officinalis
and characterizing their expression dynamics under salt stress, providing insights into their potential contributions to stress resilience.
Results
A comprehensive genome-wide analysis was conducted, revealing 17
Aux/IAA
genes in
A. officinalis
. The results revealed that the AoIAA proteins featured a conserved Aux/IAA domain while demonstrating variability in their protein motif composition. Employing comparative genomics and evolutionary analyses, we classified the
Aux/IAA
genes into two major groups. Gene duplication analysis further identified two pairs of WGD/segmental duplication genes. The study of
cis
-regulatory elements in
AoIAA
gene promoters identified links to phytohormone signaling and abiotic stress responses. Additionally, the expression patterns of
AoIAAs
in
A. officinalis
differed among various tissues. The
AoIAAs
responded differently to salt treatment, notably with
AoIAA1
,
AoIAA10
, and
AoIAA12
expression increasing alongside higher salt concentrations, highlighting their role in salt stress adaptation.
Conclusion
This study systematically characterized the
Aux/IAA
gene family in
A. officinalis
, highlighting their diversity and revealing structural and regulatory features. The findings provide a foundational resource for elucidating the biological functions and molecular mechanisms underlying
Aux/IAA
-mediated responses to salt stress and growth regulation in this species.
Publisher
BioMed Central,BioMed Central Ltd,Springer Nature B.V,BMC
Subject
/ Asparagus Plant - metabolism
/ Asparagus Plant - physiology
/ auxins
/ Biomedical and Life Sciences
/ domain
/ Drought
/ family
/ Gene Expression Regulation, Plant
/ Genes
/ Genome-Wide Association Study
/ Genomes
/ genomics
/ Indoleacetic Acids - metabolism
/ Plant Growth Regulators - genetics
/ Plant Growth Regulators - metabolism
/ Proteins
/ Regulatory mechanisms (biology)
/ Salt
/ Salts
/ species
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