AcCHI, a Chitinase from Atriplex canescens, Confers Enhanced Tolerance to Osmotic and Salt Stress in Glycine max by Reinforcing Antioxidant and Osmotic Responses

Soybean is the most crucial oilseed and plant-protein crop worldwide, yet its yield is frequently threatened by salinity and drought stress. In this study, the chitinase gene AcCHI was cloned from the highly stress-tolerant plant Atriplex canescens and heterologously overexpressed in soybean to generate stable T3 homozygous transgenic lines. Wild-type and transgenic plants were subjected to water-withholding drought treatment, 20% PEG6000-induced osmotic stress, and 150 mM NaCl salt stress. After drought treatment, the survival rate of transgenic lines reached 2.66–2.69 times relative to wild-type plants. Under osmotic and salt stress conditions, AcCHI-overexpressing lines exhibited better-maintained photosynthetic performance, higher proline accumulation, and lower malondialdehyde (MDA) levels compared with wild-type controls. Enhanced antioxidant enzyme activities and weakened histochemical ROS staining were also observed in transgenic leaves. Stress-responsive genes associated with DREB, RD22, and SOS pathways showed stronger stress-inducible expression in transgenic plants. Our results show that heterologous AcCHI expression is associated with improved osmotic- and salt-stress tolerance in soybean seedlings under laboratory conditions. This study provides new observational insights into chitinase-linked abiotic-stress responses and offers candidate genetic resources for breeding stress-tolerant soybean varieties.

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Journal
Plants
Published
2026-09-25
DOI
https://doi.org/10.3390/plants15192939
Primary Topic
Plant Stress Responses and Tolerance
Type
article
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article

AcCHI, a Chitinase from Atriplex canescens, Confers Enhanced Tolerance to Osmotic and Salt Stress in Glycine max by Reinforcing Antioxidant and Osmotic Responses

Qiang Lv, Jianan Sun, Bo Li, Jiaming Zhang et al.
Plants
Plant Stress Responses and Tolerance
article

AcCHI, a Chitinase from Atriplex canescens, Confers Enhanced Tolerance to Osmotic and Salt Stress in Glycine max by Reinforcing Antioxidant and Osmotic Responses

Qiang Lv, Jianan Sun, Bo Li, Jiaming Zhang, Yibo Zhou, Jiyang Li, Shishu Luo, Mingmin Zhao
article en

Abstract

Soybean is the most crucial oilseed and plant-protein crop worldwide, yet its yield is frequently threatened by salinity and drought stress. In this study, the chitinase gene AcCHI was cloned from the highly stress-tolerant plant Atriplex canescens and heterologously overexpressed in soybean to generate stable T3 homozygous transgenic lines. Wild-type and transgenic plants were subjected to water-withholding drought treatment, 20% PEG6000-induced osmotic stress, and 150 mM NaCl salt stress. After drought treatment, the survival rate of transgenic lines reached 2.66–2.69 times relative to wild-type plants. Under osmotic and salt stress conditions, AcCHI-overexpressing lines exhibited better-maintained photosynthetic performance, higher proline accumulation, and lower malondialdehyde (MDA) levels compared with wild-type controls. Enhanced antioxidant enzyme activities and weakened histochemical ROS staining were also observed in transgenic leaves. Stress-responsive genes associated with DREB, RD22, and SOS pathways showed stronger stress-inducible expression in transgenic plants. Our results show that heterologous AcCHI expression is associated with improved osmotic- and salt-stress tolerance in soybean seedlings under laboratory conditions. This study provides new observational insights into chitinase-linked abiotic-stress responses and offers candidate genetic resources for breeding stress-tolerant soybean varieties.

PlantsVol. 15(19)
Inner Mongolia Agricultural University (CN), Jilin Normal University (CN)
Clean water and sanitation
Openalex Percentile: Top 13%
Plant Stress Responses and Tolerance
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AcCHI, a Chitinase from Atriplex canescens, Confers Enhanced Tolerance to Osmotic and Salt Stress in Glycine max by Reinforcing Antioxidant and Osmotic Responses — Qiang Lv, Jianan Sun, et al. · Plants (2026) | TGRS Research Map | TGRS