TY - JOUR
T1 - Characterization of epidermal bladder cells in Chenopodium quinoa
AU - Otterbach, Sophie L.
AU - Khoury, Holly
AU - Rupasinghe, Thusitha
AU - Mendis, Himasha
AU - Kwan, Kim H.
AU - Lui, Veronica
AU - Natera, Siria H.A.
AU - Klaiber, Iris
AU - Allen, Nathaniel M.
AU - Jarvis, David E.
AU - Tester, Mark
AU - Roessner, Ute
AU - Schmöckel, Sandra M.
N1 - Publisher Copyright:
© 2021 The Authors. Plant, Cell & Environment published by John Wiley & Sons Ltd.
PY - 2021/12
Y1 - 2021/12
N2 - Chenopodium quinoa (quinoa) is considered a superfood with its favourable nutrient composition and being gluten free. Quinoa has high tolerance to abiotic stresses, such as salinity, water deficit (drought) and cold. The tolerance mechanisms are yet to be elucidated. Quinoa has epidermal bladder cells (EBCs) that densely cover the shoot surface, particularly the younger parts of the plant. Here, we report on the EBC's primary and secondary metabolomes, as well as the lipidome in control conditions and in response to abiotic stresses. EBCs were isolated from plants after cold, heat, high-light, water deficit and salt treatments. We used untargeted gas chromatography–mass spectrometry (GC–MS) to analyse metabolites and untargeted and targeted liquid chromatography-MS (LC–MS) for lipids and secondary metabolite analyses. We identified 64 primary metabolites, including sugars, organic acids and amino acids, 19 secondary metabolites, including phenolic compounds, betanin and saponins and 240 lipids categorized in five groups including glycerolipids and phospholipids. We found only few changes in the metabolic composition of EBCs in response to abiotic stresses; these were metabolites related with heat, cold and high-light treatments but not salt stress. Na+ concentrations were low in EBCs with all treatments and approximately two orders of magnitude lower than K+ concentrations.
AB - Chenopodium quinoa (quinoa) is considered a superfood with its favourable nutrient composition and being gluten free. Quinoa has high tolerance to abiotic stresses, such as salinity, water deficit (drought) and cold. The tolerance mechanisms are yet to be elucidated. Quinoa has epidermal bladder cells (EBCs) that densely cover the shoot surface, particularly the younger parts of the plant. Here, we report on the EBC's primary and secondary metabolomes, as well as the lipidome in control conditions and in response to abiotic stresses. EBCs were isolated from plants after cold, heat, high-light, water deficit and salt treatments. We used untargeted gas chromatography–mass spectrometry (GC–MS) to analyse metabolites and untargeted and targeted liquid chromatography-MS (LC–MS) for lipids and secondary metabolite analyses. We identified 64 primary metabolites, including sugars, organic acids and amino acids, 19 secondary metabolites, including phenolic compounds, betanin and saponins and 240 lipids categorized in five groups including glycerolipids and phospholipids. We found only few changes in the metabolic composition of EBCs in response to abiotic stresses; these were metabolites related with heat, cold and high-light treatments but not salt stress. Na+ concentrations were low in EBCs with all treatments and approximately two orders of magnitude lower than K+ concentrations.
KW - Chenopodium quinoa
KW - EBC
KW - abiotic stress
KW - epidermal bladder cells
KW - lipidomics
KW - metabolomics
UR - http://www.scopus.com/inward/record.url?scp=85116243131&partnerID=8YFLogxK
U2 - 10.1111/pce.14181
DO - 10.1111/pce.14181
M3 - Article
SN - 0140-7791
VL - 44
SP - 3606
EP - 3622
JO - Plant, Cell and Environment
JF - Plant, Cell and Environment
IS - 12
ER -