Chenopodium quinoa uses epidermal bladder cells (EBCs) to sequester excess salt. Each EBC complex consists of a leaf epidermal cell, a stalk cell, and the bladder. Under salt stress, sodium (Na+), chloride (Cl−), potassium (K+) and various metabolites are shuttled from the leaf lamina to the bladders. Stalk cells operate as both a selectivity filter and a flux controller. In line with the nature of a transfer cell, advanced transmission electron tomography, electrophysiology, and fluorescent tracer flux studies revealed the stalk cell’s polar organization and bladder-directed solute flow. RNA sequencing and cluster analysis revealed the gene expression profiles of the stalk cells. Among the stalk cell enriched genes, ion channels and carriers as well as sugar transporters were most pronounced. Based on their electrophysiological fingerprint and thermodynamic considerations, a model for stalk cell transcellular transport was derived.

Stalk cell polar ion transport provide for bladder-based salinity tolerance in Chenopodium quinoa / Bazihizina N.; Bohm J.; Messerer M.; Stigloher C.; Muller H.M.; Cuin T.A.; Maierhofer T.; Cabot J.; Mayer K.F.X.; Fella C.; Huang S.; Al-Rasheid K.A.S.; Alquraishi S.; Breadmore M.; Mancuso S.; Shabala S.; Ache P.; Zhang H.; Zhu J.-K.; Hedrich R.; Scherzer S.. - In: NEW PHYTOLOGIST. - ISSN 0028-646X. - ELETTRONICO. - 235:(2022), pp. 1822-1835. [10.1111/nph.18205]

Stalk cell polar ion transport provide for bladder-based salinity tolerance in Chenopodium quinoa

Bazihizina N.;Mancuso S.
Membro del Collaboration Group
;
Zhang H.;
2022

Abstract

Chenopodium quinoa uses epidermal bladder cells (EBCs) to sequester excess salt. Each EBC complex consists of a leaf epidermal cell, a stalk cell, and the bladder. Under salt stress, sodium (Na+), chloride (Cl−), potassium (K+) and various metabolites are shuttled from the leaf lamina to the bladders. Stalk cells operate as both a selectivity filter and a flux controller. In line with the nature of a transfer cell, advanced transmission electron tomography, electrophysiology, and fluorescent tracer flux studies revealed the stalk cell’s polar organization and bladder-directed solute flow. RNA sequencing and cluster analysis revealed the gene expression profiles of the stalk cells. Among the stalk cell enriched genes, ion channels and carriers as well as sugar transporters were most pronounced. Based on their electrophysiological fingerprint and thermodynamic considerations, a model for stalk cell transcellular transport was derived.
2022
235
1822
1835
Bazihizina N.; Bohm J.; Messerer M.; Stigloher C.; Muller H.M.; Cuin T.A.; Maierhofer T.; Cabot J.; Mayer K.F.X.; Fella C.; Huang S.; Al-Rasheid K.A.S...espandi
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Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/1304648
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