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24 items, grouped by Health and Pathology (view ungrouped items)

animal and human health (3)   
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Hypoxia and bicarbonate could limit the expression of iron acquisition genes in Strategy I plants by affecting ethylene synthesis and signaling in different ways
Physiologia plantarum

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Insulin-status-dependent modulation of FoF₁-ATPase activity in rat liver mitochondria
Lipids

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Yoghurt fermented by Lactobacillus delbrueckii subsp. bulgaricus H+-ATPase-defective mutants exhibits enhanced viability of Bifidobacterium breve during storage
International journal of food microbiology

pathological processes and conditions (5)   
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Nitric oxide functions as a signal in salt resistance in the calluses from two ecotypes of reed
Plant physiology

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Differential expression of vacuolar H+-ATPase subunit c genes in tissues active in membrane trafficking and their roles in plant growth as revealed by RNAi
Plant physiology

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Salt Stress in Thellungiella halophila Activates Na⁺ Transport Mechanisms Required for Salinity Tolerance
Plant physiology

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Nitric oxide enhances salt tolerance in maize seedlings through increasing activities of proton-pump and Na+/H+ antiport in the tonoplast
Planta

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Modification of plasma membrane and vacuolar H+-ATPases in response to NaCL and ABA
Journal of plant physiology

plant health (7)   
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Hypoxia and bicarbonate could limit the expression of iron acquisition genes in Strategy I plants by affecting ethylene synthesis and signaling in different ways
Physiologia plantarum

(Click to View)
Nitric oxide functions as a signal in salt resistance in the calluses from two ecotypes of reed
Plant physiology

(Click to View)
Differential expression of vacuolar H+-ATPase subunit c genes in tissues active in membrane trafficking and their roles in plant growth as revealed by RNAi
Plant physiology

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Citrate Secretion Coupled with the Modulation of Soybean Root Tip under Aluminum Stress. Up-Regulation of Transcription, Translation, and Threonine-Oriented Phosphorylation of Plasma Membrane H⁺-ATPase. [Erratum: 2005 Sept., v. 139, no. 1, p. 557.]
Plant physiology

(Click to View)
Salt Stress in Thellungiella halophila Activates Na⁺ Transport Mechanisms Required for Salinity Tolerance
Plant physiology

(Click to View)
Nitric oxide enhances salt tolerance in maize seedlings through increasing activities of proton-pump and Na+/H+ antiport in the tonoplast
Planta

(Click to View)
Modification of plasma membrane and vacuolar H+-ATPases in response to NaCL and ABA
Journal of plant physiology