Background: Intracellular magnesium is abundant, highly regulated and plays an important role in biochemical functions. Despite the extensive evidence for unique mammalian Mg²⁺ transporters, few proteins have been biochemically identified to date that fulfill this role. We have shown that epithelial magnesium conservation is controlled, in part, by differential gene expression leading to regulation of Mg²⁺ transport. We used this knowledge to identify a novel gene that is regulated by magnesium. Results: Oligonucleotide microarray analysis was used to identify a novel human gene that encodes a protein involved with Mg²⁺-evoked transport. We have designated th...
Magnesium (Mg2+) is indispensable for several vital functions, such as neurotransmission, cardiac co...
AbstractMagnesium (Mg2+) transport across membranes plays an essential role in cellular growth and s...
AbstractThe magnesium ion (Mg2+) is the most abundant divalent cation within cells. In man, Mg2+-def...
Contains fulltext : 193490.pdf (publisher's version ) (Closed access)Body Mg(2+) b...
Abstract Magnesium (Mg2+) is the most prevalent divalent intracellular cation. As co-factor in many ...
Item does not contain fulltextPURPOSE OF REVIEW: This review aims to describe the recent findings co...
Contains fulltext : 172729.pdf (publisher's version ) (Open Access)Regulation of t...
The molecular biology of mammalian magnesium transport-ers and their interrelations in cellular magn...
Item does not contain fulltextPatients with hypomagnesemia suffer from a wide range of symptoms incl...
Magnesium (Mg21) is the fourth most abundant cation in the body. Thus, magnesium homeostasis needs t...
Magnesium is a divalent cation that is essential for human growth and wellbeing. It is critical in ...
Magnesium (Mg21) is the fourth most abundant cation in the body. Thus, magnesium homeostasis needs t...
BACKGROUND: Magnesium (Mg(2+)) is an essential electrolyte with important physiological functions. C...
Although magnesium is the dominant divalent intracellular cation and is required for the function of...
The kidney plays a key role in the maintenance of Mg(2+) homeostasis. Specifically, the distal convo...
Magnesium (Mg2+) is indispensable for several vital functions, such as neurotransmission, cardiac co...
AbstractMagnesium (Mg2+) transport across membranes plays an essential role in cellular growth and s...
AbstractThe magnesium ion (Mg2+) is the most abundant divalent cation within cells. In man, Mg2+-def...
Contains fulltext : 193490.pdf (publisher's version ) (Closed access)Body Mg(2+) b...
Abstract Magnesium (Mg2+) is the most prevalent divalent intracellular cation. As co-factor in many ...
Item does not contain fulltextPURPOSE OF REVIEW: This review aims to describe the recent findings co...
Contains fulltext : 172729.pdf (publisher's version ) (Open Access)Regulation of t...
The molecular biology of mammalian magnesium transport-ers and their interrelations in cellular magn...
Item does not contain fulltextPatients with hypomagnesemia suffer from a wide range of symptoms incl...
Magnesium (Mg21) is the fourth most abundant cation in the body. Thus, magnesium homeostasis needs t...
Magnesium is a divalent cation that is essential for human growth and wellbeing. It is critical in ...
Magnesium (Mg21) is the fourth most abundant cation in the body. Thus, magnesium homeostasis needs t...
BACKGROUND: Magnesium (Mg(2+)) is an essential electrolyte with important physiological functions. C...
Although magnesium is the dominant divalent intracellular cation and is required for the function of...
The kidney plays a key role in the maintenance of Mg(2+) homeostasis. Specifically, the distal convo...
Magnesium (Mg2+) is indispensable for several vital functions, such as neurotransmission, cardiac co...
AbstractMagnesium (Mg2+) transport across membranes plays an essential role in cellular growth and s...
AbstractThe magnesium ion (Mg2+) is the most abundant divalent cation within cells. In man, Mg2+-def...