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Biomedical subjects

W F Langley

Publications and source records attributed to W F Langley.

2 recordsLinked to original sources

Skeletal buffer function and symptomatic magnesium deficiency.

A major factor relating to the oversight of neurological dysfunction and seizures caused by magnesium (Mg++) depletion, involves the buffer functions of the skeletal system orchestrated primarily by the parathyroid. A Mg++ depleted subject may appear relatively asymptomatic until a short period after homeostatic responses go into effect. The results can be devastating if not recognized promptly and treated appropriately. This series of events can best be demonstrated in veterinary medicine but we propose that analogous syndromes occur in clinical medicine. Evidence is presented to support the hypothesis that in subjects with parathyroid hyperactivity and Mg++ deficiency, the stimulus of a rise in serum ionic calcium (Ca++), and the resultant inhibition of parathyroid hormone (PTH) secretion, trigger the transfer of Ca++, Mg++ and other ions from the extracellular space into the exchangeable bone compartment. More importantly, there is a transfer of Mg++ ions from the cerebrospinal fluid into the blood and ultimately into the bone compartment. If the gradient is large and the stimulus adequate, neurological signs and symptoms may be induced. The degree of Ca++ and Mg++ depletion of the peripheral bone and the amount and duration of Ca++ ion increase largely determine the duration and severity of symptoms. The symptom complex is facilitated by sympathetic stimulation. An analogous situation may exist with sodium (Na+).

Animals

Central nervous system magnesium deficiency.

The central nervous system concentration of magnesium (Mg++) appears to have a critical level below which neurologic dysfunction occurs. Observations presented suggest that the interchange of the Mg++ ion between the cerebrospinal fluid, extracellular fluid, and bone is more rapid and dynamic than is usually believed. This is especially so when the hypertrophied parathyroid gland is associated with significant skeletal depletion of Mg++ as judged by history rather than serum level. Magnesium, much like calcium, has a large presence in bone and has a negative feedback relationship with the parathyroid gland. A decline in central nervous system Mg++ may occur when the skeletal buffer system orchestrated largely by the parathyroid glands is activated by an increase in serum calcium. Observations in veterinary medicine and obstetrics suggest that the transfer of Mg++ from the extracellular fluid into bone during mineralization processes may be extensive. If the inhibition of the hypertrophied parathyroid gland is prolonged and the skeletal depletion of Mg++ extreme, serious neurologic symptoms, including seizures, coma, and death, may occur. Noise, excitement, and bodily contact appear to precipitate neurologic symptoms in Mg+(+)-deficient human subjects as it has been documented to occur in Mg+(+)-deficient experimental animals. The similarity of the acute central nervous system demyelinating syndromes with reactive central nervous system Mg++ deficiency is reviewed.

Adolescent