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R R Ratan

Publications and source records attributed to R R Ratan.

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Long-lasting and rapid calcium changes during mitosis.

A more complete understanding of calcium's role in cell division requires knowledge of the timing, magnitude, and duration of changes in cytoplasmic-free calcium, [Ca2+]i, associated with specific mitotic events. To define the temporal relationship of changes in [Ca2+]i to cellular and chromosomal movements, we have measured [Ca2+]i every 6-7 s in single-dividing Pt K2 cells using fura-2 and microspectrophotometry, coupling each calcium measurement with a bright-field observation. In the 12 min before discernable chromosome some separation, 90% of metaphase cells show at least one transient of increased [Ca2+]i, 72% show their last transient within 5 min, and a peak of activity is seen at 3 min before chromosome separation. The mean [Ca2+]i of the metaphase transients is 148 +/- 31 nM (61 transients in 35 cells) with an average duration of 21 +/- 14 s. The timing of these increases makes it unlikely that these transient increases in [Ca2+]i are acting directly to trigger the start of anaphase. However, it is possible that a transient rise in calcium during late metaphase is part of a more complex progression to anaphase. In addition to these transient changes, a gradual increase in [Ca2+]i was observed starting in late anaphase. Within the 2 min surrounding cytokinesis onset, 82% of cells show a transient increase in [Ca2+]i to 171 +/- 48 nM (53 transients in 32 cells). The close temporal correlation of these changes with cleavage is consistent with a more direct role for calcium in this event, possibly by activating the contractile system. To assess the specificity of these changes to the mitotic cycle, we examined calcium changes in interphase cells. Two-thirds of interphase cells show no transient increases in calcium with a mean [Ca2+]i of 100 +/- 18 nM (n = 12). However, one-third demonstrate dramatic and repeated transient increases in [Ca2+]i. The mean peak [Ca2+]i of these transients is 389 +/- 70 nM with an average duration of 77 s. The necessity of any of these transient changes in calcium for the completion of mitotic or interphase activities remains under investigation.

Anaphase

Transition from metaphase to anaphase is accompanied by local changes in cytoplasmic free calcium in Pt K2 kidney epithelial cells.

We have used a Ca2+-sensitive dye, fura-2, to investigate the role of Ca2+ during mitosis in Pt K2 epithelial cells. The concentration of cytoplasmic free calcium, [Ca2+]i, increased 2-fold between metaphase and anaphase. Digital image analysis revealed two patterns of [Ca2+]i localization during anaphase. In half of the anaphase cells, the increase in [Ca2+]i was greatest in the region near the spindle poles and decreased radially. In the other anaphase cells, there was a ring of high [Ca2+]i in the cytoplasm, surrounding an area of low [Ca2+]i in the spindle midzone. Although the reason for the different patterns is not known, peak [Ca2+]i in both cases was sufficient to maintain a 2- to 6-fold gradient in [Ca2+]i from the polar region to the midzone. [Ca2+]i gradients may thus regulate spindle microtubule equilibria and directed chromosome movement during mitosis.

Anaphase

Cytosolic free calcium and cell spreading decrease in fibroblasts from aged and Alzheimer donors.

Aging and Alzheimer disease lead to alterations in calcium homeostasis. The concentration of cytosolic free calcium in cultured skin fibroblasts during aging and Alzheimer disease was determined with the calcium-sensitive fluorescent dyes quin-2 and fura-2. The Alzheimer donors showed a decline of 70% when compared to age-matched controls (P less than 0.001) and 81% when compared to cells from young adult donors (P less than 0.001). This reduction in quin-2-calcium fluorescence does not appear to be due to quenching by heavy metals or alterations in intracellular pH. Similar decreases in free cytosolic calcium were observed with fura-2. In addition, cells from aged and Alzheimer donors spread more slowly than those from young donors, and this deficit can be partially reversed by treatment with the calcium ionophore A23187. These studies agree with accumulating evidence that, at the cellular level, Alzheimer disease is a systemic, as well as cerebral, disease. The precise molecular basis of the decreased cytosolic calcium in fibroblasts is unknown, but there is evidence that it may be pathophysiologically important.

Adult

Altered response of fibroblasts from aged and Alzheimer donors to drugs that elevate cytosolic free calcium.

Previous studies demonstrate that resting intracellular calcium in cultured skin fibroblasts declines due to in vivo aging and is further depressed by Alzheimer's disease. These data suggest that altered calcium homeostasis may underlie the deficits in cell function (e.g., cell spreading) that also occur in these cells. Depressed cytosolic free calcium in fibroblasts from aged and Alzheimer donors can be elevated by various drug treatments. 3,4-Diaminopyridine, serum, N-formyl-methionyl-leucyl-phenylalanine and bradykinin increased cytosolic free calcium transiently although the rate of the increase was slower and the magnitude of the rise was less in cells from aged and Alzheimer donors when compared to young donors. Four minutes after N-formyl-methionyl-leucyl-phenylalanine or bradykinin treatment cytosolic free calcium returned to resting levels in all six cell lines. Six minutes after either serum or 3,4-diaminopyridine treatments, however, cytosolic free calcium in cells from aged and Alzheimer donors remained elevated at concentrations similar to the resting calcium level in young cells. Bradykinin and serum were effective in the absence of extracellular calcium but 3,4-diaminopyridine and N-formyl-methionyl-leucyl-phenylalanine were not. These demonstrate that dynamic, as well as resting calcium homeostasis, is altered in cultured skin fibroblasts from aged and Alzheimer donors.

4-Aminopyridine