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S Binkley

Publications and source records attributed to S Binkley.

At least 37 records · Page 2Linked to original sources

Diurnal variation of cation pump enzyme activity in pineal and seven other rat brain regions.

Adult female Long-Evans rats were maintained on an automatically regulated artificial lighting schedule of light:dark (L:D) 14.5:9.5 for 12 wk. After sacrifice at 0630, 1130, 1600, 1800, 2000, 2200, 0230, or 0400, the pineals were removed, weighed, and assayed for N-acetyltransferase (NAT), melatonin, Mg++-paranitrophenylphosphatase (pNPPase), and K-pNPPase activity. The brains were quickly dissected into the following areas: cerebellum, superior colliculi, inferior colliculi, visual cortex, auditory cortex, sensorimotor cortex, and the hypothalamic area around the suprachiasmatic nucleus. These regions were weighed and 10% sucrose homogenates were prepared for determinations of protein, Mg++-pNPPase, and K+-pNPPase activity. Pineal melatonin rose over six-fold from 144 +/- 70 pg/gland at 1130 to 981 +/- 173 pg/gland at 0230. Similarly, pineal NAT activity rose over 11-fold, from 119 +/- 12 pmol/gland/h to 1315 +/- 232 pmol/gland/h at the same times. K+-pNPPase activity rose by about two-thirds, from 133 +/- 12.8 nmol/gland/h to 224 +/- 22.3 nmol/gland/h from 1600 to 0230. However, when expressed per mg protein, these differences in pNPPase activity were not significant. There were no significant daily rhythms discernible in any of the seven other brain regions across these times. We conclude that cation pump enzyme activity varies only slightly with time in the rat brain and pineal gland, in spite of definite daily rhythms of pineal melatonin and NAT activity.

4-Nitrophenylphosphatase↗

Circadian rhythm resetting in sparrows: early response to doublet light pulses.

Circadian responses were studied using the perching activity of house sparrows (Passer domesticus). The sparrows were subjected to single or double 4-hr light pulses (the single pulses or the second pulses of the doublets scanned 24 hr) in the first cycle after previous entrainment to a light-dark cycle (LD 12:12). The differences in times at which the birds commenced perch-hopping in LD 12:12 before the pulses and in the five cycles immediately following the pulses were determined (phase shifts). A 24-hr time profile for phase shifts in response to single light pulses replicated our previous study: Early-night pulses delayed the rhythm (-1.7 hr), while late-night pulses advanced the rhythm (+3.8 hr). After pretreatment with a light pulse that advanced the birds +2.7 hr, the resetting curve was advanced. There were no delays; the range of average shifts was +0.1 hr to +6.2 hr. After pretreatment with a light pulse that delayed the birds -1.7 hr, the resetting curve was delayed. Average delays as much as -1.1 hr and advances up to +2.1 hr were measured. The data for double pulses were interpreted from predictions made from single-pulse data.

Animals↗

Photoperiod modifies circadian resetting responses in sparrows.

Circadian responses to photoperiod were studied in house sparrows (Passer domesticus) by subjecting them to 4-h light pulses and measuring the subsequent phases of their circadian rhythms. The direction and magnitude of phase shifts in response to 4-h light pulses following pretreatment with light-dark cycles (LD) 16:8 or LD 8:16 varied with time of day; advances (3.4 h) occurred when pulses were imposed in the late subjective night on both groups of birds; delays (-2.1 h) occurred when the pulses were imposed in the early subjective night on the LD 8:16 birds. The time profiles for responses to light pulses that scanned 24 h (phase-response curves) were modified by long and short photoperiod. Short photoperiod 1) increased amplitude (1.7 h), 2) increased time from the prior lights-out to the peak of advances (6 h), and 3) decreased the mean phase shift (0.9 h).

Animals↗

Direct and circadian control of sparrow behavior by light and dark.

House sparrows, Passer domesticus, have perch-hopping activity (1) which was elicited by light (direct), and (2) which exhibited daily rhythms that were entrained by environmental light-dark cycles (circadian). When photoperiod was more than 14 hr, the sparrows' activity coincided with the light; when it was less than 14 hr, the birds were also active in the dark according to circadian predictions. Bimodality was dependent on photoperiod with the maximum incidence (75%) in LD16:8. Sparrows placed in LD1:11 (skeleton of 13:11) synchronized the onsets of their activity with the light beginning 8-18 hr after the time of the last L/D irrespective of when the birds experienced the first 1 hr light. Thirty-five percent of the sparrows advanced when they entrained to LD1:11 with the first pulse 8 hr after the last L/D; 76-87% of the sparrows delayed when they entrained to LD1:11 with the first pulse 2, 5 or 18 after the last L/D. Sparrows kept in exotic light-dark cycles (with periods of 10 min, 1.5 hr, 3.0 hr, 6.0 hr, 12 hr) were active in the light. Some birds displayed circadian rhythms superimposed on short period patterns. The period lengths of the circadian rhythms were shorter (22.8 hr) than in constant dark (24.2 hr). When sparrows subjected to LD1.5:1.5 or 36 hr of constant light were placed in constant dark, the phase of their activity onsets extrapolated to 15 hr after the last lights-off.

Animals↗

Circadian rhythm in pineal N-acetyltransferase activity: phase shifting by dark pulses (III).

N-Acetyltransferase (NAT) is an enzyme whose rhythmic activity in the pineal gland and retina is thought to be responsible for melatonin circadian rhythms. The enzyme has circadian properties--its rhythm persists in constant conditions, and it is precisely controlled by light and dark. Experiments are reported in which 4-h light or dark pulses were imposed on chicks (Gallus domesticus) over a 24-h period. Pineal NAT profiles were measured during and subsequent to the pulses. The phase of the NAT cycle following pulses was plotted to obtain phase-response curves. Light pulses produced a maximum phase shift (advance of 5 h) 8 h after the expected time of lights-out; dark pulses produced a maximum phase shift (advance of 4 h) 3 h after the expected time of lights-out. Maximum phase delays (-2 h) occurred 1-2 h after the expected lights-out for light pulses and 8 h after expected lights-on for dark pulses.

Acetyltransferases↗

Phase shift of daily profiles of N-acetyltransferase in the rat pineal gland.

Pineal N-acetyltransferase activity (NAT) has a circadian rhythm with peak values in the dark time and low values in the light time. NAT time profiles were measured in rats exposed to LD 14:10, to constant dark, and to acute (less than 48 hr) light-dark treatments. In all experiments, imposition of light suppressed NAT. The phase of the dark time NAT cycle was altered 2 hr or less by the following treatments: 3 hr light in the early subjective night, 3 hr light in the late subjective night, 2 hr or 6 hr light in the early subjective day, 4 hr early lights-on, 1 day of constant dark, or 1 day of constant light. When light was extended 4 hr into the dark time, NAT rose at lights out but fell again as the time of "expected" dawn approached. In contrast, the phase of the NAT cycle was shifted 12 hr (180 degrees) within 72 hr by reversing the phase of the light-dark cycle. NAT did not rise in the first dark period (coincident with the time of the subjective light time). The amplitude of the first shifted cycle was less than four control NAT profiles measured in rats kept in the original (unshifted) light-dark cycle.

Acetyltransferases↗

Rat pineal N-acetyltransferase activity: stimulation, exhaustion, and recovery.

Rat pineal N-acetyltransferase activity (NAT) has a circadian rhythm, with a peak in the dark time. The rhythm of NAT was studied in young rats (26-40 days old). In particular, the possibility of maintenance of prolonged low NAT or prolonged high NAT was studied. NAT (given in nanomoles per pineal gland/h) had peak activity (33.0) in the dark time. Forty-eight hours of constant light suppressed the peak and maintained low NAT (0.5 or less). In vivo, in constant light, NAT was stimulated (to 13.1-29.4) by single injections of isoproterenol. Similarly, NAT was stimulated by isoproterenol or (Bu)2cAMP in vitro. In vivo, multiple injections of isoproterenol stimulated NAT for 14 h (to peak 31.9), but NAT was exhausted and fell to less than 5 over the next 8 h. Similarly, isoproterenol and (Bu)2cAMP exhausted NAT in vitro. High NAT was not maintained. NAT recovered [could be restimulated by dark in vivo, isoproterenol in vivo or in vitro, or (Bu)2cAMP in vitro]. Exhaustion was not permanent. Light can keep NAT at low levels, but dark cannot maintain peak NAT beyond 14 h. The results are interpreted as meaning that the duration of NAT is fixed.

Acetyltransferases↗

Prior light alters the circadian clock in the chick pineal gland.

N-Acetyltransferase activity (NAT) exhibits a circadian rhythm in the pineal gland and retinas of chickens and is responsible for melatonin circadian rhythms. Chick pineal gland NAT was measured in vivo and/or in vitro after light-dark cycles and after pretreatments with short photoperiod, long photoperiod, and constant light. Prior lighting changed the shape (phase, amplitude, and duration) of the rhythm in vivo. Some of the alterations are "programmed" into the pineal gland because they were observed in vitro in pineal glands from chicks similarly exposed to lighting pretreatments.

Acetyltransferases↗

Melatonin rhythms in the eyes, pineal bodies, and blood of Japanese quail (Coturnix coturnix japonica).

Melatonin levels in the eyes, pineal bodies, and blood of Japanese quail exposed to 12L:12D show robust daily rhythms with high levels occurring in the night and low levels occurring during the day. Since melatonin is synthesized in both the eyes and pineal bodies of birds, the relative contribution of these structures to the blood melatonin levels was determined. A rhythm of blood melatonin persisted in 12L:12D in birds blinded by complete orbital enucleation and in pinealectomized birds but the nighttime levels were reduced by 33 and 54%, respectively, as compared to melatonin levels in control quail. Only a small melatonin rhythm (13% of control levels) was detected in the blood of pinealectomized, blinded quail. This "residual" rhythm could indicate either the contribution of extrapineal, extraocular sources of melatonin or melatonin secretion from remnants (if any) of pineal body tissue remaining after pinealectomy. Blinding did not obviously affect pineal melatonin levels nor did pinealectomy affect ocular melatonin levels. It was concluded that (1) daily rhythms in melatonin content occur in the pineal bodies, the eyes, and the blood of quail; (2) the blood rhythm is the result of melatonin secretion from both the pineal body and the eyes; (3) extraretinal photoreceptors can mediate entrainment of the pineal melatonin rhythm; and (4) obvious compensatory changes in melatonin levels do not occur in the eye following pinealectomy or in the pineal body following blinding.

Animals↗

Daily profiles of N-acetyltransferase measured at a single time in rat pineal glands, retinas, and Harderian glands.

Serotonin N-acetyltransferase activity (NAT) exhibited a daily cycle in light:dark (LD) 14:10 when it was measured in pineal glands taken from rats killed at a sequence of time points. The ratio of peak subjective night NAT to minimum subjective day NAT was 10.9/0.3 nmol per pineal gland per hour. When the rats were placed in constant dark the rhythm persisted (8.2/0.02). When the rats were placed in constant light the rhythm persisted with markedly attenuated amplitude (0.6/0.02). We also measured NAT profiles in rat pineal glands, Harderian glands, and retinas with alternative methods. We kept rats on six LD 14:10 light-dark cycles with lights-out beginning at midnight, 2 AM, 4 AM, 6 AM, 8 AM, or 10 AM and killing all the rats at one time point, 10 AM. We examined the NAT time profiles 4, 8, and 11 days following placement of the rats in the phase-shifted cycles. In addition, we measured the NAT profile in LD 2:22 and LD 22:2 by keeping the rats on twelve cycles for 11 days and killing all the rats at one time. Pineal NAT exhibited a rhythm in all the cycles: peak-dark/nadir-light values (nmol product per gland per hour) were 15.6/0.1 in LD 14:10, controls killed at successive time points. The ratios for the profiles obtained using the one time point procedure were 16.7/0.1 in LD 14:10 8.5/0.2 in LD 22.2, and 12.9/0.2 in LD 2.22. Increasing the photoperiod reduced the time to the NAT peak.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetyltransferases↗

Circadian rhythms in house sparrows: lighting ad lib.

House sparrows, Passer domesticus, have circadian rhythms of locomotor activity that can be entrained by light-dark cycles. Perch-hopping activity was studied in house sparrows that were given control of their own lighting. In one series of experiments, sparrows permitted to select their own lighting most commonly chose circadian freerunning cycles. The period of the selected freerunning cycles was 23.2 hr (0.9 hr shorter than the period length the sparrows exhibited in constant dark). The average self-imposed "photoperiods" in the selected freerunning cycles ranged from 8.2-10.0 hr. In a second series of experiments, sparrows were exposed to LDLD1:6:1:16. This cycle can be interpreted ambiguously as the skeleton of a short photoperiod, LD8:16, or of a long photoperiod, LD18:6. All the birds (13 birds; 23 trials) interpreted the skeleton cycle as a short photoperiod because they entrained to it as they would to LD8:16.

Animals↗

Circadian rhythm in pineal N-acetyltransferase activity: phase shifting by light pulses (II).

N-Acetyltransferase (NAT) is an enzyme whose rhythmic activity in the pineal gland and retina is thought responsible for melatonin circadian rhythms. The enzyme has properties of a circadian biological clock--its rhythm persists in constant conditions and it is precisely controlled by light and dark. Experiments are reported in which light pulses of 1 to 10 h duration were imposed on chicks during their dark-time. The effect of these pulses upon the NAT was measured and the effect of the pulses on subsequent NAT was also determined. The experiments support the conclusion that the amount and/or duration of dark-time NAT is limited. This finding is interpreted as supporting the idea that a fixed amount of some substance, an initiator, is synthesized during the subjective day.

Acetyltransferases↗

The rise and fall of pineal N-acetyltransferase in vitro: neural regulation in the developing rat.

In rats, the pineal gland has a rhythm in the activity of the enzyme, N-acetyltransferase (NAT), which is thought responsible for daily cycles of melatonin synthesis. Neonatal rat pineal glands, but not those of adult rats, have a single cycle that is observed in vitro during the first day of organ culture. The neural regulation of the cycle was investigated using neonatal rats with adult rats used for comparison. Prior treatment of rat pups with constant light did not abolish the cycle in vitro though it did abolish the in vivo rhythm. Removal of the superior cervical ganglia did not abolish the in vivo rhythm that was measured the first day after surgery, but ablation of the ganglia did abolish the rhythm if several days or more elapsed after surgery. Extirpation of the superior cervical ganglia abolished the in vitro NAT cycle in pup pineal glands as did the pharmacological equivalent, injection of 6-hydroxydopamine. Propranolol, a beta blocking agent, prevented the occurrence of the cycle in vitro.

Acetyltransferases↗

Pineal glands of immature rats: rise and fall in N-acetyltransferase activity in vitro.

N-acetyltransferase activity in the pineal glands of immature rats (12--14 days old) shows a spontaneous rise and fall when the glands are placed in organ culture. The peak of the 28-fold change occurs 5--16 hr after the cultures are initiated. This observation can be interpreted in two ways: (1) the pup pineal gland is responding to norepinephrine released when nerve endings degenerate in culture, or (2) the pup pineal gland has an innate ability which is responsible. Whatever the mechanism, the phenomenon is associated with the development of pineal gland function since pineal glands of adult rats do not show a spontaneous rise and fall in identical experiments.

Acetyltransferases↗