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Biomedical subjects

J G Sivak

Publications and source records attributed to J G Sivak.

At least 19 recordsLinked to original sources

Inducing ametropias in hatchling chicks by defocus--aperture effects and cylindrical lenses.

Light-weight translucent plastic goggles with convex or concave rigid contact lens inserts were applied unilaterally to the eyes of young chicks. Convex and concave cylindrical lenses produced astigmatic refractive errors. The magnitude of the induced astigmatism was less than that of the inducing lens and varied with axis orientation. Decreased aperture size or interruption of the defocus resulted in a decreased response to refractive defocus. Slit apertures and spherical defocus produced variable amounts of myopia, hyperopia and astigmatism. Choroidal changes (increased thickness) were observed only in birds developing hyperopia or recovering from myopia.

Animals

The absence of a photopic influence on the refractive development of the embryonic eye of the clearnose skate (Raja eglanteria).

The clearnose skate (Raja eglanteria) develops in an almost opaque eggcase and lays its eggs in pairs. One sibling from each of eight pairs of skates was removed from its eggcase during embryonic development, while the other sibling developed inside the eggcase. The refractive development of the eyes at hatching was examined to see if ambient light exposure during embryonic development could influence the refractive states of hatchlings. Measurements included refractive states, ocular dimensions and lens focal properties. The differences in measurements between the two groups were not significant, which would indicate that environmental light does not influence the refractive development of the embryonic skate eye.

Animals

Microscopical evaluation of the crystalline lens of the squid (Loligo opalescens) during embryonic development.

The similarity between the cephalopod lens and the teleost (vertebrate) lens can be considered an optical example of convergent evolution. However, the embryology and ultrastructure of the cephalopod lens appear to be different from that of vertebrates, and perhaps unique to the animal kingdom. Using light and scanning electron microscopy, the morphogenesis of the squid (Loligo opalescens) lens is characterized. Results indicate that the posterior lens primordium appears first during development and is derived from cellular processes which extend from a middle group, group 2, of lentigenic (ectodermal) cells. The processes extend from the basal aspect of the lentigenic cells, project down into the optic vesicle during early stages of development, and fuse to form the posterior lens primordium. During later stages, the processes extend from surrounding lentigenic cells and are applied to the stalk of the lens, where they form bud-shaped protrusions. Once applied to the lens, the processes form lens elements that later fuse into plate-like elements evident in later-staged embryo and adult lenses. The anterior lens primordium is derived from an anterior group, group 1, of lentigenic cells, during later stages of development. Lentigenic processes extend from these lentigenic cells and are laid down in a circumferential fashion to form the anterior lens cap. As in the posterior lens, evidence indicates that the anterior lens elements fuse to form plate-like elements. The ultrastructure and morphogenesis of the cephalopod lens is discussed and contrasted with other strategies of lens development.

Animals

Retinal dopamine and lens-induced refractive errors in chicks.

This study investigated the relationship between retinal dopamine and lens induced refractive errors in chicks by high performance liquid chromatography with ultraviolet detection (HPLC-UV). After two weeks of lens wear, the chick eyes treated with +10D lenses were hyperopic (+8.29 +/- 0.43D), while the eyes treated with -10D lenses were myopic (-11.69 +/- 0.74D). At the same time, in myopic eyes the level of retinal dopamine and its metabolite 3,4-dihydroxy-phenylacetic acid (DOPAC) were reduced compared to control eyes, while in hyperopic eyes the level of retinal dopamine and DOPAC were increased as compared with control eyes. Therefore, retinal dopamine may participate in the development of lens induced refractive errors in chicks.

3,4-Dihydroxyphenylacetic Acid

In vitro ocular irritancy measure of four contact lens solutions: damage and recovery.

We measured the potential toxicity of four contact lens solutions using an in vitro approach in which the optical quality of the cultured bovine lens was measured as a function of exposure to each substance tested. This approach uses an automated scanning laser to measure the focal variability of lenses contained in special culture cells and maintained under long-term culture conditions. The products tested included three rigid gas permeable contact lens conditioning solutions (Boston Conditioning Solution, Boston Advance Conditioning Solution, and a new formulation of Boston Advance Conditioning Solution [Polymer Technology]) and one soft contact lens disinfecting system (OptimEyes; Core Technologies). The results indicate a wide range of toxicologic potential that corresponds, on a relative basis, with published in vivo evaluation of the same substances. Moreover, the results demonstrate that this in vitro system can be used to evaluate the potential for recovery from damage caused by the four solutions tested.

Animals

Immunolocalization of S-crystallins in the developing squid (Loligo opalescens) lens.

S-crystallins are the predominant soluble proteins of the squid lens. Of these, S-III crystallin is the major component and S-I and S-II crystallin are the minor lens components. The lens has a posterior and anterior segment, each derived from separate groups of ectodermal cells referred to as lentigenic cells. In the present study, the appearance of S-crystallins during the development of the lens of Loligo opalescens was followed by immuno-cytochemistry. S-crystallins of the lens and lentigenic cells were first observed at day 17 (Arnold stage 27) of embryogenesis. S-crystallins were not confined to a single region, but were present in the middle group (group 2) of lentigenic cells, the posterior lens primordium, and the processes connecting the lentigenic cells and the posterior lens primordium. Two days later (Arnold stage 28), the S-crystallins were also observed in the anterior group (group 1) of lentigenic cells, the anterior lens primordium, and the processes connecting the cells with the anterior lens primordium. Thus, during development, S-crystallins accumulate first in the posterior lens primordium and subsequently in the anterior lens primordium and their respective lentigenic cells and connecting lentigenic processes. Incubated sections of the adult lens and lentigenic cells also show specific immuno-peroxidase staining when compared with controls. This evidence in combination with a recent investigation (West [1993] Ph.D. dissertation), which indicates that the cephalopod lens continues to grow throughout adulthood, suggests that squid lens crystallins are synthesized during adulthood.

Animals

Growth and optical development of the ocular lens of the squid (Sepioteuthis lessoniana).

Lens focal properties (spherical aberration), diameter and relative anterior/posterior proportions were measured photographically for Japanese squid (Sepioteuthis lessoniana) at ages 4-6 weeks, 7-9 weeks and 7-8 months. The measures involved photographing the refractive effects of lenses in a physiological solution, with and without an index matching fluid (polyvinylpyrroloidone solution), on a parallel array of fine helium-neon laser beams. Spherical aberration was determined from measurement of back vertex distance. Similar measurements were made on lenses from the eyes of cuttlefish (Sepia officinalis). The cephalopod lens develops as hemispheric halves from separate ectodermal sources. The posterior component contributes, on average, about 60% of axial lens diameter in S. lessoniana of all ages and 55% in S. officinalis. However, these proportions vary widely in both species. All lenses of both species show that spherical aberration is neutralized, although small variations in back vertex distance (positive and negative spherical aberration) were measured. Preliminary measures indicate that the refractive index distribution within the cephalopod lens varies in a manner reminiscent of teleost lenses. Squid lenses from animals 7-9 weeks of age were optimally corrected for spherical aberration. Some squid of this age, from a separate tank, showed a high incidence of cataract development. In each case, lens opacification was caused by deterioration of the posterior lens component.

Aging

Lenticular changes in rainbow trout following chronic exposure to UV radiation.

Rainbow trout (Onchorynchus mykiss) were exposed to broad band ultraviolet irradiation for a period of 205 days with a 12h/12h on/off cycle. Total radiant exposure was 8.279 x 10(3) J cm-2 of UVA and 1.050 x 10(2) J cm-2 of UVB. Control fish were maintained under UVB-free and blue-free conditions. Quantitative and qualitative evaluation of the teleost crystalline lenses involved photo slitlamp biomicroscopy, dark-field stereomicroscopy and automated scanning laser monitoring. More cataractous changes including discrete anterior subcapsular and 'doughnut' opacities, and peri-nuclear haze were recorded in the lenses of the fish that received chronic UV exposure. However, no significant differences were found in focal lengths and scatter within the sensitivity of the instrumentation. These results support the hypothesis that chronic exposure to ambient levels of ultraviolet radiation is cataractogenic.

Animals

Optical effects of UV-A and UV-B radiation on the cultured bovine lens.

The effects of repeated exposures to UV-A (335 nm) and UV-B (305 nm) radiation on the crystalline lens were studied by treating cultured bovine lenses daily or weekly. The effects of irradiation on lens optical quality were monitored using an automated scanning laser system that records both relative transmittance and focal length across the lens. Relatively low radiant exposures of UV-B were used (0.06, 0.03, 0.01 J/cm2) compared to UV-A (1.44 J/cm2). In total, 38 treated lenses and 32 controls were cultured for times ranging from 400-1000 hours. Results indicate that this range of UV-B exposure may represent the threshold for in vitro UV-B induced opacification. Lenses treated weekly with 0.06 J/cm2 UV-B showed a significant decrease in transmittance compared to controls 69 hours after the first treatment and an increase in focal length variability. The ability of the lens to repair itself, as found in a previous single dose study, was absent after repeated doses. Lenses exposed daily to 0.03 and 0.01 J/cm2 UV-B showed no significant change in transmittance or focal length variability compared to controls. Daily exposure to 1.44 J/cm2 UV-A resulted in no significant change in transmittance or focal length variability compared to controls.

Animals

DL-propranolol inhibits lens hexokinase activity and affects lens optics.

A clinico-biochemical study indicated that the beta-blocker DL-propranolol may affect human lens epithelial hexokinase (HK) activity. In that study five key enzymes were analysed in 192 freshly excised human lens epithelia obtained during cataract surgery. In a large number of patients the epithelial HK was found to be inactive. Medical records of these patients showed widespread use of the drug DL-propranolol. In vitro experiments demonstrated a direct inhibitory effect of the drug on human lens HK activity. Lens refractive function was monitored during long term bovine lens culture experiments in which the potential cataractogenic agent was added to the culture media. DL-propranolol in a concentration of 0.1 mM reduced HK activity in bovine lens epithelium after 72 hr in organ culture and disrupted lens light focusing ability after 250 hr of incubation. Kinetic studies of HK inhibition suggested a competitive inhibitory effect of the drug on the enzyme.

Animals

Scanning electron microscope evaluation of the corneal endothelium in a case of unilateral microphthalmos with retrobulbar cyst in the pigmented rabbit.

A case of unilateral microphthalmos with a sizeable retrobulbar cyst, totally dysplastic retina, and gross nerve head coloboma is reported in an otherwise normal pigmented rabbit. Despite the gross abnormality of the posterior part of the globe, an iris sectoral coloboma, and abnormal lentoid body, the cornea was complete but had moderate edema and a reduced diameter. Scanning electron microscopy and morphometric analysis of the corneal endothelium showed a fully tessellated mosaic of cells that displayed only modest pleomorphism and polymegethism.

Animals

The refractive development of the eye of the American kestrel (Falco sparverius): a new avian model.

Most measures of avian visual performance are carried out on commonly available domestic species such as the chicken, and most of the data on avian induced refractive error deals with chickens. Raptors are predatory birds in which good visual resolving ability is particularly important. Behavioral studies indicate that the eyes of raptors have two to three times the resolving ability of the human eye. The domestic chicken is precocial at hatching whereas most raptors are semi-altricial. This study was an effort to determine if the effect of early visual deprivation on the refractive development of the chicken eye can be reproduced in the American kestrel, a species which is not domesticated and in which the need for acute vision is particularly important. Visual deprivation was achieved by unilaterally applying translucent plastic goggles over the eyes of kestrels two days after hatching. Refractive error was measured using a retinoscope and trial lenses. Ocular growth was monitored by A-scan ultrasonography, and frozen ocular sections of sacrificed birds. The effect of the experimental manipulation on the contralateral control eye and body weight was evaluated each day over a 42-day period. The goggles did not significantly affect the normal changes in body weight or the normal pattern of ocular growth and refractive development in the untreated eyes. An analysis of the refractive state changes as a result of form deprivation was made each week for 6 weeks after hatching on both the treated and untreated eyes in a separate group of experimental birds. Visual form deprivation caused a significant myopic shift in refractive error and a significant increase in the vitreous chamber depth in the treated eyes at 3 and 6 weeks of age. However, the amount of myopia produced is much less than that induced in chicks, and in certain cases hyperopia is produced. The kestrels recover from myopia and hyperopia within 10 days of goggle removal, after 3 to 4 weeks of deprivation. This study is the first indication that chickens may not be a representative bird model for studying form-deprivation myopia. First, myopia is not always produced in kestrels in response to form deprivation. Second, kestrels are severely myopic at hatching and therefore, the direction of emmetropization is opposite to that found in hatchling chicks.

Animals

Methionine intake in rainbow trout (Oncorhynchus mykiss), relationship to cataract formation and the metabolism of methionine.

Young rainbow trout were given diets containing graded levels of methionine for 16 wk. Analysis of the weight gain and food efficiency data showed the methionine requirement to be not more than 0.76% of the diet (1.9% of dietary protein). Activities of regulatory enzymes of the transulfuration pathway, methionine adenosyltransferase and cystathionine synthase in trout liver were not altered by changes in methionine intake. Concentrations of free serine in liver and plasma of the trout were high at low levels of methionine intake but fell as dietary methionine increased. This implied decreased flux through cystathionine synthase at low methionine intakes. Large increases in liver and plasma taurine occurred at high methionine intakes, implying enhanced transulfuration activity. Liver ornithine decarboxylase activity was reduced at the lowest level of dietary methionine used but the activity of S-adenosylmethionine decarboxylase was unchanged. Eye lenses of the trout given these diets were examined by a scanning lens monitor. Analysis of focal length variability with this equipment demonstrated that, if abnormality of the lens is to be avoided, a higher concentration of dietary methionine (0.96% or 0.6% methionine + 0.36% cystine) is needed than that required to maximize growth.

Amino Acids

Refractive plasticity of the developing chick eye.

We have developed a lightweight plastic goggle with rigid contact lens inserts that can be applied to the eyes of newly hatched chicks to explore the range and accuracy of the developmental mechanism that responds to retinal defocus. Convex and concave lenses of 5, 10, 15, 20 and +30 D were applied to one eye on the day of hatching. The chick eye responds accurately to defocus between -10 and +15 D, although hyperopia develops more rapidly than myopia. Beyond this range there is first a levelling off of the response and then a decrease. The resulting refractive errors are caused mainly by increases and decreases in axial length, although high levels of hyperopia are associated with corneal flattening. If +/- 10 D defocusing lenses are applied nine days after hatching the resulting myopia and hyperopia are equal to about 80% of the inducing power. After one week of inducing myopia and hyperopia with +/- 10 D lenses, the inducing lenses were reversed. In this case, the refractive error did not reach the power of the second lens after another week of wear. Instead, astigmatism in varying amounts (0-12 D) was produced, being greater when reversal was from plus to minus. Finally, astigmatism can also be produced by applying 9 D toric inducing lenses on the day of hatching. The astigmatism produced varies from 2 to 6 D, and the most myopic meridian coincides with the power meridian of the inducing lens. This astigmatism appears to be primarily due to corneal toricity.(ABSTRACT TRUNCATED AT 250 WORDS)

Accommodation, Ocular

Proteins of the vitreous humor during experimentally induced myopia.

Significant myopia was evident within 14 days after a translucent goggle was placed over the eye of a newly hatched chick. This myopia was characterized by large negative refractive error, increased axial and equatorial eye lengths, and increased wet eye weight. The volume of the vitreous humor increased in the myopic eye, because of a signficant accumulation of liquid vitreous humor. The protein concentration of the vitreous humor of the myopic and nonmyopic eyes was greater at day 14 than at day 0 (ie, first day after hatching). Moreover, over this time, the protein concentration in the liquid component decreased, whereas the protein concentration in the gel component increased in both myopic and nonmyopic eyes. No difference was found in the protein concentrations between the myopic and nonmyopic eye at day 14. Polyacrylamide gel electrophoresis revealed changes in band position and intensity of individual protein compoents between days 0 and 14. No major differences were found in the gel or the liquid vitreous humor between the myopic and the nonmyopic eyes. Comparison of vitreous humor proteins with proteins from the plasma showed that some but not all of the proteins in the vitreous had the same apparent molecular masses as proteins from these sources.

Aging

Scanning laser measure of optical quality of the cultured crystalline lens.

An apparatus has been designed to automate the laser measuring technique and make it possible to monitor lens refractive function (spherical aberration) as well as change in lens transmittance during lens culture. A scanning laser beam (helium-neon) is used so that a number of beams pass through different spots on the lens to determine lens spherical aberration compared over time. Each refracted beam, received by two video cameras (X and Y directions), is digitized. The system first locates the optical centre of the lens by determining the beam position providing the least deflection for both the X and Y directions. The beam is then moved in predetermined steps on either side of the centre, and focal lengths are determined relative to the optic axis for each position. A measure of beam scatter is noted from post-refraction pixel excitation for each beam position. Improvements to the scanning laser system have led to greater accuracy and speed as well as to improved culture cells. Accuracy was increased by using high resolution (1 micron) stepping motors to move the scanning helium-neon laser. A new alignment process involving the superposition of the incident beam reflected on itself ensures that the incident beam is perpendicular to the lens equatorial axis. Scanning speed has been improved through a variety of hardware and software changes. Scanning time for a lens, including locating the optical centre and measuring focal length for 20 lens positions along the X and Y directions, takes about 60 seconds. Long-term studies on the degradation of lens optical performance frequency yield diffuse beams of very low intensity.(ABSTRACT TRUNCATED AT 250 WORDS)

Aging

Optical development of the ocular lens of an elasmobranch, Raja eglanteria [corrected].

The shape and focal properties (spherical aberration) of the ocular lens of hatchling, yearling and adult clearnose skates (Raja eglanteria) were examined. In contrast to the spherical shape of the typical teleost lens, the lens of the clearnose skate is slightly aspherical; equatorial diameter being greater than axial diameter. The asphericity is approximately equal, in absolute measures, at all ages and is thus more obvious in younger skates. Lens spherical aberration is well corrected at all three levels of development. Yearling and adult lenses have relative focal lengths (Matthiessen's Ratio) which are close to the representative value of 2.55:1 expected for the teleost lens. However, the relative focal length of lenses from hatchling lenses is higher (about 2.75:1). This value approaches the upper limit of reports dealing with teleost lens focal characteristics. The difference between hatchling lenses and those of adult and yearling lenses may be due to the absence of extensive compression of central lens tissue by peripheral growth at early stages in development.

Animals

Inducing myopia, hyperopia, and astigmatism in chicks.

Myopia and hyperopia have been produced in chicks by applying specially designed convex and concave soft contact lenses to the eyes of newly hatched birds. After 2 weeks of wear, the eyes develop refractive states equivalent in sign and amount (+8 and -10 D) to the lens used. However, the lenses produce an artificial hyperopic shift during the first week of wear due to corneal flattening. We have developed a new approach involving the use of goggles with hard convex and concave contact lens inserts placed between the frontal and lateral visual fields. Myopia and hyperopia (+10 and -10 D) can be produced within days (4 days for hyperopia and 7 days for myopia) if the defocus is applied from the day of hatching. We can also produce significant amounts of astigmatism (1 to 5 D) axis at 90 degrees and 180 degrees by using cylindrical contact lens inserts. Although these last results are preliminary, they suggest that accommodation is not likely involved at this stage of refractive development because we do not believe that the accommodative mechanism can cope with cylindrical defocus. All spherical refractive errors produced using the goggle system appear to result from alterations in vitreous chamber depth.

Animals