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Shuichi Kinoshita

Publications and source records attributed to Shuichi Kinoshita.

8 recordsLinked to original sources

Determination of a coupling function in multicoupled oscillators.

A new method to determine a coupling function in a phase model is theoretically derived for coupled self-sustained oscillators and applied to Belousov-Zhabotinsky (BZ) oscillators. The synchronous behavior of two coupled BZ reactors is explained extremely well in terms of the coupling function thus obtained. This method is expected to be applicable to weakly coupled multioscillator systems, in which mutual coupling among nearly identical oscillators occurs in a similar manner. The importance of higher-order harmonic terms involved in the coupling function is also discussed.

Journal Article↗

Structural or pigmentary? Origin of the distinctive white stripe on the blue wing of a Morpho butterfly.

A few species of Morpho butterflies have a distinctive white stripe pattern on their structurally coloured blue wings. Since the colour pattern of a butterfly wing is formed as a mosaic of differently coloured scales, several questions naturally arise: are the microstructures the same between the blue and white scales? How is the distinctive whiteness produced, structurally or by means of pigmentation? To answer these questions, we have performed structural and optical investigations of the stripe pattern of a butterfly, Morpho cypris. It is found that besides the dorsal and ventral scale layers, the wing substrate also has the corresponding stripe pattern. Quantitative optical measurements and analysis using a simple model for the wing structure reveal the origin of the higher reflectance which makes the white stripe brighter.

Animals↗

Single-scale spectroscopy of structurally colored butterflies: measurements of quantified reflectance and transmittance.

Butterfly scales generally have very elaborate structures in submicrometer size, and some of them show distinctive optical effects through interaction with light. We describe two methods to quantitatively characterize the optical properties of the individual scales in those structurally colored butterflies. Owing to the small dimensions of the scale and to the fact that the reflection and transmission are very diffuse, it is generally difficult to accurately measure the reflectance and transmittance. To overcome these difficulties, we have carefully constructed an optical system including an integrating sphere and investigated variously colored nine kinds of scale. It is shown that the obtained spectra clearly characterize the optical differences among those structurally colored scales and also the differences between structural and pigmentary colors. Further, we have performed the angle-resolved measurement of the reflected light to characterize the spatial pattern of reflection, which is closely related to the mechanism of reflection.

Algorithms↗

Rugged fitness landscapes of Kauffman models with a scale-free network.

We study the nature of the fitness landscapes of a "quenched" Kauffman's Boolean model with a scale-free network. We have numerically calculated the rugged fitness landscapes, the distributions, their tails, and the correlation between the fitness of local optima and their Hamming distance from the highest optimum found, respectively. We have found that (a) there is an interesting difference between random and scale-free networks such that the statistics of the rugged fitness landscapes is Gaussian for the random network while it is non-Gaussian with a tail for the scale-free network; (b) as the average degree [k] increases, there is a phase transition at the critical value of [k]=[k]c=2, below which there is a global order and above which the order goes away.

Algorithms↗

Structural colors in nature: the role of regularity and irregularity in the structure.

Coloring in nature mostly comes from the inherent colors of materials, but it sometimes has a purely physical origin, such as diffraction or interference of light. The latter, called structural color or iridescence, has long been a problem of scientific interest. Recently, structural colors have attracted great interest because their applications have been rapidly progressing in many fields related to vision, such as the paint, automobile, cosmetics, and textile industries. As the research progresses, however, it has become clear that these colors are due to the presence of surprisingly minute microstructures, which are hardly attainable even by ultramodern nanotechnology. Fundamentally, most of the structural colors originate from basic optical processes represented by thin-film interference, multilayer interference, a diffraction grating effect, photonic crystals, light scattering, and so on. However, to enhance the perception of the eyes, natural creatures have produced various designs, in the course of evolution, to fulfill simultaneously high reflectivity in a specific wavelength range and the generation of diffusive light in a wide angular range. At a glance, these two characteristics seem to contradict each other in the usual optical sense, but these seemingly conflicting requirements are realized by combining appropriate amounts of regularity and irregularity of the structure. In this Review, we first explain the fundamental optical properties underlying the structural colors, and then survey these mysteries of nature from the viewpoint of regularity and irregularity of the structure. Finally, we propose a general principle of structural colors based on structural hierarchy and show their up-to-date applications.

Animals↗

Wavelength-selective and anisotropic light-diffusing scale on the wing of the Morpho butterfly.

We have found that cover scales on the wing of the butterfly Morpho didius possess specially designed microscopic structures for wavelength-selective reflection and contribute considerably to the brilliant blue colour of the wing. In addition, the cover scale functions as an anisotropic optical diffuser which diffuses light only in one plane, while it makes the range of reflection narrower in the orthogonal plane. The quantitative analyses for the wavelength-selection mechanism and the peculiar optical diffuser are given and the role of such a special optical effect is discussed from physical and biological viewpoints.

Animals↗

Angiotensin II receptor blocker prevents increased arterial stiffness in patients with essential hypertension.

BACKGROUND: High pulse wave velocity (PWV) is related to cardiovascular risk in essential hypertension (EHT). It is reported that short-term treatment with an angiotensin II receptor blocker (ARB) decreases PWV, as well as blood pressure (BP), and increases the serum adiponectin, known as an adipocytokine, which has an anti-atherosclerotic effect. However, it is not known whether long-term treatment with ARB prevents the increase in PWV independently of the reduction of BP, and whether adiponectin is related to the chronic effect of ARB on PWV. METHODS AND RESULTS: In order to examine the short-term effect of ARB on PWV, 9 subjects with EHT had PWV measured before and after treatment with an ARB for 1 month. The treatment significantly reduced PWV and BP. For evaluation of the long-term effect of ARB therapy, 56 consecutive subjects with EHT who were already taking anti-hypertensive drugs other than an angiotensin-converting enzyme inhibitor had their PWV measured. We divided the EHT subjects into 2 groups: (1) the ARB group (EHT treated with an ARB for at least 6 months) and (2) the control group (EHT treated with anti-hypertensive drugs other than an ARB). Although there was no significant difference between the 2 groups in BP, age or body mass index, the PWV value in the ARB group was significantly lower than that in the control group. Moreover, the serum adiponectin concentration in the ARB group was significantly higher than that in the control group. CONCLUSIONS: Long-term treatment with ARB inhibits the progression of arterial stiffness independent of BP reduction. One of the mechanisms may be related to the increased serum adiponectin concentration after treatment with an ARB.

Adiponectin↗

Mechanisms of structural colour in the Morpho butterfly: cooperation of regularity and irregularity in an iridescent scale.

Structural colour in the Morpho butterfly originates from submicron structure within a scale and, for over a century, its colour and reflectivity have been explained as interference of light due to the multilayer of cuticle and air. However, this model fails to explain the extraordinarily uniform colour of the wing with respect to the observation direction. We have performed microscopic, optical and theoretical investigations, and have found that the separate lamellar structure with irregular heights is extremely important. Using a simple model, we have shown that the combined action of interference and diffraction is essential for the structural colour of the Morpho butterfly.

Animals↗