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Shikina, S.

Publications and source records attributed to Shikina, S..

4 recordsLinked to original sources

Sex change every year: A unique reproductive strategy of the stony coral, Fimbriaphyllia (Euphyllia) ancor

The present study documents a unique reproductive strategy of the colonial stony coral, Fimbriaphyllia ancora, during observations spanning 8 years. Of 26 colonies monitored at Nanwan Bay, southern Taiwan, about 70% changed their sexes every year, i.e., colonies that were males two years ago became females last year, and changed back to males this year. Apparently, the remaining 30% were permanently male or female. Sex-change and non-sex-change colonies were growing in close proximity or even side-by-side, suggesting that this sex change phenomenon is not driven by environmental factors. No significant differences were found in colony size between sex-change and non-sex-change colonies, suggesting that the sex change strategy may be related to intrinsic factors, e.g., age or genetics. Histological analysis showed that female-to-male sex change occurs 4-5 months after spawning, whereas male-to-female sex change occurs 0-3 months after sperm release. We propose that this unique strategy may increase success of sexual reproduction of sessile, colonial corals.

zoology↗

A genome and tissue-specific transcriptomes of the large-polyp coral, Fimbriaphyllia (Euphyllia) ancora: Recipe for a coral polyp

Coral "polyps" are composed of several tissues; however, their characteristics are largely unexplored. Here we report biological characteristics of the four tissues that comprise polyps: tentacle (Te), mesenterial filament (Me), body wall (Bo), and mouth with pharynx (MP), using comparative genomic, morpho-histological, and transcriptomic analyses of the large-polyp coral, Fimbriaphyllia ancora. A draft F. ancora genome assembly of 434 Mbp was created. Morpho-histological and transcriptomic characterization of the four tissues showed that they have distinct differences in structure, primary cellular composition, and transcriptional profiles. Tissue-specific, highly expressed genes (HEGs) of Te are related to biological defense, predation, and coral-algal symbiosis. Me expresses multiple digestive enzymes, whereas Bo expresses innate immunity and biomineralization-related molecules. Many receptors for neuropeptides and neurotransmitters are expressed in MP. The established dataset and new insights into tissue functions will facilitate a deeper understanding of coral biology.

genomics↗

Successive responses of three coral holobiont components (coral hosts, symbiotic algae, and bacteria) to daily temperature fluctuations

Coral reef ecosystems support over a quarter of the worlds marine life and play important ecological and economic roles. However, the increasingly severe weather events associated with ocean warming and climate change are believed to be rapidly altering the functions of coral reefs and their ecosystems. Corals and their associated microbiota form a "holobiont," which includes symbiotic algae and other associated microbiota dominated by bacteria. These microbiota have a direct relationship with the health of the coral host. Their composition is influenced by various environmental factors, such as increasing sea water temperatures. Previous studies of the effects of temperature changes on coral physiology and associated bacterial communities have been conducted based on stable water temperatures set by mean temperatures, or by slowly increasing/decreasing temperatures. However, the daily temperature fluctuations that corals experience in nature are not stable. Rather, there may be significant differences of up to 6{degrees}C in a single day. The current understanding of the effects of large daily temperature fluctuations on coral and associated bacterial community dynamics is limited. Hence, in this study, we conducted a four-week tank experiment using different large daily temperature fluctuations accompanied by continuous warming conditions to investigate the effects on two common reef-building corals, Stylophora pistillata and Pocillopora acuta, in Taiwan. During the experiment, the activity of coral host catalase was measured, the photosynthetic ability of symbiotic algae was recorded, and the variation in bacterial communities was analyzed using the V6-V8 region of 16S rDNA. According to the results, different parts of the holobionts of different coral species exhibited varying response rates to the continuous warming conditions and diurnal temperature fluctuations. Additionally, it was found that diurnal temperature fluctuations may mitigate the heat stress on the host and reduce the changes in bacterial response to warming. Furthermore, the holobionts of different coral species may adopt different adaptation and survival strategies in response to diurnal temperature fluctuations and warming. Finally, based on the response of these two coral species under the conditions of diurnal temperature fluctuations and continuous warming, Acinetobacter and Rhodobacteraceae were identified as potential indicator coral-associated bacteria. This is the first study to investigate the tripartite dynamic response of coral, symbiotic algae and bacteria to daily temperature fluctuations.

microbiology↗

Response of Endozoicomonas montiporae to heat stress and coral host lysates

Endozoicomonas, a core bacterial group in corals, may also be a coral symbiont. Endozoicomonas communities often decrease rapidly in corals under heat stress. However, how the bacteria respond to changes in temperature and coral host during heat stress is unknown. Here, we employed the cultivable, dominant species E. montiporae as a working organism to explore how Endozoicomonas responds to heat stress. We designed two experiments to clarify the extent to which E. montiporae is influenced by temperature and coral host. We detected differentially expressed protein (DEP) profiles in this bacterium at 31{degrees}C and 33{degrees}C compared to 25{degrees}C by tandem mass tags-based quantitative proteome analysis. Fifty DEPs, including many heat shock proteins, were detected when the temperature changed. The expression of antioxidant defense proteins and key pyruvate synthase proteins decreased, suggesting that E. montiporae were in a physiology of stress at 33{degrees}C. Furthermore, some proteins were differentially expressed because of the heat-stress-treated coral lysate specifically, suggesting that not only heat but also heat-induced host factors can affect the protein expression of the bacterium. This study provides an in-depth analysis of how the molecular mechanisms of Endozoicomonas are affected by heat stress and coral host.

microbiology↗