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Biology subjects

Oka, N.

Publications and source records attributed to Oka, N..

3 recordsLinked to original sources

Coordinated Discordance: Strategic Nest Attendance for Chick Rearing in Monogamous Seabird

Behavioral coordination between mated pairs plays a critical role in the reproductive success of many species practicing bi-parental care. In pelagic seabirds such coordination may help cope with the challenges posed by spatially heterogeneous and limited food availability. This study investigated the relationship between parental coordination and reproductive performance by analyzing nest attendance patterns of breeding pairs of the Streaked Shearwater Calonectris leucomelas during the chick-rearing period on Mikura Island, Japan. Using an automated identification system, we recorded nest attendance and quantified coordination levels through the {varphi} coefficient. Our analysis revealed that higher coordination levels were associated with reduced extended nest absence periods, potentially decreasing prolonged chick fasting. However, coordination levels showed no significant direct effect on chick growth rates, while regular provisioning frequency, which can be associated with the coordination, and meal size emerged as critical determinants of chick development. These findings indicate that, in Streaked Shearwaters, behavioral coordination during chick rearing contributes to indirect effect on chick development, and also, might reduce the duration of unguarded periods at the nest.

ecology↗

The pathogenic coronatine toxin hijacks host redox signalling to suppress plant immunity

Reciprocal antagonism between the hormones salicylic acid (SA) and jasmonic acid (JA) is particularly important during infection by the bacterial pathogen Pseudomonas syringae. P. syringae secretion of the virulence-promoting toxin, coronatine, is thought to suppress SA-induced immune responses by manipulating host JA signalling. Here, we report an unexpected JA-independent role of coronatine in promoting pathogen virulence. While JA induced resistance to P. syringae, coronatine promoted pathogen virulence by suppressing cellular accumulation of glutathione, a vital antioxidant required for immunity. Coronatine-mediated suppression of glutathione levels prevented activation of NPR1, a redox-sensitive master regulator of SA-responsive immune genes. Moreover, the accrual of nitric oxide (NO) restored virulence of coronatine-deficient P. syringae, but was counteracted by expression of the host S-nitrosothiol reductase, Thioredoxin h5. Thus, our findings indicate P. syringae utilises coronatine to suppresses host immunity by precisely manipulating glutathione- and NO-mediated redox signalling networks.

plant biology↗

SARS-CoV-2 causes brain inflammation via impaired neuro-immune interactions

The brain inflammation that frequently occurs in SARS-CoV-2 is the cause of neurological complications1,2 and long COVID 3,4,5. However, many aspects of its pathogenesis mechanism remain unknown 6, 7 and no method of treatment has been established 8. By administering a non-proliferating adenovirus vector expressing SARS-CoV-2 S1 protein into the nasal cavity of mice, we developed a mouse model (S1 mouse) reproducing brain inflammation, fatigue, depressive symptoms, and lung inflammation. Having intracellular calcium elevating activity, S1 protein increased olfactory bulb apoptosis, and reduced the number of acetylcholine producing cells in the medial septal and the diagonal band of Broca as well as the amount of acetylcholine in the brain. This resulted in disrupting the cholinergic anti-inflammatory pathway (CAP) 9 and enhancing inflammation in the brain. Previously, nothing was known about anti-inflammatory factors in the CAP but we discovered that, in the inflammation occurring in the S1 mouse brain, the action of the RNA binding protein ZFP36 10 in degrading inflammatory cytokine mRNA was impaired. The symptoms exhibited by the S1 mouse were improved by administering donepezil, a drug with a cholinergic action used in the treatment of dementia. These findings clarify the mechanism of brain inflammation in COVID-19 and indicate the possibility of applying donepezil in the treatment of neurological complications in COVID-19 and long COVID.

microbiology↗