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Biology subjects

Hino, Y.

Publications and source records attributed to Hino, Y..

4 recordsLinked to original sources

Calcium-dependent protein kinases participate in RBOH-mediated sustained ROS burst during plant immune cell death

The sensing of pathogen effector by an intracellular receptor called nucleotide-binding leucine-rich repeat receptor (NLR), induces a robust immune response, effector-triggered immunity (ETI). Sustained reactive oxygen species (ROS) production is accomplished by Nicotiana benthamiana RBOHB, an NADPH oxidase. However, molecular mechanisms connecting effector recognition and ROS production are unclear. Here, we show that calcium-dependent protein kinases (CDPKs) contribute to sustained ROS production downstream of NLR activation. We found that NbCDPK4 and NbCDPK5 directly phosphorylate NbRBOHB Ser-123 and provokes ROS production. In addition, constitutively active NbCDPKs upregulated NbRBOHB transcription. The phosphorylation of Ser-123 was significantly increased in a Ca2+-dependent manner during the ETI-like responses, which execute hypersensitive cell death. Moreover, transient expression of an autoactive helper NLR, NRC4, induced phosphorylation of Ser-123 dependent on its N-terminal conserved motif required for Ca2+ channel activity. These findings uncover a critical role for the NbCDPK-NbRBOHB module in regulating sustained ROS production during ETI.

plant biology↗

Androgen receptors expressed in the primary sensory neurons regulate mechanical pain sensitivity

The expression of hormonal receptors in pain-processing regions complicates understanding the hormonal effects on pain mechanisms. This study investigates androgen receptor (AR) involvement in pain sensitivity and sex differences in pain perception. Mechanical pain thresholds were higher in normal male mice compared to gonadectomized (GDX) male and normal female mice, correlating with serum testosterone levels. In the dorsal root ganglia (DRG), AR was expressed in normal males but undetectable in GDX males and normal females. In male sensory neuron-selective AR conditional knockout (AR-cKO) mice, mechanical pain thresholds were significantly lower than in wild-type males. In female mice, administration of testosterone propionate or dihydrotestosterone significantly raised mechanical pain thresholds, accompanied by increased AR expression in the DRG. This effect was abolished in AR-cKO females, consistent with male findings. These results indicate that primary sensory neurons are critical targets of androgen signaling in regulating mechanical pain sensitivity.

neuroscience↗

NADPH oxidase-mediated sulfenylation of cysteine derivatives is key regulatory events for plant immune responses

Reactive oxygen species (ROS) are rapidly generated during plant immune responses by RBOH, which is a plasma membrane-localizing NADPH oxidase. Although regulatory mechanisms of RBOH activity have been well documented, the ROS-mediated downstream signaling is unclear. We here demonstrated that ROS sensor proteins play a central role in the ROS signaling via oxidative post-translational modification of cysteine residues, sulfenylation. To detect protein sulfenylation, we used dimedone, which specifically and irreversibly binds to sulfenylated proteins. The sulfenylated proteins were labeled by dimedone in Nicotiana benthamiana leaves, and the conjugates were detected by immunoblotting. In addition, a reductant dissociated H2O2-induced conjugates, suggesting that cysteine persulfide and/or polysulfides are involved in sulfenylation. Sulfenylation of cysteine and its derivatives in ROS sensor proteins were continuously increased during both PTI and ETI in an RBOH-dependent manner. Pharmacological inhibition of ROS sensor proteins by dimedone perturbated cell death, ROS accumulation induced by INF1 and MEK2DD, and defense against fungal pathogens. On the other hand, Rpi-blb2-mediated ETI responses were rather enhanced by dimedone. These results suggest that the sulfenylation of cysteine and its derivatives in various ROS sensor proteins are important events in downstream of RBOH-dependent ROS burst to regulate plant immune responses. HighlightNADPH oxidase-mediated ROS production induces sulfenylation of cysteine residues or their derivatives of ROS sensor proteins, which regulates HR cell death, ROS accumulation, and defense against diverse plant pathogens.

immunology↗

LSD1 acts as an epigenetic barrier against glucocorticoid-induced atrophy and exercise-induced hypertrophy in skeletal muscle

Skeletal muscle exhibits remarkable plasticity in response to environmental cues, with stress-dependent effects on the fast-twitch and slow-twitch fibers. Although stress-induced gene expression underlies environmental adaptation, it is unclear how transcriptional and epigenetic factors regulate fiber type-specific responses in the muscle. Here, we show that flavin-dependent lysine-specific demethylase 1 (LSD1) differentially controls responses to glucocorticoid and exercise in postnatal skeletal muscle. Using skeletal muscle-specific LSD1 knockout mice and in vitro approaches, we found that LSD1 loss exacerbated glucocorticoid-induced atrophy in the fast fiber-dominant muscles, with reduced nuclear retention of Foxk1, an anti-autophagic transcription factor. Furthermore, LSD1 depletion enhanced endurance exercise-induced hypertrophy in the slow fiber-dominant muscles, by induced expression of ERR{gamma}, a transcription factor that promotes oxidative metabolism genes. Thus, LSD1 serves as an "epigenetic barrier" that optimizes fiber type-specific responses and muscle mass under the stress conditions. Our results uncover that LSD1 modulators provide emerging therapeutic and preventive strategies against stress-induced myopathies such as sarcopenia, cachexia, and disuse atrophy. Graphical abstract. LSD1 serves as an "epigenetic barrier" that defines stress sensitivities in the skeletal muscleLSD1 attenuates glucocorticoid (GC)-induced atrophy in the fast fiber-dominant muscles, in collaboration with Foxk1, an anti-autophagic transcription factor. On the other hand, LSD1 attenuates endurance exercise-induced hypertrophy in the slow fiber-dominant muscles, by inhibiting ERR{gamma}, a transcription factor that promotes oxidative metabolism genes. The loss of LSD1 remarkably sensitized the muscles to GC and endurance exercise.

cell biology↗