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Biology subjects

Sawada, Y.

Publications and source records attributed to Sawada, Y..

3 recordsLinked to original sources

Application of Passive Head Motion to Generate Defined Accelerations at the Heads of Rodents

Exercise is widely recognized as effective for various diseases and physical disorders, including those related to brain dysfunction. However, molecular mechanisms behind the beneficial effects of exercise are poorly understood. Many physical workouts, particularly those classified as aerobic exercises such as jogging and walking, produce impulsive forces at the time of foot contact with the ground. Therefore, it was speculated that mechanical impact might be implicated in how exercise contributes to organismal homeostasis. For testing this hypothesis on the brain, a custom-designed passive head motion (hereafter referred to as PHM) system was developed that can generate vertical accelerations with controlled and defined magnitudes and modes and reproduce mechanical stimulation that might be applied to the heads of rodents during treadmill running at moderate velocities, a typical intervention to test the effects of exercise in animals. By using this system, it was demonstrated that PHM recapitulates the serotonin (5-hydroxytryptamine, hereafter referred to as 5-HT) receptor subtype 2A (5-HT2A) signaling in the prefrontal cortex (PFC) neurons of mice. This work provides detailed protocols for applying PHM and measuring its resultant mechanical accelerations at rodents heads. SUMMARYThe present protocol describes a custom-designed passive head motion system, which reproduces mechanical accelerations at rodents heads generated during their treadmill running at moderate velocities. It allows dissecting mechanical factors/elements from the beneficial effects of physical exercise.

bioengineering↗

Uhrf1 governs the proliferation and differentiation of muscle satellite cells

DNA methylation is an essential form of epigenetic regulation responsible for cellular identity. In muscle stem cells, termed satellite cells, DNA methylation patterns are tightly regulated during differentiation. However, it is unclear how these DNA methylation patterns are maintained. We demonstrate that a key epigenetic regulator, ubiquitin like with PHD and RING finger domains 1 (Uhrf1), is activated in proliferating myogenic cells but not expressed in quiescent or differentiated myogenic cells in mice. Ablation of Uhrf1 in mouse satellite cells impairs their proliferation and differentiation, leading to failed muscle regeneration. Loss of Uhrf1 in satellite cells alters transcriptional programs, leading to DNA hypomethylation with activation of Cdkn1a and Notch signaling. Although down-regulation of Cdkn1a rescued proliferation but not differentiation, inhibition of Notch signaling rescued impaired differentiation of Uhrf1-deficient satellite cells. These findings point to Uhrf1 as a regulator of self-renewal and differentiation of satellite cells via genome-wide DNA methylation patterning.

molecular biology↗

Mechanical impact on the head has an antihypertensive effect

Physical exercise is known to be beneficial for various brain functions. However, the mechanisms behind the positive effects of exercise on the brain remain to be elucidated. Here we show that passive head motion in hypertensive rats, which reproduces the mechanical accelerations generated in their heads during moderate-velocity treadmill running, decreases the expression of angiotensin II type 1 receptor (AT1R) in astrocytes in the rostral ventrolateral medulla (RVLM), thereby lowering blood pressure. Passive head motion generates interstitial fluid movement that is estimated to exert shear stress with an average magnitude of <1 Pa on the cells in the rat medulla. Fluid shear stress of a sub-Pa magnitude decreases AT1R expression in cultured astrocytes. In hypertensive rats, inhibition of interstitial fluid movement following hydrogel introduction to the RVLM eliminates the antihypertensive effects of passive head motion and treadmill running. Furthermore, vertically oscillating chair riding by hypertensive adult humans, which reproduces the mechanical accelerations generated in their heads during light jogging or fast walking, lowers their blood pressure. Our findings indicate that moderate mechanical intervention can have antihypertensive effects by modulating the function of RVLM astrocytes through interstitial fluid shear stress. We anticipate that mechanical regulation is responsible for a variety of the positive effects of physical exercise on human health, particularly those related to brain functions.

bioengineering↗