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Biology subjects

Onishi, A.

Publications and source records attributed to Onishi, A..

4 recordsLinked to original sources

The metabolically protective energy expenditure increase of Pik3r1-related insulin resistance is not explained by Ucp1-mediated thermogenesis

Human SHORT syndrome is caused by dominant negative human PIK3R1 mutations that impair insulin-stimulated phosphoinositide 3-kinase (PI3K) activity. This produces severe insulin resistance (IR) and often reduced adiposity, commonly described as lipodystrophy. However unlike human primary lipodystrophies, SHORT syndrome does not feature fatty liver or dyslipidaemia. Pik3r1Y657*/WT (Pik3r1Y657*) mice metabolically phenocopy humans, moreover exhibiting increased energy expenditure. We have hypothesised that this increased energy expenditure explains protection from lipotoxicity, and suggested that understanding its mechanism may offer novel approaches to mitigating the metabolic syndrome. We thus set out to determine whether increased Ucp1-dependent thermogenesis explains the increased energy expenditure in Pik3r1-related IR. Male and female Pik3r1Y657* mice challenged with a 45% fat diet for 3 weeks at 21{degrees}C showed reduced metabolic efficiency not explained by changes in food intake or physical activity. No changes were seen in thermoregulation, assessed by thermal imaging and a modified Scholander protocol. Ucp1-dependent thermogenesis, assessed by norepinephrine-induced oxygen consumption, was also unaltered. Housing at 30{degrees}C did not alter the metabolic phenotype of male Pik3r1Y657* mice, but led to lowered physical activity in female Pik3r1Y657* mice compared to controls. Nevertheless these mice still exhibited increased energy expenditure. Ucp1-dependent thermogenic capacity at 30{degrees}C was similar in Pik3r1Y657* and WT mice. We conclude that the likely metabolically protective energy leak in Pik3r1-related IR is not caused by Ucp1-mediated BAT hyperactivation, nor impaired thermal insulation. Further metabolic studies are required to seek alternative explanations such as non Ucp1-mediated futile cycling. New and NoteworthyUnderstanding how Pik3r1Y657* mice and humans are protected from lipotoxicity despite insulin resistance may suggest new ways to mitigate metabolic syndrome. We find reduced metabolic efficiency and increased energy expenditure in Pik3r1Y657* mice but no differences in locomotion, thermoregulation or Ucp1-dependent thermogenesis. Protective energy expenditure in Pik3r1-related insulin resistance has an alternative, likely metabolic, explanation

physiology↗

Efficient workflow for validating homology-independent targeted integration-mediated gene insertion in rod photoreceptor cells to treat dominant-negative mutations causing retinitis pigmentosa

Among the genome-editing methods for repairing disease-causing mutations resulting in dominant inhibition, homology-independent targeted integration (HITI)-mediated gene insertion of the normal form of the causative gene is useful because it allows the development of mutation-agnostic therapeutic products. For the rapid optimization and validation of highly effective HITI-treatment gene constructs against dominant-negative inheritance of inherited retinal dystrophy, we improved the gene constructs available in both plasmid and adeno-associated virus (AAV) vectors, and established a workflow that uses in vivo electroporation to verify the in vivo efficacy. By targeting the mouse Rhodopsin gene, we derived a construct in which HITI-mediated gene insertion occurs in 80%-90% of transduced mouse rod photoreceptor cells. This construct suppressed degeneration and induced visual restoration in the mutant mice. The HITI-treatment constructs for the rhodopsin gene were shown to be effective in AAV vectors, and this construction is available for the mouse Peripherin 2 gene. These findings suggest that the workflow reported here may be useful for the generation of HITI-treatment constructs for various target genes and for the development of gene therapy products.

molecular biology↗

An intrinsic endothelial dysfunction causes cerebral small vessel disease

Small Vessel Disease (SVD) is the leading cause of vascular dementia, causes a quarter of strokes, and worsens stroke outcomes(1, 2). The disease is characterised by cerebral small vessel and white matter pathology, but the underlying mechanisms are poorly understood. Classically, the microvascular and tissue damage has been considered secondary to extrinsic factors, such as hypertension, consisting of microvessel stiffening, impaired vasoreactivity and blood-brain barrier dysfunction identified in human sporadic SVDs. However, increasing evidence points to an underlying vulnerability to SVD-related brain damage, not just extrinsic factors. Here, in a novel normotensive transgenic rat model where the phospholipase flippase Atp11b is deleted, we show pathological, imaging and behavioural changes typical of those in human sporadic SVD, but that occur without hypertension. These changes are due to an intrinsic endothelial cell dysfunction, identified in vessels of the brain white matter and the retina, with pathological evidence of vasoreactivity and blood-brain barrier deficits, which precipitate a secondary maturation block in oligodendroglia and myelin disruption around the small vessels. This highlights that an intrinsic endothelial dysfunction may underlie vulnerability to human sporadic SVD, providing alternative therapeutic targets to prevent a major cause of stroke and dementia.

neuroscience↗

Genetically engineered retina for improved retinal reconstruction after transplantation

ES/iPS-retinal sheet transplantation, which supplies photoreceptors as well as other retinal cells, has been shown able to restore visual function in mice with end-stage retinal degeneration. Here, by introducing a novel type of genetically engineered ES/iPS-retinal sheet with reduced numbers of secondary retinal neurons but intact photoreceptor cell layer structure, we reinforced the evidence that ES/iPS-retinal sheet transplantation can establish synaptic connections with the host, restore light responsiveness and reduce aberrant RGC spiking. Furthermore, we show that genetically engineered grafts can substantially improve the outcome of the treatment by improving neural integration. We speculate that this leads to reduced spontaneous activity in the host which in turn contributes to a better visual recovery.

neuroscience↗