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Tasmin, R.

Publications and source records attributed to Tasmin, R..

2 recordsLinked to original sources

Mitochondrial structural and functional defects in the Drosophila melanogaster model of PLA2G6 Associated Neurodegeneration (PLAN)

PLA2G6-associated neurodegeneration (PLAN) is a rare progressive disorder caused by mutations in PLA2G6, which encodes calcium-independent phospholipase A2, an enzyme required for phospholipid remodeling and membrane lipid homeostasis through the Lands cycle. Although mitochondrial dysfunction has been implicated in PLAN, how PLA2G6 loss affects mitochondrial structure and function across tissues, age, and sex remains unclear. Here, we used homozygous null iPLA2-VIA mutant Drosophila melanogaster, a model of PLAN, to examine mitochondrial ultrastructure, abundance, function, DNA content, and mitochondrial maintenance gene expression. Transmission electron microscopy revealed severe mitochondrial abnormalities in the brain, thorax, and ovary from 7-day-old and 3-week-old mutant flies, including disrupted cristae, abnormal morphology, and compromised membrane structure. Mutants also showed reduced mitochondrial number, which became more widespread with age. MitoTracker imaging further showed reduced mitochondrial staining and abnormal clumped mitochondrial distribution in mutant brains. Consistent with mitochondrial depletion, mitochondrial DNA content was reduced in mutants, with decreased ATPase6 but unchanged nuclear ATPSynC levels. Functionally, mutants exhibited reduced ATP production across multiple tissues and at the whole-body level, while ROS levels changed in a tissue-, age-, and sex-dependent manner. Transcript analysis showed reduced mTOR and PGC-1 expression, altered expression of fusion and fission genes including Opa1, Drp1, and Fis1, age- and sex-dependent changes in Pink1, reduced Trap1 expression in aged mutants, and unchanged Sirtuin 6 expression. Together, these findings show that iPLA2-VIA is required for mitochondrial maintenance and bioenergetic integrity in vivo.

cell biology↗

Drosophila melanogaster Nepl15 regulates lifespan, motor function, aging, heart rate, and cellular health in a sex-specific manner

Aging and obesity are characterized by comorbidities like declines in fertility, lifespan, gut barrier integrity, cardiac function, and motor activity, and an increase in oxidative stress due to altered nutrient and energy homeostasis. A study on Drosophila Neprilysin-like 15 (Nepl15) demonstrated that loss of Nepl15 gene significantly reduced glycogen and glycerolipid reserves in adult males and increased glycogen storage in adult females despite similar food consumption as controls. Therefore, we investigated the sex- and age-specific consequences of Nepl15 loss on cellular and physiological parameters associated with aging and obesity. We observed that egg production, rate of pupariation, and rate of adult fly eclosion were slightly better in the mutant flies. Interestingly, mutant females, but not males, exhibited significantly extended lifespan. Both sexes demonstrated improved locomotor performance, exercise endurance, gut barrier integrity, and preserved heart rate during progressive aging. At the cellular level, female mutants displayed reduced oxidative stress, elevated Sod2 expression, and increased ATP levels, all indicative of enhanced cellular health. Mutant males exhibited an increased mitochondrial membrane potential, indicating an enhanced capacity for rapid ATP production in response to enforced activity. Consistently, the energy-sensing kinase AMPK expression was reduced in the mutants. The lifespan extension of mutant females was supported by downregulation of mTOR and upregulation of Sirt6 expression. However, in mutant males, both mTOR and Sirt6 were downregulated, potentially contributing to improved physiological health without changing their lifespan. Collectively, our findings establish Nepl15 knockout mutation promotes anti-aging and anti-obesity health benefits, with stronger effects in female flies.

cell biology↗