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Keskin, U.

Publications and source records attributed to Keskin, U..

2 recordsLinked to original sources

Effects of Retatrutide on Learning and Memory in Streptozotocin-Induced Diabetic Rats

Diabetes mellitus is associated with cognitive impairment and neurodegenerative changes, partly through hyperglycaemia-driven neuroinflammation and disrupted neuronal signalling. Retatrutide, a triple GIP/GLP-1/glucagon receptor agonist, has shown strong metabolic efficacy, but its effects on diabetes-associated cognitive dysfunction remain unclear. The present study investigated whether Retatrutide attenuates learning- and memory-related impairments in a streptozotocin-induced, insulin-deficient diabetic rat model. Male Sprague-Dawley rats were allocated to four groups: control (C), streptozotocin-induced diabetic (STZ), streptozotocin-induced diabetic treated with Retatrutide (STZR), and Retatrutide alone (R). Diabetes was induced with streptozotocin, and spatial learning and memory were assessed using the Morris Water Maze and Passive Avoidance tests. Metabolic parameters were monitored, while hippocampal cytokine levels (IL-1{beta}, TNF-), BDNF, CREB, and AKT mRNA expression, Tau protein levels, and cortical and hippocampal histopathology were evaluated using biochemical, molecular, and histological methods. Streptozotocin-induced diabetes produced persistent hyperglycaemia, marked body weight loss, and impaired behavioural performance, particularly prolonged escape latencies in the Morris Water Maze and a selective short-term Passive Avoidance deficit. Retatrutide reduced blood glucose levels but did not prevent diabetes-associated weight loss. In behavioural testing, Retatrutide-treated diabetic rats showed preserved overall Morris Water Maze performance relative to untreated diabetic rats and a limited, task-dependent attenuation of short-term avoidance deficits rather than complete normalisation across all memory measures. These effects were accompanied by a significant reduction in hippocampal TNF-, a non-significant trend toward lower IL-1{beta}, and partial preservation of cortical and hippocampal cytoarchitecture. Retatrutide alone did not improve behavioural performance beyond control levels, although BDNF and CREB mRNA expression were increased in the non-diabetic Retatrutide group. These findings indicate that Retatrutide is associated with a partial attenuation of streptozotocin-induced behavioural and neuroinflammatory alterations in male rats. The observed effects are consistent with actions extending beyond glycaemic control alone, although direct central exposure of Retatrutide was not established in the present study. Further studies in insulin-resistant and type 2 diabetes-like models are needed to clarify the underlying mechanisms and translational relevance.

animal behavior and cognition↗

MODERATE 3D ORBITAL SHAKING MITIGATES MATERNAL SEPARATION-INDUCED NEURODEVELOPMENTAL IMPAIRMENTS IN RATS

Maternal separation during early life is a well-established model for inducing neurodevelopmental impairments. Mechanical stimulation by passive movement, such as three-dimensional orbital shaking (3D-OS), has been suggested as a neuroprotective intervention in cell and tissue models, but its effects in neonatal animals remain unknown. We investigated whether 3D-OS applied during the postnatal period could attenuate neurogenesis impairments and cognitive deficits induced by maternal separation in rats. Eighteen newborn Sprague Dawley rats were assigned to control (C), maternal separation (MS), or maternal separation plus orbital shaking (MSOS) groups. Maternal separation was performed 3 h/day between postnatal days 2-21; MSOS additionally received 3D-OS stimulation (25 rpm, 3 h/day). Behavioural tests (Open Field, Novel Object Recognition, Morris Water Maze, Passive Avoidance), combined with RT-qPCR, Western blot, histology, and immunohistochemistry were conducted. MSOS rats displayed improved spatial learning in the early phases of the Morris Water Maze and recovered retention memory in Passive Avoidance compared to MS. In contrast, Open Field and Novel Object Recognition tests revealed no differences, and Western blot did not detect significant protein changes. Histological analysis showed reduced neuronal loss and vacuolisation in hippocampal and cortical regions of MSOS rats. RT-qPCR demonstrated reduced hippocampal FGF2 and FGFR1 expression in MS, partially restored by 3D-OS, while immunohistochemistry indicated increased FGFR2 and decreased FGFR1 in MSOS. Early-life 3D-OS administration alleviated maternal separation-induced cognitive decline and structural impairments, and enhanced hippocampal plasticity markers, providing preclinical evidence that moderate mechanical stimulation may support brain development and exert neuroprotective effects against early-life stress. HighlightsO_LIEarly-life 3D-OS mitigated maternal separation-induced deficits. C_LIO_LIImproved performance in Morris Water Maze and Passive Avoidance tasks. C_LIO_LINo significant effects observed in OFT, NOR, or Western blot. C_LIO_LI3D-OS restored hippocampal FGF-2 and FGFR1 mRNA levels in stressed rats. C_LIO_LIGentle mechanical stimulation may support early brain development. C_LI

animal behavior and cognition↗